SENSOR ARRANGEMENT FOR MEASURING THE PRESSURE AND TEMPERATURE OF A FLUID
20220291067 ยท 2022-09-15
Inventors
Cpc classification
G01L19/0092
PHYSICS
G01L9/0041
PHYSICS
G01K13/02
PHYSICS
G01L9/08
PHYSICS
International classification
G01L19/00
PHYSICS
G01K13/02
PHYSICS
G01L9/00
PHYSICS
Abstract
The invention relates to a sensor arrangement (10) for measuring the pressure and temperature of a fluid, the sensor arrangement (10) including a housing (12), a pressure sensor element (18), and a temperature sensor case (20), wherein the housing (12) includes a passage (22) and a fluid opening (24), the passage (22) and the fluid opening (24) being in fluid communication, wherein the pressure sensor element (18) is connected to the housing (12), the pressure sensor element (18) being in fluid communication with the passage (22), wherein the temperature sensor case (20) includes at least one temperature sensor element (30), the temperature sensor case (20) being at least partially arranged in the passage (22), wherein the sensor arrangement (10) further includes an attachment element (26), wherein the attachment element (26) attaches the temperature sensor case (20) to the passage (22), wherein the sensor arrangement (10) further includes a fluid channel (28) extending at least in part between the housing (12) and the temperature sensor case (20), the fluid channel (28) passing the attachment element (26) and being in fluid communication with the fluid opening (24) and the pressure sensor element (18). The invention provides an improved sensor arrangement (10) for measuring the pressure and temperature of a fluid that includes a reduced size and is cost-efficient.
Claims
1. A sensor arrangement for measuring the pressure and temperature of a fluid, the sensor arrangement comprising a housing, a pressure sensor element, and a temperature sensor case, wherein the housing comprises a passage and a fluid opening, the passage and the fluid opening being in fluid communication, wherein the pressure sensor element is connected to the housing, the pressure sensor element being in fluid communication with the passage, wherein the temperature sensor case comprises at least one temperature sensor element, the temperature sensor case being at least partially arranged in the passage, wherein the sensor arrangement further comprises an attachment element, wherein the attachment element attaches the temperature sensor case to the passage, wherein the sensor arrangement further comprises a fluid channel extending at least in part between the housing and the temperature sensor case, the fluid channel passing the attachment element and being in fluid communication with the fluid opening and the pressure sensor element.
2. The sensor arrangement according to claim 1, wherein the temperature sensor case comprises at least a portion of the fluid channel.
3. The sensor arrangement according to claim 1, wherein the fluid channel comprises a channel portion being a recess on the temperature sensor case.
4. The sensor arrangement according to claim 1, wherein the fluid channel comprises a channel portion being a deformation on the temperature sensor case.
5. The sensor arrangement according to claim 1, wherein at least one portion of the fluid channel is arranged between the temperature sensor case and the attachment element, wherein at least one further portion of the fluid channel is arranged between the temperature sensor case and the passage.
6. The sensor arrangement according to claim 1, wherein the housing comprises a connector element and a plate element, wherein the passage and the fluid opening are arranged on the connector element, wherein the plate element closes the passage on an end portion of the passage, the end portion being opposite to the fluid opening, and wherein the pressure sensor element is arranged on the plate element.
7. The sensor arrangement according to claim 6, wherein the temperature sensor case extends through the plate element, wherein the temperature sensor case and the plate element comprise a sealing connection between each other.
8. The sensor arrangement according to claim 1, wherein the attachment element is an annular flange in the passage, the annular flange extending around a passage portion, wherein the temperature sensor case comprises an outer diameter that fills the passage portion.
9. The sensor arrangement according to claim 1, wherein the attachment element is arranged at the fluid opening.
10. The sensor arrangement according to claim 1, wherein the attachment element is arranged between the fluid opening and the pressure sensor element.
11. The sensor arrangement according to claim 1, wherein the fluid channel comprises a channel portion being arranged outside of the passage.
