Filtering assembly and modular jack using same
Abstract
A magnetic jack assembly includes a housing, circuit boards, shields and various filtering components. Multiple aspects of the assembly enhance manufacturability and facilitate automated manufacturing.
Term
No projected expiry on record.
- Priority
- Filed
- Granted
- Today
56 claims: 8 independent, 48 dependent
- 1A filter assembly comprising:an insulating cover block comprising a plurality of conductive terminals, the conductive terminals defining a first terminal array, a second terminal array, and a third terminal array, the first terminal array having a first set of plate engaging segments, and the second terminal array has a second set of plate engaging segments, the first set of plate engaging segments extending in a first direction, and the second set of plate engaging segments a second direction extending from the first direction;and first and second filter subassemblies disposed on the outer cover block, the first filter subassembly comprising a first core material, The first core material is wound around the first and second conductors, the first conductive system is electrically connected to the first terminal array, the second conductive system is electrically connected to the third terminal array, and the first And the second guiding system is magnetically coupled to each other;the second filtering subassembly comprises a second core material, the second core material is wound around the third and fourth conductors, and the third and fourth guiding systems will The conductive terminals of the second terminal array are electrically connected to the third terminal array Conductive terminals. 一種過濾總成,其包含:一絕緣外罩塊,其包括多個傳導端子,該等傳導端子界定出一第一端子陣列、一第二端子陣列以及一第三端子陣列,該第一端子陣列具有一第一組板件接合段,且該第二端子陣列具有一第二組板件接合段,該第一組板件接合段以一第一方向延伸,且該第二組板件接合段以一第二方向延伸,該第二方向係與第一方向不同;及第一與第二過濾次總成,其安置在該外罩塊上,該第一過濾次總成包括一第一芯材,該第一芯材以第一及第二導體圍著其捲繞,該第一導體係電氣連接到該第一端子陣列,該第二導體係電氣連接到第三端子陣列,且該等第一以及第二導體係彼此磁性耦合;該第二過濾次總成包括一第二芯材,該第二芯材以第三及第四導體圍著其捲繞,該第三及第四導體係將第二端子陣列之傳導端子電氣連接到第三端子陣列的傳導端子。 一種過濾總成,其包含:一絕緣外罩塊,其包括多個傳導端子,該等傳導端子界定出一第一端子陣列、一第二端子陣列以及一第三端子陣列,該第一端子陣列具有一第一組板件接合段,且該第二端子陣列具有一第二組板件接合段,該第一組板件接合段以一第一方向延伸,且該第二組板件接合段以一第二方向延伸,該第二方向係與第一方向不同;及第一與第二過濾次總成,其安置在該外罩塊上,該第一過濾次總成包括一第一芯材,該第一芯材以第一及第二導體圍著其捲繞,該第一導體係電氣連接到該第一端子陣列,該第二導體係電氣連接到第三端子陣列,且該等第一以及第二導體係彼此磁性耦合;該第二過濾次總成包括一第二芯材,該第二芯材以第三及第四導體圍著其捲繞,該第三及第四導體係將第二端子陣列之傳導端子電氣連接到第三端子陣列的傳導端子。
- 13A modular socket comprising:a cover having a joint surface and a plurality of socket openings, each socket opening comprising a plurality of contacts and configured to receive a bondable connector;and a plurality of patent applications A filter assembly as defined in clause 1, wherein each filter assembly is electrically connected to the one of the one of the socket openings. 一種模組插座,其包含:一外罩,其具有一結合面以及多個插座開口,各個插座開口包括多個接點,且係構建成接受一可結合連接器;及多個如同申請專利範圍第1項所界定之過濾總成,其中各個過濾總成係電氣連接到該等插座開口中的一者之該等接點。 一種模組插座,其包含:一外罩,其具有一結合面以及多個插座開口,各個插座開口包括多個接點,且係構建成接受一可結合連接器;及多個如同申請專利範圍第1項所界定之過濾總成,其中各個過濾總成係電氣連接到該等插座開口中的一者之該等接點。
- 16A filter assembly comprising:an insulative housing block comprising a plurality of conductive terminals defining a first terminal array and a second terminal array, the first terminal array having a first set of plate members And the second terminal array has a second set of plate engaging segments, the first set of plate engaging segments extending in a first direction, and the second set of plate engaging segments extending in a second direction, the segment The second direction is different from the first direction;and a plurality of filter sub-assemblies disposed on the outer cover block, each filter sub-assembly comprising a first core material, the first core materials being first and second A conductor is wound around the first and second conductive systems electrically connected to the first terminal array, and a third and fourth conductive system are magnetically coupled to the first and second conductors and electrically connected to the second Terminal array, the first and the first The two-conductor system is electrically isolated from the third and fourth conductors. 一種過濾總成,其包含:一絕緣外罩塊,其包括多個傳導端子,該等傳導端子界定出一第一端子陣列以及一第二端子陣列,該第一端子陣列具有第一組板件接合段,且該第二端子陣列具有一第二組板件接合段,該第一組板件接合段以一第一方向延伸,且該第二組板件接合段以一第二方向延伸,該第二方向係與第一方向不同;及多個過濾次總成,其安置在該外罩塊上,各個過濾次總成包括一第一芯材,該等第一芯材以第一以及第二導體圍著其捲繞,該第一與第二導體係電氣連接到該第一端子陣列,且一第三及第四導體係磁性耦合到該第一與第二導體並電氣連接到該第二端子陣列,該第一與第 二導體係與該第三及第四導體電氣隔離。 一種過濾總成,其包含:一絕緣外罩塊,其包括多個傳導端子,該等傳導端子界定出一第一端子陣列以及一第二端子陣列,該第一端子陣列具有第一組板件接合段,且該第二端子陣列具有一第二組板件接合段,該第一組板件接合段以一第一方向延伸,且該第二組板件接合段以一第二方向延伸,該第二方向係與第一方向不同;及多個過濾次總成,其安置在該外罩塊上,各個過濾次總成包括一第一芯材,該等第一芯材以第一以及第二導體圍著其捲繞,該第一與第二導體係電氣連接到該第一端子陣列,且一第三及第四導體係磁性耦合到該第一與第二導體並電氣連接到該第二端子陣列,該第一與第 二導體係與該第三及第四導體電氣隔離。
- 19A modular socket comprising:a housing having an engagement surface and a plurality of socket openings, each socket opening comprising a plurality of contacts and configured to receive a engageable connector;and a plurality of patent applications A filter assembly as defined in clause 16, wherein each filter assembly is electrically connected to the one of the socket openings. 一種模組插座,其包含:一外罩,其具有一個接合面以及多個插座開口,各個插座開口包括多個接點,且係構建成接受一可接合連接器;及多個如同申請專利範圍第16項中所界定的過濾總成,其中各個過濾總成係電氣連接到該等插座開口中的一者之該等接點。 一種模組插座,其包含:一外罩,其具有一個接合面以及多個插座開口,各個插座開口包括多個接點,且係構建成接受一可接合連接器;及多個如同申請專利範圍第16項中所界定的過濾總成,其中各個過濾總成係電氣連接到該等插座開口中的一者之該等接點。
- 21A modular jack includes:a housing having an engagement surface and a plurality of socket openings, each socket opening comprising a plurality of contacts and configured to receive a engageable connector;a plurality of filter assemblies, each filter The assembly is electrically connected to the one of the socket openings, each filter assembly comprising a plurality of electronically conductive terminals, and a filter subassembly comprising a plurality of conductors, a first conductor set electrically connected to a first array of the electronic conduction terminals, a second conductor set electrically connected to a second array of electronic conduction terminals, and at least some of the first conductor set At least some of the conductors of the second conductor set are magnetically coupled and electrically isolated therefrom;and a circuit board electrically coupled to respective second arrays of the electronically conductive terminals, the circuit board having a plurality of electron conducting disposed thereon The tail section is constructed to create an extruded assembly electrical connection with the transmission line of another circuit board. 一種模組插座,其包括:一外罩,其具有一個接合面以及多個插座開口,各個插座開口包括多個接點,且係構建成接受一可接合連接器;多個過濾總成,各個過濾總成係電氣連接到該等插座開口中的一者之該等接點,各個過濾總成包括多個電子傳導端子,以及一個過濾次總成,其包括多個導體, 一第一導體組係電氣連接到該電子傳導端子的一第一陣列,一第二導體組係電氣連接到電子傳導端子的一第二陣列,且該第一導體組其中至少某些導體係與該第二導體組其中至少某些導體磁性耦合並與其電氣隔離;及一電路板,其電氣連接到該等電子傳導端子的各個第二陣列,該電路板具有安置於其上之多個電子傳導尾段,並係構建成與另一電路板之傳導軌線產生一擠壓裝配電氣連接。 一種模組插座,其包括:一外罩,其具有一個接合面以及多個插座開口,各個插座開口包括多個接點,且係構建成接受一可接合連接器;多個過濾總成,各個過濾總成係電氣連接到該等插座開口中的一者之該等接點,各個過濾總成包括多個電子傳導端子,以及一個過濾次總成,其包括多個導體, 一第一導體組係電氣連接到該電子傳導端子的一第一陣列,一第二導體組係電氣連接到電子傳導端子的一第二陣列,且該第一導體組其中至少某些導體係與該第二導體組其中至少某些導體磁性耦合並與其電氣隔離;及一電路板,其電氣連接到該等電子傳導端子的各個第二陣列,該電路板具有安置於其上之多個電子傳導尾段,並係構建成與另一電路板之傳導軌線產生一擠壓裝配電氣連接。
- 28A modular jack includes:an insulative housing having an engagement surface and a plurality of socket openings, each socket opening including a plurality of contacts and configured to receive a engageable connector;a plurality of electronically conductive terminals, Mounted to the outer cover and configured to be electrically connected to a circuit board;and a plurality of filter assemblies, operatively associated with each of the socket openings, each filter assembly including a toroidal core material having substantially parallel A central opening extending between the first and second opposing surfaces and a continuous outer peripheral surface having at least one flat section, each filter assembly being electrically connected to some of the contacts. 一種模組插座,其包含:一絕緣外罩,其中具有一接合面以及多個插座開口,各個插座開口包括多個接點,且係構建成接受一可接合連接器;多個電子傳導端子,其係安裝於該外罩且構建成電氣連接到一電路板;及多個過濾總成,其等與各個插座開口操作性地相關聯,各個過濾總成包括一環面芯材,其具有在大體上平行的第一與第二相背對的表面之間延伸的一中央開口以及一連續的外部周圍表面,該外部周圍表面具有至少一個平坦段,各個過濾總成係電氣連接到某些接點。 一種模組插座,其包含:一絕緣外罩,其中具有一接合面以及多個插座開口,各個插座開口包括多個接點,且係構建成接受一可接合連接器;多個電子傳導端子,其係安裝於該外罩且構建成電氣連接到一電路板;及多個過濾總成,其等與各個插座開口操作性地相關聯,各個過濾總成包括一環面芯材,其具有在大體上平行的第一與第二相背對的表面之間延伸的一中央開口以及一連續的外部周圍表面,該外部周圍表面具有至少一個平坦段,各個過濾總成係電氣連接到某些接點。
