High flow nozzle system for flow control in bladder surge tanks
Abstract
Compensation tank (10, 40, 80) comprising: a tank body (18, 48, 88) having an inner wall adapted to retain a volume of the fluid therein; a fluid inlet / outlet opening (16, 46, 86) adhered to the tank body (18, 48, 88) to allow the fluid to enter and exit the tank body; an elastomeric bladder (14, 44, 84) located inside the body of the tank (18, 48, 88) and adapted to separate a volume of fluid within the tank from a volume of gas; and a nozzle system (12, 42, 82) disposed within the tank body and that includes a nozzle element (26, 54, 102) comprising a plurality of perforations disposed therethrough, characterized by: - a first plurality of perforations (34, 70, 128) extending a predetermined axial length along the nozzle element (26, 54, 102) of an open end of the nozzle element (26, 54, 102) adjacent to the port fluid inlet / outlet, wherein the first plurality of perforations (34, 70, 128) has an elongated configuration in axial direction; and - a second plurality of perforations (33, 68, 114) extending from the first plurality of perforations a predetermined axial length along the nozzle element (26, 54, 102).

Term
1.1 yearsto projected expiry
Projected expiry 30 October 2027, counted from filing; an application has no term until it is granted.
- Priority
- Filed
- Published
- Today
- Projected expiry
19 claims: 1 independent, 18 dependent
- 1CLAIMS REIVINDICACIONES 1. Compensation tank (10, 40, 80) comprising:1. Tanque de compensación (10, 40, 80) que comprende: a tank body (18, 48, 88) having an inner wall adapted to retain a volume of the fluid in it;un cuerpo del tanque (18, 48, 88) que tiene una pared interior adaptada para retener un volumen del fluido en el mismo;a fluid inlet / outlet opening (16, 46, 86) adhered to the tank body (18, 48, 88) to allow the fluid to enter and exit the tank body;una abertura de entrada/salida del fluido (16, 46, 86) adherida al cuerpo del tanque (18, 48, 88) para permitir que el fluido ente y salga del cuerpo del tanque;an elastomeric bladder (14, 44, 84) located inside the body of the tank (18, 48, 88) and adapted to separate a volume of fluid within the tank from a volume of gas;and una vejiga elastomérica (14, 44, 84) ubicada dentro del cuerpo del tanque (18, 48, 88) y adaptada para separar un volumen de fluido dentro del tanque de un volumen de gas;y a nozzle system (12, 42, 82) arranged inside the tank body and that includes un sistema de boquillas (12, 42, 82) dispuesto dentro del cuerpo del tanque y que incluye a nozzle element (26, 54, 102) comprising a plurality of perforations arranged therethrough, characterized by: un elemento boquilla (26, 54, 102) que comprende una pluralidad de perforaciones dispuestas a través de él, caracterizado por: -a first plurality of perforations (34, 70, 128) extending a predetermined axial length along the nozzle element (26, 54, 102) of an open end of the nozzle element (26, 54, 102) adjacent to the port of fluid inlet / outlet, wherein the first plurality of perforations (34, 70, 128) has an elongated configuration in axial direction;and -una primera pluralidad de perforaciones (34, 70, 128) que se extiende una longitud axial predeterminada a lo largo del elemento boquilla (26, 54, 102) de una extremo abierto del elemento boquilla (26, 54, 102) adyacente al puerto de entrada/salida del fluido, en donde la primera pluralidad de perforaciones (34, 70, 128) tiene una configuración alargada en sentido axial;y -a second plurality of perforations (33, 68, 114) extending from the first plurality of perforations a predetermined axial length along the nozzle element (26, 54, 102). -una segunda pluralidad de perforaciones (33, 68, 114) que se extiende de la primera pluralidad de perforaciones una longitud axial predeterminada a lo largo del elemento boquilla (26, 54, 102).
96 paragraphs, as filed
High flow nozzle system for flow control in bladder compensation tanks
Field of the Invention
The present invention refers to a compensation tank according to the preamble of claim 1, and more specifically, to a bladder compensation tank having a nozzle system specially adapted to facilitate the passage of a fluid system comprising a liquid and solid mixture so you can enter and exit the bladder compensation tank evenly.
Background of the invention
Compensation tanks are designed to control water hammers or pressure transients in pipes, which are created when fluid flow changes abruptly. Pressure transients can be positive or negative and are potentially destructive and can damage pipes, pumps, instruments, connections, or other system components.
Compensation tanks have been used for years as a means to control pressure transients. Some compensation tanks employ a bladder design and their applications are known within various industries, including fire protection systems, municipal water and sewage systems, desalination facilities, fuel systems, and chemical and petrochemical facilities.
