Oil filter device

The oil filter device simplifies its structure by using a conductive bypass valve system controlled by a controller to manage fluid flow and detect clogging, preventing pressure buildup and extending the device's lifespan.

JP7767190B2Active Publication Date: 2025-11-11KOMATSU LTD
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Patent Information

Application Number
JP2022040521
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-03-15
Publication Date
2025-11-11
Estimated Expiration
2042-03-15

AI Technical Summary

Technical Problem

Existing oil filter devices are complex in structure, which can lead to inefficiencies and potential damage due to clogged filter elements.

Method used

An oil filter device with a simplified structure comprising a filter case, conductive components, and a bypass valve system controlled by a controller to manage fluid flow and detect filter element clogging, using electrical resistance to determine the status of the bypass flow path.

Benefits of technology

The simplified structure prevents excessive pressure buildup and damage to the filter element by automatically adjusting fluid flow, ensuring efficient operation and extending the device's lifespan.

✦ Generated by Eureka AI based on patent content.

Smart Images

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    Figure 0007767190000003
Patent Text Reader

Abstract

To simplify a structure of an oil filter device.SOLUTION: An oil filter device 6 includes: a filter case 7 having a conductive lid body 26 covering a case body 25 and a case opening 25C; a filter element 8 of a main flow path of a filter case internal space; a conductive valve body 27 of the bypass flow path in the internal space; a conductive valve shaft 28 supported by the valve body via a valve insulation member 30; a conductive valve disc 31 moving in the valve shaft, contacting the valve body, and closing the bypass flow path; a valve elastic member 33 bringing the valve disc into contact with the valve body; a conductive input member 17 supported by the lid body via a case insulation member 19; a conductive relay elastic member 21 connected to the input member; a conductive relay member 22 connected to the relay elastic member on the valve shaft; and a controller determining whether or not there is a bypass flow path is closed on the basis of a conductive state between the valve disc and the valve body.SELECTED DRAWING: Figure 4
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Description

[Technical Field]

[0001] The present disclosure relates to an oil filter device. [Background technology]

[0002] BACKGROUND ART In the technical field related to oil filter devices, an oil filter device such as that disclosed in Patent Document 1 is known. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] International Publication No. 2017 / 191852 Summary of the Invention [Problem to be solved by the invention]

[0004] The present disclosure aims to simplify the structure of an oil filter device. [Means for solving the problem]

[0005] According to the present disclosure, there is provided an oil filter device comprising: a filter case having a case body and a conductive lid body that covers a case opening provided in the case body; a filter element arranged in a main flow path provided in an internal space of the filter case; a conductive valve body arranged in a bypass flow path provided in the internal space; a conductive valve shaft supported on the valve body via a valve insulating member; a conductive valve disc that is movably supported on the valve shaft and contacts the valve body to close the bypass flow path; a valve elastic member that generates an elastic force so that the valve disc contacts the valve body; a conductive input member supported on the lid body via the case insulating member; a conductive relay elastic member connected to the input member; a conductive relay member fixed to the valve shaft and connected to the relay elastic member; and a controller that supplies current to the valve disc via the input member and determines whether the bypass flow path is closed based on the electrical connection between the valve disc and the valve body. [Effects of the Invention]

[0006] According to the present disclosure, the structure of the oil filter device is simplified. [Brief explanation of the drawings]

[0007] [Figure 1] FIG. 1 is a diagram schematically illustrating a hydraulic system according to a first embodiment. [Figure 2] FIG. 2 is a perspective view showing the oil filter device according to the first embodiment. [Figure 3] FIG. 3 is a cross-sectional view showing the oil filter device according to the first embodiment. [Figure 4] FIG. 4 is a cross-sectional view showing a part of the oil filter device according to the first embodiment. [Figure 5] FIG. 5 is a cross-sectional view showing a part of the oil filter device according to the first embodiment. [Figure 6] FIG. 6 is a perspective cross-sectional view showing a part of the oil filter device according to the first embodiment, seen from the rear. [Figure 7]FIG. 7 is a perspective cross-sectional view showing a part of the oil filter device according to the first embodiment, viewed from the right. [Figure 8] FIG. 8 is a cross-sectional view showing a part of the oil filter device according to the first embodiment. [Figure 9] FIG. 9 is a diagram illustrating the operation of the oil filter device according to the first embodiment. [Figure 10] FIG. 10 is a diagram showing the operation of the valve disc and the movable member according to the first embodiment. [Figure 11] FIG. 11 is a cross-sectional view showing a bypass valve according to the second embodiment. [Figure 12] FIG. 12 is a diagram showing the operation of the valve disc and the movable member according to the second embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0008] Hereinafter, embodiments of the present disclosure will be described with reference to the drawings, but the present disclosure is not limited to the embodiments. The components of the embodiments described below can be combined as appropriate. In addition, some components may not be used.

[0009] [First embodiment] A first embodiment will be described.

[0010] <Hydraulic system> 1 is a diagram schematically showing a hydraulic system 1 according to this embodiment. The hydraulic system 1 is mounted on a work machine. Examples of the work machine include a hydraulic excavator, a bulldozer, a wheel loader, and a dump truck.

[0011] The hydraulic system 1 includes a hydraulic oil tank 2 , a hydraulic pump 3 , an operating valve 4 , a hydraulic actuator 5 , and an oil filter device 6 .

[0012] The hydraulic oil tank 2 stores hydraulic oil.

[0013] The hydraulic pump 3 discharges hydraulic oil. The hydraulic pump 3 has a suction port 3A and a discharge port 3B. The suction port 3A draws in hydraulic oil stored in the hydraulic oil tank 2. The discharge port 3B discharges the hydraulic oil drawn in from the hydraulic oil tank 2. The hydraulic oil discharged from the discharge port 3B is supplied to the hydraulic actuator 5 via the operation valve 4.

[0014] The operating valve 4 controls the flow rate and direction of the hydraulic oil supplied to the hydraulic actuator 5 .

[0015] The hydraulic actuator 5 is operated by hydraulic oil supplied from the hydraulic pump 3 via the operation valve 4. In the example shown in FIG. 1, the hydraulic actuator 5 is a hydraulic cylinder. The hydraulic cylinder extends and retracts by controlling the direction of the hydraulic oil supplied to the hydraulic cylinder with the operation valve 4. The operating speed of the hydraulic cylinder is controlled by controlling the flow rate of the hydraulic oil supplied to the hydraulic cylinder with the operation valve 4. The hydraulic actuator 5 may also be a hydraulic motor. The hydraulic oil discharged from the hydraulic actuator 5 is returned to the hydraulic oil tank 2 via the operation valve 4. The hydraulic oil tank 2 stores the hydraulic oil returned from the hydraulic actuator 5.

[0016] The oil filter device 6 collects foreign matter from the hydraulic oil. In this embodiment, the oil filter device 6 collects foreign matter from the hydraulic oil that is returned to the hydraulic oil tank 2 from the hydraulic actuator 5 via the operation valve 4.

[0017] The oil filter device 6 includes a filter case 7, a filter element 8, a bypass valve 9, and a controller 10.

[0018] The filter case 7 has an internal space in which the filter element 8 and the bypass valve 9 are respectively housed. The filter case 7 has a hydraulic oil inlet 7A and a hydraulic oil outlet 7B. The hydraulic oil from the operation valve 4 flows into the internal space of the filter case 7 through the inlet 7A. The hydraulic oil that has flowed into the internal space of the filter case 7 flows out from the internal space of the filter case 7 through the outlet 7B. The hydraulic oil that has flowed out from the outlet 7B is supplied to the hydraulic oil tank 2.

[0019] A main flow path 11 and a bypass flow path 12 are provided in the internal space of the filter case 7. The bypass flow path 12 is provided so as to bypass the main flow path 11. The filter element 8 is disposed in the main flow path 11. The bypass valve 9 is disposed in the bypass flow path 12.

[0020] The filter element 8 collects foreign matter from the hydraulic oil flowing through the main flow path 11. The filter element 8 has an inlet 8A for hydraulic oil and an outlet 8B for hydraulic oil. The hydraulic oil that flows into the filter element 8 through the inlet 8A passes through the filter element 8 and then flows out from the outlet 8B. As the hydraulic oil passes through the filter element 8, foreign matter contained in the hydraulic oil is collected by the filter element 8.

[0021] The upstream end of the bypass flow path 12 is connected to the main flow path 11 between the inlet 7A and the inlet section 8A. The downstream end of the bypass flow path is connected to the main flow path 11 between the outlet section 8B and the outlet 7B.

[0022] The bypass valve 9 opens and closes the bypass flow path 12. The bypass valve 9 has an inlet port 9A for hydraulic oil and an outlet port 9B for hydraulic oil. The inlet port 9A of the bypass valve 9 is connected to the inlet portion 8A of the filter element 8. The outlet port 9B of the bypass valve 9 is connected to the outlet portion 8B of the filter element 8. The bypass valve 9 opens and closes the bypass flow path 12 based on a differential pressure that indicates the difference between the pressure at the inlet portion 8A and the pressure at the outlet portion 8B of the filter element 8. The bypass valve 9 closes the bypass flow path 12 when the differential pressure is equal to or less than a specified value. The bypass valve 9 opens the bypass flow path 12 when the differential pressure exceeds the specified value. The specified value is a predetermined value for the differential pressure.

[0023] When the bypass flow path 12 is closed, the hydraulic oil that flows into the internal space of the filter case 7 from the inlet 7A passes through the main flow path 11 including the filter element 8, then flows out from the outlet 7B and is supplied to the hydraulic oil tank 2.

[0024] When the bypass flow path 12 is opened, at least a portion of the hydraulic oil that flows into the internal space of the filter case 7 from the inlet 7A passes through the bypass flow path 12 including the bypass valve 9, then flows out from the outlet 7B and is supplied to the hydraulic oil tank 2.

[0025] Foreign matter may be trapped in the filter element 8, which may cause the filter element 8 to become clogged. When the filter element 8 becomes clogged, the pressure difference between the inlet 8A and the outlet 8B increases. When the pressure difference between the inlet 8A and the outlet 8B increases, the bypass valve 9 operates to open the bypass flow path 12. Opening the bypass flow path 12 prevents the pressure difference between the inlet 8A and the outlet 8B from becoming excessively large. By preventing the pressure difference between the inlet 8A and the outlet 8B from becoming excessively large, damage to the filter element 8 is prevented.

[0026] The controller 10 supplies a current to the bypass valve 9 and determines whether the bypass flow path 12 is closed or not based on the current flow state of the bypass valve 9.