- 37A modular socket includes:a housing having an engagement surface and a plurality of socket openings, each socket opening including a joint and configured to receive a engageable connector;a plurality of filter assemblies, each filter assembly The invention comprises an insulating cover block, a plurality of electronic conducting terminals, and a filtering sub-assembly electrically connected to the certain electronic conducting terminals;a plurality of spaced carriers, each carrier having a mounting wall and a plurality of disposed on the mounting wall a filter assembly on the portion;and a plurality of insulating central wall portions, each of the insulating central wall portions being disposed between the filter assemblies of the adjacent carriers, wherein the plurality of filter assemblies of the respective carriers are electrically connected to the sockets The one of the openings. 一種模組插座,其包含:一外罩,其中具有一接合面以及多個插座開口,各個插座開口包括接點,且係構建成接受一可接合連接器;多個過濾總成,各個過濾總成包括一絕緣外罩塊、多個電子傳導端子、以及一電氣連接到某些電子傳導端子的過濾次總成;多個隔開的載體,各個載體具有一安置壁部以及多個配置在該安置壁部上的過濾總成;及多個絕緣中央壁部,各個絕緣中央壁部係配置在相鄰載體之過濾總成之間,各個載體之該等多個過濾總成係電氣連接到該等插座開口中的一者之該等接點。 一種模組插座,其包含:一外罩,其中具有一接合面以及多個插座開口,各個插座開口包括接點,且係構建成接受一可接合連接器;多個過濾總成,各個過濾總成包括一絕緣外罩塊、多個電子傳導端子、以及一電氣連接到某些電子傳導端子的過濾次總成;多個隔開的載體,各個載體具有一安置壁部以及多個配置在該安置壁部上的過濾總成;及多個絕緣中央壁部,各個絕緣中央壁部係配置在相鄰載體之過濾總成之間,各個載體之該等多個過濾總成係電氣連接到該等插座開口中的一者之該等接點。
- 48A modular jack includes:a housing having a top wall portion, a mating surface, and a plurality of socket openings, each socket opening including a contact disposed therein and configured to receive a engageable connector, The outer cover further includes a plurality of vertical wall portions extending from the top wall portion;a multiple interface sub-assembly disposed to the outer cover, the multiple interface sub-assembly including a mounting circuit board and a plurality of carrier assemblies, wherein each The carrier assembly includes a carrier, and the carrier is configured to engage one of the corresponding plurality of vertical wall portions to provide a support structure from the top wall portion to the mounting circuit board;and by each carrier assembly a plurality of filter assemblies supported, each of the filter assemblies supporting a plurality of insulating blocks, the like, including an insulating outer cover block, a plurality of electronic conductive terminals, and an electrical connection to one of the electronic conductive terminals Assembly. 一種模組插座,其包含:一外罩,其具有一頂壁部、一接合面以及多個插座開口,各個插座開口包括配置在其中的接點,且係構建成接受一可接合連接器,該外罩進一步包括多個從該頂壁部延伸的垂直壁部;一多重接口次總成,其安置到該外罩,該多重接口次總成包括一安置電路板以及多個載體總成,其中各個載體總成包括一載體,且該載體係構建成接合該等對應的多個垂直壁部中之一者,以便提供由頂壁部到安置電路板的一支撐構造;及藉由各個載體總成支撐的多個過濾總成,該等過濾總成之每一者支撐多個絕緣塊,其等包括一絕緣外罩塊、多個電子傳導端子、以及電氣連接到某些電子傳導端子之一過濾次總成。 一種模組插座,其包含:一外罩,其具有一頂壁部、一接合面以及多個插座開口,各個插座開口包括配置在其中的接點,且係構建成接受一可接合連接器,該外罩進一步包括多個從該頂壁部延伸的垂直壁部;一多重接口次總成,其安置到該外罩,該多重接口次總成包括一安置電路板以及多個載體總成,其中各個載體總成包括一載體,且該載體係構建成接合該等對應的多個垂直壁部中之一者,以便提供由頂壁部到安置電路板的一支撐構造;及藉由各個載體總成支撐的多個過濾總成,該等過濾總成之每一者支撐多個絕緣塊,其等包括一絕緣外罩塊、多個電子傳導端子、以及電氣連接到某些電子傳導端子之一過濾次總成。
Independent claims8
68 paragraphs in 1 section, as filed
Filter assembly and module socket using the same
FILTERING ASSEMBLY AND MODULAR JACK USING SAME
Cross-references for related applications
U.S. Provisional Patent Application No. 61/419,230, filed on Dec. 2, 2010, and U.S. Provisional Patent Application No. 61/434,166, filed on Jan. 19, 2011, and on June 20, 2011 U.S. Provisional Patent Application Serial No. 61/498,848, the entire disclosure of which is incorporated herein by reference.
The present invention relates to a filter assembly and a modular socket using the same.
New background
The disclosure of the present invention generally relates to a modular telecommunications socket, and more particularly to a magnetic socket having a high data transmission rate.
As is well known, a connector having a socket constructed to accept a plug connector can be provided on the end of a cable. One commonly used construction is to construct the socket (or interface) to accept an eight-position eight-contact (8P8C) module plug. It is noted that the 8P8C plug is often referred to as an RJ45 plug connector (even though the 8P8C plug is not technically a true RJ45 connector).
In the communications industry, RJ45 compatible module socket connectors are well known for placement on printed circuit boards. When used as an Ethernet connector, the modular jack typically accepts an input signal from an electronic device and then connects a corresponding output signal to a second device coupled thereto. When the signal is transmitted from the first device to the second device, the magnetic circuit can be used to provide the signal Conduction and isolation, and typically these circuits use components such as a transformer or a current transformer. The transformer is generally annular in shape and has primary and secondary windings coupled together and wound around the annulus to provide magnetic coupling between the primary and secondary windings while ensuring electrical insulation. The current transformers are also commonly used to filter out unwanted noise, such as shared mode noise, and the toroidal Faraday design can be used for different messaging applications. Module sockets having such magnetic circuits are generally referred to in the industry as magnetic sockets.
The existing magnetic sockets on the market, although useful, are subject to certain manufacturing limitations. A typical transformer is to manually wind a thin cable (typically a 34 gauge or smaller) and it is susceptible to damage during processing. In addition, when the data stream increases (for example, using PAM-16 encoding 10 Gbps at a rate of 650 Mhz), changes in the winding cable can result in significant changes in performance. In addition to performance issues, the small size of transformers and chokes makes inspection and processing difficult. The industry has a need for designs that are more suitable for automated assembly.
The above description of the novel background is purely intended to assist the reader, and is not intended to limit the invention as described herein, or to limit or extend the prior art described herein. Accordingly, the above description is not intended to indicate that any particular element of a prior system is not applicable to the present invention as described herein, and is not meant to include any element that solves the problems causing the motives as an essential element of the present invention as described herein. The implementation and application of the novel described herein is defined by the scope of the appended claims.
New Summary
The present invention proposes a filter assembly and a module socket using the same. In accordance with an embodiment of the present invention, a magnetic socket assembly includes a housing and a variety of different filter assemblies. The multiple forms of the assembly enhance manufacturability and contribute to automated manufacturing and can be used together or separately. In one aspect, a filter assembly includes at least one secondary assembly that is manufactured in an automated manner. In another aspect, a pair of filter subassemblies each comprising a separate conductor are electrically connected. In another aspect, the individual lead systems are electrically connected to the terminals of the filter assembly. In another aspect, the filter assemblies include a recess to receive a winding around a core material. In another aspect, the conductor system is held in a socket and soldered to the terminals. In another aspect, an electrical connector includes a base member and a plurality of carrier assemblies, each carrier assembly including a filter assembly electrically coupled to a plurality of contact circuit boards corresponding to the sockets of the connectors. In another aspect, the carriers include a filter assembly on the opposite wall and a contact circuit board that is electrically coupled to the filter assembly of the adjacent carrier. In another aspect, the connector further includes a central wall portion positioned between the filter assemblies disposed on the carriers. In another aspect, a socket includes a plurality of filter assemblies each having a housing and associated with each interface of the socket. In another aspect, each filter assembly includes a signal pair and a center tap. In another aspect, the socket has a plurality of compliant pins for electrical connection to a system board. In another aspect, a socket includes a mounting circuit board electrically coupled to the contact circuit board by a plurality of filter assemblies. The connection between the filter assembly and the board is a compliant pin. In another aspect, the core material of the filtration assembly has at least one flat surface. In another aspect, one of the bridging members on the carrier is electrically connected Connect to the terminals of adjacent filter assemblies.
