Fusible switching disconnect modules and devices
27 claims: 3 independent, 24 dependent
- 1REIVINDICAÇÕES 1. Dispositivo de desconexão do comutador do fusível, compreendendo:um alojamento de desconexão adaptado para receber pelo menos um fusível no mesmo, o fusível sendo fornecido separadamente a partir do alojamento e sendo removivelmente inserível no alojamento;terminais de carga lateral e de linha lateral que conectam o fusível quando o fusível é inserido no alojamento, pelo menos um dos terminais de carga lateral e de linha lateral compreendendo uma primeira porção configurada para receber e engatar um primeiro fio, e uma segunda porção configurada pra receber e engatar um segundo fio;em que a primeira porção e a segunda porção sejam distintas uma da outra;e em que o primeiro e o segundo fio possam, cada um, ser simultaneamente conectados à primeira porção e à segunda porção, respectivamente.
- 2Dispositivo, de acordo com a reivindicação 1, em que o primeiro fio compreende um fio isolado dotado de uma extremidade desencapada.
- 3Dispositivo, de acordo com a reivindicação 1, em que o segundo fio compreende um fio fornecido com um conector de terminal bifurcado.
- 4Dispositivo, de acordo com a reivindicação 1, em que ao menos um dos terminais de carga lateral e de linha lateral é configurado para engatar e liberar simultaneamente o primeiro e o segundo fios.
- 5Dispositivo, de acordo com a reivindicação 1, em que o alojamento compreende uma primeira porta de acesso para receber o primeiro fio, e uma segunda porta de acesso espaçada da primeira porta de acesso para receber o segundo fio.
- 6Dispositivo, de acordo com a reivindicação 1, em que o fusível compreende um rótulo, o rótulo do fusível e uma porção do dispositivo sendo codificados por cores para indicar uma taxa de amperagem do fusível através da inspeção visual dos dispositivos quando o fusível estiver contido nele.
- 7Dispositivo, de acordo com a reivindicação 6, em que o dispo2 sitivo ainda compreende uma cobertura de fusível, o rótulo do fusível e a cobertura do fusível sendo codificados por cores para indicar a amperagem e a taxa de amperagem do fusível.
- 8Dispositivo, de acordo com a reivindicação 1, em que o primeiro fio conecta pelo menos um terminal a um módulo indicador do estado do fusível, e o segundo fio conecta o dispositivo a um circuito de linha lateral e um circuito de carga lateral.
- 9Dispositivo, de acordo com a reivindicação 1, em que cada um dos terminais de carga lateral e de linha lateral inclui uma primeira porção configurada para receber e engatar um primeiro fio, e uma segunda porção configurada para receber e engatar um segundo fio, em que a primeira porção e a segunda porção são distintas uma da outra.
- 10Dispositivo, de acordo com a reivindicação 1, em que o dispositivo ainda compreende pelo menos um contato do comutador móvel que completa e interrompe uma conexão elétrica através do fusível.
- 11Dispositivo, de acordo com a reivindicação 1, caracterizado pelo fato de que um dos terminais de linha e de carga lateral compreende um primeiro contato estacionário do comutador fornecido entre o respectivo terminal de linha lateral e terminal de carga lateral e o fusível.
- 12Dispositivo, de acordo com a reivindicação 1, em que ainda compreendendo um terminal de fusível adaptado para engatar um elemento condutivo do fusível quando inserido no alojamento de desconexão, o terminal de fusível acoplado a um contato estacionário do comutador.
- 13Dispositivo, de acordo com a reivindicação 1, ainda compreendendo uma barra corrediça dentro do alojamento de desconexão, a barra corrediça fornecida com o primeiro e o segundo contatos móveis.
- 14Dispositivo, de acordo com a reivindicação 10, ainda compreendendo um atuador do comutador montado rotatoriamente, adaptado para posicionar a barra corrediça e o primeiro e o segundo contatos móveis entre uma posição aberta e uma posição fechada para conectar ou desconectar uma conexão elétrica através do fusível.
- 15Dispositivo de desconexão do comutador do fusível compre3 endendo:um alojamento de desconexão adaptado para receber pelo menos um fusível no mesmo, o fusível sendo separadamente fornecido a partir do alojamento, e sendo removivelmente inserível no alojamento, o alojamento compreendendo uma porta de acesso de linha lateral, uma porta de acesso de carga lateral, uma primeira porta de acesso auxiliar, e uma segunda porta de acesso auxiliar, em que a primeira e a segunda portas auxiliares são distanciadas a partir das portas de acesso de linha lateral e de carga lateral;contatos do comutador no alojamento de desconexão para completar e interromper uma conexão elétrica através do fusível;terminais de carga lateral e de linha lateral que conectam o fusível quando o fusível é inserido no alojamento;um primeiro fio estabelecendo uma conexão elétrica ao terminal de linha lateral através da porta de acesso de linha lateral;um segundo fio estabelecendo uma conexão elétrica com o terminal de carga lateral através da porta de acesso de carga lateral;um terceiro fio estabelecendo uma conexão elétrica com o terminal de linha lateral através da primeira porta de acesso auxiliar;e e um quarto fio estabelecendo uma conexão elétrica com o terminal de carga lateral através da segunda porta de acesso auxiliar.
- 16Dispositivo, de acordo com a reivindicação 15, em que pelo menos um dentre o primeiro e o segundo fios compreende um fio isolado com uma extremidade desencapada do isolamento.
- 17Dispositivo, de acordo com a reivindicação 15, em que ao menos um dentre os terceiro e quarto fios é dotado de um conector de terminal bifurcado.
- 18Dispositivo, de acordo com a reivindicação 15, em que o terminal de linha lateral compreende uma primeira porção configurada para aceitar o primeiro fio e uma segunda porção diferente da primeira porção, configurada para engatar o terceiro fio.
- 19Dispositivo, de acordo com a reivindicação 15, em que o terminal de carga lateral compreende uma primeira porção configurada para aceitar o segundo fio e uma segunda porção diferente da primeira porção, configurada para engatar o quarto fio.
- 20Dispositivo, de acordo com a reivindicação 15, em que o fusível compreende um rótulo, sendo o rótulo do fusível e uma porção do dispositivo codificados por cores para indicar uma taxa de amperagem do fusível através da inspeção visual do dispositivo quando o fusível está nele contido.
- 21Dispositivo, de acordo com a reivindicação 16, em que o dispositivo ainda compreende uma cobertura de fusível, o rótulo do fusível e a cobertura do fusível sendo codificados por cores para indicar a taxa de amperagem do fusível.
- 22Dispositivo, de acordo com a reivindicação 16, ainda compreendendo uma barra corrediça que transporta os contatos do comutador.
- 23Dispositivo, de acordo com a reivindicação 18, ainda compreendendo um atuador do comutador montado rotatoriamente que posiciona seletivamente a barra corrediça ao longo de um eixo geométrico linear dentro do alojamento de desconexão.
- 24Dispositivo de desconexão do comutador do fusível, compreendendo:um alojamento de desconexão adaptado para receber no mesmo pelo menos um fusível, o alojamento de desconexão inclui um terminal de linha lateral e um terminal de carga lateral para completar uma conexão elétrica através do fusível, o fusível sendo fornecido separadamente a partir do alojamento e sendo removivelmente inserível no alojamento, o alojamento de desconexão ainda compreendendo contatos do comutador para conectar e desconectar a conexão elétrica através do fusível;e um indicador de amperagem do fusível visível a partir de um exterior do alojamento de desconexão.
- 25Dispositivo, de acordo com a reivindicação 24, em que o indicador de amperagem compreende uma dentre a pluralidade de cores que são compatíveis com a cor do fusível. <·
- 26Dispositivo, de acordo com a reivindicação 24, em que o indicador de amperagem do fusível compreende uma cobertura de fusível seletivamente posicionável em relação ao alojamento para permitir ou proibir o acesso ao fusível, em que a cobertura é codificada por cores para indicar 5 uma taxa de amperagem do fusível enquanto a cobertura está fechada e o fusível está dentro do alojamento de desconexão.
- 27Dispositivo, de acordo com a reivindicação 24, em que pelo menos um terminal de linha lateral e um terminal de carga lateral são configurados para se conectarem a um primeiro fio em uma primeira locação, e 10 um segundo fio em uma segunda locação, proporcionando assim uma conexão primária e uma conexão auxiliar. 1/33 F I G . 1 2/33 F I G . 2 3/33 142·^
Independent claims27
220 paragraphs in 1 section, as filed
(54) Title: FUSE SWITCH DISCONNECTION MODULES AND DEVICES (30) Unionist Priority: 14/02/2007 us 11 / 674,880 (73) Owner (s): Cooper Technologies Company (72) Inventor (s): Matthew R Darr (74) Attorney (s): Dannemann, Siemsen, Bigler & Ipanema Moreira (86) International Request: pct us2008054005 of 14/02/2008 (87) International Publication: wo 2oo8 / iowide
08/21/2008 (57) Summary: FUSE SWITCH disconnect modules and devices. The present invention relates to a fuse disconnection device that has auxiliary connections to the side line and side charge terminals and color-coded features to indicate a fuse rating.
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Invention Patent Descriptive Report for FUSE SWITCH DISCONNECTING MODULES AND DEVICES.
The present order is a part-continuation of the order under serial number US11 / 603.454, filed on November 22, 2006, and entitled Fusible Switching Disconnect Modules and Devices, which is a part-continuation of the order under the US serial number 11 / 274,003 entitled Fusible Switching Disconnect Modules and Devices and filed on November 15, 2005, which is a part-continuation of the order under the US serial number 11 / 222,628 entitled Fusible Switching Disconnect Modules and Devices and filed on September 9, 2005, which claims the benefit of the provisional order under serial number 60 / 609,431 filed on September 13, 2004, the descriptions that are incorporated here by reference , in your totality.
Background of the Invention
The present invention relates, in general, to fuses and, more particularly, to fuse disconnect switches.
Fuses are widely used as overload protection devices to prevent costly damage to electrical circuits. Fuse terminals typically form an electrical connection between an electrical power source and an electrical component or a combination of components arranged in an electrical circuit. One or more fuse elements or wires, or a fuse element assembly is connected between the fuse terminals so that when the electrical current that passes through the fuse exceeds a predetermined limit, the fuse elements melt and open one or more circuits through the fuse to avoid damage to the electrical component.
In some applications, fuses are used not only to provide electrical connections to the fuse, but also for connection and disconnection, or switching, for the purpose of completing or interrupting an electrical connection or connections. As such, an electrical circuit is completed or interrupted through the conductive portions of the fuse, and thus energizing or de-energizing the associated set of circuits.
Typically, the fuse is housed in a fuse box provided with terminals that are electrically coupled to the desired electrical circuit system. When the conductive portions of the fuse, such as the fuse blades, terminals, or ferrules, are coupled to the fuse box terminals, an electrical circuit is completed through the fuse, and when the conductive portions of the fuse are disengaged from the box terminals. fuses, the electrical circuit through the fuse is interrupted. Therefore, by inserting and removing the fuse to and from the fuse box terminals, switching off the fuse is performed.
Brief Descriptions of Drawings
Figure 1 is a perspective view of an exemplary fuse switch disconnecting device.
Figure 2 is a side elevation view of a portion of the fuse switch disconnecting device shown in Figure 1 in a closed position.
Figure 3 is a side elevational view of a portion of the fuse switch disconnecting device shown in Figure 1 in an open position.
Figure 4 is a side elevation view of a second embodiment of a fuse switch disconnecting device.
Figure 5 is a perspective view of a third embodiment of a fuse switch disconnecting device.
Figure 6 is a perspective view of a fourth embodiment of a fuse switch disconnecting device.
Figure 7 is a side elevation view of the fuse switch disconnecting device shown in Figure 7.
Figure 8 is a perspective view of a fifth embodiment of a fuse switch disconnecting device.
Figure 9 is a perspective view of a portion of the fuse switch disconnecting device shown in Figure 8.
Figure 10 is a perspective view of a sixth embodiment of a fuse switch disconnecting device.
Figure 11 is a perspective view of a seventh embodiment of a fuse switch disconnecting device.
Figure 12 is a perspective view of an eighth embodiment of a fuse switch disconnecting device in a closed position.
Figure 13 is a side elevation view of a portion of the fuse switch disconnect device shown in Figure 12.
Figure 14 is a perspective view of the fuse switch disconnecting device shown in Figures 12 and 13 in an open position.
Figure 15 is a side elevational view of a portion of the fuse switch disconnecting device shown in Figure 14.
Figure 16 is a perspective view of a combined arrangement of the fuse-switching devices shown in Figures 1215 15.
Figure 17 is a perspective view of a ninth embodiment of a fuse switch disconnecting device in a closed position.
Figure 18 is a side elevation view of a portion of the fuse switch disconnecting device shown in Figure 17.
Figure 19 is a side elevation view of the fuse switch disconnecting device shown in Figure 17 in an open position.
Figure 20 is a perspective view of the fuse switch disconnecting device shown in figure 19.