[0027] The controller 10 is disposed in the external space of the filter case 7. The controller 10 supplies current to the bypass valve 9 from outside the filter case 7.

[0028] The bypass valve 9 is connected to the controller 10 via an input line 13. The bypass valve 9 is grounded via an output line 14. The controller 10 supplies current to the bypass valve 9 via the input line 13. A portion of the input line 13 is arranged in the external space of the filter case 7. A portion of the input line 13 is arranged in the internal space of the filter case 7. A portion of the output line 14 is arranged in the internal space of the filter case 7. A portion of the output line 14 is arranged in the external space of the filter case 7.

[0029] When the bypass flow path 12 is closed, the current supplied to the bypass valve 9 via the input line 13 flows through the bypass valve 9 and then through the output line 14 .

[0030] When the bypass flow path 12 is opened, the current supplied to the bypass valve 9 via the input line 13 is cut off at the bypass valve 9 and does not flow through the output line 14 .

[0031] The controller 10 can determine whether the bypass flow path 12 is closed or not based on whether or not current is flowing through the bypass valve 9. The electrical resistance value of the electrical circuit including the input line 13, the bypass valve 9, and the output line 14 changes depending on whether or not current is flowing through the bypass valve 9. The controller 10 can determine whether or not the bypass flow path 12 is closed based on the electrical resistance value.

[0032] When the controller 10 determines that the bypass flow path 12 is closed, it can infer that the condition of the filter element 8 is good. When the controller 10 determines that the bypass flow path 12 is open, it can infer that the condition of the filter element 8 is bad. A condition in which the filter element 8 is bad includes a condition in which the filter element 8 is clogged.

[0033] <Oil filter device> FIG. 2 is a perspective view showing the oil filter device 6 according to this embodiment. FIG. 3 is a cross-sectional view showing the oil filter device 6 according to this embodiment, corresponding to the cross-sectional view taken along line AA in FIG. 2. FIG. 4 is a cross-sectional view showing a portion of the oil filter device 6 according to this embodiment, corresponding to an enlarged view of a portion of FIG. 3. FIG. 5 is a cross-sectional view showing a portion of the oil filter device 6 according to this embodiment, corresponding to the cross-sectional view taken along line BB in FIG. 2. FIG. 6 is a perspective cross-sectional view from the rear showing a portion of the oil filter device 6 according to this embodiment. FIG. 7 is a perspective cross-sectional view from the right showing a portion of the oil filter device 6 according to this embodiment. FIG. 8 is a cross-sectional view showing a portion of the oil filter device 6 according to this embodiment, corresponding to an enlarged view of a portion of FIG. 4.

[0034] In the following description, the positional relationship of each part will be explained using the terms "left," "right," "front," "rear," "upper," and "lower." These terms indicate relative positions or directions based on the center of the oil filter device 6.

[0035] A central axis AX is defined in the oil filter device 6. In this embodiment, the central axis AX extends in the vertical direction. A direction parallel to the central axis AX is referred to as the axial direction, as appropriate. A direction circumferentially around the central axis AX is referred to as the circumferential direction, as appropriate. A radial direction from the central axis AX is referred to as the radial direction, as appropriate. In the radial direction, a position closer to or approaching the central axis AX is referred to as the radially inner direction, as appropriate, and a position farther from or away from the central axis AX is referred to as the radially outer direction, as appropriate.

[0036] As shown in Figures 2, 3, 4, 5, 6, 7, and 8, the oil filter device 6 has a filter case 7, a strainer 15, a filter element 8, a bypass valve 9, a case elastic member 16, an input member 17, a fixing member 18, a case insulating member 19, a sealing member 20, a relay elastic member 21, a relay member 22, a lead wire 23, and a cover 24.

[0037] The filter case 7 has an internal space in which the filter element 8 and the bypass valve 9 are housed. The filter case 7 has a case body 25 and a lid .

[0038] The case body 25 has a peripheral wall portion 25A and a bottom plate portion 25B. The peripheral wall portion 25A is substantially cylindrical. In this embodiment, the central axis AX of the oil filter device 6 is the central axis of the peripheral wall portion 25A. The bottom plate portion 25B is connected to the lower end of the peripheral wall portion 25A.

[0039] The lid 26 is disposed so as to cover a case opening 25C provided in the case main body 25. The case opening 25C is provided at the upper end of the peripheral wall portion 25A. The lid 26 is fixed to the upper end of the case main body 25, for example, by bolts (not shown). The lid 26 is disk-shaped. The lid 26 has an upper surface 26A and a lower surface 26B. The upper surface 26A of the lid 26 faces the external space of the filter case 7. The lower surface 26B of the lid 26 faces the internal space of the filter case 7.

[0040] The lid 26 is conductive. The lid 26 is made of a conductive material. In this embodiment, the lid 26 is made of metal. Examples of the metal that forms the lid 26 include iron and steel.

[0041] As described with reference to FIG. 1, the filter case 7 has a hydraulic oil inlet 7A and a hydraulic oil outlet 7B. As shown in FIG. 3, the inlet 7A is provided in the peripheral wall portion 25A. The outlet 7B is provided in the bottom plate portion 25B. The hydraulic oil from the operation valve 4 flows into the internal space of the filter case 7 through the inlet 7A. The hydraulic oil that has flowed into the internal space of the filter case 7 flows out from the internal space of the filter case 7 through the outlet 7B. The hydraulic oil that has flowed out from the outlet 7B is supplied to the hydraulic oil tank 2.

[0042] The strainer 15 divides the internal space of the filter case 7 into a main flow path 11 and a bypass flow path 12. The strainer 15 defines the main flow path 11 and the bypass flow path 12 in the internal space of the filter case 7. The strainer 15 has a strainer body 15A and a flange portion 15B. The strainer 15 is provided in the main flow path 11 when the bypass valve 9 is closed. In this embodiment, the strainer body 15A is made of metal mesh. The strainer 15 is a filter with a larger filtration grain size than the filter element 8. When the bypass valve 9 is open, the strainer 15 prevents large foreign matter that could be fatal to the hydraulic system 1 from entering the bypass flow path 12.

[0043] The strainer body 15A is substantially cylindrical. The strainer body 15A is disposed so as to surround the central axis AX. The strainer body 15A is disposed radially inward of the filter element 8.

[0044] The flange portion 15B is substantially annular. The flange portion 15B is disposed so as to surround the central axis AX. The flange portion 15B is disposed around the upper end portion of the strainer body 15A. The flange portion 15B protrudes radially outward from the upper end portion of the strainer body 15A.

[0045] At least a portion of the main flow passage 11 is provided radially outward from the strainer body 15A, and at least a portion of the bypass flow passage 12 is provided radially inward from the strainer body 15A.

[0046] The filter element 8 is disposed in the main flow path 11. The filter element 8 collects foreign matter from the hydraulic oil flowing through the main flow path 11. The filter element 8 is substantially cylindrical. The filter element 8 is disposed so as to surround the central axis AX. The filter element 8 includes a cylindrical filter medium. The filter element 8 is disposed radially outward from the strainer body 15A. The flange portion 15B is supported on the upper surface of the filter element 8.

[0047] The filter element 8 has an outer surface 8C facing radially outward and an inner surface 8D facing radially inward. The inlet portion 8A of the filter element 8 includes the outer surface 8C. The outlet portion 8B of the filter element 8 includes the inner surface 8D. The hydraulic oil that flows into the internal space of the filter case 7 through the inlet 7A flows into the filter element 8 through the outer surface 8C. The hydraulic oil that flows into the filter element 8 through the outer surface 8C flows inside the filter element 8 radially inward. The hydraulic oil that has passed through the filter element 8 flows out from the inner surface 8D. As the hydraulic oil passes through the filter element 8, foreign matter contained in the hydraulic oil is captured by the filter element 8.

[0048] The bypass valve 9 is disposed in the bypass flow path 12. The bypass valve 9 opens and closes the bypass flow path 12. The bypass valve 9 has an inlet port 9A for hydraulic oil and an outlet port 9B for hydraulic oil. The inlet port 9A of the bypass valve 9 is connected to the inlet portion 8A of the filter element 8. The outlet port 9B of the bypass valve 9 is connected to the outlet portion 8B of the filter element 8.

[0049] The bypass valve 9 includes a valve body 27, a valve shaft 28, a positioning member 29, a valve insulating member 30, a valve disc 31, a support member 32, a valve elastic member 33, a movable member 34, and a disc elastic member 35.

[0050] The valve body 27 is disposed in the bypass flow path 12. The valve body 27 is disposed so as to surround the central axis AX. The valve body 27 is supported by the filter element 8. The valve body 27 has a sleeve portion 27A, a flange portion 27B, and a bridge portion 27C.

[0051] The sleeve portion 27A is substantially cylindrical. The sleeve portion 27A is disposed so as to surround the central axis AX. The sleeve portion 27A is disposed inside the filter element 8. The sleeve portion 27A is disposed radially inward of the strainer body 15A. The sleeve portion 27A has an inlet 27D for hydraulic oil and an outlet 27E for hydraulic oil. The inlet 27D is provided at an upper end of the sleeve portion 27A. The outlet 27E is provided at a lower end of the sleeve portion 27A. The inlet port 9A of the bypass valve 9 includes the inlet 27D. The outlet port 9B of the bypass valve 9 includes the outlet 27E.

[0052] The flange portion 27B is substantially annular. The flange portion 27B is arranged to surround the central axis AX. The flange portion 27B is arranged around the upper end portion of the sleeve portion 27A. The flange portion 27B protrudes radially outward from the upper end portion of the sleeve portion 27A. The flange portion 27B is supported on the upper surface of the filter element 8. In this embodiment, the flange portion 27B is supported on the upper surface of the filter element 8 via the flange portion 15B of the strainer 15.

[0053] The bridge portion 27C is disposed inside the sleeve portion 27A. The bridge portion 27C is disposed radially inward from the sleeve portion 27A. The bridge portion 27C protrudes radially inward from the inner surface of the sleeve portion 27A, which faces radially inward.

[0054] The valve body 27 is electrically conductive. The valve body 27 is made of an electrically conductive material. In this embodiment, the valve body 27 is made of metal. Examples of the metal that forms the valve body 27 include aluminum and steel.

[0055] The valve shaft 28 is a rod-shaped member extending in the vertical direction. The central axis of the valve shaft 28 and the central axis AX of the peripheral wall portion 25A substantially coincide with each other. At least a portion of the valve shaft 28 is disposed radially inward of the valve body 27. The valve shaft 28 is supported by the valve body 27. In this embodiment, the valve shaft 28 is supported by a bridge portion 27C. At least a portion of the bridge portion 27C is disposed around the valve shaft 28.