Simple illustration
When the same reference characters are used to refer to the drawings of the same or similar parts, the various other aspects, features and significant advantages of the present invention will be more fully understood and at the same time. 1 is a front perspective view of a multi-interface magnetic socket; FIG. 2 is an enlarged and fragmentary rear perspective view of the magnetic socket removal shield member of FIG. 1; FIG. 3 is substantially A perspective view obtained along the line of view 3-3 of FIG. 2; FIG. 4 is a partially exploded perspective view of the magnetic socket of FIG. 1 from a bottom perspective view; FIG. 5 is a fourth figure. A part of the magnetic socket is exploded into a rear perspective view; FIG. 6 is a perspective view of a carrier assembly having a filter component disposed on both sides thereof; FIG. 7 is a perspective view similar to FIG. 6, but only one side of the filter The assembly is separated from the carrier; Figure 8 is a perspective view of one of the unilateral carriers on which the filter assembly is placed; and Figure 9 is a section taken substantially along line 9-9 of Figure 6; a perspective view; Figure 10 is a pair of carrier assemblies Disposed in a cross-sectional view of one of the central wall portion therebetween; Figure 11 is a perspective view of a carrier assembly substantially obtained from the underside of the carrier assembly, the figure showing a shorting bar between the terminals of adjacent filter assemblies; and Fig. 12 is a central wall portion And an exploded perspective view of a ground rod; FIG. 13 is a perspective view of a contact circuit board; and FIG. 14 is a rear view of an embodiment of the filter assembly after removing the upper and lower filter sub-assemblies Fig. 15 is a front perspective view of the filter assembly of Fig. 14; Fig. 16 is a perspective view of one of the terminals in the outer cover of Fig. 15; and Fig. 17 is one of the filter assemblies BRIEF DESCRIPTION OF THE DRAWINGS FIG. 18 is a rear elevational view of one of the filter assemblies of FIG. 14; FIG. 19 is a rear elevational view of one of the terminals in the housing of FIG. 18; Figure is a side view of the terminals of Figure 19; Figure 21 is an enlarged view of one of the slots for holding a conductor; Figure 22 is a view substantially along line 21 of Figure 21 Figure 22-22 is a cross-sectional view; Figure 23 is a perspective view of a filter assembly and a square torus Figure 24 is a rear perspective view of another embodiment of a filter assembly with its upper and lower filter sub-assembly removed; Figure 25 is a rear elevational view of one of the terminals in the outer cover of Figure 24; Figure 26 is a schematic view of one embodiment of a filter assembly; and Figure 27 is a filter assembly. A rear perspective view of an embodiment; Fig. 28 is a cross-sectional view taken along line 28-28 of Fig. 27; and Fig. 29 is a schematic representation of an embodiment of a filter assembly; Figure 30 is a schematic view of an embodiment of a filter assembly shown in Figure 29; Figure 31 is a toroidal box assembly disposed on a mounting circuit board and a spacer spaced therefrom A perspective view of a component; a 32-figure view of the toroidal box assembly of FIG. 31 and a contact circuit board separated therefrom; and FIG. 33 is a total of the toroidal box of FIG. One of the parts is an exploded perspective view; the 34th is a perspective view of another alternative embodiment of a toroidal box assembly; and the 35th is a partially exploded perspective view of the toroidal box assembly of FIG. And Fig. 36 is an exploded perspective view of the central wall portion of the toroidal box assembly of Fig. 35 and the grounding member.
Detailed description of the preferred embodiment
The following description is intended to convey the operation of the exemplary embodiments of the present invention to those skilled in the art. It is appreciated that this description is intended to assist the reader and is not a limitation of the present invention. Thus, reference to a feature or aspect is intended to describe a feature or aspect of an embodiment of the present invention, and does not indicate that each embodiment of the present invention must have the features described. In addition, it should be noted that the detailed description of the description shows some features. Although some features have been combined to show possible system designs, those features can be used in other combinations that are not explicitly disclosed. Therefore, the combinations described are not intended to be limiting, except as specifically indicated.
Referring to Fig. 1, a multi-input magnetic stack receptacle 30 is disposed on a system circuit board 100 having a housing 32 made of an insulating material such as synthetic resin (e.g., polybutylene terephthalate PBT). And includes openings or interfaces 33 that are aligned in pairs in a vertical direction (to provide upper and lower interface posts). Each interface is constructed to accept an Ethernet or RJ-45 type socket (not shown) inserted therein in a combined direction "A". A metal or other type of conductive shield member 105 surrounds the magnetic receptacle housing 32 for radio frequency (RF) and electromagnetic interference (EMI) shielding purposes while providing a grounded reference pole.
It should be noted that, in this description, the orientations such as upper, lower, left, right, front, rear, and the like, which are used to illustrate the construction of the disclosed embodiment and the movement of the various components, are not absolute relationships. Is a relative relationship. These representations can suitably exhibit relative relationships when the various components of the embodiments are disclosed in the positions shown in the drawings. However, if the location or frame change of the embodiment is disclosed, then these representations must be based on the reference. Changes in the position or frame of the disclosed embodiments are disclosed.
In addition to the opening aligned with the interface 33 and the bottom or lower surface of the outer cover, the shield member 105 completely encloses the outer cover 32. The shield member 105 includes a tail 106 that is configured to extend into the plated through hole 102 located in the circuit board 100 when mounted on a circuit board. The tail portion 106 can include a compliant press-fit assembly member 107 for electrical connection to the plated through-hole without the need for electrical welding.
The outer cover 32 includes an interface 33 that is disposed in the front outer shroud segment 34 in two horizontal rows defining a plurality of vertically aligned upper and lower interfaces 33. A rear section 35 of the outer cover 32 is constructed such that the primary assembly accepts a recess or segment and the multiple interface sub-assembly 40 is disposed therein. The rear section 35 includes a series of vertical wall portions 36 that are disposed between and behind the upper interface 33 and extend from the front section 34 to the rear edge of the outer cover. Each vertical wall portion 36 extends from a top wall AA of the outer cover 32 to provide a structural support in a vertical direction and includes a slot 37 that extends along a direction generally parallel to the direction of engagement "A" The bottom surface extends (shown as the top surface in Figure 2) to guide and secure the multiple interface sub-assembly 40 during assembly. If desired, the slot 37 can be constructed to have an undercut configuration (e.g., a slot 38) (Fig. 2) such that after assembly, it can be over the slot 37 and located on the multiple interface subassembly 40. The interaction between the locking flanges 59 is complemented, and the multiple interface sub-assembly 40 is vertically held on the outer cover 32. It should be noted that the complementary locking flange is an optional component, but provides the effect of providing a more secure connection between the vertical wall portion 36 and the multiple interface sub-assembly 40. Hehe.
Referring to Figures 2 to 3, the multiple interface sub-assembly 40 includes a mounting circuit board 110 on which a plurality of carrier assemblies 50 are arranged in an array. As shown, the mounting circuit board extends underneath all of the carriers (e.g., as a separate board), but in alternative embodiments can be divided into multiple boards. Preferably, the mounting circuit board extends at least below the two columns of interfaces to assist in providing additional support. A central wall portion 60 is disposed between each pair of carrier assemblies and is aligned with the outer cover 32 such that a contact circuit board 120 is disposed to the pair of carriers and is located on each of the central wall portions.
Referring to Figures 6-10, each carrier assembly 50 includes a carrier 52 that is insulative and has an array of filter carriers disposed on each side of the carrier 52. As shown, the carrier 52 includes opposing wall portions 53 to which a linear array of filter assemblies 70 are secured. The wall portions 53 include a series of filter assembly receiving recesses 54 defined by upper and lower ledge edges 55 and vertical ribs or walls 56 separating the respective recesses 54. The upper and lower lugs 55 each have a series of crush ribs 57 that are configured to deform when the filter sub-assembly 70 is inserted into the recess 54 to hold the filter sub-assembly in position . Vertical wall portion 56 provides electrical insulation between the conductive components of adjacent filter subassembly 70. A track 58 extends along the length of the upper surface of each carrier 52 and is configured to be received in one of the slots 37 of the vertical wall portion 36 of the rear section 35 of the outer cover 32. The track 58 can have a locking flange (such as a T-shaped cross-section as described) along its entire length or at a trailing end to retain the multiple interface sub-assembly 40 on the outer cover 32 after assembly. More specifically, the slot 37 of the cover 32 can be constructed The shape has a shape that is complementary to the shape of the track 58 and the locking flange 59 such that the outer cover 32 and the secondary assembly 40 are held together vertically when assembled.
The trailing end carrier assemblies 150 adjacent the sides 113 of the mounting circuit board 110 each have only one single side carrier 152. The one-sided carrier 152 is substantially identical to the double-sided carrier 52 except that it is constructed such that the filter assembly 70 can only be placed on one side thereof. The one-sided carrier 152 includes only one wall portion 53 that is identical to one of the wall portions 53 of the carrier 52 and includes a track 58 that is also generally constructed to be identical to the track of the carrier 52. The side 151 of the one-sided carrier 152 facing away from the filter assembly receiving wall portion 53 is generally a flat side and is not constructed to receive the filter assembly thereon. Referring to Figure 3, it can be seen that the two end carrier assemblies 150 and their one side carrier 152 are constructed such that they are "mirror image" shaped such that the sides 151 of the one side carrier define multiple The outer edge of the interface sub-assembly 40.