During the start of a pump, for example, a high transient pressure is created at the pump outlet. The installation of a bladder compensation tank at the pump outlet absorbs the fluid from the pump until the fluid reaches a stable speed, then the compensation tank discharges the fluid into the system to compensate for the pressure and eliminate the transient from Pressure. Pressure transients can also be created where there is a sudden and abrupt cessation of liquid flow, in this case, bladder compensation tanks can eliminate the pressure transient. Bladder compensation tanks may also have an application such as a flood compensation tank where an instant discharge of fluid is required, for example, in fire protection systems.
A compensation tank of the type mentioned in the introduction is known from EP 1271040 A2.
Regardless of the application, the shape of the bladder during gas preload or fluid discharge is not completely controllable. In systems where the flow exceeds 1892.76 liters per minute (500gpm), the bladder can actually seal the fluid inlet / outlet opening of the tank during the discharge of liquid and prevent the tank from emptying its liquid contents. To avoid this, some manufacturers of bladder compensation tanks have placed a wire mesh in the inlet / outlet opening of the tank. Unfortunately, such a mesh really prevents the flow of liquid and is not completely effective in preventing the bladder from blocking the inlet / outlet opening during fluid discharge.
Where there is a sudden flow of fluids inside a bladder compensation tank, the strength of the incoming liquid is concentrated and assumes the shape of the fluid inlet / outlet opening of the tank. Such a column of fluid and its associated force is directed towards that portion of the bladder directly above the inlet / outlet opening of the tank and can cause damage to the bladder.
EP 1271040 A2 refers to a bladder compensation tank that includes a liquid part and a bladder placed therein to provide an abrupt oscillation absorption interface between the liquid and the pressurized gas within the tank. The bladder compensation tank can be oriented horizontally or vertically. A nozzle system is separated from the liquid part and is completely attached to the inner wall. The nozzle system includes a nozzle element placed between the liquid opening and the bladder and comprises a plurality of perforations arranged therethrough. In a preferred embodiment, 77% of the perforations in the nozzle element are located directly above the fluid inlet / outlet opening of the tank. The balance of perforations is found in equal spaces on all remaining surfaces of the nozzle element. Approximately 23% of the perforations through the nozzle element are not directly above the fluid inlet / outlet opening of the tank and therefore act to disperse and redirect the incoming fluid throughout the tank. The size and location of the perforations are determined by a series of mathematical equations.
There is still a need for a bladder compensation tank that eliminates the possibility that the bladder blocks the inlet / outlet opening of the tank during the discharge of fluid and therefore interferes with the fluid flow outlet of the compensation tank. bladder. It is an object of the invention to provide a bladder compensation tank that can redirect the fluid that is introduced into the bladder compensation tank in
a more homogeneous form, thereby reducing the possibility of bladder damage due to the strength of the incoming fluid.
In addition, in applications where the fluids of the system being handled are wastewater, for example, which comprise a mixture of liquid and solid components, there is a need to provide a bladder compensation tank that can provide the degree of oscillation protection. desired abrupt without obstruction or accumulation of dirt, which would impair the ability to provide sharp swing protection, and would require frequent maintenance to ensure proper operation.
Summary of the Invention
The object of the invention is solved by means of a compensation tank according to claim 1.
The compensation tanks of this invention are specially designed to provide a desired degree of sharp swing protection for fluid systems comprising liquid and solid components. In an exemplary embodiment, such compensation tanks include a tank body having an inner wall adapted to retain a volume of fluid within it, for example, a fluid comprising liquid and solid components. The tank body includes a fluid inlet / outlet opening adhered thereto to facilitate the passage of fluid into the interior and exterior of the tank body. An elastomeric bladder is disposed within the tank body and is adapted to separate a volume of fluid inside the tank from a volume of gas inside the tank. In an exemplary embodiment, the tank body is loaded with a gas preload pressure that resides between an inner wall surface of the tank body and an adjacent surface of the bladder.
The nozzle system is located inside the tank body, and is configured with a nozzle element. The nozzle element comprises a first plurality of perforations that extend over a predetermined axial length along the nozzle element. In an exemplary embodiment, the first plurality of perforations extends from an open end of the nozzle element that is located adjacent to the fluid inlet / outlet opening. The first plurality of perforations has an elongated axial configuration. The nozzle element includes a second plurality of perforations that extends an axial distance from the first plurality of perforations.
The developed configurations of the invention are described in more detail in the dependent claims.
The compensation tanks of this invention can be oriented horizontally or vertically in a preferred developed configuration. The nozzle element may extend within partial distance, or completely within the tank to an opposite inner wall surface of the tank. In the event that the nozzle element extends only a partial distance, the opposite end to the open end is closed. In the event that the nozzle element extends a full distance, the opposite end to the open end is open and joins a flanged element of the tank body. In an exemplary embodiment, where the nozzle element extends a full distance within the tank body, the tank includes a drain opening that extends through the tank and communicates with an inner diameter of the nozzle element.