Figure 21 is a perspective view of the fuse switch disconnecting device shown in Figure 20 in a closed position.
Figure 22 is a side elevation view of the fuse switch disconnecting device shown in figure 21.
Figure 23 is a perspective view of a tenth embodiment of a fuse switch disconnecting device.
Figure 24 is a perspective view of a portion of the fuse switch disconnecting device shown in Figure 23.
Figure 25 is a perspective view of an eleventh embodiment of a fuse switch disconnecting device.
Figure 26 is a perspective view of a portion of the fuse switch disconnect device shown in Figure 25.
Figure 27 is a schematic diagram of the fuse switch disconnecting device shown in figure 26.
Figure 28 is a side elevational view of a portion of a twelfth embodiment of a fuse switch disconnecting device.
Figure 29 is a side elevational view of a portion of a thirteenth embodiment of a fuse switch disconnecting device.
Figure 30 is a perspective view of a fuse status indicator module for a fuse disconnection device.
Fig. 31 is a side elevation view of a portion of the module shown in Fig. 30.
Figure 32 is an example diagram that indicates the status of the fuse for the module shown in figures 30 and 31.
Figure 33 is a perspective view of the status indicator module shown in figures 30 and 31 connected to a fuse disconnection device.
Figure 34 schematically illustrates a fused electrical system including the fuse disconnection device and the fuse status indication module shown in figure 33.
Fig. 35 is a side elevation view of one of the disconnect modules shown in Fig. 33 illustrating their internal components and constructions.
Detailed Description of the Invention
Fuse disconnections are known as themes for numerous problems in use. For example, any attempt to remove the fuse while the fuses are energized and under load, can result in risky conditions due to the danger of sparking that can occur between the fuses and the fuse box terminals. Some fuse boxes are designed to accommodate, for example, UL class CC fuses (Underwriters Laboratories) and IEC 10X38 fuses (International Electrotechnical Commission) that are commonly used in industrial control devices including permanently mounted auxiliary contacts and associated rotary meats and switches to provide early and delayed voltage, and the current connections through the fuses when the fuses are pulled from the fuse clips in a protective housing. One or more fuses can be pulled from the fuse clips, for example, by removing a drawer from the protective housing. Early and late connections are commonly used, for example, in motor control applications. While early and delayed connections can increase the safety of such devices for users when installing and removing fuses, such features increase costs, complicate the assembly of the fuse box, and are undesirable for switching purposes.
Structurally, early and late connections can be complicated and, due to frequent use, may not withstand switching purposes. In addition, when the drawer is opened and closed to disconnect or reconnect the circuitry, it can be carelessly left in a partially open or partially closed position. In both cases, the fuses in the drawer may not be fully engaged with the fuse terminals, and thus may compromise the electrical connection making the fuse box susceptible to unintentional opening and closing of the circuit. Especially, in environments subject to vibrations, fuses can loosen from the fuse clips. Even further, a partially open drawer protruding from the fuse box can interfere with the work area around the fuse box. Some workers may unintentionally hit the drawers open, and perhaps unintentionally close the drawer and re-energize the circuit.
Additionally, in certain systems such as industrial control devices, electrical equipment has become standardized in size and shape and, as the well-known fuse disconnect switching tends to vary in size and shape from standard norms, they are not necessarily compatible with the power distribution panels used in such equipment. At least for the reasons mentioned above, the use of fuse disconnect switching has not completely met the needs of certain end applications.
Figure 1 is a perspective view of an exemplary switch disconnecting device for fuse 100 that overcomes the above difficulties. The fuse switch disconnecting device 100 can be conveniently switched on and off conveniently and safely without interfering with the work area around device 100. The disconnecting device 100 can reliably switch a circuit on and off economically, and can be used with standard equipment, for example, in industrial control applications. In addition, disconnecting device 100 can be supplied with various mounting and connection options for versatility in the field. Several modalities will be described below to demonstrate the versatility of the disconnect device, and it is noted that the disconnect device 100 can be useful in a variety of electrical circuits and applications. The modalities shown below are, therefore, provided for illustrative purposes only, and the invention is not intended to be limited by any specific modality or any specific application.
In the illustrative embodiment of figure 1, the disconnecting device 100 can be a two-pole device formed from two separate disconnecting modules 102. Each module 102 can include an insulating housing 104, a fuse 106 loaded in housing 104, a cover or fuse cover 108 attaching the fuse to housing 104, and a switch actuator 110. Modules 102 are single pole modules, and modules 102 can be coupled or conjugated together to form the two pole disconnection device 100. It is noted, however, that <· a multipole device could be formed in a single accommodation, instead of being formed in the modular way of the exemplary modality shown in figure 1.
Housing 104 may be manufactured from an insulating or non-conductive material, such as plastic, according to known methods and techniques, including, but not limited to, injection molding techniques. In an exemplary embodiment, housing 104 takes on a size and shape, in general, rectangular (s) that is (are) compatible and complementary to the DIN and IEC standards applicable to standardized electrical equipment. In particular, for example, each housing 104 is provided with a lower edge 112, opposite side edges 114, side panels 116 extending between side edges 114, and an upper surface 118 extending between side edges 114 and side panels 116. The bottom edge 112 has a length L and the side edges 114 have a thickness T such as 17.5 mm in one embodiment, and the length L and thickness T define an area or occupation area on the bottom edge 112 of housing 104. The occupation area allows the lower edge 112 to be inserted into a standard opening with complementary shape and dimension. In addition, the side edges 114 of the housing 104 have 20 in a weight H according to known standards, and the side edges 114 include slits 120 extending through them to ventilate the housing 104. The upper surface 118 of the housing 104 can have contours to include a raised central portion 122 and recessed end portions 124 extending to the side edges 114 of housing 104.
The fuse 106 of each module 102 can be loaded vertically in the housing 104 through an opening in the upper surface 118 of the housing 104, and the fuse 106 can partially extend through the raised central portion 122 of the upper surface 118. The cover of the fuse 108 extends over the exposed portion of fuse 106 extending from housing 104, and cover 108 secures fuse 106 to housing 104 in each module 102. In an exemplary embodiment, the cover
108 it can be manufactured from a non-conductive material, such as plastic, and it can be formed with a generally flat or smooth end section 126 and elongated fingers 128 extending between the upper surface 118 of the raised central portion 122 of housing 104 , and the end of the fuse 106. The openings are provided between adjacent fingers 128 to vent the end of the fuse 106.
In an exemplary embodiment, cover 108 further includes rim sections 130 joined to fingers 128 opposite end section 126 of cover 108, and rim sections 130 secure cover 108 to housing 104. In an exemplary embodiment, coverage sections rim 130 cooperates with the grooves in housing 104 such that cover 108 can rotate a predetermined amount, such as 25 degrees, between a closed position and a release position. That is, once fuse 106 is inserted in housing 104, fuse cover 108 can be installed over the end of fuse 106 in the slot in housing 104, and cover 108 can be rotated 25 degrees to the closed position where cover 108 will frustrate the removal of fuse 106 from housing 104. The groove can also be raised or tilted such that cover 108 applies a slight downward force on fuse 106 while cover 108 is installed. To remove fuse 106, cover 108 can be rotated from a closed position to an open position where both cover 108 and fuse 106 can be removed from housing 104.
The actuator of the switch 110 can be located in an opening 132 of the upper upper surface 122 of the housing 104, and the actuator of the switch 110 can partially extend across the raised upper surface 122 of the housing 104. The actuator of switch 100 can be rotatably mounted to housing 104 on an axis or mechanical axis 134 within housing 104, and the actuator of switch 110 can include a lever, handle or bar 136 extending radially from actuator 110. When moving lever 136 from a first edge 138 to a second edge 140 of aperture 132, axis 134 rotates to an open position or switching position and electrically disconnects fuse * 106 on each module 102 as explained below. When the lever
136 is moved from the second edge 140 to the first edge 138, the axis 134 rotates back to the closed position shown in figure 1 and electrically connects the fuse 106.
A side line end element 142 extends from the bottom edge 112 of housing 104 in each module 102 to establish line and load connections for the circuitry. As shown in figure 1, the side line end element 142 is a bus clip configured or adapted to connect to an input line bus, although it is noted that other side line end elements can be employed in alternative embodiments. A panel support clip 144 also extends from the bottom edge 112 of the housing 104 to facilitate mounting of the disconnecting device 100 on a panel.
Figure 2 is a side elevation view of one of the disconnect modules 102 shown in Figure 1 with side panel 116 removed. The fuse 106 can be seen located in a compartment 150 within the housing 104. In an exemplary embodiment, fuse 106 may be a cylindrical cartridge fuse including an insulating cylindrical body 152, 20 conductive ferrules or end caps 154 coupled to each end of body 152, and a fuse element or fuse mounting element extending into body 152 and electrically connected to end caps 154. In exemplary embodiments, fuse 106 can be a UL class CC fuse, a supplemental UL fuse, or fuses
IEC 10X38 which are commonly used in industrial control applications. These and other types of cartridge fuses suitable for use in module 102 are commercially available from Cooper / Bussmann of St. Louis, Missouri. It is understood that other types of fuses can also be used in module 102 as desired.
A conductive lower fuse terminal 156 may be located in a lower portion of the fuse compartment 150 and may be formed in the shape of the letter u in one embodiment. One of the covers of the ex10 rail 154 of the fuse 106 is supported on an upper leg 158 of the lower terminal 156, and the other cover of the end 154 of the fuse 106 is coupled to an upper terminal 160 located in the housing 104 adjacent to the fuse compartment 150. The upper terminal 160 is, in turn, connected to a side loading terminal 162 to accept a side loading connection to disconnect module 102 in a known manner. The side loading terminal 162 in one embodiment is a known sealed screw terminal, although it is recognized that other types of terminals could be used for the side loading connections to module 102. Additionally, the lower fuse terminal 156 may include fuse rejection characteristics in an additional mode that avoids the installation of incorrect types of fuse in module 102.
The actuator of the switch 110 can be located in an actuator compartment 164 within the housing 104 and can include the axis 134, a rounded body 166 extending, generally, radially from the axis 134, a lever 136 that extends from body 166, and an actuator connection 168 coupled to actuator body 166. The connection of actuator 168 can be connected to a spring loaded contact assembly 170 including the first and second movable or switchable contacts 172 and 174 coupled to a sliding bar 176. In the closed position shown in figure 2, the switchable contacts 172 and 174 they are mechanically and electrically coupled to stationary contacts 178 and 180 mounted in housing 104. One of the stationary contacts 178 can be mounted on one end of the terminal element 142, and the other of the stationary contacts 180 can be mounted on one end of the lower fuse terminal 156. When the switchable contacts 172 and 174 are engaged with the stationary contacts 178 and 180, a circuit is completed on the way through the fuse 106 from the line terminal 142, and from the lower fuse terminal 156 to the upper fuse terminal 160 and the charging terminal 162.
While in an exemplary embodiment the stationary contact 178 is mounted on a terminal 142 provided with a bus clip, <another terminal element, such as a known box-type terminal or clamp terminal, could be provided in a compartment 182 in housing 104 in line input bus. Thus, module 102 can be used with the connection by rigid cable for the set of lateral line circuits in place of the bus clip. Thus, module 102 is readily convertible to different field mounting options.
When the switch actuator is rotated on axis 134 in the direction of arrow A, slide bar 176 can be moved linearly upward in the direction of arrow B to disengage switchable contacts 172 and 174 from stationary contacts 178 and 180. O lower fuse terminal 156 is then disconnected from the side line terminal element while fuse 106 remains electrically connected to the lower fuse terminal 156 and to the side load terminal 162. An arc duct compartment 184 can be formed in the housing 104 below the switchable contacts 172 and 174, and the arc duct can provide a space to contain and dissipate the spark energy while the switchable contacts 172 and 174 are disconnected. The sparking is interrupted at two locations in each of the contacts 172 and 174, thereby reducing the arc intensity, and the sparking is contained within the lower portion of housing 104 and away from the upper surface 118 and a user's hands when it is. manipulating the actuator of the switch 110 to disconnect the fuse 106 from the side line terminal 142.
The housing 104 may additionally include a locking ring 186 which can be used in conjunction with a retaining opening 188 in the switch actuator body 166 to hold the switch actuator 110 in a closed position shown in figure 2 and the open position shown in figure 3. A locking pin, for example, can be inserted through the locking ring 186 and the retaining opening 188 to restrict the switch actuator to the corresponding open or closed position. In addition, a fuse that holds the arm could be provided in the actuator of switch 110 to prevent removal of the fuses except when the actuator of switch 110 is in the open position
Figure 3 illustrates disconnection module 102 after the switch actuator has been moved in the direction of arrow A to an open or switched position to disconnect switch contacts 172 and 174 from stationary contacts 178 and 180. How the actuator is moved for the open position, the body of the actuator 166 rotates on the axis 134 and the connection of the actuator 168 is accordingly moved upwards in the actuator housing 164. As connection 168 moves upward, connection 168 pushes the slide bar 176 upward in the direction of arrow B to separate the switchable contacts 172 and 174 from stationary contacts 178 and 180.