[0056] The valve shaft 28 is electrically conductive. The valve shaft 28 is made of an electrically conductive material. In this embodiment, the valve shaft 28 is made of metal. Examples of the metal that forms the valve shaft 28 include iron and steel.

[0057] The positioning member 29 is coupled to the valve shaft 28 so as to position the valve shaft 28 in the valve body 27. The valve shaft 28 is positioned in the valve body 27 by the positioning member 29. The positioning member 29 is disposed above the bridge portion 27C. The positioning member 29 is disposed around the valve shaft 28 above the bridge portion 27C. In this embodiment, a screw thread is formed on the outer surface of the upper part of the valve shaft 28. The positioning member 29 includes a nut having a thread groove that is coupled to the screw thread of the valve shaft 28. The positioning member 29 is supported on the upper surface of the bridge portion 27C while coupled to the valve shaft 28. Because the positioning member 29 coupled to the valve shaft 28 is supported on the upper surface of the bridge portion 27C, downward movement of the valve shaft 28 relative to the valve body 27 is prevented. The positioning member 29 prevents changes in the relative position between the valve body 27 and the valve shaft 28.

[0058] The valve insulating member 30 insulates the valve body 27 from the valve shaft 28. The valve insulating member 30 has electrical insulating properties. The valve insulating member 30 is made of an insulating material. In this embodiment, the valve insulating member 30 is made of synthetic resin.

[0059] The valve shaft 28 is supported by the valve body 27 via a valve insulating member 30. The valve insulating member 30 blocks current between the valve body 27 and the valve shaft 28.

[0060] In this embodiment, the valve insulating member 30 includes a first valve insulating member 30A disposed between the valve body 27 and the valve shaft 28, and a second valve insulating member 30B disposed between the valve body 27 and the positioning member 29.

[0061] The first valve insulating member 30A insulates the valve body 27 from the valve shaft 28. The first valve insulating member 30A blocks current between the valve body 27 and the valve shaft 28. The first valve insulating member 30A prevents current from being supplied from the valve shaft 28 to the valve body 27. In this embodiment, the first valve insulating member 30A is disposed between the inner surface of the bridge portion 27C and the outer surface of the valve shaft 28. The first valve insulating member 30A is cylindrical. The first valve insulating member 30A is sandwiched between the inner surface of the bridge portion 27C and the outer surface of the valve shaft 28. The valve shaft 28 is supported by the bridge portion 27C via the first valve insulating member 30A.

[0062] The second valve insulating member 30B insulates the valve body 27 from the positioning member 29. The second valve insulating member 30B blocks current between the valve body 27 and the positioning member 29. The second valve insulating member 30B prevents current from being supplied from the valve shaft 28 to the valve body 27 via the positioning member 29. In this embodiment, the second valve insulating member 30B is disposed between the lower surface of the positioning member 29 and the upper surface of the bridge portion 27C. The second valve insulating member 30B is sheet-shaped. The second valve insulating member 30B is sandwiched between the lower surface of the positioning member 29 and the upper surface of the bridge portion 27C. A portion of the second valve insulating member 30B is fixed to the upper surface of the bridge portion 27C by a screw 36. The positioning member 29 is supported by the bridge portion 27C via the second valve insulating member 30B.

[0063] In this embodiment, the first valve insulating member 30A is made of polybutylene terephthalate (PBT), a thermoplastic resin. Polybutylene terephthalate has excellent moldability. The first valve insulating member 30A can be manufactured by injection molding polybutylene terephthalate. The second valve insulating member 30B is made of glass epoxy resin, a thermosetting resin. Glass epoxy resin has high mechanical strength and excellent heat resistance.

[0064] The valve disc 31 is movably supported on the valve shaft 28. The valve disc 31 is movable up and down relative to the valve shaft 28. The valve disc 31 is positioned radially inward from the strainer body 15A. The valve disc 31 is movable up and down radially inward from the strainer body 15A. A slide hole 31A is provided in the center of the valve disc 31. The slide hole 31A is provided to extend in the up and down direction. The valve shaft 28 is inserted into the slide hole 31A of the valve disc 31. The inner surface of the slide hole 31A is slidable relative to the outer surface of the valve shaft 28. The valve disc 31 is guided up and down by the valve shaft 28.

[0065] The valve disc 31 closes the bypass flow path 12 by coming into contact with the valve body 27. The positioning member 29 prevents changes in the relative position between the valve body 27 and the valve shaft 28. As the valve disc 31 moves up and down relative to the valve shaft 28, the valve disc 31 changes between a closed state in which it comes into contact with the valve body 27 and an open state in which it moves away from the valve body 27. When the valve disc 31 is in the closed state, the bypass flow path 12 is closed. When the valve disc 31 is in the open state, the bypass flow path 12 is opened.

[0066] The valve disc 31 is disposed below the valve body 27. The valve disc 31 is disposed below the sleeve portion 27A.

[0067] The valve disc 31 moves upward relative to the valve shaft 28 and comes into contact with the lower end of the sleeve portion 27A. When the valve disc 31 comes into contact with the lower end of the sleeve portion 27A, the outlet 27E at the lower end of the sleeve portion 27A is closed by the valve disc 31. In this embodiment, the closed state of the valve disc 31 includes a state in which the valve disc 31 comes into contact with the lower end of the sleeve portion 27A and the outlet 27E is closed by the valve disc 31. When the outlet 27E is closed by the valve disc 31, the bypass flow path 12 is closed.

[0068] The valve disc 31 moves downward relative to the valve shaft 28 and moves away from the lower end of the sleeve portion 27A. As the valve disc 31 moves away from the lower end of the sleeve portion 27A, the outlet 27E at the lower end of the sleeve portion 27A is opened. In this embodiment, the open state of the valve disc 31 includes a state in which the valve disc 31 moves away from the lower end of the sleeve portion 27A and the outlet 27E is opened. As the outlet 27E is opened, the bypass flow path 12 is opened.

[0069] The valve disc 31 is electrically conductive. The valve disc 31 is made of an electrically conductive material. In this embodiment, the valve disc 31 is made of metal. Examples of metals that form the valve disc 31 include iron and steel.

[0070] The support member 32 is fixed to the lower end of the valve shaft 28. The outer diameter of the support member 32 is larger than the outer diameter of the valve shaft 28.

[0071] The valve elastic member 33 generates an elastic force so that the valve disc 31 contacts the valve body 27. The valve elastic member 33 imparts an elastic force to the valve disc 31 so that the valve disc 31 is in a closed state.

[0072] The valve elastic member 33 is disposed below the valve disc 31. The valve elastic member 33 is a compression coil spring disposed around the valve shaft 28 below the valve disc 31. The upper end of the valve elastic member 33 is connected to the lower surface of the valve disc 31. The lower end of the valve elastic member 33 is supported by the support member 32. The valve elastic member 33 applies an elastic force to the valve disc 31 so that the valve disc 31 comes into contact with the lower end of the sleeve portion 27A.

[0073] The movable member 34 is connected to the valve body 27. At least a portion of the movable member 34 contacts the valve body 27. The movable member 34 is movably supported by the valve body 27. The movable member 34 is disposed inside the sleeve portion 27A. The movable member 34 is disposed radially inward of the sleeve portion 27A. In this embodiment, the movable member 34 is movably supported by the bridge portion 27C.

[0074] The movable member 34 is a rod-shaped member that extends in the vertical direction. In the radial direction, the movable member 34 is disposed adjacent to the valve shaft 28. The central axis of the movable member 34 extends in the vertical direction. The central axis of the movable member 34 and the central axis of the valve shaft 28 are substantially parallel to each other.

[0075] The movable member 34 has a pin portion 34A and a flange portion 34B. The flange portion 34B is provided on the upper end portion of the pin portion 34A. The outer diameter of the flange portion 34B is larger than the outer diameter of the pin portion 34A.

[0076] The movement direction of the valve disc 31 and the movement direction of the movable member 34 are the same. As described above, the valve disc 31 is movable in the vertical direction relative to the valve shaft 28. The movable member 34 is movable in the vertical direction relative to the valve body 27. As shown in FIG. 8, the movable member 34 is disposed in a guide hole 27F provided in the bridge portion 27C. The movable member 34 is disposed so as to pass through the guide hole 27F. The guide hole 27F is provided so as to extend in the vertical direction. At least a portion of the outer surface of the movable member 34 contacts the inner surface of the guide hole 27F. The movable member 34 is guided in the vertical direction by the guide hole 27F. The outer diameter of the flange portion 34B is smaller than the inner diameter of the guide hole 27F. The lower end of the guide hole 27F is open. The lower part of the movable member 34 protrudes downward from the opening at the lower end of the guide hole 27F.

[0077] The movable member 34 contacts the valve disc 31 in the closed state where the valve disc 31 contacts the valve body 27. The movable member 34 moves away from the valve disc 31 after the valve disc 31 separates from the valve body 27. The movable member 34 separates from the valve disc 31 after the valve disc 31 changes from the closed state to the open state.

[0078] In this embodiment, the movable member 34 is positioned higher than the valve disc 31. In the closed state where the valve disc 31 is in contact with the valve body 27, the lower end of the movable member 34 contacts the upper surface of the valve disc 31. After the valve disc 31 changes from the closed state to the open state, the lower end of the movable member 34 separates from the upper surface of the valve disc 31.

[0079] The disc elastic member 35 generates an elastic force so that the movable member 34 comes into contact with the valve disc 31. The disc elastic member 35 is supported by the valve body 27. In this embodiment, the disc elastic member 35 is disposed above the movable member 34. The disc elastic member 35 applies an elastic force to the movable member 34 so that the movable member 34 moves downward. The elastic force of the disc elastic member 35 presses the lower end of the movable member 34 against the upper surface of the valve disc 31.

[0080] As shown in FIG. 8, the disc elastic member 35 is disposed in an accommodating hole 27G provided in the bridge portion 27C. The accommodating hole 27G is provided above the guide hole 27F. The lower end of the accommodating hole 27G is connected to the upper end of the guide hole 27F. The upper end of the accommodating hole 27G is open. The opening at the upper end of the accommodating hole 27G is covered by the second valve insulating member 30B. The upper end of the disc elastic member 35 is connected to the lower surface of the second valve insulating member 30B. The lower end of the disc elastic member 35 is connected to the upper end of the movable member 34.

[0081] The inner diameter of the accommodating hole 27G is larger than the inner diameter of the guide hole 27F. A step surface 27H is formed between the lower end of the accommodating hole 27G and the upper end of the guide hole 27F. The step surface 27H faces upward. When the lower surface of the flange portion 34B of the movable member 34 comes into contact with the step surface 27H, the movable member 34 moves away from the upper surface of the valve disc 31 after the valve disc 31 changes from the closed state to the open state.