As shown, the carrier 52 and the one-sided carrier 152 each include four filter assemblies 70 and an additional filter assembly 180 on each wall portion 53 such that the first terminal array 81 and the second terminal array 82 are plated. The piece joining section 85 forms a compliance or presses a linear array of mounting tail sections along the upper and lower surfaces of the carrier assembly 50 and the trailing end carrier assembly 150. Thus, the first and second terminal arrays 81, 82 have plate engaging segments 85 that extend in different directions. Although the direction of the description is described as the opposite direction, the two directions are not so limited in alternative embodiments.
The central wall portion 60 is an insulating material and is generally elongate in shape and has a body 61 substantially in the shape of an inverted T-shaped cross section and a post 62 at the rear end thereof. The upper portion of one of the bodies 61 has a series of spaced apart protrusions Output or rib 63. The lower portion of the body 61 includes a plurality of angled projections 64 that extend laterally from the body 61 and are aligned with the ribs 63. The portion of the angled projection 64 that faces the top of the body 61 is narrower and wider at the location where it engages the base 65 of the body. The ribs 63 and the angled projections 64 form a partition to substantially filter the secondary assembly 90 above and below the filter assembly 70 and 91 and the adjacent filter assembly 70 above and below the filter assembly 70, 91 separated.
If desired, the central wall portion 60 can have one or more conductive members extending vertically therein for electrically connecting the two circuit boards. As shown, the post 62 has a slot 66 in which a conductive member 185 is retained. The conductive member 185 has a plate engaging section in the form of a press fit tail section or a compliant plug extending from its top and bottom surfaces to electrically connect the mounting circuit board 110 to the contact circuit board 120. In addition, the conductive member 185 also includes a tab 187 that is mounted in one of the slots 108 of the rear surface 109 of the conductive shield member 105 of the receptacle 30. Once the shield member 105 is closed around the outer cover 32 and the multiple interface sub-assembly 40, the tab 187 is bent or deformed to hold the shield member in position, and the circuit board 110, the shield member 105, and the contact circuit board are disposed. An electrical connection is made between 120.
The contact circuit board 120 is capable of forming a multi-layer circuit board and is functionally connected to the signal terminals 81a, 81b of the respective upper terminal arrays 81 to a contact 121 disposed on the contact circuit board 120. The contact circuit board 120 has a plurality of plated through holes 122 disposed along the two lateral edges 123 to define a linear array of two through holes. The spacing and dimensions of the penetration holes 122 correspond to the spacing of the linear array of plate engagement segments 85 on the carrier assembly 50 and the dimensions Inch. The contact circuit board 120 includes an electrical connector 124 disposed on its top and bottom surfaces, and each connector 124 has a plurality of contacts 121.
A circuit (not shown) of the contact circuit board 120 is constructed to electrically connect the contacts 121 on the upper surface of the circuit board to the signal terminals 81a, 81b of one of the linear arrays, and attach the circuits to the circuit The contacts 121 on the lower surface of the board are electrically connected to the signal terminals of other linear arrays. Each interface 33 includes eight contacts 121 that are electrically connected to respective carrier assemblies 50 and that can be constructed into four different signal pairs. Each filter assembly 70 provides a pair of signal paths 135, 136 between the placement circuit board 110 and the contact circuit board 120. Each of the signal paths 135, 136 is electrically connected to a contact 121 located in one of the interfaces 33 of the magnetic receptacle 30. In each of the filter assemblies 70, the first signal path 135 is constructed as one half of a difference signal pair (eg, S<sup>+</sup>), and the second signal path 136 is the other half of the difference signal pair (eg, S<sup>-</sup>). The third terminal 81c of the first terminal array is constructed as a center tap (CT). The linear array of the plate joint segments 85 of the terminal array 81 above the carrier assembly 50 is constructed as a difference signal pair S<sup>+</sup>, S<sup>-</sup>Subsequent to the repeated pattern of the tap CT. The circuit of the contact circuit board 120 is constructed to electrically connect only the through holes corresponding to the respective signal terminals 81a, 81b of the contacts 121.
The mounting circuit board 110 extends across the entire width of the multiple interface sub-assembly 40 and functions as one of the base members of the sub-assembly. The various components of the multiple interface sub-assembly 40 are disposed directly or indirectly on the mounting circuit board 110. The mounting circuit board 110 has a plurality of plated through holes 111 that are custom-built and constructed to receive the lower terminal array 82 of the filter assemblies 70 when the carrier assembly 50 is placed on the mounting circuit board. Plate joint 85.
As best shown in FIG. 3, some of the penetration holes 111 of the mounting circuit board 110 are aligned with the sockets 67 located in the bottom of the central wall portion 60, so that the contact tail segments 45 can be placed from the mounting circuit board. The bottom of the 110 is inserted and passed through the penetration hole 111 and held in the central wall portion 60. Although this configuration is dependent on the needs, it can be appreciated that the configuration allows the mounting circuit board 110 to have a standard footprint on one side that is important for a system board and can be adjusted at the same time. Place the system on the other side of the board. The contact tail section 45 can have a barb section 46 for creating an interference fit within the socket 67 located in the lower surface of the central wall portion 60 to retain the tail section at the socket 30. The tail section 45 can further include a mounting plate compliant section 47 that is deformable to create an electrical connection with one of the plating penetration holes 111 disposed in the circuit board 110 without the use of solder. An arm can extend from each side of the tail section 45 to establish a seat depth for inserting the tail section 45 into the multiple interface sub-assembly 40. A tail section 48 is configured to create an electrical connection to the system board 100 and can be constructed to have a generally straight section that is configured to be soldered to the system board or to provide a compliant or press assembly section 49, so that the socket 30 can be placed on the system board in a press-fit assembly without the use of soldering.
Referring to Figures 14-15, each filter assembly 70 includes an insulating block or housing 72 having a plurality of electronically conductive terminals 80 and a pair of filter sub-assemblies 90, 91 disposed thereon. The outer cover 72 is generally elongate in a vertical direction and includes an upper sub-assembly receiving section 73, wherein an upper filter sub-assembly 90 is disposed, and a lower sub-assembly receiving section 74, wherein the sub-assembly Set the lower filter subassembly 91. As best shown in FIG. 9, a flat abutment surface 164 of the transformer core 160 of the upper filter assembly receiving section 73 having the primary assembly 90 above the primary assembly abutment surface 75 is configured to abut the abutment surface. A recess 75a is provided in the abutment surface to provide clearance for the conductor or the winding that winds the upper filter subassembly. A pair of projecting arms 76 extend outwardly from the abutment surface 75 and include a depression rib 76a that is deformed against the sidewall 162 of the core material 160 of the upper filter subassembly 90 to retain the upper filter subassembly. In the upper part of the acceptance section 73.
The lower sub-assembly receiving section 74 has a generally flat lower sub-assembly abutment surface 77 and the lower filter sub-assembly 91 has a flat abutment surface 164 of the choke core 165 that is disposed against the abutment surface 77 . A pair of vertically extending side walls 78 extend outwardly from the abutment surface 77 and each include a pair of spaced apart depression ribs 78a that can be borrowed when the lower filter subassembly 91 is inserted into the lower secondary assembly receiving section 74. Deformation and engagement are created by the sidewalls 162 of the lower filter subassembly 91.
Referring to Figures 16, 19 and 20, the figures show the electronic conduction terminals 80 located in the respective housings 72 of the filter assembly 70. The terminals are constructed to define a first or upper terminal array 81, a second or lower terminal array 82, and a third or intermediate terminal array 83. The body 84 of each terminal is embedded or insert molded into the outer cover 72 of the filter assembly 70 such that only the panel engaging section 85 and the winding engagement/holding section 86 are uncoated or embedded in the outer cover 72. in. The upper terminal array 81 includes a first terminal 81a, a second terminal 81b, and a third terminal 81c. Each terminal has a plate engaging section 85 that can be constructed as a compliant latch for physical and Electrically coupled to the contact circuit board 120, and a conductor or wire bond/hold segment 86 for physically and electrically connecting to a wire or conductor. Each terminal 81 has a body section 84 that connects its own panel engaging section 85 to its winding engagement/holding section 86. As shown, the panel engaging section 85 extends upwardly from the outer cover 72 in a direction generally parallel to the axis "B" of the outer cover 72. The wire engaging/holding segment 86 extends from the outer cover 72 in a direction generally perpendicular to the longitudinal axis "B" of the outer cover 72, and thus the body segments 84 of the respective terminals are configured to be along its plate engaging section 85 and its winding The path between the wire engaging/holding segments 86 extends. In this connection, the body segments 84 of the terminals 81a and 81b include a pair of segments each bent about 45 degrees, and the third terminal 81c has a body segment having three segments each bent about 90 degrees.
As shown, the lower terminal array 82 is substantially identical to the first terminal array 81 and includes a first terminal 82a, a second terminal 82b, and a third terminal 82c. As with the upper terminal array 81, the panel engagement segments 85 of the lower terminal array are all substantially parallel to the longitudinal axis B of the outer cover 72, but extend in a direction generally opposite the plate engagement segments 85 of the upper terminal array. The wire bonding/holding segment 86 of the lower terminal array extends in a direction generally perpendicular to the longitudinal axis "B", but this direction is opposite to the direction of the wire bonding/holding segment 86 of the upper terminal array. Although the upper terminal array 81 and the second terminal array 82 are substantially identical, portions of the body segments 84 of the lower terminal array 82 can flex or extend along a slightly different path than the body segments 84 of the upper terminal array.
The intermediate terminal array 83 includes a first terminal 83a, a second terminal 83b, and a third terminal 83c. Each terminal of the third terminal array 83 A wire engaging/holding section 86 and a body section 84 are embedded in the outer cover 72. Only the wire bonding/holding segment 86 of the third terminal array 83 extends in a direction substantially perpendicular to the longitudinal axis B, and the direction is the same as the direction of the wire bonding/holding segment 86 of the first terminal array 81.