A guide element 200 can be provided below the slide bar 176 and can force the slide bar 176 upward in the direction of arrow B to a fully open position by separating the contacts 172, 174 and 178, 180 from one another. Thus, as the actuator body 166 is rotated in the direction of arrow A, connection 168 is moved beyond the equilibrium point and the guiding element 200 assists in opening contacts 172, 174 and 178, 180. The guiding element 200, therefore, prevents partial opening of contacts 172, 174 and 178, 180 and ensures total separation of the contacts to safely interrupt the circuit through module 102.
In addition, when the actuator lever 136 is pulled back in the direction of arrow C to the closed position shown in figure 2, the actuator connection 168 is moved to position the slide bar 176 down in the direction of arrow D to engage and close contacts 172, 174 and 178, 180 and reconnect the circuit via fuse 106. The slide bar 176 is moved downward against the tensioning of the guiding element 200 and, once in the closed position, the slide bar 176, the actuator connection 168 and the tap-changer actuator are in a static balance so that the tap-changer actuator 110 remains in the closed position.
In an exemplary embodiment, and as illustrated in figures 2 and 3, the guiding element 200 can be a helical spring element that is loaded in compression in the closed position of the actuator of commutator 110. It is recognized, however, that in a alternate mode13, a spiral spring could be charged in tension when the switch actuator was closed. In addition, other known guiding elements could be provided to produce opening and / or closing forces to assist in the proper functioning of the disconnection module 102. The guiding elements can also be used for damping purposes when the contacts are open.
Lever 136, when moved between the open and closed positions of the switch actuator, does not interfere with the work area around disconnect module 102, and lever 136 is unlikely to be inadvertently returned to the closed position from the open position. . In the closed position shown in figure 3, lever 136 is located adjacent to one end of fuse 106. Fuse 106, therefore, partially protects lever 136 from inadvertent contact and from an unintentional act to the closed position. The guiding element 200 still provides some resistance to the movement of the lever 136 and to the closing of the contact mechanism. In addition, stationary contacts 178 and 180 are always protected by housing 104 of module 102, and any risk of electric shock due to contact with the side line terminal 142, and stationary contacts 178 and 180, is avoided. Disconnect module 102 is therefore considered to be safer than many known fuse disconnection devices.
When modules 102 are engaged together to form a multipole device, such as device 100, a lever 136 can be extended across, and connect to multiple actuators on the switches
110 for different modules. Thus, all connected modules 102 can be disconnected and reconnected by manipulating a simple lever 136. That is, the multiple poles in device 100 can be switched simultaneously. Alternatively, the actuator of the switch 110 of each module 102 in the device 100 can be moved independently by means of the separate levers 136 for each module.
Figure 4 is a side elevation view of another exemplary embodiment of a switch disconnect from fuse 102 including, for example, a retractable locking tab 210 that can extend from switch actuator 110 when lever 136 is moved to the open position. The locking tab 210 can be provided with a lock opening 212 through it, and a padlock or other element can be inserted through the lock opening 212 to ensure that lever 136 is not moved to the closed position. In different embodiments, the locking tab 210 can be spring loaded and extend automatically, or it can extend manually from the actuator body of switch 166. When lever 136 is moved to the closed position, the locking tab 210 can be manually or automatically returned to the retractable position where the actuator of the switch 110 can be rotated back to the closed position, as shown in figure 2.
Figure 5 is a perspective view of a third exemplary embodiment of a fuse switch disconnection module 220, similar to module 102 described above, but which has, for example, a DIN 222 rail mounting slot formed in one lower edge 224 in a housing 226. Housing 226 may also include openings 228 that can be used to align module 220 with other disconnect modules. The side edges 230 of the housing 226 can include connection openings 232 for the side line and loading connections to the box-type terminals or clamps inside the housing 226. Access openings 234 can be provided on the lowered top surfaces 236 of the housing 226. A bare wire, for example, can be extended through connection openings 232 and a screwdriver can be inserted through access openings 234 to connect the line and the load circuit assembly to module 220.
Like module 102, module 220 can include fuse 106, fuse cover 108 and switch actuator 110. The module is turned off using the switch contacts as described above, in relation to module 102.
Figures 6 and 7 are a perspective view of a fourth exemplary embodiment of a fuse switch disconnect module
250 which, like modules 102 and 220 described above, includes a switch actuator 110 rotatably mounted to the housing on axis 134, lever 136 extends from the connection of actuator 168 and a sliding bar 176. Module 250 it also includes, for example, a mounting clip 144 and a side line end member 142.
Unlike modules 102 and 220, module 250 can include a housing 252 configured or adapted to receive a rectangular fuse module 254 instead of a fuse cartridge 106. Fuse module 254 is a known assembly that includes a rectangular housing 256 , and end blades 258 extending from housing 256. A fuse element or fuse assembly can be located within housing 256 and is electrically connected between end blades 258. Such 254 fuse modules are known and, in one embodiment, are commercially available Cube Fuse modules from Cooper / Bussmann of St. Louis, Missouri.
A side line fuse clip 260 can be located inside housing 252 and can receive one of the end blades 258 of fuse module 254. A side charge fuse clip 262 can also be located inside housing 252 and can receive the other the fuse strip terminals 258. The side line fuse clip 260 can be electrically connected to stationary contact 180. The side charge fuse clip 262 can be electrically connected to side charge terminal 162. Side line terminal 142 can include stationary contact 178, and switching can be accomplished by turning the actuator of switch 110 to engage and disengage switchable contacts 172 and 174 with respective stationary contacts 178 and 180 as described above. While the line terminal 142 is illustrated as a bus clip, it is identified that other line terminals can be used in other modalities, and the side loading terminal 162 can also be another type of terminal instead of the illustrated screw terminal sealed in another mode.
The fuse module 254 can be plugged into the fuse clips
260, 262 or removed from them to install or remove fuse module 254 from housing 252. For switching purposes, however, the circuit is connected to the contacts 172, 174 and 178 and 180 instead of the fuse clips 260 and 262. The sparking between disconnected contacts can therefore be contained in an arc duct or compartment 270 in the lower portion of the compartment and away from the fuse clips 260 and 262. When opening disconnect module 250 with switch actuator 110 prior to installation or removal of fuse module 254, any risk offered by the electrical sparking or energized metal in the fuse and in the housing interface is eliminated. The disconnect module 250 is therefore believed to be safer to use than many other fuse disconnect switches.
A plurality of modules 250 can be engaged or, if not, connected together to form a multipole device. The poles of the device could be operated with a single lever 136 or operable independently with different levers.
Figure 8 is a perspective view of a fifth exemplary embodiment of a fuse switch disconnect device 300 which is, for example, a multipole device in an integrated housing 302. Housing 302 can be constructed to accommodate three fuses 106 in an exemplary modality, and therefore is well suited for a three-phase energy application. The housing 204 may include a slot for DIN 304 rail in the illustrated embodiment, although it is understood that the other mounting options, mechanisms, and mounting schemes can be used in alternative embodiments. Additionally, in one embodiment, housing 204 can have a D-width dimension of about 45mm according to industry standards for IEC contactors, relays, manual motor protectors, and integral starters that are also commonly used in applications of industrial control systems. The benefits of the invention, however, accrue equally for devices having different dimensions and devices for different applications.
The housing may also include connection openings 306 and access openings 308 on each side edge 310 which can receive a wire connection and a tool, respectively, for establishing the line and load connections to fuses 106. A single switch actuator 110 can be rotated to connect and disconnect the circuit through the fuses between line and load terminals of the disconnect device 300.
Figure 9 is a perspective view of an exemplary switching assembly 320 for device 300. The switching assembly may be accommodated in housing 302 and, in an exemplary embodiment, may include a set of line terminals 322, a set of load terminals 324, a set of lower fuse terminals 326 associated with each respective fuse 106, and a set of sliding bars 176 with switchable contacts mounted on it to engage and disengage the stationary contacts mounted on the ends of the line terminals 322 and the lower terminals of the fuse 324. An actuator connection (not shown in figure 9) can be mounted on an actuator shaft 134, so that when lever 136 is rotated, slide bar 176 can be moved to disconnect switchable contacts from stationary contacts. Guiding elements 200 can be provided under each of the sliding bars 176 and assist in the operation of the switch actuator 110 as described above. As in the previous module modes, a variety of side lines and side load terminal structures can be used in various modes of switching assembly.
Retaining bars 328 can also be provided on shaft 134 which extends to fuses 106 and engages fuses in a locking mode to prevent fuses 106 from being removed from device 300 except when switch actuator 110 is in the open position . In the open position, the retaining bars 328 can be tilted in relation to the fuses 106 and the fuses can be removed freely. In the closed position, as shown in figure 9, the retaining arms or bars 328 lock the fuse in place. In an exemplary embodiment, the distal ends of the bars or arms 328 can be received in slots or retainers in fuses 106, although fuses 106 can be locked in any other desired way.
Figure 10 is a perspective view of a sixth exemplary embodiment of a fuse switch disconnect device 370 including the disconnect module 300 described above and, for example, an under voltage module 372 mounted on the side of a module 300 and mechanically connected to the switching mechanism in module 300. In an exemplary embodiment, undervoltage module 372 may include an electromagnetic coil 374 adjusted to a predetermined voltage range. When the voltage drops below the range, the electromagnetic coil causes the switching contacts on module 300 to open. A similar module 372 could be employed in an alternative mode to open switching contacts when the voltage experienced by the electromagnetic exceeds a predetermined voltage range, and can therefore serve as an overvoltage module. In such a way, the switch contact on module 300 could be opened with module 372 and coil 374 as long as under voltage and over voltage conditions occur.
Figure 11 is a perspective view of a seventh exemplary embodiment of a fuse switch disconnect device 400 which is essentially disconnect device 300 and disconnect device 220 coupled together. The disconnect device 300 provides three poles for an AC power circuit, and device 220 provides an additional pole for other purposes.
Figure 12 is a perspective view of an eighth modality of a fuse switch disconnection module 410 which, as in the previous embodiments, includes a non-conductive housing 412, a switch actuator 414 that extends across an upper surface. high 415 from housing 412, and a cover 416 that provides access to the fuse receptacle (not shown in figure 12) inside slot 412 for installation and replacement of an overload protection fuse (also not shown in figure 12). As in the previous embodiments, the housing 412 includes switchable and stationary contacts (not shown in figure 12) that complete or interrupt an electrical connection through the fuse in the housing 412 through the movement of an actuator lever 417.
A DIN rail mounting slot 418 can be formed at a bottom edge 420 of housing 412, and the DIN rail mounting slot 418 can be dimensioned, for example, by snap-fit engagement and disengagement with a DIN rail from 35 mm with your hands, and without the need for tools. Housing 412 may also include openings 422 which can be used to connect module 410 to other disconnect modules as will be explained below. The side edges 424 of the housing 412 can be open ends to provide access to the wire shoulder terminals 426 to establish the external circuitry of side load and line electrical connections. The access openings of terminal 428 can be provided on the lowered top surfaces 430 of housing 412. A bare wire, for example, can be extended through the sides of the wire shoulder terminals 426 and a
- 20 screwdriver can be inserted through access openings 428 to tighten a screw terminal to secure connections to terminals 426 and connect the line and load circuitry to module 410. While the wire rebound terminals 426 are included in one embodiment, it is recognized that a variety of alternate terminal configurations or types can be used in other embodiments to establish electrical line and side load connections for module 410 through of wires, cables, busbars, etc.
Like the previous modalities, the housing 412 is shaped and dimensioned in a complementary way to, and is compatible with the DIN and IEC standards, and the housing 412 defines an area or occupation area on the lower edge 420 for use with standardized openings complementary shape and dimension. By way of example only, the housing 412 of the single pole module 410 may have a thickness T of about 17.5 mm for a breaking capacity of up to 32 A; 26 mm for breaking capacity up to 50A, 34 mm for breaking capacity up to 125 A; and 40 mm for a breaking capacity of up to 150 A per DIN 43 880 standard. Likewise, it is understood that the 410 module could be manufactured as a multi-pole device as a three-pole device with a T dimension of about 45 mm for a breaking capacity of up to 32 A; 55 mm for breaking capacity up to 50A, and 75 mm for breaking capacity up to 125 A. While the exemplary dimensions are provided, it is understood that other dimensions of greater or lesser values may likewise be employed in alternative embodiments of the invention.
In addition, and as shown in Figure 12, the side edges 424 of the housing 412 may include opposite pairs of vertically oriented flanges 432 spaced from one another and projecting away from the wire shoulder terminals 426 adjacent to the upper surface of the housing 430 and the sides of the 426 wire shoulder terminals. Flanges 432, which are sometimes referred to as wings, provide an increased surface area of the housing 412 in a horizontal plane that extends between the wire shoulder terminals 426 over the opposite side edges 424 of the housing 412 which it should, otherwise, occur if the 432 flanges were not present. That is, an outer peripheral surface area whose path length extends in a plane parallel to the lower surface 420 of housing 412 including the sum of the outer surface dimensions of one of the flange pairs 432 extending from one of the terminals 426, the outer dimensions of the respective front or rear panel 431,433 of the housing, and the outer surface dimensions of the opposing flanges 432 extending to the opposite terminal 426.