[0082] The case elastic member 16 is disposed between the cover 26 and the valve body 27. The case elastic member 16 is a compression coil spring disposed around the central axis AX. The case elastic member 16 generates an elastic force such that the valve body 27 is pressed against the filter element 8. The upper end of the case elastic member 16 is connected to the lower surface 26B of the cover 26. The lower end of the case elastic member 16 is connected to the upper surface of the flange portion 27B of the valve body 27. In this embodiment, a recess 27I is provided on the upper surface of the flange portion 27B. The lower end of the case elastic member 16 is disposed in the recess 27I. By disposing the lower end of the case elastic member 16 in the recess 27I, the case elastic member 16 and the flange portion 27B are positioned. The case elastic member 16 generates an elastic force such that the flange portion 27B is pressed against the upper surface of the filter element 8 via the flange portion 15B.

[0083] 3, the lower surface of the filter element 8 faces the bottom plate portion 25B of the case main body 25. The elastic force of the case elastic member 16 presses the lower surface of the filter element 8 against the bottom plate portion 25B. The filter element 8 is positioned in the case main body 25 by pressing the lower surface of the filter element 8 against the bottom plate portion 25B. The filter element 8 is positioned so that the central axis of the filter element 8 coincides with the central axis AX of the peripheral wall portion 25A.

[0084] For example, when the filter element 8 becomes clogged, the filter element 8 is replaced. If the filter element 8 has a vertical dimensional error, when the filter element 8 is replaced, a gap may be formed between the flange portion 27B and the filter element 8, or between the filter element 8 and the bottom plate portion 25B. If a gap is formed, hydraulic oil may leak through the gap. In this embodiment, the elastic force of the case elastic member 16 presses the flange portion 27B against the upper surface of the filter element 8 via the flange portion 15B. The elastic force of the case elastic member 16 also presses the lower surface of the filter element 8 against the bottom plate portion 25B. This prevents a gap from being formed between the flange portion 27B and the filter element 8, or between the filter element 8 and the bottom plate portion 25B.

[0085] The elastic force of the case elastic member 16 causes the flange portion 15B of the strainer 15 to be sandwiched between the lower surface of the flange portion 27B of the valve body 27 and the upper surface of the filter element 8. By sandwiching the flange portion 15B between the lower surface of the flange portion 27B and the upper surface of the filter element 8, changes in the relative positions of the valve body 27, the strainer 15, and the filter element 8 are suppressed.

[0086] The case elastic member 16 is conductive. The case elastic member 16 is made of a conductive material. In this embodiment, the case elastic member 16 is made of metal. Examples of the metal that forms the case elastic member 16 include iron and steel.

[0087] The input member 17 is supported by the cover 26. As shown in FIG. 8, the input member 17 has a shaft portion 17A and a plate portion 17B. The shaft portion 17A extends in the vertical direction. The plate portion 17B is connected to the lower end of the shaft portion 17A. The plate portion 17B is disk-shaped. The diameter of the plate portion 17B is larger than the diameter of the shaft portion 17A.

[0088] The shaft portion 17A is disposed inside a through-hole 26C provided in the lid body 26. The through-hole 26C is provided so as to penetrate through an upper surface 26A of the lid body 26 and a lower surface 26B of the lid body 26. The through-hole 26C is provided in the center of the lid body 26. The upper end of the shaft portion 17A is disposed above the upper surface 26A of the lid body 26. The lower end of the shaft portion 17A is disposed below the lower surface 26B of the lid body 26. The plate portion 17B is disposed below the lower surface 26B of the lid body 26.

[0089] The input member 17 is conductive. The input member 17 is made of a conductive material. In this embodiment, the input member 17 is made of metal. Examples of metals that form the input member 17 include iron and steel.

[0090] The fixing member 18 is coupled to the upper part of the shaft portion 17A so that the input member 17 is fixed to the lid body 26. The input member 17 is fixed to the lid body 26 by the fixing member 18. The fixing member 18 is disposed above the upper surface 26A of the lid body 26. The fixing member 18 is disposed around the shaft portion 17A above the lid body 26. In this embodiment, a screw thread is formed on the outer surface of the upper part of the shaft portion 17A. The fixing member 18 includes a nut having a thread groove that is coupled to the screw thread of the shaft portion 17A. When coupled to the shaft portion 17A, the fixing member 18 sandwiches the lid body 26 between itself and the plate portion 17B. The fixing member 18 coupled to the shaft portion 17A sandwiches the lid body 26 between itself and the plate portion 17B, thereby fixing the input member 17 to the lid body 26.

[0091] The case insulating member 19 insulates the input member 17 from the cover 26. The case insulating member 19 has electrical insulating properties. The case insulating member 19 is made of an insulating material. In this embodiment, the case insulating member 19 is made of synthetic resin.

[0092] The input member 17 is supported by the lid 26 via a case insulating member 19. The case insulating member 19 blocks current between the input member 17 and the lid 26.

[0093] As shown in FIG. 8, the case insulating member 19 includes a first case insulating member 19A and a second case insulating member 19B arranged between the input member 17 and the lid body 26, and a third case insulating member 19C arranged between the fixing member 18 and the lid body 26.

[0094] The first case insulating member 19A and the second case insulating member 19B insulate the input member 17 from the lid 26. The first case insulating member 19A and the second case insulating member 19B block current between the input member 17 and the lid 26. The first case insulating member 19A and the second case insulating member 19B prevent current from being supplied from the input member 17 to the lid 26. In this embodiment, the first case insulating member 19A is disposed between the inner surface of the through hole 26C and the outer surface of the shaft portion 17A. The first case insulating member 19A is cylindrical. The first case insulating member 19A is sandwiched between the inner surface of the through hole 26C and the outer surface of the shaft portion 17A. The second case insulating member 19B is disposed between the lower surface 26B of the lid 26 and the upper surface of the plate portion 17B. The second case insulating member 19B is sheet-shaped. Second case insulating member 19B is sandwiched between a lower surface 26B of cover 26 and the upper surface of plate portion 17B. Input member 17 is supported by cover 26 via first case insulating member 19A and second case insulating member 19B.

[0095] The third case insulating member 19C insulates the lid body 26 from the fixed member 18. The third case insulating member 19C blocks current between the lid body 26 and the fixed member 18. The third case insulating member 19C prevents current from being supplied from the input member 17 to the lid body 26 via the fixed member 18. In this embodiment, the third case insulating member 19C is disposed between the lower surface of the fixed member 18 and the upper surface 26A of the lid body 26. The third case insulating member 19C is sheet-shaped. The third case insulating member 19C is sandwiched between the lower surface of the fixed member 18 and the upper surface 26A of the lid body 26. The fixed member 18 is supported by the lid body 26 via the third case insulating member 19C.

[0096] In this embodiment, first case insulating member 19A is made of polybutylene terephthalate (PBT), a thermoplastic resin. Polybutylene terephthalate has excellent moldability. First case insulating member 19A can be manufactured by injection molding polybutylene terephthalate. Second case insulating member 19B and third case insulating member 19C are each made of glass epoxy resin, a thermosetting resin. Glass epoxy resin has high mechanical strength and excellent heat resistance.

[0097] The seal member 20 seals the boundary between the cover 26 and the input member 17. In this embodiment, the seal member 20 includes an O-ring that is disposed around the second case insulating member 19B between the lower surface 26B of the cover 26 and the upper surface of the plate portion 17B. The seal member 20 prevents hydraulic oil in the internal space of the filter case 7 from leaking into the external space of the filter case 7 through the through-hole 26C.

[0098] The relay elastic member 21 is disposed between the input member 17 and the relay member 22. The relay elastic member 21 is a coil spring disposed around the central axis AX. The relay elastic member 21 is disposed radially inward of the case elastic member 16.

[0099] The relay elastic member 21 is connected to each of the input member 17 and the relay member 22. The relay elastic member 21 is disposed below the input member 17. The upper end of the relay elastic member 21 is connected to the input member 17. The lower end of the relay elastic member 21 is connected to the relay member 22.

[0100] The relay elastic member 21 is conductive. The relay elastic member 21 is made of a conductive material. In this embodiment, the relay elastic member 21 is made of metal. Examples of the metal that forms the relay elastic member 21 include iron and steel.

[0101] In this embodiment, a support plate 37 is fixed to the lower surface of the plate portion 17B of the input member 17. The support plate 37 is fixed to the plate portion 17B with screws 38. The outer diameter of the support plate 37 is larger than the outer diameter of the plate portion 17B. As shown in FIG. 8 , a peripheral portion 37A of the support plate 37 is inclined downward toward the outside in the radial direction. The upper end of the relay elastic member 21 contacts the lower surface of the support plate 37, which is radially inward of the peripheral portion 37A. The upper end of the relay elastic member 21 is connected to the input member 17 via the support plate 37. The upper end of the relay elastic member 21 is positioned relative to the support plate 37 in the radial direction by the peripheral portion 37A.

[0102] The support plate 37 is electrically conductive. The support plate 37 is made of an electrically conductive material. In this embodiment, the support plate 37 is made of a metal. Examples of the metal that forms the support plate 37 include iron and steel.

[0103] The relay member 22 is connected to the relay elastic member 21. At least a portion of the relay member 22 is disposed below the relay elastic member 21. The relay member 22 supports the relay elastic member 21. The relay member 22 is fixed to the upper end of the valve shaft 28. The relay member 22 contacts the valve shaft 28.

[0104] The relay member 22 is disposed above the positioning member 29. The relay member 22 is disposed around the valve shaft 28 above the positioning member 29. As described above, a screw thread is formed on the outer surface of the upper part of the valve shaft 28. The relay member 22 includes a nut having a thread groove that is coupled to the screw thread of the valve shaft 28. The relay member 22 supports the lower end of the relay elastic member 21 while coupled to the valve shaft 28.

[0105] As shown in FIG. 8 , the relay member 22 has a base portion 22A and a protrusion 22B protruding upward from the base portion 22A. A support surface 22C is provided around the protrusion 22B. The support surface 22C faces upward. The support surface 22C is annular. The lower end of the relay elastic member 21 contacts the support surface 22C. The protrusion 22B is inserted into the lower part of the relay elastic member 21. The inner surface of the lower part of the relay elastic member 21 contacts the outer surface of the protrusion 22B. The protrusion 22B positions the lower end of the relay elastic member 21 in the radial direction relative to the relay member 22.