It can be seen that the plate joint segments 85 of the first terminal array 81 and the second terminal array 82 are substantially disposed in a common plane "C". The respective wire bonding/holding segments 86 of the first terminal array 81, the second terminal array 82, and the third terminal array 83 are located in a common plane "D". The plane "C" of the panel engaging section 85 is spaced from the plane "D" of the winding engagement/holding section 86 by a distance "d" to provide clearance for automatic welding of the winding joint without contaminating such Plate joint section. In some applications, it has been found that setting the distance "d" to about 1.0 mm is sufficient. In other applications, the distance "d" can be as small as about 0.5 millimeters (mm) or greater than 1.0 millimeters.
In the diagram of the display filter module 70, the wire bonding/holding segment 86 is shown in a simplified manner as a slot. Referring to Figures 21-22, a slot 170 is shown in more detail to show the configuration for holding the conductor or wire in the slot prior to soldering. The slot 170 includes a pair of arcuate projections 171 that create a narrowed neck or space 172 through which the conductors are urged as they move toward a holding space or reservoir 173. It should be noted that by forming the projections in an arcuate manner, the likelihood of breakage or breakage of the conductor during insertion, handling and subsequent welding operations is reduced. Since the holding slots of the terminals of the third terminal array 83 each receive a pair of conductors, the holding spaces or reservoirs 173 of those terminals can be deeper or longer in the insertion direction to provide additional space for acceptance and retention of additional conductors. .
The curved protrusion 171 can be embossed, embossed, or formed into a reduced thickness region 174 spaced from the edge of the slot 170 to laterally move the sheet metal material into the slot 170. By forming a reduced thickness region 174 at a distance from the edge of the slot, the thickness "t" along the arcuate projection 171 is maintained such that it is substantially equal to the formation of the wirebonding/holding segment. The thickness of the sheet metal material of 86. By avoiding relatively thin surfaces that engage the conductors, the likelihood of the conductors being severed during cutting, handling, and welding processes is reduced. It will be appreciated by those skilled in the art that other configurations can be used to hold the conductor in the wirebonding/holding segment 86, including slots having other shapes, having a single protrusion 171 rather than the 21st ~22 One of the double protrusions shown in the figure, and other structures. In an alternative embodiment, the conductors can be wrapped around or around the terminals of the winding retention section.
Each of the upper filter sub-assemblies 90 has a plurality of windings or conductors wound around the annular core material 160 and is constructed to function as a transformer. The conductors are not shown in the diagram showing the filter assembly 70, the terminal 80, or the upper and lower filter sub-assemblies 90, 91, but are shown in the schematic view of FIG. Referring to Figures 16-17, the first and second conductor sets 131, 141 are wound around a generally square annular core 160, and at least some of the first conductor sets are magnetically coupled to the second conductor set. Some conductors. The first conductor set 131 includes first and second signal conductors 131a, 131b, and a center tap conductor 131c, all of which are electrically connected to the connection point 130. The second conductor set 141 also has first and second signal conductors 141a, 141b, and a center tap conductor 141c that are all electrically connected to the connection point 140. First conductor set The first signal conductor 131a of the 131 is magnetically coupled to the first signal conductor 141a of the second conductor set 141 to transmit a signal along a first signal path 135, including the first signal conductor of the first conductor set 131 131a and the first signal conductor 141a of the second conductor set 141. Similarly, the second signal conductor 131b of the first conductor set and the second conductor 141b of the second conductor set are magnetically coupled to transmit a signal along a second signal path 136, including the second of the first conductor set The signal conductor 131b and the second conductor 141b of the second conductor set. As will be appreciated by those skilled in the art, the actual styles used to place the conductors can vary depending on the desired performance and manufacturing process, and thus need not be discussed in detail herein.
Each of the lower filter sub-assemblies 91 has a plurality of windings or conductors wound around the toroidal core 165 and is constructed to function as a choke. More specifically, the lower filter subassembly 91 includes a generally square annulus and a plurality of conductors that wrap around the annulus. In the illustrated embodiment, three conductors 145a, 145b, and 145c are wound around the core material, and in portions of the filter assembly 70, each is electrically connected to the signal path 135, 136, or is filtered above. One of the middle tap conductors 141c of the second conductor set 141 of 90. As in the case of the upper filter sub-assembly, the actual pattern used to wind the conductors can be varied as needed.
As configured, a first signal path 135 is formed by the plate engaging segments 85 of the first terminal 81a of the first terminal array 81, through the upper and lower filtering sub-assemblies 90, 91, and to the second terminal array 82 The plate of one terminal 82a engages the segment 85. A second signal path 136 is formed by the plate engaging section 85 of the second terminal 81b of the first terminal array 81, and the secondary assembly is filtered through the upper and lower portions. 90, 91, and reaches the board engaging section 85 of the second terminal 82b of the second terminal array 82. More specifically, the first signal path 135 extends from the first terminal 81a, passes through the first signal conductor 131a of the first conductor set 131, and is magnetically coupled to the first signal conductor 141a of the second conductor set 141. The first signal conductor 141a of the second conductor set is electrically connected to the first terminal 83a of the third terminal array 83, and is then electrically connected by the first conductor 145a of the third conductor set 145 of the lower filter sub-assembly 91. To the first terminal 82a of the second terminal array 82.
The second signal path 136 passes through the filter assembly 70 extending from the plate engaging section 85 of the second terminal 81b of the first terminal array 81, and by winding the first conductor of the core material 160 of the upper filter secondary assembly 90 The second signal conductor 131b of the group 131. The second signal conductor 131b of the first conductor set 131 is magnetically coupled to the second signal conductor 141b of the second conductor set 141, which is electrically connected to the second terminal 83b of the third terminal array 83. The second terminal 83b of the third terminal array 83 is electrically connected to the second terminal 82b of the second terminal array 82 by the second conductor 145b of the third conductor set 145 of the lower filter sub-assembly 90. The tap conductor 141c of the second conductor set 141 is electrically connected to the third terminal 83c of the third terminal array 83, and is electrically connected to the third conductor 145c of the third conductor set 145 of the lower filter sub-assembly 91. The third terminal 82c of the two terminal array 82. In summary, the filter assembly 70 has three terminal arrays 81, 82, 83 and three conductor sets 131, 141, 145, and the first two conductor sets 131, 141 are wound around the core material 160 of the upper filter sub-assembly 90, and The third conductor set 145 is wound around the core material 165 of the lower filter sub-assembly 91. The two conductor sets 131, 141 of the upper filter sub-assembly 90 are constructed such that the conductors are magnetically coupled and the first The three conductor groups 145 are electrically connected to the second conductor group 141 via terminals of the third terminal array 83.
As can be appreciated, when the respective conductors of the second conductor set are electrically connected to the corresponding conductors of the third conductor set, the second and third conductors can be combined to form a single conductor set. Thus, in certain embodiments, the filter assembly 70 has only two conductor sets that are coupled to the middle tap and allow the primary and secondary windings to be magnetically coupled together. However, the circuit breaker in a conductor is preferably disposed between the transformer and the choke to enable the transformer and the choke to be individually and combinedly wound in the filter assembly, as disclosed herein below.
If desired, an additional filter assembly 180 can be provided along wall 53 for providing a filtering function for the Overload Power Ethernet (POE) circuit. The additional filter assembly 180 outer cover 72 and terminal configuration can be identical to the filter assembly 70 to reduce the number of components required to manufacture the socket 30. In this additional filter assembly 180, only the conductors of the secondary assembly 91 are filtered below, and the upper filter sub-assembly is omitted. One end of the first conductor 145a of the lower filter subassembly 91 is connected to the wire bonding/holding section 86 of the first terminal 81a of the first terminal array 81, and the opposite end is connected to the second The winding of the first terminal 82a of the terminal array 82 engages/holds the segment 86. One end of the second conductor 145b of the lower filter subassembly 91 is connected to the wire bonding/holding section 86 of the first terminal 81a of the first terminal array 81, and the opposite end is connected to the second The winding of the first terminal 82a of the terminal array 82 engages/holds the segment 86. Finally, one of the lower filter sub-assemblies 91, the third conductor 145c, is connected to the wire bonding/holding section of the third terminal 81c of the first terminal array. 86, and its opposite end is connected to the wire bonding/holding segment 86 of the third terminal 82c of the second terminal array. Due to this configuration, the third terminal array 83 is not required to be used.
It should be noted that the individual core members 160, 165 (Fig. 23) around which the conductor is wound are generally constructed as a rectangular or square annulus. The rectangular annular core member 160 and the square annular core member 165 include a generally rectangular inner passage 161 that is generally opposite the planar side or outer surface 162 that faces away from each other and has a continuous outer side of one of the four flat sides or surfaces 164. The peripheral surface 163 extends between. By using a torus having one or more flat outer surfaces 164 along the continuous peripheral outer surface 163, the automated processing of the core material and subsequent formation of the filtration sub-assembly is simplified. The automated processing of these components simplifies the automated manufacture of the look of the socket 30. In some applications, it has been found that replacing a circular annulus with a rectangular toroid does not significantly reduce the magnetic properties of the core material. It should be noted that the torus described herein represents a shape that may be circular, rectangular or include other shapes around which an aperture can be wound. In some applications, other shapes of core material having one or more flat outer surfaces that are generally rectangular or square toroidal can also be used.