In addition, housing 412 may also include ribs or horizontally extended shelves 434 spaced from each other and interconnecting the deeper flanges 432 at a lower portion of the side edges of housing 424. Ribs or shelves 434 increase the surface area and extension of the length between terminals 426 in a vertical plane of housing 412 to satisfy external requirements for spacing between terminals 426. Flanges 432 and ribs 434 result in spiral-shaped surface areas in horizontal and vertical planes of housing 412 that allow greater capacity to withstand the voltage of the devices, without increasing the area of occupation of the module 410 compared, for example, with the modalities previously described in figures 1-11. For example, flanges 432 and ribs 434, facilitate the ability to withstand the 600 VAC voltage while meeting the internal and external spacing requirements applicable between terminals 426 under applicable UL standards.
The cover 416, unlike the embodiments described above, can include a substantial flat cover portion 436, and a perpendicular portion for the digital gripping portion 438 projecting up and out from one end of the flat covering portion 436 and which faces the switch actuator 414. The cover can be manufactured from a non-conductive material or insulating material such as plastic, according to known techniques, and the flat cover portion 436 can be fitted on the end of it as opposed to the digital grip portion 438 of so that the cover portion 436 is pivoted on the hinge. Due to the hinge, the digital gripping portion 438 is moved away from the switch actuator along a curved path as explained below. As illustrated in figure 12, cover 416 is in a closed position that hides the fuse inside housing 412, and as explained below, cover 416 can be moved to an open position providing access to the fuse in disconnect module 410.
Figure 13 is a side elevation view of module 410 with front panel 431 (figure 12) removed so that the internal components and features can be seen. The wire shoulder terminals 426 and the terminal screws 440 are positioned adjacent to the side edges
424 of housing 412. A fuse 442 is loaded or inserted into module 410 in a direction substantially perpendicular to the upper surface of housing 415 and, as shown in figure 13, a longitudinal axis 441 of fuse 442 extends vertically, opposite to horizontally, inside of housing 412. Fuse 442 is contained within housing 412 under cover 416, and more specifically under flat cover portion 436. Fuse 442 is longitudinally located in a fuse receptacle 437 formed integrally in housing 412. That is, fuse receptacle 437 is not movable in relation to housing 412 for loading and unloading fuse 442. Fuse 442 is received in receptacle 437 with one end of fuse 442 positioned adjacent and under cover 416 and the top surface of module 415 and the other end of fuse
442 spaced from cover 416 and the top surface of module 415 by a distance equal to the length of fuse 442. A locking actuator 443 is formed with cover 416 and extends downwardly in housing 412 adjacent to the side of fuse receptacle 437 The locking of the actuator 443 on the surface 416 extends in opposition and away from the digital gripping portion of the cover 438.
A cover locking tab 444 extends radially outwardly from a cylindrical body 446 of switch actuator 414, and when switch actuator 414 is in the closed position shown in figure 13 completing an electrical connection via fuse 442, the cover locking tab 444 is generally extended perpendicular to locking actuator 443 on cover 416, and a distant end of the cover locking tab 444 is positioned adjacent to the locking actuator 443 of the cover 416. The cover locking tab 444 therefore directly opposes the movement of the locking actuator
443 and resists any attempt by a user to turn cover 416 over hinge 448 in the direction of arrow E to open cover 416. In such a way, fuse 442 cannot be accessed without first turning the actuator of switch 414 in the direction of the arrow F to move the pair of switchable contacts 450 away from the stationary contacts 452 through the connection of the actuator 454 and the slide bar 456 which loads the switchable contacts 450 in a similar manner to the previous modes. Inadvertent contact with live portions of fuse 442 is therefore prevented, since cover 416 can only be opened to access fuse 442 after the circuit through fuse 442 is disconnected via switchable contacts 450, thus providing a degree security for human operators of module 410. In addition, because cover 416 conceals fuse 442, when the switch contacts 450 are closed, the outer surfaces of housing 412 and cover 416 can be touched safely.
A conductive path through housing 412 and fuse 442 is established as follows. A rigid terminal member 458 is extended from the side charge terminal 426 closest to fuse 442 on one side of housing 412. A flexible contact member 460, such as a connection, may be connected to terminal member 458 at one end and attached to an inner surface of the cover 416 at the opposite end. When cover 416 is closed, contact member 460 is placed in mechanical and electrical engagement with an upper ferrule or with an end cap 462 of fuse 442. An inner movable fuse terminal 464 is mechanically and electrically connected to the lower ferrule of the fuse or end cap 466, and a flexible contact member 468 interconnects the movable indoor fuse terminal 464 to a stationary terminal 470 that carries one of the stationary contacts 452. Switchable contacts 450 interconnect stationary contacts 452 when switch actuator 414 is closed, as shown in figure 13. A rigid terminal member 472 completes the circuit path to side line terminal 426 on the opposite side of housing 412. In use , current flows through the circuit path from the side line terminal 426 and the terminal member 472, through the switchable contacts 450 and 452 to the terminal member 470. From the terminal member 470, current flows through contact member 468 to the lower terminal of fuse 464 and through fuse 442. After flowing through fuse 442, current flows to contact member 460, to the member of terminal 458, and for side line terminal 426.
Fuse 442, in different exemplary embodiments, can be a Midget 10x38 fuse from Cooper / Bussmann of St. Louis, Missouri that is commercially available; an IEC 10x38 fuse; a class DC fuse; or a European type D / DO fuse. Additionally, and as desired, the optional fuse rejection characteristics can be formed at the lower fuse terminal 464 or elsewhere on the module, and assist in the fuse rejection characteristics so that only certain types of fuses can be properly installed on module 410. Although certain fuse models are described herein, it is understood that other types and configurations of fuses can also be employed in alternative modalities, including but not limited to the various types of cylindrical or cartridge fuses, and rectangular fuse modules.
A guide element 474 can be provided between the lower mobile terminal of the fuse 464 and the stationary terminal 470. The guiding element 474 can be, for example, a spiral helical spring which is compressed to provide an upward guiding force in the direction of the arrow G to ensure mechanical and electrical engagement of the lower mobile terminal of the fuse 464 to the lower ferrule of the fuse 466, and the mechanical and electrical engagement between the upper ferrule of the fuse 462 and the flexible contact member 460. When the cover 416 is opened in the direction of arrow E to the open position, the guide element 474 forces the fuse upward along its axis 441 in the direction of arrow G as shown in figure 14, exposing fuse 442 across the top surface high 415 of housing 412 for easy retrieval via an operator for replacement. That is, the fuse 442, by virtue of the guiding element 474, is automatically lifted and ejected from the housing 412 when the cover 416 is turned on the hinge 448 in the direction of the arrow E after the actuator of the switch 414 is turned in the direction of the arrow F.
Figure 15 is a side elevation view of module 410 with cover 416 pivoted on hinge 448 and the actuator of the switch
414 in the open position. The switchable contacts 450 are moved upward by the rotation of the actuator 414 and the displacement of the actuator connection 454 causes the slide bar 456 to move along a linear axis 475 substantially parallel to the axis 441 of the fuse 442, physically separating the contacts switchable 450 of stationary contacts 452 inside housing 412 and interrupting the conductive path through fuse 442. Additionally, and due to the pair of switchable contacts 450, the electrical sparking is distributed among more than one location, as described above.
The guiding element 474 deflects when the cover 416 is opened after the actuator 414 is moved to the open position, and the guiding element 474 lifts the fuse 442 from the housing 412 so that the upper ferrule of the fuse 462 is extended over the upper surface. 415 of the accommodation. In such a position, fuse 442 can be easily grabbed and pulled from, or pulled from module 410 along axis 441. Fuses can therefore be easily removed from module 410 for replacement.
In addition, when actuator 414 is moved to the open position, a locking tab on actuator 476 extends radially out of the actuator body of switch 446 and can accept, for example, a padlock to prevent inadvertent closing of actuator 414 in the direction of arrow H which could otherwise cause the slide bar 456 to move down in the direction of arrow I along axis 475 and engage the switchable contacts 450 with stationary contacts 452, completing the electrical connection to fuse 442 again and presenting a safety risk for operators. When desired, cover 416 can be rotated back on hinge 448 to the closed position shown in figures 12 and 13, and switch actuator 414 can be rotated in the direction of arrow H to move the engaged cover flap 444 forming a engage with actuator 443 of cover 416 to keep both cover 416 and actuator 414 in static equilibrium in a closed and locked position. Closing the cover 416 requires some force to overcome the resistance of the guide spring 474 in the fuse receptacle 437, and the movement of the actuator to the closed position requires some force to overcome the resistance of a guide element 478 associated with the slide bar 456 , making an inadvertent closing of the contacts and a much less likely termination of the circuit through module 410.
Figure 16 is a perspective view of a grouped arrangement of the fuse switch disconnection module 410. Connector parts 480 can be made from plastic, for example, and can be used with openings 422 in the housing panels to keep the 410 modules in a side-to-side relationship with each other, for example, snap-fit engagement. Pins 482 and / or bushings 484, for example, can be used to fix or mutually join the actuator levers 417 and the digital gripping portions of the cover 438 of each module 410 so that all actuator levers 417 and / or all covers 416 of the combined modules 410 are simultaneously moved together. At the same time, the movement of covers 416 and levers 417 can be especially disadvantageous for interrupting the three-phase current or, as another example, when switching energy from related equipment, such as a motor and a cooling fan to the motor, so that one does not work without the other.
While the modules of a single pole 410 conjugated to each other to form multiple pole devices have been described, it is understood that a multiple pole device with the characteristics of module 410 could be built in a single housing with the appropriate modification of the modality , as shown in figures 8 and 9, for example.
Figure 17 is a perspective view of a ninth modality of a fuse switch disconnect module 500 which, like the previous embodiments, includes a single pole housing 502, a switch actuator 504 that extends across a surface high top 506 of housing 502, and a cover 508 that provides access to a fuse holder (not shown in figure 17) inside housing 502 for installing and replacing an overload protection fuse (also not shown in figure 17). As in the previous embodiments, housing 502 includes switchable contacts and stationary contacts (not shown in figure 17) that connect or disconnect an electrical connection through the fuse in housing 502 by moving a lever on actuator 510.
Similar to module 410, module 500 can include a DIN rail mounting slot 512 formed at a lower edge 514 of housing 502 for mounting housing 502 without the need for tools. The housing 502 may also include an opening of the actuator 515 providing access to the actuator body of the switch 504 so that the actuator 504 can be rotated between the open and closed positions in an automated manner, and facilitate remote control of the module 500. Openings 516 are also provided that can be used to couple module 500 to other disconnect modules. A curved or arched opening guide groove 517 is also formed in a front panel of housing 502. A sliding trigger mechanism, described below, is selectively positioned inside groove 517 to run through module 500 and disconnect the current path through the even after the occurrence of predetermined circuit conditions. Slot 517 also provides access to the trigger mechanism for manual triggering of the mechanism with a tool, or to facilitate remote opening capability.
The side edges 518 of the housing 502 may have the open end to provide access to the Line and load 520 lateral wire shoulder terminals to establish the line and the side load electrical connections for module 500, although it is understood that other types of terminals can be used. The access openings of the terminal 522 can be provided on the lowered top surfaces 524 of the housing 502 to receive a bare wire or other conductor extended through the sides of the wire boss terminals 520, and a screwdriver can be inserted through the openings of access 522 to connect the line and load circuitry to module 500. As in previous modalities28, housing 502 is shaped and dimensioned, complementary to and compatible with DIN and IEC standards, and housing 502 defines an area or occupation area on the lower surface 514 of the housing for use with standardized openings provided complementary shape and dimension.
Like the module 410 described above, the side edges 518 of the housing 502 can include opposite pairs of vertically oriented flanges or wings 526 spaced from each other and projecting away from the wire shoulder terminals 520 adjacent to the upper surface of the housing 524 and to the sides of the wire shoulder terminals 520. The housing 502 may also include ribs or horizontally extended shelves 528 spaced from each other and interconnecting the deeper flanges 526 at a lower portion of the side edges of the housing 518. Flanges 526 and ribs 528 result in areas of spiral surfaces in horizontal and horizontal planes verticals of the housing 502 which allow greater capacities to withstand the voltage of the device without increasing the area of occupation of the module 500 as explained above.
The cover 508, unlike the modalities described above, can include a contoured outer surface defining a peak 530 and a concave section 532 sloping down from the peak 530 and facing the actuator of switch 504. The peak 530 and the concave section 532 form a finger support area on the surface of the cover 508 and is suitable, for example, to serve as a support for the thumb for an operator to open or close a cover 508. The cover 508 can be hinged at one end of it closest to the peak 530 so that the cover 508 is pivoted around the hinge, and the cover 508 is moved away from the actuator of the switch 504 along a curved path. As illustrated in figure 17, cover 508 is in a closed, secure position against touch by hiding the fuse within housing 502 and, as explained below, cover 508 can be moved to an open position providing access to the fuse.