The tank body includes a throat that extends outward from a lower part of the tank. At least a part of the nozzle element comprising the first plurality of perforations is disposed within the throat. The bladder includes a neck that is disposed within the throat and interposes between a surface of the inner wall of the throat and the nozzle element. In an exemplary embodiment, the throat, the bladder neck, and the nozzle element are sized to provide an annular space between the bladder and the nozzle element that is sufficient to facilitate the flow of solid constituent matter into the fluid. from the tank and into the nozzle element. In an exemplary embodiment, the first plurality of perforations is sized to allow the passage of the solid constituent material into the fluid therethrough.
Compensation tanks constructed in this way provide a desired degree of sharp swing protection to fluid systems comprising a mixture of solid and liquid components, and do so without obstructions or unwanted dirt accumulations, thereby avoiding the need service or frequent maintenance to ensure proper operation.
Brief description of the drawings
These and other features and advantages of the present invention will be better understood from the reference to the following detailed description considered in conjunction with the accompanying drawings where:
Figure 1 is a side cross-sectional view of the horizontal compensation tank of a first embodiment comprising a high flow nozzle system of this invention;
Figure 2 is an enlarged schematic sectional view illustrating the high flow nozzle system of Figure 1;
Figure 3 is a side cross-sectional view of the high flow nozzle system taken from a section of Figure 2;
Figure 4 is a side elevational cross-sectional view of the horizontal compensation tank of a second embodiment comprising a high flow nozzle system of this invention;
Figure 5 is a side elevational cross-sectional view of the vertical compensation tank comprising a high flow nozzle system of this invention;
Figure 6 is an enlarged schematic sectional view illustrating the high flow nozzle system of Figure 5; and
Figure 7 is a side cross-sectional view of the high flow nozzle system taken from a section of Figure 6.
Detailed description
In accordance with the present invention, improved bladder compensation tanks are provided comprising high flow nozzle systems suitable for use in various types of fluid and / or fluid / solid systems. In particular, bladder compensation tanks comprising high flow nozzle systems of this invention are especially suitable for use in fluid systems such as wastewater systems containing liquid and solid components.
Figure 1 illustrates a horizontal bladder compensation tank 10 of a first embodiment comprising a high flow nozzle system 12 of this invention. The horizontal bladder compensation tank 10 is a pressure vessel containing a bladder 14 disposed therein, a fluid inlet / outlet opening 16, and a nozzle system 12 located within the tank, adjacent to the inlet opening / exit 16. The horizontal bladder compensation tank 10 comprising a body 18 having a bladder access opening 20 disposed therethrough at one end of the tank 10. Opposite the bladder access opening 20, the body may include a gas charging valve, a rupture disk, a pressure gauge (not shown). Other components of the compensation tank can be added or removed according to their specific final application and the associated need.
Horizontal compensation tanks can vary in size from approximately 946 liters (250 gallons) to more than 18,927 liters (5,000 gallons) or more. The compensation tanks used with high flow nozzle systems of this invention can be constructed from various materials, provided that the material has sufficient strength to withstand loading and operating pressures and is chemically resistant to the fluid being pumped. In the preferred embodiment, the construction material is carbon steel or epoxy coated stainless steel.
The horizontal bladder compensation tank 10 is shown supported on two or more supports 22. If desired, tabs can also be attached to the bladder compensation tank 10, which can allow the tank to be suspended and placed in the desired location with ease.
The bladder 14 is placed inside and is located adjacent to at least a partial part of an inner wall of the body of the compensation tank 18. The bladder 14 can be constructed from various materials that are suitable for containing gas under pressure as well. as resistant the attack of the fluid or liquid and / or solid contents within the system. The bladder 14 must also be strong enough to withstand the pressure or force exerted on it by the incoming fluid. In a preferred embodiment, the bladder 14 is made of a synthetic nitrile rubber, such as buna-n.
The fluid inlet / outlet opening 16 is located along the lower part 24 of the tank body 18, and allows the fluid to enter and exit the tank 10. The dimensions of the fluid inlet / outlet opening may vary. depending on your final application and the needs of the system.
The high flow nozzle system 12 of this invention includes a nozzle element 26 that extends vertically a distance within the tank from a flanged terminal 28 that projects downward in a distance
from the lower part 24 of the tank body 18. The flanged terminal 28 is configured to facilitate the connection with a flanged part 30 of the fluid inlet / outlet opening 16 by conventional joining means, for example, by a connection with bolts or similar.
