Electric valve and electric valve unit

The electric valve addresses assembly reliability and miniaturization challenges by converting rotational to linear movement and using a contact surface to secure the seat member, ensuring reliable operation and compact size.

JP7847379B2Active Publication Date: 2026-04-17FUJIKOKI MFG CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
FUJIKOKI MFG CO LTD
Filing Date
2023-01-24
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

Conventional electric valves face issues with assembly reliability and miniaturization due to the risk of the seat member coming out of the valve body under differential pressure, necessitating increased press-fitting allowance which enlarges the valve size.

Method used

The electric valve design includes a valve body with a conversion mechanism that converts rotational movement into linear movement, featuring a contact surface to restrict the seat member's movement within an end opening, allowing the seat member to be inserted from one end and contact the flow path block before the valve body, thus ensuring secure assembly and miniaturization.

Benefits of technology

This design enhances assembly reliability and maintains miniaturization while improving sealing performance and preventing the seat member from dislodging, resulting in a compact and efficient electric valve unit.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide an electric valve and an electric valve unit which can facilitate assembly and can improve reliability while maintaining small sizes.SOLUTION: An electric valve includes: a valve main body having a valve chamber, an end opening communicating with the valve chamber and being open in an axis direction, and a side opening communicating with the valve chamber and being open in a direction intersecting with the axis; a seat member at least partially disposed in the end opening, and having a valve seat on the valve chamber side; a valve body that approaches or separates from the valve seat; and a conversion mechanism for converting a rotational movement of a rotor to a linear movement of the valve body. The valve main body comprises an abutment face for regulating the movement of the seat member to the valve chamber side in the end opening.SELECTED DRAWING: Figure 1
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Description

Technical Field

[0001] The present invention relates to an electric valve and an electric valve unit.

Background Art

[0002] Conventionally, an electric valve is assembled, for example, in the middle of a fluid piping system and used to open and close a fluid flow path or control the flow rate. For example, in an electric valve as shown in Patent Document 1, the rotational movement of a stepping motor is converted into the axial movement of a valve body to achieve accurate flow rate control. Also, as another type of electric valve, there is one that uses a planetary gear reduction mechanism or the like to reduce the torque of a stepping motor and transmit it to the valve body to ensure the sealing performance when the valve is closed.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] In the electric valve of Patent Document 1, a cylindrical seat member on which the valve body seats is attached by press-fitting it into the valve body from the valve chamber side, but its assembly property is a problem. Therefore, there is a demand to press-fit and assemble the seat member into the valve body from the end toward the valve chamber side.

[0005] However, when the seat member is assembled into the valve body from the end, there is a risk that the seat member may come out of the valve body due to the differential pressure between the valve chamber and the valve port inside the seat member when the refrigerant is pressurized. In order to avoid such a problem, it is necessary to increase the press-fitting allowance (the length of the press-fitting part) of the seat member with respect to the valve body, which causes a problem of increasing the size of the electric valve.

[0006] The present invention has been made in view of the above problems, and aims to provide an electric valve and an electric valve unit that can improve reliability while improving ease of assembly and maintaining miniaturization. [Means for solving the problem]

[0007] The electric valve of the present invention is A valve body having a valve chamber, an end opening communicating with the valve chamber and opening in the axial direction, and a side opening communicating with the valve chamber and opening in a direction intersecting the axis, A seat member having a valve seat on the valve chamber side, with at least a portion of it positioned within the end opening, A valve body that moves closer to or further away from the valve seat, It has a conversion mechanism that converts the rotational movement of the rotor into the linear movement of the valve body, The valve body is provided with a contact surface that restricts the movement of the seat member toward the valve chamber within the end opening. picture, In the state in which the valve body is attached to the flow path block, the lower end of the seat member is located on the bottom surface side of the flow path block, It is characterized by the following: The electric valve of the present invention is A valve body having a valve chamber, an end opening communicating with the valve chamber and opening in the axial direction, and a side opening communicating with the valve chamber and opening in a direction intersecting the axis, A seat member having a valve seat on the valve chamber side, with at least a portion of it positioned within the end opening, A valve body that moves closer to or further away from the valve seat, It has a conversion mechanism that converts the rotational movement of the rotor into the linear movement of the valve body, The valve body is provided with a contact surface that restricts the movement of the seat member toward the valve chamber within the end opening, When the valve body with the seat member assembled is brought close to the bottom surface of the flow path block, the lower end of the seat member comes into contact with the bottom surface before the lower end of the valve body comes into contact with the bottom surface. It is characterized by the following:

