The invention relates to pressure sensing devices and fluid assemblies. For example, devices and assemblies embodying the invention may be used to sense the difference in pressure, i.e., the pressure differential, between a fluid at a first pressure and a fluid at a second pressure. The fluid may be a gas, a liquid, or a mixture of gases, liquids, and/or solids.
In accordance with one aspect of the invention, a pressure sensing device may comprise a housing, a deflectable element, a deflection sensing circuit, and a layer of solid, insulative material. First and second fluid passages are associated with the housing, and the deflectable element has first and second opposite sides. The deflectable element is mounted to the housing with the first side coupled to the first fluid passage and the second side coupled to the second fluid passage. When a fluid at a first pressure is directed along the first fluid passage, the first pressure is applied against the first side of the deflectable member. When a fluid at a second pressure is directed along the second fluid passage, the second pressure is applied against the second side of the deflectable member. The deflectable member may then deflect toward the first fluid passage if the second pressure is greater than the first pressure or toward the second fluid passage if the first pressure is greater than the second pressure. The amount of deflection will depend on the pressure differential. The deflection sensing circuit and the solid, inorganic, insulative layer are supported by the first side of the deflectable element. The deflection sensing circuit senses the deflection of the deflectable element and, therefore, the differential pressure. The solid, insulative layer overlies the deflection sensing circuit to electrically insulate the deflection sensing circuit from the first fluid passage and any fluid in the first fluid passage.
In accordance with another aspect of the invention, a pressure sensing device may comprise a housing, a deflectable metal diaphragm, a mechanical stop, a deflection sensing circuit, a ring seal, and an electrical connector. The housing has a metal portion, and first and second fluid passages are associated with the housing. The deflectable metal diaphragm has first and second opposite sides. The deflectable metal diaphragm is mounted to the metal portion of the housing with the first side of the diaphragm coupled to the first fluid passage and the second side coupled to the second fluid passage. Again, when a fluid at a first pressure and a fluid at a second pressure are directed along the first and second fluid passages, the first and second pressures are respectively applied against the first and second opposite sides of the deflectable metal diaphragm, deflecting the diaphragm in accordance with the differential pressure. The mechanical stop is associated with the first side of the diaphragm and is arranged to limit the deflection of the diaphragm toward the first fluid passage a predetermined value. The deflection sensing circuit, which is supported by the first side of the deflectable metal diaphragm, includes first and second thin insulative layers and a thin-film strain gauge circuit positioned between the first and second insulative layers. The deflection sensing circuit, including the strain gauge circuit, senses the amount of deflection of the deflectable metal diaphragm and, therefore, the differential pressure. The seal is positioned between the housing and the first side of the deflectable metal diaphragm, defining an inner region and an outer region of the first side of the diaphragm. The inner region includes at least a portion of the strain gauge circuit and is coupled to the first fluid passage, while the outer region is isolated from the first fluid passage by the seal. Thus, the fluid in the first fluid passage exerts the first pressure against the first side of the deflectable metal diaphragm, and the insulative layers of the deflection sensing circuit electrically insulate the strain gauge circuit from the fluid in the first passage and from the deflectable metal diaphragm. The electrical connector is associated with the strain gauge circuit and extends between the inner and outer regions of the first side of the deflectable metal diaphragm.
In accordance with another aspect of the invention, a pressure sensing assembly may comprise a fitting, deflectable element, a deflection sensing circuit, an insulative layer, and a receptacle. A first fluid passage and a second fluid passage are associated with the fitting, and the deflectable element has a first and second opposite sides. The deflectable element is mounted to the fitting with the first side coupled to the first fluid passage and the second side coupled to the second fluid passage. Again, when a fluid at a first pressure and a fluid at a second pressure are directed along the first and second fluid passages, the first and second pressures are respectively applied against the first and second opposite sides of the deflectable element, deflecting the deflectable element in accordance with the differential pressure. The deflection sensing circuit, which is supported on the first side of the deflectable element and includes a thin-film strain gauge circuit, senses the deflection of the deflectable element and, therefore, the differential pressure. The insulative layer is also supported by the first side of the deflectable element and overlies the deflection sensing circuit to electrically insulate the deflection sensing circuit from the first fluid passage and any fluid in the first fluid passage. The receptacle includes a pressure sensing port having a well. The well of the pressure sensing port receives the fitting with the deflectable element positioned within the well. The receptacle fluidly connects the first fluid passage of the fitting to a source of the fluid at the first pressure and the second fluid passage of the fitting to a source of the fluid at the second pressure.