Figure 18 is a side elevation view of a portion of the fuse switch disconnect module 500 with a front panel removed from it so that the internal components and features can be seen. In some respects, module 500 is similar to module 410 described above in its internal components, and for the purpose of abbreviating the characteristics of modules 500 and 410, they are indicated with the reference characters in figure 18.
The wire shoulder terminals 520 and the terminal screws 440 are positioned adjacent to the side edges 518 of housing 502. Fuse 442 is loaded vertically in housing 502 between cover 508, and fuse 442 is located in the non-fuse receptacle. mobile 437 formed in housing 502. The cover 508 can be formed with a conductive contact member which can, for example, have a cup shape to receive the upper ferrule of the fuse 462 when the cover 5508 is closed.
The path of the conductive circuit is stabilized from the side line terminal 520 and the terminal member 472, through the switch contacts 450 and 452 to the terminal member 470. From the terminal member 470, current flows through the contact member 468 to the lower terminal of fuse 464 a through fuse 442. After flowing through fuse 442, current flows from conductive contact member 542 of cover 508 to contact member 460 connected to conductive contact member 542, and from contact member 460 to terminal member 458 and to the side line terminal 426.
A guiding element 474 can be provided between the lower mobile terminal of the fuse 464 and the stationary terminal 470, as described above, to ensure the mechanical and electrical connection between the cover contact member 542 and the upper ferrule of the fuse 462 and between the lower terminal of fuse 464 and the lower ferrule of fuse 466. In addition, the guiding element 474 automatically ejects fuse 442 from housing 502, as described above, when cover 508 is rotated on hinge 448 in the direction of arrow E after switch actuator 504 is turned in the direction of arrow F.
Unlike module 410, module 500 may also include an opening mechanism 544 in the form of a sliding bar 545 and a solenoid 546 connected in parallel along fuse 442. The firing bar 545 is slidably mounted to the opening guide slot 517 formed in the housing 502, and in an exemplary embodiment, the firing bar 545 can include a solenoid arm 547, a cover locking arm 548 that it extends substantially perpendicular to the solenoid arm 547, and a support arm 550 that extends obliquely to each solenoid arm 547 and cover locking arm 548. The support arm 550 may include a locking tab 552 at a distal end thereof. The switch actuator body 446 504 can be formed with a protrusion 554 that collaborates with the locking tab 552 to keep the firing bar 545 and the actuator 504 in static balance with the solenoid arm 547 resting on an upper surface of the solenoid 546.
A torsion spring 555 is connected to one end of the housing 502, and the actuator body 446 to another end, and the torsion spring 555 guides the actuator of the switch 504 in the direction of the arrow F to the open position. That is, the torsion spring 555 is resistant to movement of actuator 504 in the direction of arrow H and tends to force actuator body 446 to rotate in the direction of arrow F to the open position. Thus, actuator 504 is safe against failures due to torsion spring 555. If the actuator of switch 504 is not completely closed, the torsion spring 555 will force it into the open position and prevent inadvertent closing of the switchable contacts of actuator 450, along with the safety and reliability issues associated with incomplete closing. switchable contacts 450 relative to stationary contacts 452.
Under normal operating conditions, when actuator 504 is in the closed position, the tendency of the torsion spring 555 to move the actuator to the open position is compensated by the support arm 550 of the firing bar 545 as shown in figure 18. The flap locking mechanism 552 of the support arm 550 engages the projection 554 of the actuator body 446 and keeps the actuator 504 stable in static equilibrium in a closed and locked position. Once the locking tab 552 is released from the protrusion 554 of the actuator body 446, however, the torsion spring 555 will force the actuator 504 into the open position.
An actuator lock 556 is formed with a cover 508 and extends downwardly into housing 502 adjacent to fuse receptacle 437. The locking arm of the cover 548 of the firing arm 545 is received in the lock of the actuator 556 of the cover 508 and prevents the cover 508 from being opened unless the actuator of the switch 504 is rotated in the direction of the arrow F, as explained below, to move the firing bar 545 and release the cover locking arm 548 from the firing bar 545 from the lock on the actuator 556 of the cover 508. The deliberate turning of the actuator 504 in the direction of arrow F causes the locking tab 552 of the solenoid arm 550 of the firing bar 545 to be pivoted away from the actuator, and causes the solenoid arm 547 to be tilted or angled with respect to the solenoid 546. Tilting the firing bar 545 results in an unstable position, and the torsion spring 555 forces actuator 504 to rotate and still pivoting firing bar 545 to the release point.
With the deliberate and careless movement of the actuator to the open position in the direction of the arrow F, the firing bar 545, through the locking arm 548, directly opposes the movement of the cover 508 and resists any attempt by a user to rotate the cover 508 on the cover hinge 448 in the direction of arrow E to open cover 508 while switch actuator 504 is closed, and the switchable contacts 450 are attached to the stationary contacts 452 to complete a circuit path through fuse 442. The inadvertent contact with energized portions of fuse 442 is therefore prevented, since the fuse can only be accessed when the circuit through the fuse is interrupted by means of the switchable contacts 450, thus providing a degree of safety for the human operators of the module 500.
The upper and lower solenoid contact members 557, 558 are provided and stabilize the electrical contact with the respective viro32
Upper and lower loops 462, 466 of fuse 442 when cover 508 is closed over fuse 442. Contact members 557, 558 in turn stabilize the electrical contact of a circuit board 560. Resistors 562 are connected to the circuit board 560 and define the path of the high-resistance parallel circuit along the ferrules 462, 466 of fuse 442, and solenoid 546 is connected to this parallel circuit path on circuit board 560. In an exemplary embodiment, the resistance is selected so that, in normal operation, substantially all current flows pass through fuse 442 between fuse ferrules 462, 466 instead of passing through upper and lower solenoid contact members 557 558 and circuit board 560. The coil of solenoid 546 is calibrated so that when solenoid 546 experiences a predetermined voltage, the solenoid generates an upward force in the direction of arrow G that causes the firing bar 545 to be moved in the opening guide slot 517 away from a curved path defined by slot 517.
As those skilled in the art can appreciate, the solenoid coil 546 can be calibrated to be responsive to a predetermined under voltage condition or a predetermined over voltage condition, as desired. In addition, circuit board 560 may include a circuitry to actively control the operation of solenoid 546 in response to circuit conditions. Contacts can also be provided on circuit board 560 to facilitate opening the remote control of solenoid 546. Thus, in response to abnormal circuit conditions that are predetermined by calibration of the solenoid coil or set of control circuits on board 560 , solenoid 546 is activated to move the firing bar 545. Depending on the configuration of solenoid 546 and / or plate 560, opening fuse 442 may or may not trigger an abnormal circuit condition causing solenoid 546 to activate and move trigger bar 545.
As the firing bar 545 travels the curved path in the guide slot 517 when solenoid 546 is in operation, solenoid arm 547 is pivoted and is tilted or angled with respect to solenoid 546. The inclination of solenoid arm 547 causes the the firing bar 545 becomes unstable and susceptible to the force of the torsion spring 555 acting on the locking tab of the firing arm 552 through the projection 554 on the actuator body 446. As the torsion spring 555 starts to rotate the actuator 504, the firing bar 545 is more pivoted due to the engagement of the locking tab of the firing arm 552 and the protrusion of the actuator 554 and becomes even more unstable and subject to the force of the torsion spring. The firing bar 545 is further moved and pivoted by the combined action of the guide slot 517 and the actuator 504 until the locking tab of the firing arm 552 is released from the protrusion of the actuator 554, and the locking arm 548 of the firing bar 545 is released from locking actuator 556. At that point, each actuator 504 and cover 508 can be rotated freely.
Figure 19 is a side elevation view of the fuse switch disconnect module 500 illustrating solenoid 546 in a firing position in which a solenoid plunger 570 is moved upwards and engages the firing bar 545, causing the bar trigger 545 moves along curved guide slot 517 and is tilted and unstable with respect to the plunger. Since the firing bar 545 is moved and pivoted to be unstable, the torsion spring 555 assists, causing the firing bar 545 to become more unstable, as described above, until the protrusion 554 of the actuator body 446 is released of the locking tab 552 of the firing bar 545, and until the torsion spring 555 forces the actuator 504 to rotate completely to the open position, shown in figure 19. As the actuator 504 rotates to the open position, the actuator connection 454 pulls the slide bar 456 upward along the linear axis 475 and separates the switchable contacts 450 from the stationary contacts 452 to open or disconnect the circuit path between the housing terminals 520. Additionally, the firing bar hinge 545 releases the lock on the actuator 556 of the cover 508, allowing the guiding element 474 to force the fuse upward from the housing 502, and causing the cover 508 to be pivoted over the hinge 448 so that fuse 442 is exposed for easy removal and replacement.
Figure 20 is a perspective view of the fuse switch disconnect module 500 in the trigger position, and the relative positions of the actuator 504, the trigger bar 545, and the cover 508. As also shown in figure 20, the bar slide 456 carrying switchable contacts 450 can be assisted so that it reaches the open position by a first guide element 572 external to slide bar 456 and a second guide element 574 internal to slide bar 456. The guiding elements 572, 574 can be axially aligned with each other, but loaded in reverse, in one embodiment. The guiding elements 572, 574 can be, for example, spiral helical spring elements, and the first guiding element 572 can be loaded in compression, for example, while the second guiding element 574 is loaded under tension. Therefore, the first guiding element 572 exerts an upward driving force on the sliding bar 456 while the second guiding element 574 exerts an upward pulling force on the sliding bar 456. The combined forces of the guiding elements 572, 574 force the slide bar in an upward direction indicated by the arrow G when the actuator is rotated to the open position as shown in figure 20. The double spring action of the guide elements 572, 574, together with the torsion spring 555 (figures 18 and 19) acting on the 504 actuator ensure a quick, automatic, and complete separation of the switchable contacts 450 from the fixed contacts 452 in a reliable manner. In addition, the double spring action of the guide elements 572, 574 effectively prevents and / or compensates for the contact jump when the module 500 is operated.
Figures 20 also illustrate the locking actuator 556 of cover 508 which is substantially U-shaped, in an exemplary embodiment. As seen in figure 21, lock 556 extends downwardly in housing 502 when cover 508 is in the closed position on fuse 442, carrying the guide element 474 in compression. Figure 22 illustrates the locking arm of the cover 548 of the firing bar 545 aligned with the lock of the actuator 556 of the cover 508 when the cover 35 * is in the closed position. In such a position, the actuator 504 can be rotated back in the direction of arrow H to move the slide bar 456 down in the direction of arrow I to engage the switchable contacts 450 with the stationary contacts 452 of housing 502. As the actuator 504 is rotated in the direction of arrow H, the firing bar 545 is pivoted back to the position shown in figure 18, keeping the actuator stable 504 in the closed position in a locking arrangement with cover 508. The firing bar 545 can be spring loaded to further assist the firing action of module 500 and / or returning firing bar 545 to the stable position, or even more so, to orient firing bar 545 to a predetermined position in relation to the opening guide slot 517.
Figures 23 and 24 illustrate a tenth modality of a fuse switch disconnect device 600 that includes a disconnect module 500 and an auxiliary contact module 602 coupled or connected to housing 502 in a side-by-side relationship with module 500 through openings 516 (figure 17) in module 500.
The auxiliary contact module 602 can include a housing 603 generally with a complementary shape to the housing 502 of module 500, and can include an actuator 604 similar to actuator 504 of module 500.
A connection of the actuator 606 can interconnect the actuator 604 and the slide bar 608. The slide bar 608 can carry, for example, two pairs of switchable contacts 610 spaced from each other. One of the pairs of switchable contacts 610 connects and disconnects a circuit path between a first set of auxiliary terminals 612 and members of rigid terminals 614 extending from the respective terminals 612 and each carrying a respective stationary contact for the engagement and disengagement with the first set of switchable contacts 610. The other pair of switchable contacts 610 connects and disconnects a circuit path between a second set of auxiliary terminals 616 and members of rigid terminals 618 extending from the respective terminals 616 and each carrying a respective stationary contact for the engagement and disengagement with the second set of switchable contacts 610.
By connecting or fixing the actuator lever 620 of the auxiliary contact module 602 to the actuator lever 510 of the disconnect module 500 with a pin or a bushing, for example, the actuator 604 of the auxiliary contact module 602 can be moved or triggered simultaneously with actuator 504 of disconnect module 500. Thus, auxiliary connections can be connected and disconnected together with a stabilized primary connection via disconnect module 500. For example, when the primary connection stabilized through module 500 energizes an electric motor, an auxiliary connection for a cooling fan can be made to the auxiliary contact module through one of the terminal blocks 612 and 616 so that the fan and the motor are turned on and off simultaneously by device 600. As another example, one of the auxiliary connections via terminals 612 and 616 of the auxiliary contact module 602 can be used for remote indication purposes to signal a remote device about the status of the device while it is opened and closed to connect or disconnect circuits through device 600.