12. The sensor arrangement according to claim 1, wherein the fluid channel comprises a channel portion that is arranged on a tip of the temperature sensor case, the tip extending through the fluid opening out of the passage.
13. The sensor arrangement according to claim 1, wherein the fluid channel is configured to limit a dynamic of a fluid flowing through the fluid channel.
14. The sensor arrangement according to claim 13, wherein the fluid channel comprises a pressure pulsation attenuator for the fluid.
15. The sensor arrangement according to claim 1, wherein the fluid channel comprises an annular channel portion having an annular cross section extending around the temperature sensor case.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0042] Further features, details and advantages of the invention result from the wording of the claims as well as from the following description of exemplary embodiments based on the drawings. The figures show:
[0043]
[0044]
[0045]
[0046]
[0047] In the following description, reference sign 10 refers to the sensor arrangement in its entirety.
DETAILED DESCRIPTION
[0048]
[0049] The housing 12 comprises a fluid opening 24 and a passage 22. The housing 12 further comprises a connector element 14 having an outer threaded portion 40 and a mounting flange portion 42. The passage 22 is arranged in the connector element 14. The passage 22 extends through the connector element 14 from the fluid opening 24 to another opening being arranged on an end of the passage 22 being opposite to the fluid opening 24. A plate element 16 of the housing 12 closes that end of the passage 22. Plate element 16 may be a separate element secured to the mounting flange portion 42, or it may be formed as an integral part of housing 12.
[0050] The temperature sensor case 20 comprises a hollow sensor tube, preferably of cylindrical cross section, with an open end portion 34 and a closed end portion at a tip 32. A temperature sensor element 30, e.g. a thermistor, a thermocouple or any other suitable temperature sensor, is arranged inside the temperature case 20 at a position close to the tip 32 of the temperature sensor case 20. Electrical wires 36 connect to the temperature sensor element 30 and extend through the open end portion 34 of the temperature sensor case 20. The temperature sensor case 20 may be made of a thermally conducting material, preferably metal, to allow heat transfer from the fluid to the temperature sensor element 30. The material may be different from the material of the housing 12. Thermally conductive material, e.g. mineral powder or thermally conductive paste, is contained inside the temperature sensor case 20 to ensure optimum heat transfer between the wall of temperature case 20 and the temperature sensor element 30.
[0051] Furthermore, the temperature sensor case 20 is arranged in the passage 22, wherein the tip 32 of the temperature sensor case 20 extends out of the passage 22. However, the closed end of the temperature case 20 may also be arranged flush with the fluid opening 24 or even inside the passage 22. The open end portion 34 of the temperature sensor case 20 extends through the plate element 16. The connection between the plate element 16 and the open end portion 34 is sealed.
[0052] The attachment element 26 connects the temperature sensor case 20 to the passage 22. The temperature sensor case 20 may be connected to the attachment element 26 e.g. by press-fitting, welding, soldering or other suitable methods.
[0053] In a first exemplary embodiment, the passage 22 may comprise the attachment element 26. Therefore, the attachment element 26 may protrude from the inner wall of the passage 22 into the passage 22.
[0054] In another exemplary embodiment, the attachment element 26 may be a separate component being introduced between the temperature sensor case 20 and the passage 22 to attach the temperature sensor case 20 to the passage 22.
[0055] In another exemplary embodiment, the temperature sensor case 20 may comprise the attachment element 26. In this case, the attachment element 26 may for example be a portion of the wall of the temperature sensor case 20 protruding away from the temperature sensor case 20.
[0056] In this exemplary embodiment, the attachment element 26 is a cylindrical portion of the passage 22. The diameter of the sensor tube substantially corresponds to the diameter of the cylindrical portion of the passage 22. Thus, the temperature sensor case 20 and the attachment element 26 fill the whole diameter of the passage 22. In this exemplary embodiment, the attachment element 26 extends from a position close to the fluid opening 24 along the majority of the passage 22 towards the pressure sensor element 18.