In this exemplary embodiment, the nozzle element 26 includes a body that has a generally cylindrical cross-section, is in the form of a column, which is open in an axial end member 31 located adjacent to the fluid inlet / outlet opening 16 , and which is closed at an opposite axial end member 32 located away from the inlet / outlet opening 16. As illustrated in Figure 1, in this particular embodiment, the nozzle element is sized to project a desired partial distance vertically within the tank 10.
In an exemplary embodiment, the length of the nozzle element has a size such that it provides a desired inlet and outlet flow characteristic within the tank 10. Likewise, it is generally desired that the nozzle element has a size such that it does not interfere with the desired operation or movement of the bladder 14 inside the tank 10. In a preferred embodiment, the nozzle element 26 extends vertically within the tank at a distance that is less than about ½ of the tank diameter.
As illustrated in FIGS. 1 and 2, in an exemplary embodiment, the closed end 32 of the nozzle element 26 is rounded so that it does not in any way engage or tear the bladder in case the bladder comes into contact with the nozzle element during operation. The nozzle element 26 also includes a plurality of perforations or openings 33 arranged through the body. The openings 33 are located around the circumference of the nozzle element 26 in predetermined locations, and extend axially along it in a desired axial length of the nozzle element. In a preferred embodiment, the openings are located longitudinally along the part of the nozzle element that extends vertically from the bottom part 24 of the tank.
The perforations 33 are located along the wall surface of the nozzle element 26 to homogeneously disperse the incoming liquid over a wide area, so as to minimize any damage to the bladder that could occur if the force of the incoming liquid was concentrated over an area of the bladder. The total area of the perforations 33 preferably exceeds the total area of the fluid inlet / outlet opening of the tank 16. The size, number and location of the perforations 33 are determined by a series of mathematical calculations that are best described later. The size of the perforations 33 will also vary depending on the operating pressure of the system.
With reference to Figures 1 to 3, the nozzle element 26 also includes one or more elongated openings or perforations 34 that are located vertically below the plurality of perforations 33. In an exemplary embodiment, elongated perforations 34 are oriented along the nozzle element in a way that extends axially along the nozzle element 26. The elongated openings 34 are arranged through a part of the nozzle element that is located within a cylindrical throat 36 of the tank that extends downward from the bottom of the tank 24. The cylindrical throat 36 has the size and configuration to allow placing therein a desired section of the nozzle element 26. The cylindrical throat includes an open end that is located adjacent to the open end 31 of the nozzle element, and that connects to the flanged terminal 28.
In an exemplary embodiment, the cylindrical throat 36 has an internal diameter that is larger than the external diameter of the nozzle element, and that is sized to provide a desired tolerance between a wall section of the bladder 14 that is located adjacent to the surface of the side wall of the cylindrical throat and the nozzle element. Ideally, the tolerance is sufficient to facilitate the flow and drainage of the fluid and any solid matter 38 disposed within the tank, for example, when the tank is placed within an application of a sewage system, from the tank and through the nozzle element through elongated perforations 34 (as indicated by the arrows in Figures 2 and 3). In an exemplary embodiment, it is desired that a tolerance between about 5 cm and 15 cm be provided for use in an application of a wastewater system. In an application of a wastewater system, it is desired that the tolerance be such that it allows the passage of solids having a size of approximately 2.54cm to pass in that way.
Likewise, it is desired that the cylindrical throat 36 be axially sized to accommodate the majority of the length of the nozzle element containing the elongated grooved perforations 34. In a functional aspect, it is desired to facilitate free flow and drainage of any solid matter contained within the fluid from the body. In an exemplary embodiment, it would be desirable that at least about 50 percent, and preferably greater than about 75 percent, of the length of the elongated slotted opening be disposed within the cylindrical throat.
It is understood that the number of the slotted elongated openings disposed through the nozzle element, the axial length of the slotted elongated openings, and the width of the slotted elongated openings vary according to the
particular final application In an exemplary embodiment, where the compensation tank is located in an application of a sewage system, it is desired that the number, length and width of the slotted elongated perforations be sufficient to facilitate the passage of solid matter entrained with the wastewater fluid through the nozzle element 26, without obstruction or / or unwanted pressure drop caused in some other way through the nozzle element.
In an exemplary embodiment, the slotted elongated openings 34 of the nozzle element are located around it in a circumference and equidistant from each other. In such an example, the nozzle element may comprise between about 2 and 20 slotted elongated openings, and the slotted elongated openings may have an axial length between about 5 and 10cm, and each has a width that is between about 3 and 5cm. It is understood that the dimensions provided above are representative of a single exemplary embodiment, and that other embodiments within the scope of this invention may have dimensions of slotted elongated openings that are different from those representative dimensions provided above. .