Although the characteristics of the auxiliary contact have been described in the context of an aggregate module 602, it is understood that the components of module 602 could be integrated into module 500 if desired. Single pole or multiple pole versions of such a device could also be provided.
Figures 25-27 illustrate an eleventh embodiment of a fuse switch disconnect device 650 that includes a disconnect module 500 and a monitoring module 652 attached or attached to housing 502 of module 500 through openings 516 (figure 17) in module 500.
The monitoring module 652 may include a housing 654, in general, complementary to the housing 502 of module 500. A sensor plate is placed in the housing 652, and the flexible contact members 658, 660 are respectively connected to each of the ferrules 462, 466 (figure 18) of the fuse 442 (figure 1) in the disconnection module 500 through, for example, example, through the upper and lower solenoid contact members 557, 568 (figure 18) that stabilize a parallel circuit path along the fuse ferrules 462, 466. The sensor board 656 includes a sensor 662 that monitors the operating conditions of the contact members 557, 558 and produces a signal for an input / output element 664 powered by an integrated power supply such as a 670 battery. When predetermined operating conditions are detected with sensor 662, the input / output element 664 produces a signal to an output signal port 672 or alternatively to a communications device 674 that wirelessly communicates with an overview allocated remotely and with a 676 response dispatch system that alerts, notifies, and calls on the maintenance team or responsible technicians to react to the fuse opening and firing conditions to restore or re-energize the circuitry associated with the minimum downtime.
Optionally, an input signal port 678 can be included in the monitoring module 652. The input signal port 678 can be interconnected with an input signal port 672 from another monitoring module, such that the signals from the multiple modules monitoring devices can be connected in series to a single communication device 674 for transmission to the remote system 676. Interface plugs (not shown) can be used to interconnect one monitoring module to another in an electrical system.
In one embodiment, the sensor 662 voltage sensing lock circuit has the first and second portions optically isolated from each other. When the primary fuse element 680 of fuse 442 opens to interrupt the current path through the fuse, sensor 662 detects the voltage drop across the terminal elements T-ι and T<sub>2</sub> (the solenoid contact members 557 and 558) associated with fuse 442. The voltage drop causes one of the portions of the circuit, for example, to lock tightly and provide an input signal to the input / output element 664. The technology satisfactory sensing for the 662 sensor is available, for example, at SymCom, Inc. of Rapid City, South Dakota.
While in an exemplary mode, sensor 662 is a voltage sensor, it is understood that other types of sensing could be used in alternative modes to monitor and sense a 442 fuse operating state, including, but not limited to current sensors and temperature sensors that could be used to determine whether the 680 primary fuse element was interrupted in an overload condition to isolate or disconnect a portion of the associated electrical system.
In another mode, one or more additional sensors or 682 transducers can be provided, internally or externally to the monitoring module 652, to collect data of interest in relation to the electrical system and the loads connected to fuse 442. For example, 682 sensors or transducers can be adapted to monitor and perceive vibration and displacement conditions, mechanical difficulties and deformation conditions, acoustic emissions and noise conditions, thermal imaging and thermography states, electrical resistance, pressure, and humidity conditions in the vicinity of fuse 442 and connected loads. The sensors or transducers 682 can be coupled to the input / output device 664 as signal inputs. Video images and surveillance devices (not shown) can also be provided to produce video data and inputs for the 664 input / output element.
In an exemplary embodiment, the input / output element 664 can be a microcontroller with a microprocessor or equivalent electronic package that receives the input signal from sensor 662 when fuse 442 operates to interrupt the current path through fuse 442 . The input / output element 664, in response to the input signal from sensor 662, generates a data packet in a predetermined message protocol and transfers the data packet to signal port 672 or communications device 674. The data package can be formatted in any desirable protocol, but in an exemplary mode, it includes at least one fuse identification code, a fault code, and a location code or address in the data package so that the operated fuse can be promptly identified and its status confirmed, together with its location in the electrical system by the 676 remote system. Of course, the data package could contain other information and codes of interest, which include but are not limited to system test codes, data collection codes, security codes and the like that are desirable or advantageous in the communications protocol.
In addition, signal inputs from sensor or transducers 682 can be fed to input / output element 664, and input / output element 664 can generate a data packet in a predetermined message protocol and transfer the data packet signal port 672 or communications device 674. The data package may include, for example, codes related to vibration and travel conditions, mechanical difficulty and deformation conditions, acoustic emissions and noise conditions, thermal imaging and thermography states, electrical resistance, pressure conditions, and humidity conditions around fuse 442 and connected loads. Video and image data provided by surveillance image devices 682 can also be provided in the data package. Such data can be used to troubleshoot, diagnose, and record the history of events in favor of detailed analysis to improve the larger electrical system.
The data packet transmitted from the communications device 674, in addition to the data packet codes described above, also includes a unique transmitting identifier code so that the overview and the 676 reply message system can identify the monitoring module. particular 652 that is sending a data packet on a larger electrical system with a large number of monitoring modules 652 associated with the number of fuses. As such, the precise location of the affected disconnection module 500 in an electrical system can be identified by the overview and response dispatch system 676 and communicated to the responsible team, along with other information and instruction to quickly restore the affected circuitry. when one or more of the 500 modules operate to disconnect a portion of the electrical system.
In one embodiment, the communications device 674 is a low power radio frequency (RF) signal transmitter that digitally transmits the data packet wirelessly. Point-to-point wiring in the electrical system for the purposes of monitoring the fuse is therefore avoided, unless it is understood that point-to-point wiring could be used in some embodiments of the invention. In addition, although a low power digital radio frequency transmitter has been specifically described, it is understood that other equivalent known communication schemes could be used alternatively if desired.
Status indicators and the like such as light-emitting diodes (LED's) can be provided on monitoring module 652 to locally indicate an operated fuse 442 or a trip disconnect condition. Thus, when maintenance personnel arrive at the location of the disconnect module 500 that contains fuse 442, the status indicators can provide a local status identification of the fuses associated with module 500.
Further details of such monitoring technology, communication with the 676 remote system, and 676 system response and operation are described in patent application serial number US.11 / 223,385 assigned to the same assignee, filed on September 9, 2005 and entitled Circuit Protection Assembly, Assembly and Monitoring Method.
Although the monitoring features have been described in the context of an aggregate module 652, it is understood that the components of module 652 could be integrated with module 500 if desired. Single pole or multiple pole versions of such a device could also be provided. In addition, the monitoring module 652 and the auxiliary contact module could each be used with a single disconnect module 500 if desired, or an alternative could be combined in an integrated device with single-pole or multiple-pole capability. .
Figure 28 is a side elevational view of a portion of a twelfth modality of a fuse switch disconnect module 700 which is constructed similarly to the disconnect module 500 described above, but includes a bimetallic overload element 702 in place of the solenoid described earlier. The overlay element 10 ga 702 is manufactured from pieces of two different types of metallic or conductive materials that have different coefficients of thermal expansion joined together, and a resistance alloy joined to the metallic elements. The resistance alloy can be electrically isolated from metal pieces with insulating material, such as a double layer of cotton in an exemplary manner.
In use, the resistance alloy strip is attached to contact members 557 and 558 and defines a high-strength parallel connection along the fuses 442 and 466 of fuse 442. The resistance alloy is heated by the current flowing through the alloy resistance, and the resistance alloy, for
- 20 turn, heat the bimetal strip. When the predetermined current condition is approached, the different rates of thermal expansion coefficients on the bimetal strip cause the overload element 702 to tilt and move the trigger bar 545 to the release point where the spring loaded actuator 504 and the slide bar 456 moves to the open positions to disconnect the circuit via fuse 442.
Module 700 can be used in combination with other modules 500 or 700, auxiliary contact modules 602, and monitoring modules 652. Single pole and multiple pole versions of module 700 can also be provided.
Figure 29 is a side elevational view of a portion of a thirteenth modality of a fuse switch disconnect module 720 which is constructed similarly to the disconnect module 42 described above, but includes an electronic overload element 722 which monitors the current flow through the fuse by virtue of the contact member 557 and 558. When the current reaches a predetermined level, the electronic overload element 722 energizes a circuit to energize the solenoid and trigger module 720 as described above. The electronic overload element 722 can also be used to restore the module after an opening event.
Module 702 can be used in combination with other modules 500 or 700, auxiliary contact modules 602, and monitoring modules 652. Single pole and multiple pole versions of module 700 can also be supplied.
Figure 30 is a perspective view of a fuse status indicator module 800 that can be used in combination, for example, with any of the disconnecting devices and modules described above. That is, the fuse status indicator module 800 can be used with the fuse disconnecting devices 100 (figure 1), 300 (figures 8 and 9), 370 (figure 10), 400 (figure 11), and 600 ( figures 23 and 24). The fuse status indicator module 800 can also be used in combination with one or more of the disconnect modules 102 (figures 2-4), 220 (figures 5), 250 (figures 6 and 7), 410 (figures 12-16 ), 500 (figures 17-22), 650 (figures 25 and 26), 700 (figure 28), and 720 (figure 29). As such, the fuse status indicator module 800 can be used with single pole or multiple pole disconnection mechanisms, it can have several mounting and connection options for the protected circuitry, it can be used with different types and fuse configurations, can be used in combination with undervoltage modules, opening mechanisms, auxiliary contact elements and modules, overload elements, and even other types of monitoring elements. The fuse status indication module 800 can be considered a lower cost option than the monitoring module 652 (figures 25 and 26) because it provides remote detection of the operating status of the fuses in the disconnecting devices and modules.
The monitoring module 800 may include an 802 housing generally complementary in shape with respect to the housings described above of the various disconnecting devices and modules, and in an exemplary embodiment, the 802 housing has a T thickness dimension of about half the dimensions of thickness of the modules described above, or about 8.75mm in one example. Like some of the housings described above, housing 802 includes mounting openings or slots 803 that can receive connectors or bushings, such as pins 480 and bushings 484 connectors (figure 16) to couple housing 802 to a disconnecting device or module of complementary slots and mounting openings.
The housing 802 indicating and sensing components and the set of circuits described below to detect the opening of the fuses in the disconnecting device and associated disconnecting modules. Module 800 also includes an actuator 804 that can be attached to the actuator of a disconnecting device with a connector pin 806 in the manner described above. Signal input ports 808 are provided on both sides of housing 802, and wires or conductors 810a, 810b, and 810c that connect internally to the sensing components and circuitry in housing 802 and extend through signal ports 808 for external connection to the terminal elements of a disconnecting device or disconnecting modules that define the line and load connections to the fuses.
In the illustrated embodiment, each wire 810a, 810b and 810c terminates outside signal ports 808 with fork connectors from terminal 812a, 812b and 812c. Terminal connectors 812a, 812b and 812c can be extended to the corresponding ports on the disconnect device and any associated disconnect modules, therefore, which stabilize the line and load connections to the terminal elements in that place. When connected, wires 810a and connectors at terminal 810b provide an electrical connection to a first fuse to be monitored with module 800, wires 810b and to connectors at terminal 812b providing an electrical connection to a second fuse to be monitored with module 800, and wires 810c and terminal connectors 812c provide a third fuse to be monitored by module 800. Although the fork connectors of terminal 812a, 812b and 812c are illustrated in figure 30, it is recognized that another terminal structure could be provided to connect wires 810a, 810b and 810c to the structure of the line and load terminal of the disconnect device and modules.
The three pairs of wires 810a, 810b and 810c are particularly advantageous for a three-phase disconnect device that supplies AC power to a motor or industrial machine, for example. Although the three wires 810a, 810b and 810c are illustrated, it is understood that in an alternative embodiment, larger or smaller 810 wires can be provided to monitor larger or smaller numbers of fuses. In addition, to the extent that module 800 is desired for use with a disconnect device that has less than three poles, the unused terminal connectors 812 of module 800 can be topped or otherwise covered.
Light emitting diodes (LEDs) 814 and 816 can be supplied and connected to the circuitry in the housing 802 and can be visible from outside the housing 802. In an exemplary embodiment, LED 814 can provide an indication of electrical energy supplied to module 800, and LED 816 can provide an indication of an open fuse in the disconnect device or associated module. For example, in one embodiment, LED 814 can be illuminated to indicate that power to the 802 module is being received, sometimes referred to as an on condition, and is not illuminated when power to the 802 module, sometimes designated as an off condition. In another mode, this indication of the on and off conditions can be effectively reversed such that LED 814 is lit when power is lost and LED 814 is not lit when power is on. In any event, by virtue of the 814 LED energy, a user can quickly verify that the 800 module is receiving electrical power.