[0106] The relay member 22 is conductive. The relay member 22 is made of a conductive material. In this embodiment, the relay member 22 is made of a metal. Examples of the metal that forms the relay member 22 include iron and steel.

[0107] The lead wire 23 is connected to the input member 17. The lead wire 23 is arranged in the external space of the filter case 7. At least a portion of the lead wire 23 is arranged above the lid 26. The upper end of the shaft portion 17A is arranged above the upper surface 26A of the lid 26. One end of the lead wire 23 is fixed to the upper end of the shaft portion 17A by a screw 39. At least a portion of the surface of the lead wire is covered with an insulating film 40.

[0108] The cover 24 protects the upper end of the shaft portion 17A, the fixing member 18, and at least a portion of the lead wire 23. The cover 24 is fixed to the upper surface 26A of the lid body 26 so as to cover the upper end of the shaft portion 17A, the fixing member 18, and at least a portion of the lead wire 23. A hole 24A is provided in a portion of the cover 24, and at least a portion of the lead wire 23 is disposed therein.

[0109] The cover 24 is electrically insulating and is made of an insulating material. In this embodiment, the cover 24 is made of synthetic resin.

[0110] The controller 10 is disposed in the external space of the filter case 7. The controller 10 supplies current to the bypass valve 9 from outside the filter case 7. The controller 10 supplies current to the bypass valve 9 and determines whether the bypass flow path 12 is closed or not based on the current-carrying state of the bypass valve 9. The controller 10 includes a power source that supplies current to the bypass valve 9 and a current-carrying detection circuit that detects the current-carrying state of the bypass valve 9.

[0111] The bypass valve 9 is connected to the controller 10 via an input line 13. A portion of the input line 13 is disposed in the external space of the filter case 7. A portion of the input line 13 is disposed in the internal space of the filter case 7. The controller 10 supplies current to the bypass valve 9 from outside the filter case 7 via the input line 13. In this embodiment, the input line 13 includes a lead wire 23, an input member 17, a support plate 37, a relay elastic member 21, and a relay member 22. The lead wire 23 and an upper end of the input member 17 are disposed in the external space of the filter case 7. The lower end of the input member 17, the support plate 37, the relay elastic member 21, and the relay member 22 are disposed in the internal space of the filter case 7.

[0112] The bypass valve 9 is connected to a gland portion 42 via an output line 14. The gland portion 42 includes a body frame of the work machine. A portion of the output line 14 is disposed in the internal space of the filter case 7. A portion of the output line 14 is disposed in the external space of the filter case 7. The output line 14 includes a case elastic member 16, the filter case 7, and a ground wire 41. The case elastic member 16 is connected to the cover 26 of the filter case 7. As described above, the cover 26 is fixed to the upper end of the case body 25 by, for example, bolts (not shown). The cover 26 is electrically connected to the case body 25 via the bolts. The case elastic member 16 and the case body 25 are electrically connected via the cover 26. The ground wire 41 is connected to the upper part of the case body 25. The case elastic member 16 is disposed in the internal space of the filter case 7. The ground wire 41 is disposed in the external space of the filter case 7. The filter case 7 is part of the hydraulic oil tank 2. The hydraulic oil tank 2 is connected to a ground portion 42 via a ground wire 41, for example, by a bolt.

[0113] <Operation of the oil filter device> 9 is a diagram showing the operation of the oil filter device 6 according to this embodiment. The bypass valve 9 opens and closes the bypass flow path 12 based on the differential pressure between the inlet 8A and outlet 8B of the filter element 8.

[0114] Foreign matter may be trapped in the filter element 8, which may cause the filter element 8 to become clogged. When the filter element 8 becomes clogged, the pressure difference between the inlet 8A and the outlet 8B increases. When the pressure difference between the inlet 8A and the outlet 8B is small, the bypass valve 9 operates to close the bypass flow path 12. When the pressure difference between the inlet 8A and the outlet 8B is large, the bypass valve 9 operates to open the bypass flow path 12. Opening the bypass flow path 12 prevents the pressure difference between the inlet 8A and the outlet 8B from becoming excessively large. By preventing the pressure difference between the inlet 8A and the outlet 8B from becoming excessively large, damage to the filter element 8 is prevented.

[0115] The state in which the bypass flow path 12 is closed includes a closed state in which the valve disc 31 contacts the valve body 27. The state in which the bypass flow path 12 is open includes an open state in which the valve disc 31 is separated from the valve body 27. When the differential pressure is equal to or less than a specified value, the valve disc 31 contacts the valve body 27 due to the elastic force of the valve elastic member 33. When the differential pressure exceeds the specified value, the valve disc 31 moves away from the valve body 27 based on the differential pressure, against the elastic force of the valve elastic member 33. The specified value is a predetermined value for the differential pressure.

[0116] The controller 10 supplies current to the bypass valve 9 and determines whether the bypass flow path 12 is closed or not based on the current state of the bypass valve 9. The controller 10 includes a power supply circuit that supplies current to the bypass valve 9 and a current detection circuit that detects the current state of the bypass valve 9.

[0117] In this embodiment, supplying a current to the bypass valve 9 includes supplying a current to the valve disc 31. The energized state of the bypass valve 9 includes the energized state between the valve disc 31 and the valve body 27.

[0118] As indicated by arrow Fb in Figure 9, the controller 10 supplies current to the valve disc 31 via the input member 17. The controller 10 supplies current to the valve disc 31 via the input member 17 and determines whether the bypass flow path 12 is closed or not based on the state of conduction between the valve disc 31 and the valve body 27.

[0119] In this embodiment, the controller 10 supplies current to the input member 17 via the lead wire 23. The current supplied to the input member 17 via the lead wire 23 is supplied to the valve shaft 28 via the support plate 37, the relay elastic member 21, and the relay member 22. The current supplied to the valve shaft 28 is supplied to the valve disc 31 via the valve shaft 28.

[0120] In the closed state where the valve disc 31 is in contact with the valve body 27, the current supplied to the valve disc 31 is also supplied to the valve body 27. That is, in the closed state where the valve disc 31 is in contact with the valve body 27, current is conducted between the valve disc 31 and the valve body 27. In addition, in the closed state where the valve disc 31 is in contact with the valve body 27, the bypass flow path 12 is closed. When the controller 10 detects that current is conducted between the valve disc 31 and the valve body 27, it can determine that the bypass flow path 12 is closed.

[0121] In the closed state where the valve disc 31 is in contact with the valve body 27, as shown by arrow Fb in Figure 9, current supplied to the valve disc 31 flows through the valve body 27 and then is supplied to the cover 26 via the case elastic member 16. The current supplied to the cover 26 flows through the case main body 25 and then flows through the ground wire 41.

[0122] In the open state where the valve disc 31 is separated from the valve body 27, as shown by arrow Fb in Figure 9, the current supplied to the valve disc 31 is not supplied to the valve body 27. That is, in the open state where the valve disc 31 is separated from the valve body 27, no current is conducted between the valve disc 31 and the valve body 27. Furthermore, in the open state where the valve disc 31 is separated from the valve body 27, the bypass flow path 12 is opened. When the controller 10 detects that no current is conducted between the valve disc 31 and the valve body 27, it can determine that the bypass flow path 12 is opened.

[0123] In the closed state where the valve disc 31 is in contact with the valve body 27, as shown by the arrow Fa in Figure 9, hydraulic oil flows into the internal space of the filter case 7 from the inlet 7A, passes through the main flow path 11 including the filter element 8, and then flows out from the outlet 7B and is supplied to the hydraulic oil tank 2.

[0124] In the open state where the valve disc 31 is separated from the valve body 27, as shown by the arrow Fa in Figure 9, at least a portion of the hydraulic oil that flows into the internal space of the filter case 7 from the inlet 7A passes through the bypass flow path 12, which includes the outlet 27E of the valve body 27, and then flows out from the outlet 7B and is supplied to the hydraulic oil tank 2.

[0125] <Movement of moving parts> Figure 10 is a diagram showing the operation of the valve disc 31 and movable member 34 according to this embodiment. As shown in Figure 10, the valve disc 31 changes state based on the pressure difference between the inlet section 8A and the outlet section 8B, from a closed state in which it contacts the valve body 27, through a transition state in which it moves slightly away from the valve body 27, to an open state in which it moves away from the valve body 27. In the closed state, the valve disc 31 is located in a closed position P1 in which it contacts the valve body 27. In the open state, the valve disc 31 is located in an open position P3 that is lower than the closed position P1. In the transition state, the valve disc 31 is located in a transition position P2 between the closed position P1 and the open position P3.

[0126] When the valve disc 31 is located in the closed position P1, the movable member 34 comes into contact with the valve disc 31. The lower end of the movable member 34 is pressed against the upper surface of the valve disc 31 by the elastic force of the disc elastic member 35. When the valve disc 31 is in the closed state, the flange portion 34B of the movable member 34 is located above the stepped surface 27H. When the valve disc 31 is in the closed state, a gap is formed between the lower surface of the flange portion 34B and the stepped surface 27H. When the valve disc 31 is located in the closed position P1, the movable member 34 is located in an upper end position P4 where the lower end of the movable member 34 comes into contact with the upper surface of the valve disc 31 and a gap is formed between the lower surface of the flange portion 34B and the stepped surface 27H.

[0127] Even when the valve disc 31 moves from the closed position P1 to the transition position P2, the movable member 34 remains in contact with the valve disc 31. The elastic force of the disc elastic member 35 causes the lower end of the movable member 34 to move downward relative to the valve body 27 so as to be pressed against the upper surface of the valve disc 31. When the valve disc 31 is located in the transition position P2, the flange portion 34B of the movable member 34 comes into contact with the stepped surface 27H. When the valve disc 31 is located in the transition position P2, the movable member 34 is located at a lower end position P5 where the lower end of the movable member 34 comes into contact with the upper surface of the valve disc 31 and the lower surface of the flange portion 34B comes into contact with the stepped surface 27H.

[0128] The movable range of the valve disc 31 is between a closed position P1 and an open position P3. The movable range of the movable member 34 is between an upper end position P4 and a lower end position P5. The movable range of the valve disc 31 is greater than the movable range of the movable member 34.

[0129] When the valve disc 31 moves from the transition position P2 to the open position P3, the movable member 34 moves away from the valve disc 31. That is, when the valve disc 31 moves from the transition position P2 to the open position P3, the lower end of the movable member 34 moves away from the upper surface of the valve disc 31 while the lower surface of the flange portion 34B and the step surface 27H are in contact with each other.