Pressure sensing devices and fluid assemblies embodying one or more aspects of the invention have many advantages. For example, with an insulative layer overlying the deflection sensing circuit and supported by the deflectable element, the deflection sensing circuit is electrically insulated from any fluid which might damage the deflection sensing circuit. Fluids can be coupled to both sides of the deflectable element or diaphragm, and the first and second pressures can be directly applied to both sides of the deflectable element or diaphragm, without the use of additional protective features, such as isolating diaphragms, intermediate dielectric liquids, and complex manifold arrangements. This not only substantially reduces the size, weight, and complexity of the devices and assemblies embodying the invention, it also significantly enhances their reliability and responsiveness.
Pressure sensing devices and assemblies embodying one or more aspects of the invention may be structured in a wide variety of ways. One of many examples of a pressure sensing device 10 is shown in
A fluid at a first pressure may be directed along the first fluid passage 13, applying the first pressure directly against the outboard side 14 of the deflectable element 12. A fluid at a second pressure may be directed along the second fluid passage 15, applying the second pressure directly against the inboard side 16 of the deflectable element 12. The deflectable element 12 deflects in proportion to the pressure differential. The deflection sensing circuit 20 senses the deflection and, therefore, the differential pressure. The insulative layer 21 protects the deflection sensing circuit 20, for example, by electrically insulating the deflection sensing circuit 20 from the fluid in the first fluid passage 13.
The housing of the pressure sensing device may be fashioned from any material which has sufficient structural integrity and is sufficiently impervious, such as a metallic material or a polymeric material, and may be configured in numerous ways. The housing may be a single piece structure or a multipiece structure. As shown in
The first and second fluid passages may be variously configured and may be associated with the housing in several ways. As shown in
The deflectable element may be variously configured. For example, the deflectable element may comprise a thin, regularly or irregularly shaped diaphragm which can deflect upon application of a pressure differential on both sides of the diaphragm. The thickness may be uniform or non-uniform. In the embodiment illustrated in
The deflectable element 5 may be fashioned from any suitably deflectable material, including, for example, silicon, sapphire, a metal, an elastomer, or a polymer, and may be a single or multi piece structure distinct from the housing. For many embodiments, the deflectable element and the housing are fashioned from materials having similar coefficients of thermal expansion to reduce thermal stress. The deflectable element may be mounted in a variety of ways and in a variety of locations to the housing with the outboard and inboard sides coupled to the first and second fluid passages. For example, the deflectable element may be welded, bonded or mechanically connected to the housing at either end of the housing or intermediate the ends of the housing. Further, the deflectable element may be mounted generally perpendicular to a longitudinal axis of the housing, generally parallel to a longitudinal axis o the housing, or at any angle between perpendicular and parallel.
In the embodiment as shown in
The deflection sensing circuit 20 may be configured in any manner which enables the deflection of the deflectable element 12 to be sensed. For example, the deflection sensing circuit 20 may have an electrical parameter which changes in response to deflection of the deflectable element 12. For many embodiments, the deflection sensing circuit 20 may comprise a strain gauge circuit 40, such as a thin-film strain gauge circuit, which includes a resistance network that changes resistance in proportion to the deflection of the deflectable element.
The deflection sensing circuit may be supported by one or both sides of the deflectable element. For many embodiments, the deflection sensing circuit 20 may be supported by only one side of the deflectable element 12, e.g., the side closest to the electronic components 25. In the embodiment shown in
The deflection sensing circuit 20 may be supported by one or both sides of the deflectable element 12 facing one or both adjacent fluid passages 13, 15. To electrically insulate the deflection sensing circuit 20 from the fluid passages 13, 15, and any fluid in the fluid passages 13, 15, an insulative layer 21 which is supported by the deflectable element 12 overlies the deflection sensing element 20. The overlying insulative layer 21 may also be fashioned from any suitably insulative material, including a solid, inorganic material, such as glass. In the embodiment shown in
Electrical signals may be supplied to or from the deflection sensing circuit in any of numerous ways. For example, the deflection sensing circuit may be electrically coupled via a wireless connection to other electrical components within the pressure sensing device or elsewhere. Alternatively, the deflection sensing circuit may be electrically coupled to other electrical components by one or more electrical connectors. The electrical connectors may be variously configured and may be routed to and/or from the deflection sensing circuit in a variety of ways.