As indicated above, the bladder 14 is disposed within the tank 18. The bladder, as used in this horizontal embodiment illustrated in Figures 1 to 3, includes a cylindrical neck that is located within the cylindrical throat 36 with its wall surface adjacent to a wall surface of the cylindrical throat 36. In an exemplary embodiment, the bladder neck is reinforced to ensure that it does not collapse into the slotted elongated openings during operation. The bladder neck includes a flared end 39 (as best shown in Figure 1) that interposes between the flanges 28 and 30, and thus functions both to fix the bladder inside the throat, and to seal the bladder inside the tank
Configured in this way, the flared end 39 of the bladder neck functions to retain the collar within the cylindrical throat of the tank 36 so that the bladder does not collapse or move inward toward the nozzle element when the pressure inside the bladder causes the fluid, for example liquid and / or solid matter, to flow from the tank and through the nozzle element. This ensures that such a desired fluid flow is not obstructed by the bladder, and that the bladder is not extruded through the elongated openings in the nozzle element.
Figure 4 illustrates a horizontal compensation tank 40 of a second embodiment comprising a high flow nozzle system 42 of this invention. The horizontal bladder compensation tank 40 is a pressure vessel containing a bladder 44 disposed therein, a fluid inlet / outlet opening 46, and a nozzle system 42 located within the tank adjacent to the inlet / outlet opening 46. The horizontal bladder compensation tank 40 comprises a body 48 having a bladder access opening 50 disposed therethrough at one or more ends of the tank 40. The body 48 may include a gas charging valve, a disc of rupture, a manometer (not shown). Other components of the compensation tank can be added or removed depending on the particular final utility and the associated need.
As the horizontal compensation tank of the first embodiment illustrated in Figure 1, the fluid inlet / outlet opening 46 is located along the bottom 52 of the tank body 48, and allows the fluid to enter and exit the tank 40. The dimensions of the fluid inlet / outlet opening 46 may vary according to its final application and the needs of the system.
The high flow nozzle system 42 of this embodiment of the invention includes a nozzle element 54 that extends vertically a distance within the tank from a flanged terminal 56 that projects downwardly at a distance from the bottom 52 of the body from tank 48. The flanged terminal 56 is configured to facilitate the connection with a flanged portion 58 of the fluid inlet / outlet opening 46 by conventional joining means, for example, by a connection with bolts or the like.
In this second embodiment, the nozzle element 54 includes a body that has a generally cylindrical cross-section, is in the form of a column, which is open in an axial end element 60 located adjacent to the fluid inlet / outlet opening 46, and which it has an opposite axial 62 that is located adjacent to the drain opening 64 that extends a distance away from the upper part 66 of the tank body 48. As illustrated in Figure 4, unlike the nozzle element of the first embodiment that extended only a partial vertical distance within the tank, in this second embodiment the nozzle element 54 has the measure to project a complete vertical distance within the tank from the bottom of the tank 52 to the top of the tank 66.
The nozzle element 54 includes a plurality of perforations or openings 68 disposed through the body. The openings 68 are located around the circumference of the nozzle element 54 in predetermined locations, and extend axially along it a desired axial length of the nozzle element. In a preferred embodiment, the openings 68 are located longitudinally along the part of the nozzle element that extends vertically from the bottom 52 of the tank to the top of the tank 66.
The perforations 68 are located along the wall surface of the nozzle element 54 to homogeneously disperse the incoming liquid over a wide area in order to minimize any damage to the bladder that could occur if the force of the incoming liquid was concentrated on an area of the bladder The total area of the perforations 68 preferably exceeds the total area of the fluid inlet / outlet opening of the tank 46. The size, number and location of perforations 68 are determined by a series of mathematical calculations that are best described below. The size of the perforations 68 will also vary according to the operating pressure of the system.
As in the first embodiment previously disclosed and illustrated in Figures 1 to 3, the nozzle element 54 of the second embodiment also includes one or more elongated openings or perforations 70 that are located vertically below the plurality of perforations 68, which are provided in the same manner and for the same purpose as disclosed above for the first embodiment. The elongated openings 70 are arranged through a part of the nozzle element located within a cylindrical throat 72 of the tank that extends downward from the bottom of the tank 52, and having the size and configuration to allow the placement of a section desired of the nozzle element 54 within it. The cylindrical throat includes an open end that is located adjacent to the open end 60 of the nozzle element, and that connects to the flanged terminal 56.
In such a second embodiment of the invention, the cylindrical throat and the nozzle element have the size and configuration previously disclosed for the first embodiment, to provide a desired tolerance between them to facilitate the desired flow and drainage of fluid and any matter. solid disposed inside the tank, for example, when the tank is placed inside an application of a sewage system, from the tank and through the nozzle element by elongated perforations 70. It is understood that the number of the slotted elongated openings disposed through the nozzle element, the axial length of the slotted elongated openings, and the width of the slotted elongated openings vary according to The particular final application.