[0008] Furthermore, the electric valve of the present invention is A valve body having a valve chamber, an end opening communicating with the valve chamber and opening in the axial direction, and a side opening communicating with the valve chamber and opening in a direction intersecting the axis, A seat member having a valve seat on the valve chamber side, with at least a portion of it positioned within the end opening, A valve body that moves closer to or further away from the valve seat, It has a conversion mechanism that converts the rotational movement of the rotor into the linear movement of the valve body, The sheet member is inserted into the end opening from one end side of the valve body toward the valve chamber, and abuts against the valve body all around at the periphery of the valve seat. death, In the state in which the valve body is attached to the flow path block, the lower end of the seat member is located on the bottom surface side of the flow path block, It is characterized by this. The electric valve of the present invention is A valve body having a valve chamber, an end opening communicating with the valve chamber and opening in the axial direction, and a side opening communicating with the valve chamber and opening in a direction intersecting the axis, A seat member having a valve seat on the valve chamber side, with at least a portion of it positioned within the end opening, A valve body that moves closer to or further away from the valve seat, It has a conversion mechanism that converts the rotational movement of the rotor into the linear movement of the valve body, The seat member is inserted into the end opening from one end of the valve body toward the valve chamber, and contacts the valve body around the valve seat with respect to its entire circumference. When the valve body with the seat member assembled is brought close to the bottom surface of the flow path block, the lower end of the seat member comes into contact with the bottom surface before the lower end of the valve body comes into contact with the bottom surface. It is characterized by the following:

Effect of the Invention

[0009] According to the present invention, it is possible to provide an electric valve and an electric valve unit that can improve reliability while maintaining miniaturization and improving assemblability.

Brief Description of the Drawings

[0010] [Figure 1] FIG. 1 is a longitudinal sectional view of the electric valve according to the present embodiment. [Figure 2] FIG. 2 is a longitudinal sectional view showing the lower part of the electric valve in the closed valve state. [Figure 3] FIG. 3 is a longitudinal sectional view showing the lower part of the electric valve in the open valve state.

Mode for Carrying Out the Invention

[0011] Hereinafter, an embodiment of the electric valve according to the present invention will be described with reference to the drawings. In this specification, the rotor side of the electric valve is described as being upward, and the flow path block side with respect to it is described as being downward. The wonder planetary gear reduction mechanism is a type of planetary gear reduction mechanism.

[0012] Figure 1 is a longitudinal cross-sectional view of the electric valve 1 according to this embodiment, shown in the open state. Figure 2 is a longitudinal cross-sectional view showing the lower part of the electric valve 1 in the closed state, and Figure 3 is a longitudinal cross-sectional view showing the lower part of the electric valve 1 in the open state.

[0013] The electric valve 1 of this embodiment is used, for example, to adjust the flow rate of refrigerant (also called fluid) in a refrigeration cycle. The electric valve 1 of this embodiment is used attached to a flow path block 100. The electric valve 1 and the flow path block 100 constitute an electric valve unit. Let the axis of the electric valve 1 be L.

[0014] The bottomed cylindrical flow channel block 100 has a first flow channel 101 coaxial with axis L and a second flow channel 102 coaxial with axis O perpendicular to axis L. The first flow channel 101 and the second flow channel 102 communicate the outside and inside of the flow channel block 100, respectively. Low-pressure piping (not shown) is connected to the first flow channel 101, and high-pressure piping (not shown) is connected to the second flow channel 102.

[0015] Inside the flow path block 100, a cylindrical lower inner surface 103, a cylindrical intermediate inner surface 104 with a larger diameter than the lower inner surface 103, and a female threaded portion 105 are formed. The interior of the flow path block 100 constitutes the valve chamber VC. Between the lower inner surface 103 and the first flow path 101, a bottom surface 106, which is a plane perpendicular to the axis L, is formed. The second flow path 102 penetrates the lower inner surface 103 and communicates with the valve chamber VC.

[0016] The electric valve 1 consists of a valve body 2 attached to a flow path block 100, a metal, top-cylindrical can 3 fixed to the valve body 2 via an annular member 31, a stepping motor consisting of a stator 50 mounted outside the can 3 and a rotor 57 mounted inside the can 3, a reduction mechanism 6 that reduces and transmits the rotational torque of the rotor 57, a valve body unit 4 including a valve body 41 that moves toward and away from a seat member 21 to control the amount of fluid that passes through, and a screw drive member 22 that drives the valve body 41 by converting the rotational movement of the output gear of the reduction mechanism 6 into linear movement via a screw feed mechanism (conversion mechanism) described later.