[0057] In this exemplary embodiment, a channel portion 27 of the fluid channel 28 is formed as a recess in the wall surface of the temperature sensor case 20 facing the attachment element 26. The length of the fluid channel 28 exceeds the axial direction of the attachment element 26, so that the fluid channel 28 communicates with the fluid opening 24 and the pressure sensor element 18. The axial direction extends from the fluid opening 24 along the passage 22. The fluid channel 28 therefore circumvents the attachment element 26. A first channel portion of the fluid channel 28 extends between the passage 22 and the temperature sensor case 20. A further channel portion of the fluid channel 28 extends between the attachment element 26 and the temperature sensor case 20. The fluid channel 28 therefore bridges the position of the attachment element 26 in axial direction along the passage 22. This allows a fluid to pass through the fluid channel 28 to reach the pressure sensor element 18.
[0058] The hollow sensor tube of the temperature case 20 may also have other cross sectional shapes than circular, e.g. oval, square or rectangular shapes, adapted to the cross sections of passage 22 and/or the attachment element 16 to form the fluid channel 28.
[0059] The pressure sensor element 18 is attached to a surface of the plate element 16 facing away from the housing 12. An opening in the plate element 16 communicates the fluid from the passage 22 to the pressure sensor element 18.
[0060] The mounting flange portion 42 may comprise a sealing element 38 for sealing a connection of the sensor arrangement 10 to a fluid line.
[0061] The pressure sensor element 18 comprises at least one pressure sensitive element, e.g. a piezo-resistive, piezo-electric or capacitive sensor element. Preferably, the pressure sensor element 18 comprises a Micro-Electro-Mechanical Systems MEMS chip device, a thinfilm or a thickfilm device comprising at least one piezo-resistor.
[0062]
[0063] The fluid channel 28 extends from the tip 32 of the temperature sensor case 20 along most of the temperature sensor case 20. Furthermore, the fluid channel 28 ends close to the open end portion 34 of the temperature sensor case 20. At the position of the fluid channel 28, the temperature sensor case 20 comprises a smaller diameter than at the further positions of the temperature sensor case 20 around the axial direction.
[0064] The fluid channel 28 may also be formed as a groove into the wall of the temperature sensor case 20.
[0065]
[0066] In
[0067]
[0068] The attachment element 26 in this exemplary embodiment comprises a protrusion extending between the passage 22 wall and temperature sensor case 20 wall. In this example, the attachment element 26 comprises two protrusions. The fluid channel 28 of this exemplary embodiment comprises two portions, which are arranged between the protrusions, the passage 22 and the temperature sensor case 20.
[0069]
[0070] Thus, the attachment element 26 divides the passage 22 in an upper portion and a lower portion. The upper portion is arranged between the pressure sensor element 18 and the attachment element 26. The lower portion is arranged between the attachment element 26 and the fluid opening 24.
[0071] The fluid channel 28 is arranged at the temperature sensor case 20 and extends along the whole passage 22. Furthermore, the fluid channel 28 comprises a channel portion that is arranged at the tip 32 of the temperature sensor case 20. The tip 32 and the channel portion extend through the fluid opening 24 out of the passage 22.
[0072]
[0073] By adjusting the shape, the size, and the length of the channel portion 27 that is provided by the temperature sensor case 20, the dynamics of the fluid flowing through the fluid channel 28 may be limited. The fluid channel 28 may therefore act as pressure pulsation attenuator for the fluid. Hammer effects in the fluid, which produce pressure spikes, may therefore be shielded from the pressure sensor element 18 by the fluid channel 28.
[0074] The invention is not limited to one of the aforementioned embodiments. It can be modified in many ways.
[0075] All features and advantages resulting from the claims, the description and the drawing, including constructive details, spatial arrangements and procedural steps, may be essential for the invention both in themselves and in various combinations.