<· Likewise, the fuse indication LED 816, may not be illuminated when the fuses are in a closed or current carrying state for normal operation, and LED 816 may be illuminated when at least one of the monitored fuses opens to interrupt or stop the current path and the electrical connection through the fuse. In an alternative mode, this indication can be reversed such that LED 816 lights up when the fuses are closed and does not light up when the fuses are open. In any case, by virtue of LED 816, the user can quickly check whether or not any of the fuses have opened and need replacement. The local indication of the status of the fuse in the vicinity of module 800 is therefore provided by LED 816.
For remote indication of the fuse status, the output ports and terminal connectors 818, 820 and 822 are provided in module 800.
Connectors 818, 820 and 822 provide for connection to a controller, such as a programmable logic controller, which is in turn connected to remote devices and equipment. Connector 818, for example, can correspond to a ground connection. Connector 820 can correspond to a power connection to module 800, such as a connection
- 20 24V DC to a controller power supply. The 822 connector can correspond to a signal connection, such as the OV or 24V DC signal to the controller. In one embodiment, connectors 818, 820 and 822 are the well-known quick-connect connectors for the 16 AWG .110 terminal, although it is noted that other connectors and terminals could be used in an alternative mode, if desired.
Figure 31 is a side elevation view of a portion of the 802 module illustrating its internal components. Housing 802 wraps and protects circuit board assembly 830, and wires 810 are passed through signal ports 808. Deformation release characteristics 832 are formed in housing 802, for example, to protect wires 810 and their connections to the 830 circuit board assembly. Optical isolators 834 are provided for interfacing with wires 810 and the 600V AC fuse circuit pack from the circuit assembly on the DC 830 24V circuit board assembly. Each 834a, 834b and 834c optical isolator corresponds to one of the fuses monitored operatively connected between each of the wires 810a, 810b and 810c, respectively. Optical isolators 834 lock when a different voltage appears along one of the fuses as explained below.
The printed circuit board assembly 130 can also include LEDs 814 and 816 and terminals 836, 838 and 840 for connectors 818, 820 and 822 in figure 31. Terminals 836, 838 and 840 can be, for example, terminals fork 100 known in the art.
A bypass / reset switch 842 is also provided in the assembly of circuit board 830. Switch 842 is driven by a cam surface 844 of actuator 804. The switch 842 and the meat surface 844 are constructed so that when the actuator 804 is attached to the actuator of the disconnect device or module, the movement of the actuator 804 in the direction of arrow J causes the meat surface 844 to operate the switch 842 while the switch contacts on the device or disconnect module are open. The operation of switch 842 derives the signal portions of the circuitry in module 800 and also causes the indication of fuse LED 816 to be reset. Bypassing the signal portions of the circuitry prevents an open signal from the fuse from occurring when the disconnect device or module is open. That is, the operation of the circuitry is not affected by the position of the switch contacts on the disconnecting device, or whether the disconnecting device is open or closed to connect or disconnect the current path through the fuses.
Fig. 32 is an exemplary fuse state indicating the schematic circuit for module 800. The circuit includes a sensing or sensing portion 850 and a signal portion 852 each connected to a power supply 854. The sensing portion 850 includes the optical isolators 834a, 834b, 834c connected along each respective Fuse 1, Fuse 2, and Fuse 3 of the disconnecting device, and <the fuse indication LED 816. In a normal operating condition, for example, and when none of the fuses Fuse 1, Fuse 2 or Fuse 3 opens, the optical isolators 834a, 834b, 834c will experience no differential voltage and the sensing portion 850 of the circuit will be unlocked, and LED 816 will not be lit. Additionally, in the normal operating condition and when none of the fuses Fuse 1, Fuse 2 or Fuse 3 opens, the signal portion 852 of the circuit is set high and provides, accordingly, to provide a high input signal to the controller via terminal 822 (figure 30) and terminal 840 (figure 31). Because of the switch
842, signal portion 852 is unaffected by the opening of the switch contacts on the disconnect device. That is, in an exemplary embodiment, the signal portion 852 remains high if the disconnect device is open or closed. Only when a primary fuse element in one of the fuses actually opens, is the signal set low in signal portion 852.
The fuse opening situations are detected by the optical isolators 834a, 834b, 834c in the sensing portion 850 of the circuit which, in turn, causes the signal portion 852 to provide a weak signal to the controller. More specifically, optical isolators 834a, 834b,
834c experience a voltage drop across the fuse line and load terminals through the device line and load terminals or disconnect modules. Each of the fuses Fuse 1, Fuse 2, and Fuse 3 can correspond to a respective phase of the AC power supply, for example, an engine or an industrial machine. When any of the fuses Fuse 1, Fuse 2, and Fuse 3 opens, the voltage placed across the associated optical isolator 834a, 834b or 834c causes the sensing portion 850 of the circuit to lock and turn on the LED fuse indicator 816 to indicate a fuse opening situation.
Locking the circuit and lighting the LED 816, in turn, causes the signal portion 852 to be set low and introduces the low signal into the controller. When the controller receives the weak signal at a remote location, a situation where the fuse is open is detected.
The controller can be programmed, for example, to open a contactor or other device to prevent a motor or machine, for example, from continuing to operate with at least three phases of the current. In addition, the controller can be programmed to establish an alarm condition for quick action by an operator, provide notification to trusted persons about an open fuse, or execute other instructions provided in the controller programming, as desired.
Once signal portion 852 is set low, it will remain low until reset switch 842 is activated using actuator module 804 to reset signal portion 852 to high. The weak signal can be maintained even if the voltage is removed along the open fuse, such as by opening one of the switch contacts on the associated disconnect device. Keeping the signal weak in this way, the fuse open indication will continue even after the associated disconnect device is opened.
Activation of switch 842 with actuator 804 also restores signal portion 850 and LED 816 after a fuse opening detection situation.
Even though in the illustrative modality the fuse opening situations are detected with optical isolators, it is understood that other detection elements and components could be used with a similar effect, and such detection elements can monitor and respond to the currents felt or detected, voltage, temperature and other operating conditions to detect open fuses. Numerous sensing and sensing elements that would be suitable for the indication module as described are known and include, but are not limited to, current transformers, Rogowski coils, inductors, and the like, as those skilled in the art will appreciate.
Likewise, although the visual indicators in the form of the LEDs are provided in an exemplary manner so that open fuses can be efficiently located, it is observed that other types of visual indicators can, alternatively, be provided for «situations of opening the fuses as a change in the external appearance of the indication module. A variety of visual indicators are known in the art and can alternatively be used, including, for example, mechanical indicators with flags or pins that are extended in response to open fuses, electrical indicators with one or more light emitting elements, and indicators that show color changes in response to situations in which the fuses are open, including but not limited to - limited to fuel indicators and indicators equipped with temperature-responsive materials and chemically activated color changes.
Figure 33 illustrates the fuse status indication module
800 connected or coupled to a fuse disconnect device 860. The disconnect device 860 can include a number of disconnect modules 862 or can be supplied in a single housing, as desired. The 862 modules can be of the type described above which includes a 15 fuse compartment and fuse terminals, the slide bar and switch contacts. Modules 862 may also include the addition of access ports 864 for the insertion of terminals 812a, 812b and 812c (figure 3) connected to each wire 810a, 810b, and 810c. Terminals 812a, 812b and 812c electrically connected to the fuse terminals to place the optical isolators cos 834a, 834b and 834c along the fuses in each module 862.
Fuse covers 865 are provided on each of the 862 modules of disconnect device 860, and covers 865 are positionable to provide access to the fuse compartments for inserting and removing fuses. Disconnect device 860 includes an actuator 866 for opening the tap-changer contacts through the slide bar as described above, and actuator 804 of indication module 800 is connected to actuator 866 of disconnect device 860. Connectors 818, 820 and 822 are accessible over module 800 for connection to the controller for power, ground and signal connections via connection plugs and wires or cables.
Figure 34 schematically illustrates an electrical fuse system 900 including fuse disconnect device 860, fuse status indication module 800, a power supply 902 and a controller 904. The electrical system includes line and load connections and a set of circuits coupled to fuses Fuse 1, Fuse 2 and Fuse 3 on disconnect device 860. A power supply 902 such as a battery is coupled to the 800 indication module via the 820 power connector and 906 cabling. Ground connections are established to the 800 module via the 818 connector and 908 cabling. A signal connection between the indication 800 and controller 904 is established via signal connector 822 and wiring 910. Once connected, the indication module 800 can signal the controller 904 of fuse opening situations while wings occur, and the controller 904 can generate alarms, take appropriate measures and measures, etc. according to the controller programming.
Having now described the system and its operation functionally, it is believed that the controller programming is the responsibility of those skilled in the art without further explanation.
Fig. 35 is a side elevation view of one of the disconnection modules 862 for the device 860 shown in Fig. 33 and illustrating the exemplary internal components and their construction. Module 862, as in the previous modalities, can be used in place of, or in addition to, any of the previous module modalities. That is, module 862 does not need to be used only on device 860 in figure 35, but can also be used on other devices including, but not limited to, the other fuse disconnecting devices described here.
As in the previous modalities of the modules, the disconnection module 862 includes an insulating housing 920, a fuse 922 loaded in the housing 920, a cover or fuse cover 865, rotary mounted switch actuator 924, and a slide bar 926 that carries the first and the second movable contacts of switch 928 and 930. The contact of switch 928 can be positioned by the slide bar 926 in relation to a stationary contact 932 affixed to a side line terminal 934. The switch contact 930 can be moved by the slide bar 926 in relation to a stationary contact 936 of a lower terminal of the fuse 938 that is electrically connected to an end cover of the lower terminal 940 of the fuse 922. However, an end cover of the fuse upper fuse terminal 942 engages an upper fuse terminal 944 of a side load terminal 946. The actuator of switch 924 can be provided for the position of the sliding bar 926 and for opening or closing switch contacts 928 and 930 in relation to stationary contacts 932 and 936 substantially as described above in relation to the previous modalities of the modules. A conductive path through fuse 922 can therefore be made or broken through switch contacts 928 and 930.
In addition, and as explained above, the movement of the actuator for switch 924 and / or the slide bar 926 can be reinforced by one or more elements to ensure complete separation of switch contacts 928 and 930 from stationary contacts 932 and 936 , to minimize contact bounce, to prevent inadvertent closing of switch contacts 928 and 930, and to orient the switch mechanism to an open or closed position. Blocking characteristics for switch actuator 924, fuse rejection characteristics built into fuse terminals 938 and 944, and fuse ejection characteristics and guiding elements, also described above, can also be used in module 862.
Module 862 is illustrated as a single pole module in Figure 35 that accommodates a fuse 922. It is to be understood, however, that multiple modules 862 can be coupled or conjugated together to form, for example, the three poles 860 shown in figure 33. It is also noted that module 862 can be constructed as a multi-pole assembly with multiple side lines and side load terminals, multiple fuse terminals, etc. contained in a single housing to accommodate and switch multiple fuses in a single housing. Any of the opening elements and mechanisms previously described can also be used in module 862.
Housing 920 may be manufactured from an insulating or non-conductive material, such as plastic, according to known methods and techniques, including but not limited to injection molding techniques. In an exemplary embodiment, housing 920 can be formed, in a generally rectangular shape and size, explained in detail above, which is complementary to and compatible with DIN and IEC standards applicable to standardized electrical equipment. The housing 920 is generally shaped and shaped in a complementary manner to the other modules described above.
Unlike the previous modules, housing 920 of module 862 includes opposite side panels 950 and 952, each with a first access or opening door 864 and a second access or opening door 954. Access doors 864 are designated sometimes as auxiliary doors and access doors 954 are sometimes designated as side line and side load doors. Access doors 864 and 952 are spaced apart and are distinct from each other on the respective side panels 950 and 952, and each door 964 provides access to the respective side line terminal 934 and side loading terminal 946 at different relative locations in the terminals 934 and 946.
Therefore, each side line terminal 934 and each side load terminal 946 include a first portion 956 and a second portion 958. The first portion 956 of the respective terminals 934 and 946 can be located close to access ports 864 and the second portion 958 respective terminals 934 and 946 can be located close to access door 954. Wires 810 provided with fork connectors of terminal 812, for example, can be inserted through the respective access ports 864 and can be received in the first portion 956 of line and load terminals 934 and 946, while the insulated connecting wires 960 having ends 962 are stripped of insulation to expose the bare conductors in the wire can be inserted through the respective access ports 954 and can be received in the second portion 958 of the line and load terminals 934 and 946.
A screw terminal 964 can be provided on each of the line and load terminals 934 and 946, and screw 964 can be advanced to simultaneously lock or release both the fork connectors of terminal 812 and the bare ends 962 of wires 810 and 960 at each of the line and load terminals 934 and 946. As shown in figure 35, the connectors of terminal 812 of wires 810 can be fixed between the respective screw head and an end plate on the first portion 956 of each terminal 934 and 946, while the bare ends 962 of wires 960 can be fixed in a respective box-like terminal on the second portion 958 of each of the terminals 934 and 946. Each of the first and second portions 956 and 958 of the respective terminals 934 and 946 is extremely adapted for simultaneous connections to wires 810 and 960 so that different wires 810 and 960 with a different terminal structure can each be accommodated by a single side line terminal and single side load terminal. That is, one of the wires 810 and one of the wires 960 can be attached to one and the same terminal on either side of the 862 module, but in different locations and in different portions of the terminals.