[0017] In Figure 1, a pair of yokes 51, bobbins 52, and stator coils 53 are arranged on the outside of the can 3 to form a stator 50, which is covered on the outside by a resin molded cover 58. The rotor 57 and the stator 50 constitute a stepping motor. The resin molded cover 58 has a box 59 that contains a circuit board and the like for controlling and driving the stepping motor.

[0018] The valve body 2, which is roughly cylindrical, has, from the upper end, a first outer circumference 2a, a second outer circumference 2b with a larger diameter than the first outer circumference 2a, a third outer circumference 2c with a larger diameter than the second outer circumference 2b, a fourth outer circumference 2d with a larger diameter than the third outer circumference 2c, a male threaded portion 2e that screws into the female threaded portion 105 of the flow path block 100, a fifth outer circumference 2f that fits into the intermediate inner circumference 104, and a sixth outer circumference 2g that fits into the lower inner circumference 103. An annular member 31 is fixed to the outer circumference of the second outer circumference 2b by welding. The lower cylindrical end of a resin molded cover 58, which will be described later, abuts against the stepped surface between the third outer circumference 2c and the fourth outer circumference 2d, and a dustproof O-ring OR4 is placed between the lower cylindrical end and the third outer circumference 2c to seal the two together.

[0019] Furthermore, the valve body 2 has a first inner circumference portion 2h extending from the upper end to near the upper end of the male thread portion 2e, a second inner circumference portion 2i having a smaller diameter than the first inner circumference portion 2h, a third inner circumference portion 2j having a larger diameter than the second inner circumference portion 2i, and a fourth inner circumference portion (hereinafter referred to as the end opening) 2k having a larger diameter than the third inner circumference portion 2j. The sixth outer circumference portion 2g and the end opening 2k are adjacent to the lower end 2s of the valve body 2. The lower end 2s is the end on the side closer to the side opening 2r in the axial direction, and the upper end of the valve body 2 is the end farther from the side opening 2r. A receiving surface 2q perpendicular to the axis L is formed between the third inner circumference portion 2j and the end opening 2k. For pressure cancellation, the inner diameter of the second inner circumference portion 2i is approximately equal to the inner diameter of the valve seat 21d of the seat member 21.

[0020] A side opening 2r is formed so as to connect the fifth outer circumference 2f (outer circumference side) and the second inner circumference 2i (inner circumference side). The side opening 2r penetrates the valve chamber VC, for example, by intersecting the axis L in a cross shape when viewed in the direction of the axis L, and the axis of the side opening 2r coincides with the axis O of the second flow path 102 of the flow path block 100 in Figure 1. Preferably, the inner diameter of the side opening 2r is approximately equal to the inner diameter of the second flow path 102. By forming the side opening 2r in a cross shape, even if the phase around the axis L does not perfectly coincide with that of the second flow path 102 when the valve body 2 is attached to the flow path block 100, it is possible to avoid limiting the amount of refrigerant flowing from the second flow path 102 into the valve chamber VC.

[0021] A first circumferential groove 2m and a second circumferential groove 2n are formed on the fifth outer circumference 2f above the side opening 2r, running parallel to each other vertically. A first O-ring OR1 is placed in the first circumferential groove 2m, and a second O-ring OR2 is placed in the second circumferential groove 2n, thereby sealing the space between the flow path block 100 and the valve body 2. The reason for arranging the O-rings in this double configuration is to strengthen the seal in response to the introduction of high-pressure refrigerant into the side opening 2r, thereby suppressing refrigerant leakage to the outside of the electric valve 1.

[0022] Furthermore, a third circumferential groove 2p is formed in the sixth outer circumference 2g, and a third O-ring OR3 is placed in the third circumferential groove 2p, thereby sealing the space between the flow path block 100 and the lower end of the valve body 2.