The plate engaging section 85 of the terminal 80 is configured to press the mounting pin or tail section so that the filter assembly can be electrically connected to a circuit board without performing a welding procedure. The pressing assembly tail section of the panel holding section 85 of the upper terminal array 81 is constructed to press it into the plating penetration hole 122 in the contact circuit board 120, and the pressing of the lower terminal array 82 is constructed according to the assembly tail section. Pressing it into the plating penetration hole 111 of the placement circuit board 110, so that it can be finished As a multi-interface sub-assembly 40 assembly process, no welding is required. Further, the tail section 45 is press-fitted to the plating penetration hole 111 of the placement circuit board 110. The tail section 45 can include a press-fit assembly section 49 for mating with the plated through hole 102 of the system board 100. With this configuration, the socket 30 can be assembled and, if desired, placed on the system circuit board 100 without soldering (unlike forming the filter sub-assembly 90, 91). In other words, the process of assembling different boards together can be done without soldering.
In some cases, it may be desirable to maintain a predetermined separation distance between electronic components. This can increase the complexity of routing wiring circuits or configuring certain conductive components. If the position of the plate seating section 85 of the middle tap terminal (the third terminal 82c of the terminal array 82 below) causes such a routing wiring or configuration challenge, the panel mounting section needs to be removed or cut and adjacent to The tap circuit in one of the filter assemblies 70 produces an electrical connection. Referring to Fig. 11, a filter assembly 70a is shown having a third terminal 82c whose plate engaging section has been removed and thereby leaving a cut stub 125. A conductive shorting bar 126 has a pair of spaced apart sockets 127 configured to engage the cut stubs 125 of the first filter assembly 70a and the plates of the third terminals 82c of adjacent filter assemblies 70b. The joint section 128 above the joint section 85. The carrier 52 has a slot 129 that is configured to receive the shorting bar 126 therein such that once the filter assembly 70 is placed in the filter assembly receiving recess 54 of the carrier 52, the first filter assembly 70a The cut-off stub 125 will slide into a socket 127 of the shorting bar 126, and the joint section 128 of the third terminal of the adjacent filter assembly 70b will engage the other socket 127. Once the cut stub 125 is held in the socket 127 of the shorting bar 126, soldering can be applied to provide a robust and reliable electrical connection.
When the respective filter assemblies 70 are assembled, the first and second conductor sets 131, 141 are first formed. In some configurations, the first set of conductors 131 can be formed with three conductive members or windings each having a trailing end connected, for example, at a connection point 130 to define the first and second signal conductors 131a, 131b, and the middle tap conductor 131c. The second conductor set 141 can be formed in the same manner. In an alternative embodiment, the conductor set 131 can be formed with only two conductive members 132, 133 (Fig. 17), each having a first and a second segment. The first segment 132a of the first conductive member acts as the first signal conductor 131a of the first conductor set 131, and the first segment 133a of the second conductive member acts as the second conductor 131b of the first conductor set. The second segment 132b of the first conductive member of the first conductor set and the second segment 133b of the second conductive member are electrically connected along its length to form the intermediate tap conductor 131c. The second conductor set 141 can be formed in a similar manner. If desired, the individual conductors can be individually wound or wound with one or more smaller gauges that are electrically connected and provide sufficient current carrying and other functions. In some applications, individual 34 gauge windings can be used. In other applications, the 34 gauge winding is replaced by a pair of 40 gauge windings.
After the conductor sets 131, 141, 145 are formed, the upper and lower filter sub-assemblies 90, 91 are assembled by winding the first and second conductor sets 131, 141 around the rectangular transformer core 160 to The two conductor sets are magnetically coupled and the third conductor set is wound around a square choke core 165. Although the procedure for winding the conductor sets around the core materials 160, 165 is intended to be performed in an automated manner, the process can also be performed manually.
To assemble the filter assembly 70, the respective pilot systems of the first conductor set 131 of the upper filter subassembly are secured to one of the wire bond/hold segments 86 of the upper terminal array 81. More specifically, the free tail end 131a' of the first signal conductor 131a of the first conductor set 131 is fixed to the wire bonding/holding section 86 of the first terminal 81a of the first terminal array 81, and the first conductor set 131 The free tail end 131b' of the second signal conductor 131b is fixed to the wire bonding/holding section 86 of the second terminal 81b of the first terminal array, and the third or middle tap conductor 131c of the first conductor set 131 is free The tail end 131c' is fixed to the wire bonding/holding section 86 of the third terminal 81c of the first terminal array. The free tail end 141a' of the first signal conductor 141a of the second conductor set 141 is fixed to the wire bonding/holding section 86 of the first terminal 83a of the third terminal array 83, and the second signal conductor of the second conductor set 141 The free tail end 141b' of the 141b is fixed to the wire bonding/holding section 86 of the third terminal 81b of the third terminal array, and the free tail end 141c' of the third or middle tap conductor 141c of the second conductor set 141 is The wire bonding/holding section 86 of the third terminal 83c of the third terminal array 83 is fixed. Due to the magnetic coupling between the first conductor set 131 and the second conductor set 141 and the electrical connection between the first conductor set 131 and the first terminal array 81 and between the second conductor set 141 and the third terminal array 83 Electrically connected, the first terminal 81a of the first terminal row is magnetically coupled to the first terminal 83a of the third terminal array, and the second terminal 81b of the first terminal array is magnetically coupled to the second terminal 83b of the third terminal array .
A first tail end 145a' of the first conductor 145a wound around the square choke core 165 of the lower filter subassembly 91 is fixed to the wire bonding/holding of the first terminal 83a of the third terminal array 83. Segment 86, and its opposite end 145a" is a wire bonding/holding portion 86 fixed to the first terminal 82a of the second terminal array 82. A first end of the second conductor 145b wound around the core material 165 of the lower filter sub-assembly 91 is filtered. 145b' is fixed to the wire bonding/holding segment 86 of the second terminal 83b of the third terminal array 83, and its opposite tail end 145b" is fixed to the wire bonding of the second terminal 82b of the second terminal array 82/ Hold segment 86. A first tail end 145c' of the third conductor 145c wound around the core material 165 of the lower filter subassembly 91 is fixed to the wire bonding/holding section 86 of the third terminal 83c of the third terminal array 83, and The opposite end 145c" is secured to the wire engaging/holding segment 86 of the third terminal 82c of the second terminal array 82. As can be appreciated, the third terminal array 83 is used to cause the upper and lower filtering sub-assemblies 90, 91 can be formed with two different winding procedures. The ability to have separate winding procedures simplifies the manufacturing process and enables automatic winding of the core material. In addition, each core material can be formed after formation. Separate testing can reduce the risk of scrap.
After securing the conductor to the wirebonding/holding segment 86, it is generally desirable to apply a weld between the respective conductor and the insertion of the terminal to establish a reliable and permanent mechanical and electrical connection between the conductor and the terminal. . Referring to Fig. 20, it can be seen that the panel engaging sections 85 of the respective terminals are arranged in a plane "C", and each of the winding engaging/holding sections 86 is disposed in a plane "D", which is The plane "C" is separated by a distance "d". Such a configuration is such that the surface of the filter assembly 70 is placed or placed along a solder bath or reservoir (not shown) at a sufficient distance to allow the exposed wire bond/hold segment 86 to be buried or bonded to the solder reservoir while The plate engaging section 85 is held above the solder storage tank to enable simultaneous welding of the wire bonding/holding section 86. in this way The construction enables the conductor to be welded to the winding retention section 85 in an automated and synchronized manner without contaminating the panel engagement section 85. In one application, although as long as the engagement or contamination of the panel engaging sections 85 can be avoided, other distances can be used as desired, the plane "C" of the panel engaging section 85 and the plane "D" of the winding engaging/holding section 86. The distance "d" between them is set to be about 1.0 mm.
To assemble the socket 30, each of the filter assemblies 70 is assembled in the manner described above. The individual filter assemblies 70 are aligned with the filter assembly receiving recesses 54 on the respective wall portions 53 of the carrier 52 and are pressed into the recesses. The top and bottom surfaces of the outer cover 72 engage the indentation ribs 57 disposed along the top and bottom of the carrier 52, as shown in FIG. A mounting circuit board 110 is disposed, and a plurality of central wall portions 60 are disposed on the mounting circuit board 110 in a substantially spaced and parallel manner such that the pillars 62 of the respective central wall portions are disposed along the mounting circuit board 110. The rear edge 112 is arranged. A carrier assembly 50 is then aligned between each pair of central wall portions 60 such that the plate engaging segments 85 of the lower terminal array 82 of each of the filter assemblies 70 are coupled to the through holes in the mounting circuit board 110. 111 is relatively aligned. Each carrier assembly 50 is then moved relatively toward the mounting circuit board 110 to establish an electrical connection between the various terminals of the filter assembly 70 and the circuitry in which the circuit board 110 is disposed. The trailing end carrier assembly 150 having the filter assembly 70 on only one side is disposed at an individual end or side 113 of the mounting circuit board 110 in a manner similar to the placement of the carrier assembly 50. A contact circuit board 120 is then disposed substantially between the guide rails 57 of the respective carrier assemblies 50 and above each of the central wall portions 60. The plating penetration holes 122 of the respective contact circuit boards 120 are aligned with the board bonding sections 85 of the upper terminals 81, and the contact circuit board 120 is relatively oriented. The circuit board 110 is moved such that the compliant pins of the respective board engaging sections are squeezed and slid in and electrically connected to the through holes of the contact circuit board 120. In addition, the compliance or press-fit assembly pins 186 of the various conductive members 185 electrically connect the ground or reference circuitry of the circuit board 110 to those circuitry of the contact circuit board 120.
It should be noted that the contact circuit board 120 is electrically connected to the filter assembly 70 located on one of the first wall portions 53 of a carrier 52 and is electrically connected to the filter located on one of the adjacent carriers facing the wall portion 53. Assembly 70. As a result, a linear array of filter assemblies 70 on the facing wall portion 53 of a single carrier 52 is electrically coupled to the contacts 121 of the adjacent contact circuit board 120, and thereby to the contacts located in the pair of adjacent alignment interfaces. Point 121.