[0130] In this way, the movable member 34 changes from a state in contact with the valve disc 31 to a state in which it is separated from the valve disc 31 when the valve disc 31, which is disposed in the closed position P1, moves away from the valve body 27. The movable member 34 contacts the valve disc 31 in the closed state in which the valve disc 31 is in contact with the valve body 27, and then separates from the valve disc 31 after a transition state in which the valve disc 31 is separated from the valve body 27.

[0131] In the closed state where the valve disc 31 is in contact with the valve body 27, as shown by arrow Fb in Figure 10, current supplied to the valve shaft 28 flows through the valve disc 31 and then through the valve body 27. The current that has flowed through the valve body 27 then flows through the case elastic member 16 and then through the cover 26.

[0132] In a transitional state in which the valve disc 31 separates from the valve body 27 and the movable member 34 contacts the valve disc 31, as shown by arrow Fb in Figure 10, the current supplied to the valve shaft 28 flows through the valve disc 31 and then through the movable member 34. The movable member 34 is connected to the valve body 27. Therefore, the current that has flowed through the movable member 34 then flows through the valve body 27. The current that has flowed through the valve body 27 then flows through the case elastic member 16 and then through the cover 26.

[0133] In the open state where the valve disc 31 is separated from the valve body 27 and the movable member 34 is separated from the valve disc 31, the current supplied to the valve shaft 28 is cut off at the valve disc 31, as shown by arrow Fb in FIG. 10.

[0134] The valve disc 31 changes from a closed state to an open state while immersed in hydraulic oil. Furthermore, the valve disc 31 changes from a closed state to an open state while an electric current is supplied. When the valve disc 31 changes from a closed state to an open state, an electric discharge (arc discharge) may occur in the hydraulic oil between the valve disc 31 and the valve body 27. If an electric discharge occurs in the hydraulic oil between the valve disc 31 and the valve body 27, carbides precipitated from the hydraulic oil may adhere to at least one of the valve disc 31 and the valve body 27. If carbides adhere to at least one of the contact surfaces of the valve disc 31 and the valve body 27, poor contact between the valve disc 31 and the valve body 27 may occur. If carbides adhere to at least one of the contact surfaces of the valve disc 31 and the valve body 27, poor contact between the valve disc 31 and the valve body 27 may occur. If carbides adhere to at least one of the contact surfaces of the valve disc 31 and the valve body 27, poor contact between the valve disc 31 and the valve body 27 may occur. Current may not flow from the valve disc 31 to the valve body 27 even if the differential pressure is below a specified value. If poor contact occurs between the valve disc 31 and the valve body 27, the controller 10 may erroneously determine that the differential pressure exceeds the specified value, even though the differential pressure is actually equal to or less than the specified value. In other words, the controller 10 may not be able to accurately detect whether the bypass flow path 12 is open or closed.

[0135] In this embodiment, a conductive movable member 34 is provided, which separates from the valve disc 31 after the valve disc 31 separates from the valve body 27. The movable member 34 is connected to the valve body 27. In a transition state in which the valve disc 31 separates from the valve body 27 and the movable member 34 contacts the valve disc 31, the current supplied to the valve shaft 28 flows through the valve disc 31 and then through the movable member 34. In the transition state, the current supplied to the valve shaft 28 is supplied to the movable member 34 via the valve disc 31. This prevents discharge in the hydraulic fluid between the valve disc 31 and the valve body 27. This prevents carbide from adhering to the contact surface of the valve disc 31 and the contact surface of the valve body 27. This prevents poor contact between the valve disc 31 and the valve body 27, allowing the controller 10 to accurately detect the opening and closing of the bypass flow path 12.

[0136] When the movable member 34 separates from the valve disc 31, a discharge may occur in the hydraulic fluid between the movable member 34 and the valve disc 31, possibly resulting in the adhesion of carbides to at least one of the movable member 34 and the valve body 27. Because the thickness of the carbides is sufficiently thin, even if carbides adhere to the lower end of the movable member 34, the valve disc 31 and the valve body 27 can still come into contact as long as the differential pressure is below a specified value. That is, even if carbides adhere to the lower end of the movable member 34, current supplied to the valve disc 31 can flow to the valve body 27 as long as the differential pressure is below a specified value. Furthermore, even if carbides adhere to the lower end of the movable member 34, when the valve disc 31 transitions from the closed state to the open state via a transition state, the gap between the movable member 34 and the valve disc 31 is smaller than the gap between the valve body 27 and the valve disc 31 in the transition state. Therefore, discharge occurs primarily between the movable member 34 and the valve disc 31, and discharge between the valve disc 31 and the valve body 27 is suppressed.

[0137] <Effects> As described above, according to this embodiment, current is supplied to the valve disc 31 from outside the filter case 7 via the input member 17. The controller 10 determines whether the bypass flow path 12 is closed or not based on the state of current flow between the valve disc 31 and the valve body 27 of the bypass valve 9. This simplifies the structure of the oil filter device 6. Even without providing a sensor for detecting whether the bypass flow path is open or closed, it is possible to determine whether the bypass flow path 12 is closed or not with a simple configuration by supplying current to the valve disc 31 from outside the filter case 7 via the input member 17.

[0138] Furthermore, in the closed state where the valve disc 31 is in contact with the valve body 27, current is applied between the valve disc 31 and the valve body 27, and when the valve disc 31 is separated from the valve body 27 and enters the open state, current is cut off between the valve disc 31 and the valve body 27. This allows the controller 10 to accurately determine the timing at which the bypass flow path 12 is opened and closed, based on the state of current application between the valve disc 31 and the valve body 27.

[0139] The input member 17 is supported by the cover 26 via a case insulating member 19. The valve shaft 28 is supported by the valve body 27 via a valve insulating member 30. This allows the current supplied to the input member 17 to be smoothly supplied to the valve disc 31 via the relay elastic member 21, the relay member 22, and the valve shaft 28.

[0140] The input member 17 and the relay member 22 are connected via a relay elastic member 21. For example, if the pressure of the hydraulic oil contained in the internal space of the filter case 7 increases, the cover 26 may be deformed or displaced upward, which may change the relative position between the input member 17 and the relay member 22. Since the input member 17 and the relay member 22 are connected via the relay elastic member 21, the input member 17 and the relay member 22 can move relative to each other. This allows the relative position between the input member 17 and the relay member 22 to change.

[0141] The input member 17 is connected to a lead wire 23 disposed in the external space of the filter case 7. The controller 10 supplies a current to the input member 17 via the lead wire 23. This allows the controller 10 to supply a current to the input member 17 from a position distant from the filter case 7.

[0142] The input member 17 has a shaft portion 17A that is disposed inside a through-hole 26C provided in the cover 26. This allows the input member 17 to receive current from the controller 10 that is disposed in the external space of the filter case 7, and to supply current to the valve disc 31 that is disposed in the internal space of the filter case 7. The case insulating member 19 includes a first case insulating member 19A that is disposed between the inner surface of the through-hole 26C and the outer surface of the shaft portion 17A. The cover 26 and the shaft portion 17A are insulated by the first case insulating member 19A.

[0143] Input member 17 has plate portion 17B connected to the lower end of shaft portion 17A. Case insulating member 19 includes second case insulating member 19B disposed between lower surface 26B of lid body 26 and the upper surface of plate portion 17B. Cover body 26 and plate portion 17B are insulated by second case insulating member 19B.

[0144] Input member 17 is fixed to lid 26 by fixing member 18 coupled to the upper part of shaft portion 17A. Fixing member 18 prevents changes in the relative position between lid 26 and input member 17. Case insulating member 19 includes third case insulating member 19C disposed between the lower surface of fixing member 18 and upper surface 26A of lid 26. Cover 26 and fixing member 18 coupled to shaft portion 17A are insulated from each other by third case insulating member 19C.

[0145] A seal member 20 is provided to seal the boundary between the cover body 26 and the input member 17. The seal member 20 prevents hydraulic oil in the internal space of the filter case 7 from leaking into the external space of the filter case 7 through the boundary between the cover body 26 and the input member 17.

[0146] A case elastic member 16 is disposed between the cover 26 and the valve body 27. In the closed state in which the valve disc 31 contacts the valve body 27, current supplied to the valve disc 31 flows through the valve body 27 and the case elastic member 16, and then through the cover 26. The cover 26 is connected to a ground portion 42 via the case main body 25 and a ground wire 41. In the open state in which the valve disc 31 is separated from the valve body 27, current supplied to the valve disc 31 does not flow through the filter case 7, which includes the case main body 25 and the cover 26. As a result, the electrical resistance value of the electrical circuit, which includes the input line 13, the bypass valve 9, and the output line 14, changes depending on whether the valve disc 31 is in the closed state or the open state. The controller 10 can determine whether the bypass flow path 12 is closed based on the electrical resistance value.

[0147] The cover 26 and the valve body 27 are connected via the case elastic member 16. For example, if the pressure of the hydraulic oil contained in the internal space of the filter case 7 increases, the cover 26 may deform or displace upward, which may change the relative position between the cover 26 and the valve body 27. Since the cover 26 and the valve body 27 are connected via the case elastic member 16, the cover 26 and the valve body 27 can move relative to each other. This allows the relative position between the cover 26 and the valve body 27 to change.

[0148] The valve body 27 is supported by the filter element 8. The case elastic member 16 generates an elastic force that presses the valve body 27 against the filter element 8. This prevents the relative positions of the valve body 27 and the filter element 8 from changing.

[0149] The filter element 8 is cylindrical. The valve body 27 has a sleeve portion 27A that is disposed inside the filter element 8 and a flange portion 27B that is supported on the upper surface of the filter element 8. The case elastic member 16 generates an elastic force that presses the flange portion 27B against the upper surface of the filter element 8. This prevents the oil filter device 6 from becoming larger.

[0150] The valve body 27 is disposed inside the sleeve portion 27A and has a bridge portion 27C that supports the valve shaft 28. The valve insulating member 30 includes a first valve insulating member 30A that is disposed between the bridge portion 27C and the valve shaft 28. The bridge portion 27C and the valve shaft 28 are insulated by the first valve insulating member 30A.

[0151] The valve shaft 28 and the valve body 27 are positioned by a positioning member 29. The positioning member 29 is connected to the valve shaft 28 above the bridge portion 27C. The positioning member 29 connected to the valve shaft 28 is supported on the upper surface of the bridge portion 27C, thereby preventing the valve shaft 28 from moving downward relative to the valve body 27. The positioning member 29 prevents changes in the relative position between the valve body 27 and the valve shaft 28. The valve insulating member 30 includes a second valve insulating member 30B arranged between the lower surface of the positioning member 29 and the upper surface of the bridge portion 27C. The bridge portion 27C of the valve body 27 and the positioning member 29 connected to the valve shaft 28 are insulated by the second valve insulating member 30B.