For many embodiments, the deflection sensing circuit may be electrically coupled to other electrical components via one or more electrical connectors positioned on the same side of the deflectable element as the deflection sensing circuit and in a region isolated from the fluid passages. For example, in the embodiment shown in
Pressure sensing devices embodying the invention may be operated in numerous ways. In one mode of operation, fluid at a lower pressure may be directed along the first fluid passage 13 and fluid at a higher pressure may be directed along the second fluid passage 15. The lower pressure fluid is thus coupled to the outboard side 14 of the deflectable element 12 while the higher pressure fluid is coupled to the inboard side 16 of the deflectable element 12. One advantage of this mode of operation is that the weld between the inboard and outboard pieces 22, 23 is maintained in compression by the differential pressure, which enhances the durability and reliability of the pressure sensing device.
With the low pressure fluid and the high pressure fluid respectively coupled to the outboard and inboard sides 14, 16 of the deflectable element 12, the deflectable element 12 deflects toward the gap 31 of the first fluid passage 13 and the outboard piece 23 of the housing 11. For many embodiments, the amount of deflection may be limited by a stop 52. The stop 52 may be arranged to allow the deflectable element 12 to deflect freely over a normal operating range but to contact the deflectable element 12 and limit further deflection beyond the normal operating range. For example, the stop 52 may be arranged to limit the deflection of the deflectable element to a predetermined value. The predetermined value may vary for different diaphragm configurations and may depend on several factors, including, for example, the diameter of the diaphragm, the diameter of the thickened section, the thickness of the annular section, and the diaphragm material. For some embodiments, the predetermined value may be about 0.010 inch or less, or about 0.005 inch or less, or about 0.003 inch or less, e.g., about 0.002 inch or less. The stop thus protects the deflectable element from over-pressure or line pressure in second fluid passage. For example, the pressure sensing device may be used to measure differential pressures on the order of 100 psid for fluids which may have a line pressure on the order of 5000 psi. If the first fluid passage were to leak to atmosphere, the differential pressure across the deflectable element would be about 5000 psid and the stop would prevent undue deflection of the deflectable element. The stop and the small gap width allow the pressure sensing device to be used in environments where the ratio of over-pressure or line pressure to nominal differential pressure is up to about 50:1 or even greater than about 50:1.
The stop may be configured in a variety of ways and may be located in a variety of positions. For example, the stop may be an additional mechanical structure mounted to the housing or the deflectable element. For many embodiments, the stop may comprise an existing portion of the housing or the deflectable element, eliminating the need for additional structure and, thereby, reducing both the size and weight of the pressure sensing device. For example, in the embodiment shown in
The deflectable element 12 deflects in proportion to the differential pressure, and the deflection sensing circuit 20 senses the deflection and provides an electrical signal indicative of the differential pressure. For example, the thin-film strain gauge circuit 40 may have a resistance network which changes resistance in proportion to the amount of deflection and provides a corresponding electrical signal indicative of the differential pressure. The electrical signal may be sent to an electrical system which monitors the differential pressure via the electrical connectors 46, 51 and electronic components 25.
Pressure sensing devices embodying the invention allow the low pressure fluid and the high pressure fluid to be directly coupled to both sides of the deflectable element, i.e., the fluids contact both sides of the deflectable element or contact a structure, such as the thin-film strain gauge circuit and the insulative layers, which is supported by one or both sides of the deflectable element. The pressures of the fluids are applied directly against both sides of a deflectable element without the use of additional protective features, such as isolating diaphragms, intermediate dielectric liquids, and complex manifold arrangements which direct the low pressure fluid and the high pressure fluid to separate sensing diaphragms. Pressure sensing devices embodying the invention thus provide a rapidly responsive, highly accurate indication of differential pressure in a small, light-weight package.