As best shown in FIG. 4, the multi-interface sub-assembly 40 thus formed is then slid generally in a direction opposite the engagement direction A and into the rear section 35 of the rear surface of the outer cover 32. While the multiple interface sub-assembly 40 slides over the outer cover 32, the guide tracks 57 of the respective carriers 52 are aligned with one of the slots 37 in the wall portion 36 of the outer cover 32. The multiple interface sub-assembly is held in a lateral direction by the engagement of the guide rail 57 and the slot 37. The vertical movement is achieved by engaging the front portion of the contact circuit board 120 with the outer cover 32 adjacent the interface 33 and by engaging the locking flange 59 with the slot 38 having a similarly shaped segment toward the carrier 52. Get control. Referring to Figures 3 through 4, the tail section 45 is then inserted through the bottom of the mounting circuit board 110 and into the socket 67 in the bottom of the central wall portion 60 so that the barb section 46 is retained to the central wall portion. And the plate member compliant section of the tail section is engaged with one of the penetration holes 111 located in the placement circuit board 110. Screen The shield member 105 is then slid onto the secondary assembly formed by the outer cover 32 and the multiple interface sub-assembly 40, and the rear portion of the shield member is curved to completely enclose the secondary assembly. The tab 187 of the conductive member 185 extends through the slot 108 in the rear wall 109 of the shield member and is bent to reduce the meandering of the shield member and maintain the position of the tail segment on the shield member.
The carrier assembly, the central wall portion, and the contact circuit board are individually disposed on the placement circuit board 110 as described for the embodiment of Figures 24 to 26, and the components can be assembled into a plurality of toroidal box members. to make. Components that are the same or similar to the embodiments shown in Figures 1 through 23 are denoted by the same reference numerals. The toroidal box assembly 200 has a pair of carrier assemblies 210 with a central wall portion 220 therebetween, and a contact circuit board 230 disposed on the carrier assemblies.
Each carrier assembly 210 has a generally U-shaped insulating carrier 211 having a filter assembly receiving recess 54 upon which a plurality of filter assemblies 70 are disposed. The leg section 212 extends toward and engages the tail section 221 of the central wall portion 220 to define the perimeter of the toroidal box assembly 200. As shown in FIG. 33, the leg section 212 can have a protrusion or post 213 received in a recess or opening 222 in one of the tail sections 221 of the central wall portion 220. A post 213 of a carrier is disposed generally adjacent the bottom of the carrier, and a post 213 of the other carrier is disposed generally adjacent the top of the carrier such that an opening on the opposite side of the tail segment 221 The joint of 222 does not cross.
As with the embodiment shown in Figures 1 through 23, the carrier 210 is placed in the carrier 211 by placing a plurality of filter assemblies 70 in the manner previously described. Formed on the wall (eg, recess 54). It should be noted that each carrier 211 has only one seating wall (e.g., recess 54) such that the filter assembly 70 is disposed only on one side of the carrier, rather than being disposed on either side as described for carrier 52. on.
The shape and function of the central wall portion 220 is similar to the central wall portion 60 of the first embodiment. The central wall portion 220 includes a plurality of angled projections 64 for spacing the respective lower filter sub-assemblies 90. A central extension rib 224 extends along the length of the body 225 to space the upper filter sub-assembly 90 from the lower filter sub-assembly. A conductive mask 226 can be disposed in the central wall portion 220 that extends generally along the length of the central wall portion. The mask includes an upper terminal 227 that is configured to engage the contact circuit board 120 and includes one or more lower terminals 228 that extend from a lower surface of the mask and are constructed and supported A lower circuit board of the toroidal box assembly 200 is joined. As can be appreciated, the mask 226 includes a body 229 that, as shown, does not extend to the full height of the filter assembly 70 such that the body 229 is only filtered below the choke or filter assembly. Assembly 91 is relatively aligned. It has been determined that in certain applications, such shading can provide sufficient performance advantages when constructed to provide a masking abutment to the lower filtering sub-assembly 90. In some systems, the masking does not need to be substantially continuous as shown, and the design of the mask can vary depending on the performance needs of the system.
The toroidal box assembly 200 is assembled by placing a plurality of filter assemblies 70 on each of the carriers 211 to form the carrier assembly 210. A first carrier assembly 210 is disposed adjacent the central wall portion 220 such that the posts 213 of the carriers are aligned with the opening 222. The central wall portion 220 is oriented toward the carrier assembly 210 For movement, the post 213 is retained in the opening 222 to hold the two components together. A second carrier assembly 210 is disposed adjacent the central wall portion 220 on the opposite side of the first carrier assembly and aligns the carrier post 213 with the opening 222 of the central wall portion. The central wall portion 220 is relatively moved toward the carrier assembly 210, and the post 213 is retained in the opening 222 to hold the carrier assembly to the central wall portion, and one of the two carrier assemblies 210 and the central wall portion 220 is created. Assembly. A contact circuit board 120 is then aligned with the assembly such that the plated through holes 122 of the contact circuit board are aligned with the upper terminal array 81 of each of the carrier assemblies 210. The contact circuit board 120 is relatively moved toward the upper terminal array 81 such that the respective squeezing pins of the board engaging section 85 of the upper terminal array enter the penetration holes of the contact circuit board 120 and are generated therefrom. An electrical connection.
The toroidal box assembly 200 thus formed can be placed into a mounting circuit by aligning the toroidal box assembly with the mounting circuit board and causing the toroidal box assembly to move relative to the mounting circuit board Board 110. The extrusion fitting pins of the plate engaging sections 85 of the lower terminal arrays 82 of the respective filter assemblies 70 enter the plating penetration holes 111 of the mounting circuit board 110 so as to be between the toroidal box assembly 200 and the mounting circuit board 110. Establish an electrical connection. A fastener 240, such as shown in Fig. 24, can be used to engage and support the toroidal box assembly 200 during placement of the toroidal box assembly on the mounting circuit board 110. In this alternative method, each toroidal box assembly 200 can be placed on a separate circuit board (not shown) rather than having a plurality of toroidal box assemblies disposed on a separate mounting circuit board.
Referring to Figure 34, the figure shows an alternative configuration of one of the toroidal boxes. Into 300. The toroidal box assembly 300 is similar to the toroidal box assembly 200 shown in Figures 31-33. The same or similar components are denoted by the same reference numerals. The carrier assembly 310 includes a plurality of filter assemblies 370 disposed on a pair of carriers 311. Each filter assembly 370 includes one or more protrusions 371 having indented ribs 372 that are press fit into a circular opening 312 located in the carriers. The carrier assemblies 310 are held at one of their ends to the central wall portion 320, and the struts 213 of the carrier 311 are vertically offset and received within the opening 222 in the central wall portion 320. An alternative configuration is provided at the opposite end to retain the carrier assembly 310 to the central wall portion 320. A post 321 having a depressed rib 322 and generally elliptical extends laterally from each side of the central wall portion 320. Each of the struts 321 is received within a recess 312 in the trailing end of the leg section 212 of the carrier 311 to retain the carrier assembly 310 to the central wall portion 320. A recess 323 can be disposed in the upper surface 324 of the central wall portion 320 to provide cushioning for components (not shown) that can be disposed on the lower surface of the contact circuitry.
Referring to Figures 29-30, a filter assembly 470 of an alternative embodiment is shown. The filter assembly 470 is similar to the filter assembly 70, but has terminals that are constructed in a different style. Components that are the same or similar to filter assembly 70 are represented by the same reference numerals. The filter assembly 470 has an insulative housing 472 and a plurality of conductive terminals 480 that define three terminal arrays 481, 482, 483. The upper terminal array 481 is substantially identical to the upper terminal array 81 of the filter assembly 70. The lower terminal array 482 is similar to the lower terminal array 82 of the filter assembly 70, but is oriented 180 degrees rotated against the longitudinal axis "B" of the filter assembly 470. As a result, the respective terminals of the lower terminal array 482 The wire bonding/holding segments 86 extend in the same direction as the wire bonding segments of the respective terminals of the upper terminal array 482. Further, the first terminal 482a is the longest terminal of the lower terminal array, and the third terminal 482c is the shortest terminal, and the direction is opposite to that of the lower terminal array of the filter assembly 70.
The wirebonding/holding segment 86 of the intermediate terminal array 483 of the filter assembly 470 extends generally perpendicular to the longitudinal axis "B" but in a direction that is engaged/sustained by both the upper and lower terminal arrays 481, 482. Paragraph 86 is the opposite. Additionally, the intermediate terminal array 483 includes first and second nested and generally U-shaped terminals 483a, 483b. Each of the U-shaped terminals 483a, 483b has a wire engaging/holding section 86 at its two ends. The third terminal 483c of the intermediate terminal array 483 is substantially similar to the terminals of the intermediate terminal array 83 of the filter assembly 70. The filter assembly 470 is assembled in substantially the same manner as the filter assembly 70, but the conduits connected to the first and second terminals 483a, 483b are each connected to their own wirebonding/holding segment 86 instead of It is inserted into a wire joint segment constructed to receive the two conductors therein.
Another alternative embodiment of a filter assembly 370 is shown in Figures 27-28, and components similar or similar to filter assembly 470 are indicated by the same reference numerals. The filter assembly 370 is similar to the filter assembly 470, but has a wire engaging section 381 that is configured to wind or surround the conductors of the upper and lower filter assemblies and subsequently weld therewith. In addition, the board engaging section 382 is constructed to be soldered to the circuit board, and is not constructed to have a collapsed mounting section for solderless connections. It should be noted that although the winding system is described as winding the core material 160, 165 of the filter assembly 370 and the terminals 481, 482, 483, such winding is not complete and therefore cannot be accurately A typical wound winding configuration is shown.