The bladder 44 includes a cylindrical neck that is disposed within the cylindrical throat of the tank 72 in the same manner as described above for the first embodiment of the invention. The bladder neck includes a flared end interposed between flanges 56 and 58 to secure the bladder in place and seal the bladder inside the tank.
In this second embodiment of the invention, the nozzle element 54 extends the entire diameter of the tank vertically, thereby providing a larger flow area within the tank and providing a second connection point within the tank. The end of the nozzle element 62 is disposed within a cylindrical throat 74 extending from the top of the tank 66 to the drain opening 64. The bladder 44 includes a neck that is disposed within the cylindrical throat, and also includes a flared end that interposes between the flanged ends 76 and 78 of the cylindrical throat and a blind flange connected to it.
The drain opening 64 is provided to allow a user to open the tank, removing the blind flange 78, and cleaning or emptying the nozzle element 54, for example, by washing with water or the like. In practice, if the bladder tank becomes clogged or otherwise limited during use, the ability to wash the nozzle element 54 with water through such a drain opening provides a simple and efficient way to restore operation. desired tank.
The bladders used in conjunction with the horizontal and / or vertical compensation tanks of this invention are preferably preloaded with a desired air or gas pressure. In a preferred embodiment, the bladders and the compensation tanks are configured so that the gas preload exists between a part of the inner wall surface of the compensation tank and an outer surface of the bladder. The exact preload pressure used in the compensation tanks of this invention can and will vary according to a large number of different factors as well as with the intended final application.
Figure 5 illustrates a vertical bladder compensation tank 80 comprising a high flow nozzle system 82 of this invention. The vertical bladder compensation tank 80 is a pressure vessel containing a bladder 84 disposed therein, a fluid inlet / outlet opening 86, and the nozzle system 82 located within the tank, adjacent to the inlet opening / exit 86. The vertical bladder compensation tank 80 comprises a body 88 having a bladder access opening 90 disposed therethrough at one end of the tank 80. The body includes a gas loading valve 92, a rupture disk 94 , and a pressure gauge 96. Other components of the compensation tank can be added or removed according to the particular final application and the need associated with it. In an exemplary embodiment and as mentioned above, the tank is configured to impose a desired preload pressure between the bladder and the inner wall of the tank, such that the bladder functions to isolate the fluid that is drive inside the tank so that it does not come into contact with the pressurized gas.
In the vertical compensation tank of Figure 5, gas is introduced into the inner cavity of the tank by the gas loading valve 92. In the case of abrupt oscillation, the bladder 84 is filled with the liquid from the
abrupt oscillation, and generally bladder 44 fills between approximately 80% and 85% of its capacity. In a preferred embodiment, the gas is nitrogen.
Vertical compensation tanks can vary in size from approximately 946 liters (250 gallons) to more than 18,927 liters (5,000 gallons) or more. The compensation tanks used with high flow nozzle systems of this invention can be constructed from various materials, provided that the material has sufficient strength to withstand loading and operating pressures and is chemically resistant to the fluid being pumped. In the preferred embodiment, the construction material is carbon steel or epoxy coated stainless steel.
The vertical bladder compensation tank 80 is shown supported by legs 98, of which only two are shown. If desired, tabs can also be attached to the bladder compensation tank 80, which can allow the tank to be suspended and placed in the desired location with ease.
The bladder 84 is located within a surrounding inner wall of the tank body 88, and which can be constructed from the same types of materials mentioned above for the horizontal compensation tank embodiments. The fluid inlet / outlet opening 86 is located along the bottom 100 of the tank body 88, and allows the fluid to enter and exit the tank 80. The dimensions and orientation of the fluid inlet / outlet opening 86 may vary according to its final application and the needs of the system. For example, in the exemplary embodiment illustrated in Figure 5, the fluid inlet / outlet opening 86 is configured with a right angle opening oriented to direct the flow of fluids entering and leaving the tank perpendicular to the nozzle system 82. This orientation may vary and will vary according to the particular final application.
The nozzle system 82 includes a nozzle element 102 that extends vertically a distance within the tank from a flanged terminal 104 that projects down a distance from the bottom 100 of the tank body 88. The flanged terminal 104 is configured to facilitate the connection with a flanged part 106 of the fluid inlet / outlet opening 86 by conventional joining means, for example, by a connection with bolts or the like.
In this exemplary embodiment, the nozzle element 102 includes a body that has a generally cylindrical cross-section, is in the form of a column, which is open in an axial end element 108 located adjacent to the fluid inlet / outlet opening 86 The nozzle element 102 includes an opposite axial end 110 that is also open and located adjacent to the bladder access opening 90. In this exemplary embodiment, the nozzle element 102 has an axial length that extends within the vertical length of the tank, for example, from the bottom 100 to the top of the tank 112. The nozzle element has the size in vertical and diametral direction to provide a desired input and output flow characteristic within the tank 80.