[0152] The valve disc 31 is disposed below the sleeve portion 27A of the valve body 27. The valve disc 31 closes the bypass flow path 12 by coming into contact with the lower end of the sleeve portion 27A. This prevents the bypass valve 9 from becoming too large.

[0153] The valve disc 31 is disposed below the valve body 27. The valve elastic member 33 is disposed below the valve disc 31. This prevents the bypass valve 9 from becoming large.

[0154] A support member 32 is fixed to the lower end of the valve shaft 28. The upper end of a valve elastic member 33 is connected to the valve disc 31. The lower end of the valve elastic member 33 is supported by the support member 32. When the differential pressure is equal to or lower than a specified value, the valve disc 31 is pressed against the valve body 27 by the elastic force of the valve elastic member 33.

[0155] In this embodiment, a conductive movable member 34 is provided, which separates from the valve disc 31 after the valve disc 31 separates from the valve body 27. The movable member 34 is connected to the valve body 27. In a transition state in which the valve disc 31 separates from the valve body 27 and the movable member 34 contacts the valve disc 31, the current supplied to the valve shaft 28 flows through the valve disc 31 and then through the movable member 34. In the transition state, the current supplied to the valve shaft 28 is supplied to the movable member 34 via the valve disc 31. This prevents discharge in the hydraulic fluid between the valve disc 31 and the valve body 27. This prevents carbide from adhering to the contact surfaces of the valve disc 31 and the valve body 27. Because poor contact between the valve disc 31 and the valve body 27 is prevented, the controller 10 can accurately detect the opening and closing of the bypass flow path 12.

[0156] The valve disc 31 moves away from the valve body 27 when the differential pressure, which indicates the difference between the pressure at the inlet portion 8A and the pressure at the outlet portion 8B of the filter element 8, exceeds a specified value. When the valve disc 31 moves away from the valve body 27, the movable member 34 changes from a state in contact with the valve disc 31 to a state in which it is separated from the valve disc 31. The movable member 34 prevents discharge from occurring in the hydraulic oil between the valve disc 31 and the valve body 27.

[0157] The movable range of the valve disc 31 is larger than the movable range of the movable member 34. As a result, contact between the movable member 34 and the valve disc 31 is maintained during the section in which the valve disc 31 moves from the closed position P1 to the transition position P2, and the movable member 34 can separate from the valve disc 31 when the valve disc 31 moves from the transition position P2 to the open position P3.

[0158] The movement direction of the valve disc 31 is the same as that of the movable member 34. In this embodiment, when the differential pressure changes from below a specified value to above the specified value, the valve disc 31 moves downward relative to the valve shaft 28 and valve body 27, and the movable member 34 moves downward relative to the valve body 27. This prevents the structure of the bypass valve 9 from becoming too complicated.

[0159] The valve disc 31 is disposed below the valve body 27. The movable member 34 is disposed above the valve disc 31. This prevents the bypass valve 9 from becoming large.

[0160] The movable member 34 is disposed inside the sleeve portion 27 A. This prevents the bypass valve 9 from becoming large.

[0161] The movable member 34 is disposed adjacent to the valve shaft 28. This makes the movable member 34 less susceptible to the fluid force of the hydraulic oil flowing inside the valve body 27, allowing it to move smoothly relative to the valve body 27.

[0162] At least a portion of the movable member 34 contacts the valve body 27. As a result, the current supplied from the valve disc 31 to the movable member 34 is supplied to the valve body 27.

[0163] The disc elastic member 35 generates an elastic force so that the movable member 34 contacts the valve disc 31. This allows the movable member 34 to continue contacting the valve disc 31 when the valve disc 31 changes from the closed state to the transition state.

[0164] [Second embodiment] A second embodiment will be described below. In the following description, the same or equivalent components as those in the above-described embodiment will be denoted by the same reference numerals, and the description of those components will be simplified or omitted.

[0165] <Bypass valve> 11 is a cross-sectional view showing a bypass valve 90 according to this embodiment. The bypass valve 90 includes a valve body 270, a valve shaft 280, a positioning member 290, a valve insulating member 300, a valve disc 310, a valve elastic member 330, a movable member 340, and a disc elastic member 350.

[0166] The valve body 270 is disposed in the bypass flow path 12. The valve body 270 is electrically conductive. The valve body 270 is disposed so as to surround the central axis AX. The valve body 270 has a sleeve portion 270A and a bridge portion 270C.

[0167] The sleeve portion 270A is substantially cylindrical. The sleeve portion 270A is disposed so as to surround the central axis AX. The bridge portion 270C is disposed radially inward of the sleeve portion 270A.

[0168] The valve shaft 280 is a rod-shaped member extending in the vertical direction. The central axis of the valve shaft 28 and the central axis AX of the peripheral wall portion 25A substantially coincide with each other. The valve shaft 280 is electrically conductive. The valve shaft 280 is supported by the bridge portion 270C.

[0169] The positioning member 290 is coupled to the valve shaft 280 so as to position the valve shaft 280 in the valve body 270. The positioning member 290 is disposed around the valve shaft 280 above the bridge portion 270C.

[0170] The valve insulating member 300 insulates the valve body 270 from the valve shaft 280. The valve insulating member 300 is electrically insulating. The valve insulating member 300 includes a first valve insulating member 300A disposed around the valve shaft 280 and a second valve insulating member 300B disposed between the valve body 270 and the positioning member 290.

[0171] The first valve insulating member 300A is substantially cylindrical. The upper part of the first valve insulating member 300A is disposed between the inner surface of the bridge portion 270C and the outer surface of the valve shaft 280. The lower part of the first valve insulating member 300A is disposed below the bridge portion 270C.

[0172] The valve disc 310 is movably supported on the valve shaft 280. The valve disc 310 is movable in the vertical direction. The valve disc 310 is conductive. The valve disc 310 is movable in the vertical direction relative to the valve shaft 280. A slide hole 310A is provided in the center of the valve disc 310. The valve shaft 280 is inserted into the slide hole 310A of the valve disc 310.

[0173] The valve elastic member 330 generates an elastic force so that the valve disc 310 contacts the valve body 270. The valve elastic member 330 is positioned below the valve disc 310. The upper end of the valve elastic member 330 is connected to the lower surface of the valve disc 310. The lower end of the valve elastic member 330 is supported by a support portion 320 provided at the lower end of the valve shaft 280. The valve elastic member 330 applies an elastic force to the valve disc 310 so that the valve disc 310 contacts the lower end of the sleeve portion 270A.

[0174] The movable member 340 is an annular member arranged around the valve shaft 280. The movable member 340 is conductive. The movable member 340 is arranged radially inside the sleeve portion 270A. The movable member 340 is arranged below the bridge portion 270C. In this embodiment, the movable member 340 is arranged around the first valve insulating member 300A, below the bridge portion 270C. The movable member 340 and the valve shaft 280 are insulated by the first valve insulating member 300A. The movable member 340 is movable in the up and down direction relative to the first valve insulating member 300A. The movement direction of the valve disc 310 and the movement direction of the movable member 340 are the same.

[0175] The first valve insulating member 300A has a stopper portion 300C disposed below the movable member 340. The stopper portion 300C protrudes radially outward from the lower end portion of the first valve insulating member 300A. The stopper portion 300C is annular. The outer diameter of the stopper portion 300C is larger than the inner diameter of the movable member 340. The stopper portion 300C limits the movement of the movable member 340. The lower surface of the movable member 340 comes into contact with the upper surface of the stopper portion 300C, thereby preventing the movable member 340 from moving downward below the lower end portion of the first valve insulating member 300A. In other words, the stopper portion 300C prevents the movable member 340 from slipping downward from the lower end portion of the first valve insulating member 300A.

[0176] The valve disc 310 has an accommodating hole 310B capable of accommodating the stopper portion 300C. The accommodating hole 310B is located higher than the slide hole 310A. The inner diameter of the accommodating hole 310B is larger than the inner diameter of the slide hole 310A. The lower end of the accommodating hole 310B is connected to the upper end of the slide hole 310A. The upper end of the accommodating hole 310B is open. The opening at the upper end of the accommodating hole 310B is located in the center of the upper surface of the valve disc 310.

[0177] The stopper portion 300C is received in the receiving hole 310B via the opening at the upper end of the receiving hole 310B. The vertical dimension of the stopper portion 300C is smaller than the dimension of the receiving hole 310B. The outer diameter of the movable member 340 is larger than the inner diameter of the receiving hole 310B. The stopper portion 300C is received in the receiving hole 310B so that the upper surface of the stopper portion 300C is positioned lower than the upper surface of the valve disc 310. When the stopper portion 300C is received in the receiving hole 310B, the lower surface of the movable member 340 contacts the upper surface of the valve disc 310.

[0178] The disc elastic member 350 generates an elastic force so that the movable member 340 contacts the valve disc 310. The disc elastic member 350 is disposed below the bridge portion 270C. The disc elastic member 350 is disposed above the movable member 340. The disc elastic member 350 is a compression coil spring disposed around the first valve insulating member 300A between the bridge portion 270C and the movable member 340. The upper end of the disc elastic member 350 is connected to the lower surface of the bridge portion 270C. The lower end of the disc elastic member 350 is connected to the upper surface of the movable member 340. The disc elastic member 350 applies an elastic force to the movable member 340 so that the movable member 340 moves downward. The elastic force of the disc elastic member 350 presses the lower surface of the movable member 340 against the upper surface of the valve disc 310.

[0179] The disk elastic member 350 is electrically conductive. The disk elastic member 350 is made of an electrically conductive material. In this embodiment, the disk elastic member 350 is made of metal. Examples of metals that form the disk elastic member 350 include iron and steel.

[0180] The movable member 340 is connected to the bridge portion 270 C of the valve body 270 via a disk elastic member 350 .

[0181] <Movement of moving parts> FIG. 12 is a diagram illustrating the operation of the valve disc 310 and movable member 340 according to this embodiment. As shown in FIG. 12, the valve disc 310 changes state based on the pressure difference between the inlet port 8A and the outlet port 8B, from a closed state in contact with the valve body 270, through a transition state in which it moves slightly away from the valve body 270, to an open state in which it moves away from the valve body 270. In the closed state, the valve disc 310 is located in a closed position P10 in contact with the valve body 270. In the open state, the valve disc 310 is located in an open position P30, which is lower than the closed position P10. In the transition state, the valve disc 310 is located in a transition position P20 between the closed position P10 and the open position P30.