[0023] A cylindrical seat member 21 is fixed to the radially inner side of the end opening 2k by press-fitting. However, the attachment of the seat member 21 is not limited to press-fitting; for example, screw fixing is also possible. Referring to Figures 2 and 3, the metal (e.g., stainless steel) seat member 21 is made up of a thick-walled cylindrical portion 21a and a thin-walled cylindrical portion 21b extending upward from the thick-walled cylindrical portion 21a. The inner diameters of the thick-walled cylindrical portion 21a and the thin-walled cylindrical portion 21b are equal, the inside of the seat member 21 forms the valve opening, and the inner circumference of the upper end of the thin-walled cylindrical portion 21b constitutes the valve seat 21d. At least a portion of the seat member 21 is positioned within the end opening 2k, and the valve seat 21d is provided on the valve chamber VC side.

[0024] The outer diameter of the thick-walled cylindrical portion 21a is slightly larger than the inner diameter of the end opening 2k (without a gap between them) to the extent that it can be press-fitted, and the outer diameter of the thin-walled cylindrical portion 21b is slightly smaller than the inner diameter of the third inner circumference portion 2j (with a gap between them). Preferably, the upper end of the thin-walled cylindrical portion 21b is at the same position as the lower end of the inner circumference of the side opening 2r (or the second opening 102) in the axial L direction, or is located on the side closer to the first flow path 101. By adjusting the position of the upper end of the thin-walled cylindrical portion 21b and the position of the lower end of the inner circumference of the side opening 2r in the axial L direction, the flow characteristics when the valve is open can be adjusted. For example, multiple types of sheet members 21 with different lengths of the thin-walled cylindrical portion 21b can be prepared, and a sheet member 21 with a length of thin-walled cylindrical portion 21b that matches the required characteristics can be selected and used.

[0025] A contact step surface 21c perpendicular to the axis L is formed between the thick-walled cylindrical portion 21a and the thin-walled cylindrical portion 21b. The contact step surface 21c is a contact surface that restricts the movement of the seat member 21 toward the valve chamber VC within the end opening 2k. As shown in Figure 2, along the axis L, the length A of the end opening 2k is shorter than the length B of the thick-walled cylindrical portion 21a. Therefore, when the seat member 21 is attached to the valve body 2 and the valve body 2 is attached to the flow path block 100, the lower end 21e of the seat member 21 abuts against the bottom surface 106 of the flow path block 100, and a gap (BA) is formed between the lower end 2s of the valve body 2 and the bottom surface 106. In other words, the lower end 21e of the seat member 21 protrudes downward in the direction of the axis L from the lower end 2s of the valve body 2 (located toward the bottom surface 106). This gap (BA) is a non-negative value considering general manufacturing tolerances. In this embodiment, the lower end 21e of the seat member 21 forms a first contact surface that abuts against the bottom surface 106 of the flow path block 100 in the direction of pressure due to differential pressure, and a second contact surface that abuts against the bottom surface 106 upon receiving the axial force of the valve body 2.

[0026] In Figure 1, a resin shaft support portion 81 is attached to the inside of the upper end of the can 3. More specifically, the shaft support portion 81 consists of a cylindrical portion 81a whose upper end surface abuts against the lower surface of the can 3, and a flange portion 81b which is arranged around the cylindrical portion 81a and whose outer circumference abuts against the inner circumference of the can 3. A through hole 81c is formed coaxially with the axis L in the center of the lower surface of the cylindrical portion 81a. The inner diameter of the through hole 81c is approximately equal to the outer diameter of the support shaft 8. A rotor support member 56 is attached to the upper end of a cylindrical rotor 57, which is located inside the can 3, facing the shaft support portion 81, forming a top-cylindrical shape. A reduction mechanism 6 is arranged radially inward of the rotor 57.

[0027] The reduction mechanism 6 comprises a sun gear 61 integrally formed with the rotor support member 56 on the inner circumference side of the rotor 57, the upper part of a fixed ring gear 62 fixed via a thin-walled cylindrical body 66 that is fixed to the upper part of the valve body 2 and extends upward, a plurality of planetary gears 63 positioned between the sun gear 61 and the fixed ring gear 62 and meshing with each of them, a carrier 64 that rotatably supports the planetary gears 63, and a bottomed cylindrical output gear member 65 having teeth on its inner circumference that mesh with the planetary gears 63. Together these constitute a mysterious planetary gear reduction mechanism. The number of teeth on the fixed ring gear 62 is set to be different from the number of teeth on the output gear member 65.

[0028] The metal support shaft 8 passes through the rotor support member 56 and the sun gear 61 and is rotatably held together with them. The upper end of the support shaft 8 is fitted into and supported by a through hole 81c of a shaft support portion 81 attached to the can 3. The lower end of the support shaft 8 is fitted into a blind hole 22f formed in the upper end of the screw drive member 22.