Although the present disclosure has been described in terms of the embodiments, it is understood that the disclosure is not to be construed as limiting. For those skilled in the art, various changes and modifications can be readily apparent after reading the above disclosure. For example, the embodiment of the display embodiment can use an electronic connector instead of a magnetic socket. Many other embodiments, modifications, and variations that fall within the scope and spirit of the present invention will be apparent to those skilled in the art.
<p>ACombination direction</p><p>B longitudinal axis</p><p>AA top wall</p><p>CCommon plane</p><p>CTMeso tap</p><p>DCommon plane</p><p>Ddistance</p><p>Tthickness</p><p>3-3, 9-9, 22-22, 28-28 Sight</p><p>30 socket</p><p>32 Cover</p><p>33 interface</p><p>34Front cover section</p><p>35 Rear section</p><p>36Vertical wall</p><p>37Slots</p><p>38 slots</p><p>40Multiple interface sub-assembly</p><p>45End</p><p>46Barbed segment</p><p>47Setting plate compliant section</p><p>48End section</p><p>49Compliance or pressing assembly section</p><p>50Carrier assembly</p><p>52 Carrier</p><p>53, 56 wall</p><p>54 recess</p><p>55 lugs</p><p>57Indented ribs</p><p>58 Track</p><p>59Locking flange</p><p>60Central Wall</p><p>61Ontology</p><p>62 pillar</p><p>63 ribs</p><p>64bends</p><p>65Base</p><p>66, 108 slots</p><p>67, 127 socket</p><p>70, 70a~70bFilter assembly</p><p>72 Cover</p><p>73The upper subassembly acceptance section</p><p>74The next sub-assembly acceptance section</p><p>75Adjacency</p><p>75a recess</p><p>76 protruding arm</p><p>76a, 78aindented ribs</p><p>77Next sub-assembly abutment</p><p>78 side wall</p><p>80Electronic conduction terminals</p><p>81Upper terminal array</p><p>81a, 82a, 83a first terminal</p><p>81b, 82b, 83b second terminal</p><p>81c, 82c, 83c third terminal</p><p>82Lower terminal array</p><p>83Intermediate terminal array / third terminal array</p><p>84 body segment</p><p>85Plate joint</p><p>86Wounding/holding section</p><p>90Upper filter sub-assembly</p><p>91Filter sub-assembly below</p><p>100System Board</p><p>102, 111 plating penetration hole</p><p>105 Conductive shielding members</p><p>106 tail</p><p>107Compliant press-fit assembly</p><p>109 Rear surface</p><p>110Placement board</p><p>112 rear edge</p><p>113End or side</p><p>120Contact circuit board</p><p>121Contacts</p><p>122through hole</p><p>123 lateral edges</p><p>124Electronic connector</p><p>125Resection of short sections</p><p>126 Conductive shorting bar</p><p>128joining section</p><p>129 slots</p><p>130, 140 Connection points</p><p>131First Conductor Group</p><p>131a, 141afirst signal conductor</p><p>131a', 131b', 131c', 141a', 141b', 141c' free end</p><p>131b, 141bsecond signal conductor</p><p>Tap conductor in 131c, 141c</p><p>132~133, 185 conductive members</p><p>132aThe first section of the first conducting member</p><p>132bSecond section of the first conducting member</p><p>133aThe first section of the second conducting member</p><p>133bSecond section of the second conducting member</p><p>135First signal path</p><p>136second signal path</p><p>141Second conductor set</p><p>1453rd conductor group</p><p>145a~145cconductor</p><p>145a', 145b', 145c' first end</p><p>145a", 145b", 145c" opposite end</p><p>150Tail end carrier assembly</p><p>151 side of single-sided carrier</p><p>152One-sided carrier</p><p>160, 165 core material</p><p>161Internal passage</p><p>162 side wall</p><p>163External surface</p><p>164Abutment surface</p><p>170 slots</p><p>171Arc-shaped protrusions</p><p>172Narrow neck</p><p>173Storage</p><p>174 areas of reduced thickness</p><p>180, 370, 470 filter assembly</p><p>186 Pressing the assembly latch</p><p>1871</p><p>200 toroidal box assembly</p><p>210, 310 carrier assembly</p><p>211Insulation carrier</p><p>212 foot segments</p><p>213, 321 pillar</p><p>220, 320 Central Wall</p><p>221 End</p><p>222 openings</p><p>224Central extension ribs</p><p>225, 229 ontology</p><p>226 Conductive mask</p><p>227Upper terminal</p><p>228lower terminal</p><p>230Contact circuit board</p><p>240Fixed parts</p><p>300 torus box assembly</p><p>311 Carrier</p><p>312Circular opening</p><p>322indented ribs</p><p>323 recess</p><p>324 upper surface</p><p>371 Outstandings</p><p>372indented ribs</p><p>381winding joint</p><p>382Sheet joint</p><p>472Insulation cover</p><p>481Upper terminal array</p><p>481a, 482a first terminal</p><p>482Lower terminal array</p><p>482bsecond terminal</p><p>482c third terminal</p><p>483Intermediate terminal array</p><p>483a, 483bU-type terminal</p>
1 is a front perspective view of a multi-interface magnetic socket; FIG. 2 is an enlarged and fragmentary rear perspective view of the magnetic socket removal shield member of FIG. 1; FIG. 3 is substantially along the first 2 is a perspective view of the line of view 3-3; FIG. 4 is a partially exploded perspective view of the magnetic socket of FIG. 1 from a bottom perspective view; FIG. 5 is the magnetic socket of FIG. Part of the exploded view is a perspective view; Figure 6 is a perspective view of a carrier assembly having a filter component disposed on both sides; Figure 7 is a perspective view similar to Figure 6, but the filter assembly on one side and The carrier is separated; Figure 8 is a perspective view of one of the one side carriers on which the filter assembly is placed; Figure 9 is a perspective view of a section taken substantially along line 9-9 of Figure 6; Figure 10 is a cross-sectional view of a pair of carrier assemblies and a central wall portion disposed therebetween; Figure 11 is a perspective view of a carrier assembly generally obtained from the underside of the carrier assembly, the figure showing a shorting bar between the terminals of adjacent filter assemblies; Figure 12 is a central wall portion and An exploded perspective view of a ground rod; FIG. 13 is a perspective view of a contact circuit board; and FIG. 14 is a rear perspective view of an embodiment of a filter assembly after removing the upper and lower filter sub-assemblies. Fig. 15 is a front perspective view of the filter assembly of Fig. 14; Fig. 16 is a perspective view of one of the terminals in the outer cover of Fig. 15; and Fig. 17 is an implementation of a filter assembly 1 is a rear elevational view of the filter assembly of FIG. 14; and FIG. 19 is a rear elevational view of one of the terminals in the housing of FIG. 18; FIG. a side view of the terminals of Figure 19; Figure 21 is for holding a conductor therein An enlarged view of a socket; FIG. 22 is a line cross-sectional view substantially along the line of sight to give the first 22-22 of FIG 21; Figure 23 is a perspective view of a rectangular and a square annular surface of a filter assembly; and Figure 24 is a rear perspective view of another embodiment of a filter assembly with the upper and lower filter sub-assembly removed. Figure 25 is a rear elevational view of one of the terminals in the outer cover of Figure 24; Figure 26 is a schematic view of one embodiment of a filter assembly; and Figure 27 is a filter assembly A rear perspective view of another embodiment; Fig. 28 is a cross-sectional view taken along line 28-28 of Fig. 27; and Fig. 29 is a schematic representation of an embodiment of a filter assembly. Figure 30 is a schematic view of an embodiment of a filter assembly shown in Figure 29; Figure 31 is a toroidal box assembly disposed on a mounting circuit board and spaced apart therefrom A perspective view of one of the mounting members; Fig. 32 is a perspective view of the toroidal box assembly of Fig. 31 and a contact circuit board separated therefrom; and Fig. 33 is the toroidal box of Fig. 32 One of the parts of the assembly is exploded into a perspective view; and Figure 34 is a perspective view of another alternative embodiment of a toroidal box assembly FIG 35 is a partially exploded perspective view line of the ring member 34 of FIG surface of the cartridge assembly; and Figure 36 is an exploded perspective view of the central wall portion of the toroidal box assembly of Figure 35 and the grounding member.
8 members in 3 offices
Priority claims12
| Document | Office | Kind | Date |
|---|---|---|---|
| 41923010 | United States of America | P | |
| 61419230 | United States of America | – | |
| 201161434166 | United States of America | P | |
| 61434166 | United States of America | – | |
| 201161498848 | United States of America | P | |
| 61498848 | United States of America | – | |
| 20100419230 | – | – | – |
| 201161434166P | – | – | – |
| 201161498848P | – | – | – |
| US20100419230P | – | – | – |
| US201161434166P | – | – | – |
| US201161498848P | – | – | – |
Members8
| Document | Office | Kind | |
|---|---|---|---|
| US2012142199A1 | United States of America | A1 | |
| CN102544934A | China | A | |
| CN202405560U | China | U | |
| US2012309236A1 | United States of America | A1 | |
| TWM448809UThis record | Taiwan Province of China | U | |
| US8449332B2 | United States of America | B2 | |
| US8545274B2 | United States of America | B2 | |
| CN102544934B | China | B |
1 legal event, as the office reported them to INPADOC
Events
| Event | Code | |
|---|---|---|
| Annulment or lapse of a utility model due to non-payment of feesLapsedMM4K | MM4K |
Numbers
- Publication
- M448809
- Publication, DOCDB
- M448809
- Publication, EPODOC
- TWM448809U
- Application
- 100222706
- Application, DOCDB
- 100222706
- Application, EPODOC
- TW20110222706U
Titles2
- English
- FILTERING ASSEMBLY AND MODULAR JACK USING SAME
- Chinese
- ?????????????
Classification
- CPC, 2
- H01R24/64
- H01R13/719