Pressure sensing devices embodying the invention may be used in a wide variety of fluid assemblies. For example, many fluid assemblies include filter elements to filter impurities from fluids flowing through the fluid assemblies. The filter element may be used to remove impurities, for example, from hydraulic liquids or lubricant liquids. The pressure sensing device may be used in such a fluid assembly to monitor the differential pressure across the filter element and determine if the filter element should be replaced by a clean filter element. For many embodiments, the pressure sensing device may be small enough to fit the active portion of the device, e.g., the deflectable element and the deflection sensing circuit, into the pressure sensing port of the fluid assembly.
For example, the fluid assembly 100 shown in
The pressure sensing device, for example, a pressure sensing device 10 similar to that shown in
The fitting 53 may be variously configured. In the embodiment shown in
A seal 55, for example, an O-ring seal, may be mounted between the fitting 53 and the receptacle 104 to seal any fluid in the first channel 112 and the first fluid passage 13 from the ambient environment. The seal 55 may be mounted, for example, between the flange 54 and the ledge 114 or between the outer cylindrical surface of the fitting 53 and the cylindrical wall 110 of the well 106. The seal 55 is axially positioned outboard of the intersection of the first fluid passage 13 with the outer cylindrical surface of the fitting 53 and outboard of the intersection of the first channel 112 with the cylindrical wall 110 of the well 106.
Another seal 56, for example, another O-ring seal, may be mounted between the fitting 53 and the receptacle 104 to seal any fluid in the first channel 112 or the first fluid passage 13 from any fluid in the second channel 113 or the second fluid passage 15. The seal 56 may be mounted between the outer cylindrical surface of the fitting 53 and the cylindrical wall 110 of the well 106 and may be axially positioned inboard of the intersection of the first fluid passage 13 with the outer cylindrical surface of the fitting 53 and inboard of the intersection of the first channel 112 with the cylindrical wall 110 of the well 106. Alternatively, the seal may be mounted in the bore of the inboard housing piece between an inner wall of the inboard housing piece and a hollow cylindrical boss (not shown) which extends into the bore from the base of the well.
In one mode of operation, lower pressure fluid from the filter outlet line 103 may be coupled to the outboard side 14 of the deflectable element 12 via the first channel 112 and the first fluid passage 13, while higher pressure fluid from the filter inlet line 102 may be coupled to the inboard side 16 of the deflectable element 12 via the second channel 113 and the second fluid passage 15. The deflection sensing circuit 20 responds to the deflection of the deflectable element 12 and provides a signal indicative of the differential pressure, which, for the fluid assembly 100 shown in
While pressure sensing devices and fluid assemblies embodying one or more aspects of the invention have been previously described and/or illustrated in the Figures, the invention is not limited to these embodiments. For instance, one or more of the features of these embodiments may be eliminated without departing from the scope of the invention. For example, one or more of the electronic components 25 and/or temperature sensors 26 may be eliminated from the chamber 24 of the housing 11. This may further reduce the size and weight of the pressure sensing device.
Further, one or more features of one embodiment may be combined with one or more features of other embodiments and/or one or more features of the embodiments may be modified without departing from the scope of the invention. For example, as shown in
The pressure sensing device 10 shown in
The second stop 57 may be configured in many different ways. In the embodiment shown in
Further, a pressure sensing device embodying the invention may be combined with other components, such as other sensing elements, to create a more multipurpose device. For example, the multipurpose device may also include additional temperature sensors, a gauge pressure sensor, a water content sensor, and/or a flow sensor, e.g., a device that senses differential pressure across an orifice.
This application claims priority based on U.S. Provisional Application No. 60/608,876, which was filed on Sep. 13, 2004, and which is incorporated by reference in its entirety for any and all purposes.
| Filing Document | Filing Date | Country | Kind | 371c Date |
|---|---|---|---|---|
| PCT/US05/31998 | 9/8/2005 | WO | 00 | 3/13/2007 |
| Number | Date | Country | |
|---|---|---|---|
| 60608876 | Sep 2004 | US |