The nozzle element 102 includes a plurality of perforations or openings 114 arranged through the body. The openings 114 are located around the circumference of the nozzle element 102 at predetermined locations, and extend axially along it a desired axial length of the nozzle element. In a preferred embodiment, the openings are located longitudinally along a main length of the nozzle element that extends vertically from the bottom of the tank 100.
The perforations 114 are located along the wall surface of the nozzle element 102 to homogeneously disperse the incoming liquid over a wide area in order to minimize any damage to the bladder that could occur if the force of the incoming liquid was concentrated on an area of the bladder The total area of the perforations 114 preferably exceeds the total area of the fluid inlet / outlet opening of the tank 86. The size, number and location of the perforations 114 are determined by a series of mathematical calculations that are best described below. The size of the perforations 114 will also vary according to the operating pressure of the system.
In this exemplary embodiment, the nozzle element 102 is connected to the tank both at the top and bottom of the tank. The nozzle element 102 is connected to the tank along the bottom of the tank 100 in the same manner as previously disclosed for embodiments of the horizontal tank; namely, the part of the nozzle element adjacent to the open end 108 is concentrically located within a throat 116 of the tank.
Bladder 84 includes a neck that is located adjacent to the cylindrical throat wall surface, wherein the neck includes a flared end that interposes between flanges 104 and 106 to secure the bladder in place. In a preferred embodiment, the neck is reinforced as mentioned above to prevent the bladder from collapsing against the nozzle element 102 during operation, thereby preventing the nozzle element from clogging and / or being extruded into the nozzle element. .
The nozzle element 102 is connected to the tank along the upper part of the tank 112 by placing the end of the nozzle element 110 centered against a flanged element 118, wherein the flanged element 118 is attached to the flanged end 120 of the tank by a conventional method such as a bolt joint. The flanged element 118 includes a drain opening 122 that is axially disposed therethrough and that is positioned to be in fluid flow communication with an inner diameter of the nozzle element 102. In an exemplary embodiment, the drain opening 122 projects outwardly and away from flanged element 118, and inwardly a desired distance within the inside diameter of the nozzle element.
The flanged element 118 includes an access element 124 that removably attaches to the drain opening 122, and that is easily accessible from a position outside the tank. In an exemplary embodiment, the access element 124 is connected by threaded communication with the flanged element 118, and has an external surface that is configured to facilitate removal by using a conventional tool, for example, a wrench of nuts, a socket wrench or similar. Once the access element 124 is removed, a suitable cleaning device can be connected there by using a complementary coupling.
The cleaning device may be one that is designed to empty the inner diameter of the nozzle element by mechanical, hydraulic, and / or pneumatic means. In an exemplary embodiment, the cleaning device is a fluid handling element configured to subject the internal diameter of the nozzle element to a stream of pressurized water.
The bladder 84 comprises a neck that is configured for attachment along the upper part of the tank 112. In an exemplary embodiment, the upper part of the tank 112 includes a cylindrical throat 126 that extends a desired length outwards. her. The bladder neck is located adjacent to the surface of the inner wall of the cylindrical throat 126 and includes a flared end that interposes between the flanged end 120 and the flanged element 118 to hold the bladder firmly in place and avoid unwanted losses.
With reference to Figures 5 through 7, the nozzle element 102 also includes one or more elongated openings or perforations 128 that are located vertically below the plurality of perforations 114. In an exemplary embodiment, elongated perforations 128 are oriented along the nozzle element in a way that extends axially along a desired length of the nozzle element 102. The elongated openings 128 are arranged through a part of the nozzle element that is located within the cylindrical throat 116 of the tank extending downwardly from the bottom of the tank 100. As indicated previously, the cylindrical throat 116 has the size and configuration to allow placement of a desired section of the nozzle element 102 therein. The cylindrical throat 116 includes an open end that is located adjacent to the open end 108 of the nozzle element, and that connects to the flanged terminal 104.
In an exemplary embodiment, the cylindrical throat 116 has an internal diameter greater than the external diameter of the nozzle element to provide a desired tolerance between a wall section of the bladder 84 that is located adjacent to the surface of the side wall of the cylindrical throat and nozzle element. As mentioned above for the realization of the horizontal tank, the tolerance is sufficient to facilitate the flow and drainage of the fluid and any solid matter 130 disposed within the tank, for example, when the tank is placed within an application of a sewage system, from the tank and through the nozzle element through elongated perforations 128 (as indicated by the arrows in Figures 6 and 7).