While in the example mode, terminals 934 and 946 are configured to connect to a bare wire and a wire supplied with a bifurcated terminal, in another mode, wires 810 and 960 can be supplied with other connectors or terminal structure and terminals 934 and 946 can be appropriately modified to receive the terminal structure of wires 810 and 960. Additionally, it is noted that the terminal structure, other than that illustrated specifically in figure 35, can be used on one or both side lines and side load terminals 934 and 946 while still providing connections for the forked and bare wire terminals . For example, resilience, insulating displacement contact terminals, spring clamping terminals, inserted wire contacts, and other terminals and termination methods known in the art can be used as the second 958 portion of one or both terminals for engaging or lock one end of an insulated wire without a screw terminal.
In addition, in an alternative embodiment, using another completion structure and methods that do not involve a screw terminal, for example, wires 810 and 960 can be hooked and attached to each of the line and load terminals in sequence instead simultaneously, while still supplying current or the coexisting connection to the wires after they are engaged.
In one embodiment, wires 960 that extend through access ports 954 and connect to the second portion 958 of line and load terminals 934 and 946 establish an electrical connection to the set of side line circuits 966 and the set of side load 968. Thus, when switch contacts 928 and 930 are closed and fuse 922 is present with fuse cover 865 closed, an electrical connection via fuse 922 is completed. When specific electrical current conditions are experienced, fuse 922 will operate to open the conductive path through module 862 and isolate the side charge circuitry 968 from potentially damaging current flows. Likewise, the actuator of switch 924 can be manipulated, manually or remotely, to disconnect the load circuit set 968 from the line circuit set 966 via switch contacts 928, 930 at any time to disconnect the circuit set side load 968 from side line circuit 966.
Wires 810, as previously described, can connect the load and side line terminals 934 and 946 to the fuse status indicator module 800. As such, wires 810 establish a parallel connection along fuse 922 so that voltage, for example, can be felt, monitored and detected to indicate a fuse blown or other electrical problem. In another embodiment, wires 810 can be connected to another auxiliary device or auxiliary module.
Wires 810 and 960 can have different wire measurement ratings, and provide independent access to ports 864 and 954 to connect wires 810 and 960 to module 862, wires 810 and 960 can be <· conveniently connected without having to agglomerate more than one wire, and possibly wires of different sizes or measures, in a single access door. Difficulties associated with having to attach different wires to a terminal that was originally designed for attaching a single wire of a certain size in a single location, which could otherwise occur, are also prevented by the separate access doors 864 and 954 and the construction of line and load terminals 934 and 936 equipped with portions designated for connection with different wires.
Module 862 can also be provided with a fuse rating scheme using color-coded elements to visually indicate the fuse rating 922 while the fuse is closed in housing 920 with fuse cover 865 closed. Such a color coding scheme allows a user to check the fuse rating 922 by visually inspecting the exterior of the 862 module without having to open the fuse cover 865 and inspect the fuse 922 to determine its rating.
In the form of a color coding scheme for module 862, fuse 922 may be provided with a label 970 in an insulating body of fuse 922 between the end caps of the terminal * 20 940 and 942. The 970 label, for example, can be a separately supplied label or plug that is attached to the 922 fuse body, or it can be another type of indication or identifier supplied directly to the 922 fuse body through a stamping, molding, or printing. The 970 label can be supplied in whole or in part, with a predetermined color that corresponds to a fuse class and the fuse rating of the 922 fuse. Likewise, a portion of module 862 can be provided on its outer surface in the same color as the fuse label 970. In one embodiment, the fuse cover 865 is provided in a color that matches the fuse label 970. although the color of the fuse label can be provided elsewhere outside the 862 module if desired, with equal effect.
An exemplary color chart for exemplary fuse classes and ratings is set out below in table 1.
Table 1
<td>Fuse class and rating</td><td>Color</td>
<td>1 / 2A - 15A class G</td><td>Blue</td>
<td>Class A 20</td><td>Orange</td>
<td>25A & 30A - class G</td><td>Green</td>
<td>35A - 60A - class G</td><td>Yellow</td>
Although the colors, fuse classes and exemplary ratings are described, it is estimated that other fuse colors, grades and ratings can be used in the same direction. In addition, larger or smaller numbers of colors can be used in different modalities.
Using a color coding or color coordinated indication scheme, as described, a blue fuse cover would indicate that a blue fuse is to be used with the module or that it is contained in the module, a yellow cover would indicate that a yellow fuse is about to be used with the module or that is contained in the module, etc. Proper fuse compatibility for the modules is therefore intuitive and clear.
In addition, the fuse rejection characteristics can be built into module 862 which would accept fuses of the appropriate rating and would reject fuses with a suitable rating. For example, considering the color chart in table 1, the blue qualification module can be configured to reject orange, green and yellow fuses that have higher current ratings than the blue fuse. As another example, a yellow rating module can be configured so that it only accepts one yellow fuse and rejects all others. The color-coding of modules and fuses, together with the appropriate rejection characteristics, substantially avoid the problems associated with fuses of inappropriate qualifications from being inadvertently placed in modules that were not designed for such qualifications.
Modalities of the fuse disconnecting devices are therefore described here, in which they can be conveniently switched on and off in a convenient and safe manner without interfering with the work area around the device. Disconnecting devices can reliably switch a circuit on and off economically and can be used with standard equipment, for example, in industrial control applications. In addition, disconnect modules and devices can be supplied with various connection and mounting options for versatility in the field, along with monitoring and remote control capabilities. A convenient connection of the auxiliary wires can be provided with separate access ports from the line and load connections, and color coding schemes allow, for the time saver, to have to remove and inspect the fuses to determine their fuses. amperage ratings and ratings, as well as to avoid errors when replacing a fuse with the wrong rating or rating.
An embodiment of a disconnect device for the fuse switch that is described here comprises: a disconnect housing adapted to receive at least one fuse in it, the fuse being supplied separately from the housing and being removably insertable in the housing: load and side line terminals that connect the fuse when the fuse is inserted into the housing, at least one of the load and side line terminals comprising a first portion configured to receive and engage a first wire, and a second portion configured to receive and engaging a second wire; wherein the first portion and the second portion are distinct from each other; and wherein the first and second strands can each be simultaneously connected to the first portion and the second portion, respectively.
Optionally, the first strand may comprise an insulated strand provided with a bare end. The second wire may comprise a wire provided with a bifurcated terminal connector. At least one of the load and side line terminals can be configured to simultaneously engage and release the first and second wires. The housing may comprise a first access door to receive the first wire, and a second access door spaced from the first access door to receive the second wire. The fuse may comprise a label, with the fuse label and a portion of the device being color-coded to indicate a fuse rating of amperage through a visual inspection of the device when the fuse is contained in it. The device may further comprise a fuse cover, and the fuse label and fuse cover may be color-coded to indicate the fuse rating and amperage rating. The first wire can connect at least one terminal to a fuse status indicator module, and the second wire can connect the device to a side line circuit and a side charge circuit. Each of the load and side line terminals can include a first portion configured to receive and engage a first wire, and a second portion configured to receive and engage a second wire, wherein the first portion and the second portion are distinct from each other. another.
Optionally, the device can also comprise at least one contact of the mobile switch that completes or interrupts an electrical connection through the fuse. At least one of the line and side charge terminals may comprise a first stationary contact of the switch provided between the respective side line terminal and the side charge terminal and the fuse. A fuse terminal can be adapted to engage a conductive element of the fuse when inserted in the disconnect housing, and the fuse terminal can be coupled to a stationary contact of the switch. The sliding bar can be provided inside the disconnecting housing, and the sliding bar can be provided with the first and second moving contacts. A rotatorically mounted switch actuator can be adapted to position the slide bar and the first and second movable contacts between an open position and a closed position to connect or disconnect an electrical connection via the fuse.
Another embodiment of a device for disconnecting the fuse switch is also described. The device comprises: a disconnect housing adapted to receive at least one fuse, the fuse being separately supplied from the housing, and being removably insertable into the housing, the housing comprising a side line access door, a side load access door, a first auxiliary access door, and a second auxiliary access door, where the first and second auxiliary doors are spaced from the side line and side load access doors; switch contacts in the disconnect housing to complete and interrupt an electrical connection through the fuse; load and side line terminals that connect the fuse when the fuse is inserted into the housing; a first wire establishing an electrical connection to the side line terminal through the side line access port; a second wire establishing an electrical connection to the side loading terminal through the side loading access door; a third wire establishing an electrical connection to the side line terminal through the first auxiliary access door; and a fourth wire establishing an electrical connection to the side loading terminal through the second auxiliary access door.
Optionally, at least one of the first and second wires comprises an insulated wire with a bare end of the insulation.
At least the third and fourth wires can be provided with a forked terminal connector. The sideline terminal may comprise a first portion configured to accept the first wire and a second portion, different from the first portion, configured to engage the third wire. The side loading terminal can comprise a first portion configured to accept the second wire and a second portion, different from the first portion, configured to engage the fourth wire. The fuse may comprise a label, with the fuse label and a portion of the device being color coded to indicate a fuse rating of amperage through visual inspection of the device when the fuse is contained in it. The device may further comprise a fuse cover, and the fuse label and fuse cover may be configured in color to indicate the amperage, the fuse rating. The slide bar po60 for carrying the contacts of the switch. A roratorically mounted switch actuator can selectively position the sliding bar along a linear axis within the disconnect housing.
A mode of disconnecting the fuse switch is also described. The devices comprise: a disconnect housing adapted to receive at least one fuse, the disconnect housing that includes a side line terminal and a side charge terminal to complete an electrical connection through the fuse, the fuse being supplied separately from the housing and being removably insertable in the housing, the disconnect housing further comprising contacts of the switch to connect and disconnect an electrical connection through the fuse; and a fuse amp indicator visible from the outside of the disconnect housing.
Optionally, the amperage indicator comprises one of a plurality of colors that corresponds to the color of the fuse. The fuse's amperage indicator may comprise a fuse cover selectively positioned in relation to the housing to allow or reject access to the fuse, where the cover is color-coded to indicate a fuse rating while the cover is closed and while the fuse is inside the disconnect housing. At least one of the load and side line terminals can be configured to connect to a first wire at a first location, and a second wire at a second location, thus providing a primary connection and an auxiliary connection.
Although the invention has been described in terms of a number of specific modalities, those skilled in the art will recognize that the invention can be accomplished with modification within the spirit and scope of the claims.
34 sheets
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149 members in 14 offices
Priority claims7
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5 legal events, as the office reported them to INPADOC
Over the term
Point at a mark for the eventEvents
| Event | Code | |
|---|---|---|
| Lapse because of non-payment of annual fees (definitively: art 78 iv lpi, resolution 113/2013 art. 12)LapsedEM VIRTUDE DA EXTINCAO PUBLICADA NA RPI 2866 DE 09-12-2025 E CONSIDERANDO AUSENCIA DE MANIFESTACAO DENTRO DOS PRAZOS LEGAIS, INFORMO QUE CABE SER MANTIDA A EXTINCAO DA PATENTE E SEUS CERTIFICADOS, CONFORME O DISPOSTO NO ARTIGO 12, DA RESOLUCAO 113/2013.B24J | B24J | |
| Lapse acc. art. 78, item iv - on non-payment of the annual fees in timeLapsedREFERENTE A 18A ANUIDADE.B21F | B21F | |
| Patent or certificate of addition of invention granted [chapter 16.1 patent gazette]GrantedPRAZO DE VALIDADE: 10 (DEZ) ANOS CONTADOS A PARTIR DE 19/11/2019, OBSERVADAS AS CONDICOES LEGAIS. (CO) 10 (DEZ) ANOS CONTADOS A PARTIR DE 19/11/2019, OBSERVADAS AS CONDICOES LEGAISB16A | B16A | |
| Decision: intention to grant [chapter 9.1 patent gazette]B09A | B09A | |
| Patent application procedure suspended [chapter 6.1 patent gazette]B06A | B06A |
Numbers
- Publication
- PI0806602
- Publication, DOCDB
- PI0806602
- Publication, EPODOC
- BRPI0806602
- Application
- 6602
- Application, DOCDB
- PI0806602
- Application, EPODOC
- BR2008PI06602
Titles2
- Portuguese
- MÓDULOS E DISPOSITIVOS DE DESCONEXÃO DE COMUTADOR DO FUSÍVEL
- English
- FUSE SWITCH DISCONNECTING MODULES AND DEVICES
Classification
- CPC, 11
- H01H9/104
- H01H1/20
- H01H71/462
- H01H83/10
- H01H83/12
- H01H85/30
- H01H85/32
- H01H85/34
- H01H2071/086
- H01H71/082
- H01H2085/209
- IPC, 3
- H01H71 20
- H01H85 25
- H01H9 00