[0182] In the closed state in which the valve disc 310 contacts the valve body 270, the lower surface of the movable member 340 contacts the upper surface of the valve disc 310. The lower surface of the movable member 340 is pressed against the upper surface of the valve disc 310 by the elastic force of the disc elastic member 350. When the valve disc 310 is in the closed state, the stopper portion 300C is accommodated in the accommodation hole 310B. When the valve disc 310 is in the closed state, the upper surface of the stopper portion 300C is positioned lower than the upper surface of the valve disc 310. When the valve disc 310 is in the closed state, a gap is formed between the lower surface of the movable member 340 and the upper surface of the stopper portion 300C. When the valve disc 310 is in the closed position P10, the movable member 340 is in an upper end position P40 in which the lower surface of the movable member 340 contacts the upper surface of the valve disc 310 and a gap is formed between the lower surface of the movable member 340 and the upper surface of the stopper portion 300C.

[0183] Even in the transition state where the valve disc 310 is slightly separated from the valve body 270, the lower surface of the movable member 340 contacts the upper surface of the valve disc 310. When the valve disc 310 moves downward to change from the closed state to the transition state, the movable member 340 can move downward together with the valve disc 310 relative to the first valve insulating member 300A. The lower surface of the movable member 340 is pressed against the upper surface of the valve disc 310 by the elastic force of the disc elastic member 350. When the valve disc 310 is in the transition state, the lower surface of the movable member 340 contacts the upper surface of the stopper portion 300C. When the valve disc 310 is located in the transition position P20, the movable member 340 is located at the lower end position P50 where the lower surface of the movable member 340 contacts the upper surface of the valve disc 310 and the upper surface of the stopper portion 300C.

[0184] The movable range of the valve disc 310 is between a closed position P10 and an open position P30. The movable range of the movable member 340 is between an upper end position P40 and a lower end position P50. The movable range of the valve disc 310 is greater than the movable range of the movable member 340.

[0185] In the open state in which the valve disc 310 is separated from the valve body 270, the movable member 340 separates from the valve disc 310. That is, when the valve disc 310 moves from the transition position P20 to the open position P30 while the lower surface of the movable member 340 is in contact with the upper surface of the stopper portion 300C, the lower surface of the movable member 340 separates from the upper surface of the valve disc 310.

[0186] Thus, in this embodiment as well, when the valve disc 310, which is in contact with the valve body 270, moves away from the valve body 270, the movable member 340 changes from a state in contact with the valve disc 310 to a state in which it is separated from the valve body 270. The movable member 340 contacts the valve disc 310 in the closed state in which the valve disc 310 is in contact with the valve body 270, and then separates from the valve disc 310 after a transition state in which the valve disc 310 is separated from the valve body 270.

[0187] In the closed state where the valve disc 310 is in contact with the valve body 270, as shown by arrow Fb in Figure 12, current supplied to the valve shaft 280 flows through the valve disc 310 and then through the valve body 270. The current that has flowed through the valve body 270 flows through the case elastic member 16 and then through the cover 26.

[0188] In a transition state in which the valve disc 310 separates from the valve body 270 and the movable member 340 contacts the valve disc 310, as shown by arrow Fb in Figure 12, the current supplied to the valve shaft 280 flows through the valve disc 310 and then through the movable member 340. The movable member 340 is connected to the valve body 27 via the disc elastic member 350. Therefore, the current that flows through the movable member 340 flows through the disc elastic member 350 and then through the valve body 270. The current that flows through the valve body 270 flows through the case elastic member 16 and then through the cover 26.

[0189] In the open state where the valve disc 310 is separated from the valve body 270 and the movable member 340 is separated from the valve disc 310, the current supplied to the valve shaft 280 is cut off at the valve disc 310, as shown by arrow Fb in FIG. 12.

[0190] <Effects> As described above, in this embodiment as well, the movable member 340 prevents discharge of hydraulic oil between the valve disc 310 and the valve body 270 when the valve disc 31 changes from the closed state to the open state. This prevents poor contact between the valve disc 310 and the valve body 270. This allows the controller 10 to accurately detect the open / closed state of the bypass flow path 12.

[0191] In this embodiment, the movable member 340 is disposed around the valve shaft 280. This prevents the bypass valve 90 from becoming too large.

[0192] The first valve insulating member 300A is disposed around the valve shaft 280. The movable member 340 is disposed around the first valve insulating member 300A. The movable member 340 and the valve shaft 280 are insulated by the first valve insulating member 300A. The movable member 340 and the valve body 270 are connected via a conductive disk elastic member 350. The current that flows through the movable member 340 can flow through the disk elastic member 350 and then through the valve body 270.

[0193] The first valve insulating member 300A has a stopper portion 300C that limits the movement of the movable member 340. The stopper portion 300C is disposed below the movable member 340. The stopper portion 300C limits the movable member 340 from moving below the stopper portion 300C when the valve disc 310 moves from the transition position P20 to the open position P30. [Explanation of symbols]

[0194] 1...hydraulic system, 2...hydraulic oil tank, 3...hydraulic pump, 3A...suction port, 3B...discharge port, 4...operating valve, 5...hydraulic actuator, 6...oil filter device, 7...filter case, 7A...inlet, 7B...outlet, 8...filter element, 8A...inlet section, 8B...outlet section, 8C...outer surface, 8D...inner surface, 9...bypass valve, 9A...inlet port, 9B...outlet port, 10...controller, 11...main flow path, 12...bypass flow path, 13...input line, 14...output line, 15...strainer, 15A...strainer body, 15B...flange portion, 16...case elastic member, 1 7...input member, 17A...shaft portion, 17B...plate portion, 18...fixing member, 19...case insulating member, 19A...first case insulating member, 19B...second case insulating member, 19C...third case insulating member, 20...sealing member, 21...relay elastic member, 22...relay member, 22A...base portion, 22B...convex portion, 22C...support surface, 23...lead wire, 24...cover, 24A...hole, 25...case body, 25A...peripheral wall portion, 25B...bottom plate portion, 25C...case opening, 26...lid body, 26A...upper surface, 26B...lower surface, 26C...through hole, 27...valve body, 27A...sleeve portion, 27B...flange portion, 27C...bridge portion, 27D...inlet port, 27E...outlet port, 27F...guide hole, 27G...accommodating hole, 27H...step surface, 27I...recess, 28...valve shaft, 29...positioning member, 30...valve insulating member, 30A...first valve insulating member, 30B...second valve insulating member, 31...valve disc, 31A...slide hole, 32...support member, 33...valve elastic member, 34...movable member, 34A...pin portion, 34B...flange portion, 35...disc elastic member, 36...screw, 37...support plate, 37A...periphery, 38...screw, 39...screw, 40...insulating film, 41...ground wire , 42...Gland portion, 90...Bypass valve, 270...Valve body, 270A...Sleeve portion, 270C...Bridge portion, 280...Valve shaft, 290...Positioning member, 300...Valve insulating member, 300A...First valve insulating member, 300B...Second valve insulating member, 300C...Stopper portion, 310...Valve disc, 310A...Slide hole, 310B...Accommodating hole, 320...Support portion, 330...Valve elastic member, 340...Movable member, 350...Disc elastic member, AX...Central axis, P1...Closed position, P2...Transition position, P3...Open position, P4...Upper end position, P5...Lower end position,P10…Locked position, P20…Shifted position, P30…Open position, P40…Upper position, P50…Lower position.

Claims

1. a filter case having a case body and a conductive lid body that covers a case opening provided in the case body; a filter element disposed in a main flow path provided in the internal space of the filter case; a conductive valve body disposed in a bypass flow path provided in the internal space; a conductive valve shaft supported by the valve body via a valve insulating member; a conductive valve disc movably supported on the valve shaft and adapted to close the bypass flow path by contacting the valve body; a valve elastic member that generates an elastic force so that the valve disc contacts the valve body; a conductive input member supported on the lid body via a case insulating member; a conductive relay elastic member connected to the input member; a conductive relay member fixed to the valve shaft and connected to the relay elastic member; a controller that supplies current to the valve disc via the input member and determines whether the bypass flow path is closed based on a current flow state between the valve disc and the valve body. Oil filter device.

2. a lead wire disposed in an external space of the filter case and connected to the input member; The controller supplies current to the input member via the lead wire. The oil filter device according to claim 1 .

3. the lid body has an upper surface, a lower surface facing the internal space, and a through-hole penetrating the upper surface and the lower surface, the input member has a shaft portion disposed inside the through hole, the case insulating member is disposed between the inner surface of the through hole and the outer surface of the shaft portion; The oil filter device according to claim 1 or 2.

4. the input member has a plate portion connected to a lower end of the shaft portion, The case insulating member is disposed between the lower surface of the lid body and the upper surface of the plate portion.

4. The oil filter device according to claim 3.

5. a fixing member coupled to an upper portion of the shaft portion so that the input member is fixed to the cover; The case insulating member is disposed between the lower surface of the fixing member and the upper surface of the lid.

5. The oil filter device according to claim 4.

6. a seal member that seals the boundary between the lid body and the input member; The oil filter device according to any one of claims 3 to 5.

7. a conductive case elastic member disposed between the cover and the valve body; When the valve disc is in contact with the valve body, the current supplied to the valve disc flows through the cover. The oil filter device according to any one of claims 1 to 6.

8. The valve body is supported by the filter element, The case elastic member generates an elastic force so that the valve body is pressed against the filter element.

8. The oil filter device according to claim 7.

9. The filter element is cylindrical, The valve body has a sleeve portion disposed inside the filter element and a flange portion supported on an upper surface of the filter element, The case elastic member generates an elastic force so that the flange portion is pressed against the upper surface of the filter element.

9. The oil filter device according to claim 8.

10. the valve body has a bridge portion disposed inside the sleeve portion and supporting the valve shaft; the valve insulating member is disposed between the bridge portion and the valve shaft; The oil filter device according to claim 9.

11. a positioning member disposed above the bridge portion and coupled to the valve shaft so as to position the valve shaft in the valve body; the valve insulating member is disposed between a lower surface of the positioning member and an upper surface of the bridge portion; The oil filter device according to claim 10.

12. The valve disc is disposed below the sleeve portion and closes the bypass flow path by contacting a lower end of the sleeve portion. The oil filter device according to any one of claims 9 to 11.

13. The valve disc is disposed below the valve body, The valve elastic member is disposed below the valve disc. An oil filter device according to any one of claims 1 to 12.

14. a support member fixed to a lower end of the valve shaft, an upper end of the valve elastic member connected to the valve disc; The lower end of the valve elastic member is supported by the support member.

14. The oil filter device of claim 13.

Citation Information

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