In an exemplary embodiment, it is desired that a tolerance between about 5cm and 15cm be provided for use in an application of a wastewater system. In an application of a wastewater system, it is desired that the tolerance be such that it allows the passage of solids having a size of approximately 2.54cm to pass in that way.
The cylindrical throat 116 is preferably axially sized to accommodate the majority of the length of the nozzle element containing the elongated grooved perforations 114. In a functional aspect, it is desired to facilitate the flow and free drainage of all solid matter contained within of fluid from the body. In an exemplary embodiment, it would be desirable that at least about 50 percent, and preferably greater than about 75 percent, of the length of the elongated slotted opening be disposed within the cylindrical throat.
As in the case of the realization of the horizontal tank disclosed above, it is understood that the number of the slotted elongated openings arranged through the nozzle element, the axial length of the slotted elongated openings, and the width of the slotted elongated openings for use in the realization of the vertical tank vary according to the particular final application. In an exemplary embodiment, where the compensation tank is located in an application of a sewage system, it is desired that the number, length and width of the slotted elongated perforations be sufficient to facilitate the passage of solid matter dragged
with the wastewater fluid through the nozzle element 102 without obstruction or / or the unwanted pressure drop caused in some other way through the nozzle element.
In an exemplary embodiment, the slotted elongated openings 128 of the nozzle element are located around it in a circumference and equidistant from each other. In such an example, the nozzle element may comprise between about 2 and 20 slotted elongated openings, and the slotted elongated openings may have an axial length between about 5 and 10cm, and each has a width that is between about 3 and 5cm. It is understood that the dimensions provided above are representative of a single exemplary embodiment, and that other embodiments within the scope of this invention may have dimensions of slotted elongated openings that are different from those representative dimensions provided above. .
For embodiments of a horizontal and vertical compensation tank, a series of equations is used to calculate the number and location of each bore in the nozzle element of the nozzle system. In an exemplary embodiment, the following mathematical equations are used to calculate the number and location of the perforations for use within a vertical compensation tank of 1892.7 liters (500 gallons) having an inlet opening / 20.32cm diameter fluid outlet at an operating pressure of 17,237 bar (250 psi).
Mathematical formulas of the compensation tank nozzle system
Three hole sections
Nine rows in each section
Sixteen holes in each row
Number of holes in the nozzle element = 3 sections x 9 rows x 16 holes = 432 holes. Approximate hole diameter = 1.27cm (0.50 inches)
The surface area of the holes in the nozzle element = 432 x (π / 4) (0.50) 2 = 547.1cm2 (84.8 inches2) Inlet / outlet nozzle system area (ID card 40 of 20 , 32cm) (8-inch ID card 40) ID = 7,981 inches; (π / 4) (7,981) 2 = 322.58cm2 (50.0 inches2).
The total surface area of the perforations in the nozzle element of the nozzle system for this particular example is approximately 547.1cm2 (84.8 square inches); and the total surface area of the fluid inlet / outlet opening of the tank is approximately 322.58cm2 (50 square inches).
The embodiments of the present invention described above are merely descriptive of its principles and should not be considered limiting. The scope of the present invention should instead be determined from the scope of the following claims including their equivalents.
5 sheets
Sheet 1 Sheet 2 Sheet 3 Sheet 4 Sheet 5
14 members in 4 offices
Priority claims2
| Document | Office | Kind | Date |
|---|---|---|---|
| 554517 | United States of America | – | |
| 55451706 | United States of America | A |
Members14
| Document | Office | Kind | |
|---|---|---|---|
| US2008099093A1 | United States of America | A1 | |
| EP1918627A2 | European Patent Office (EPO) | A2 | |
| US7472720B2 | United States of America | B2 | |
| EP1918627A3 | European Patent Office (EPO) | A3 | |
| US2009114299A1 | United States of America | A1 | |
| US7690399B2 | United States of America | B2 | |
| US2010263758A1 | United States of America | A1 | |
| US7950417B2 | United States of America | B2 | |
| EP1918627B1 | European Patent Office (EPO) | B1 | |
| AT520922T | Austria | T | |
| ATE520922T1 | Austria | T1 | |
| ES2369191T3This record | Spain | T3 | |
| US2012024387A1 | United States of America | A1 | |
| US8439081B2 | United States of America | B2 |
Numbers
- Publication
- 2369191
- Application
- 7119650
Titles2
- Spanish
- SISTEMA DE BOQUILLAS DE ALTO FLUJO PARA EL CONTROL DEL FLUJO EN TANQUES DE COMPENSACION DE VEJIGA.
- English
- HIGH FLOW NOZZLE SYSTEM FOR FLOW CONTROL IN BLADDER COMPENSATION TANKS.
Classification
- CPC, 3
- F16L55/054
- Y10T137/0396
- Y10T137/0318
- IPC, 1
- F16L55 053