[0029] The first shaft portion 22a of the cylindrical screw drive member (output shaft) 22 is press-fitted and fixed to the center of the bottom of the output gear member 65, and the output gear member 65 and the screw drive member 22 rotate integrally. The screw drive member 22 has a first shaft portion 22a, a second shaft portion 22b which is larger in diameter than the first shaft portion 22a, a third shaft portion 22c which is smaller in diameter than the second shaft portion 22b, a fourth shaft portion 22d which is smaller in diameter than the third shaft portion 22c, and a male screw portion 22e. The bottom surface of the output gear member 65 is in contact with the upper surface of the second shaft portion 22b.

[0030] A cylindrical bearing retaining member 23 is attached to the upper end of the valve body 2. The bearing retaining member 23 has an upper outer circumference 23a, an intermediate outer circumference 23b which is larger in diameter than the upper outer circumference 23a, and a lower outer circumference 23c which is smaller in diameter than the intermediate outer circumference 23b. A thin-walled cylindrical body 66 is fixed, for example by welding, by fitting it into the upper outer circumference 23a while abutting its lower end against the step between the upper outer circumference 23a and the intermediate outer circumference 23b. The valve body 2 is fixed, for example by press-fitting, by fitting its first inner circumference 2h into the lower outer circumference 23c while abutting its upper end against the step between the lower outer circumference 23c and the intermediate outer circumference 23b.

[0031] Furthermore, the bearing retaining member 23 has an upper inner circumference portion 23d and a lower inner circumference portion 23e which has a smaller diameter than the upper inner circumference portion 23d. The outer ring of the rolling bearing 24 is fitted into the upper inner circumference portion 23d while its lower end abuts against the step difference between the upper inner circumference portion 23d and the lower inner circumference portion 23e.

[0032] The inner ring of the rolling bearing 24 is fitted and mounted to the outer circumference of the second shaft portion 22b, with its upper end abutting against the step between the second shaft portion 22b and the third shaft portion 22c of the screw drive member 22. As a result, the screw drive member 22 is held rotatably while its axial position is fixed relative to the valve body 2 via the bearing holding member 23.

[0033] The male threaded portion 22e of the screw driving member 22 is screwed into the female threaded portion 25e of the driven member 25. The driven member 25 has a large cylindrical portion 25a, a small cylindrical portion 25b protruding downward from the lower end of the large cylindrical portion 25a, and a flange portion 25c extending radially outward from the upper end of the large cylindrical portion 25a. The outer diameter of the flange portion 25c is smaller than the inner diameter of the second inner circumference portion 2i. The driven member 25 also has a through hole 25d extending in the axial direction L, and the upper part of the through hole 25d is the female threaded portion 25e. Near the lower end of the large cylindrical portion 25a, a communication hole 25f is formed that connects the through hole 25d to the outer circumference of the driven member 25.

[0034] The rotational motion of the output gear member 65 is converted into linear motion along the axis L by a screw feed mechanism (conversion mechanism) consisting of a male screw portion 22e and a female screw portion 25e.

[0035] A substantially cylindrical spring receiving member 26 is positioned between the large cylindrical portion 25a and the second inner circumference portion 2i of the valve body 2. The spring receiving member 26 is fixed to the valve body 2 by bringing the lower surface of the enlarged diameter portion formed at its upper end into contact with the stepped surface between the first inner circumference portion 2h and the second inner circumference portion 2i. The large cylindrical portion 25a is slidable relative to the spring receiving member 26, thereby allowing the driven member 25 to move in the axial direction L relative to the valve body 2.

[0036] A coil spring 27 is positioned between the lower surface of the flange portion 25c and the upper end of the spring receiving member 26, enclosing the large cylindrical portion 25a, thereby biasing the driven member 25 upward relative to the valve body 2. The coil spring 27 has the function of eliminating backlash between the male threaded portion 22e and the female threaded portion 25e.

[0037] Below the driven member 25, a retaining ring 28, an internal O-ring OR5, a sliding ring 29 made of, for example, PTFE, and a valve body 41 are attached. The driven member 25, the retaining ring 28, the internal O-ring OR5, the sliding ring 29, and the valve body 41 constitute a valve body unit 4. Although not shown, the valve body unit 4 has a mechanism to prevent the screw drive member 22 and the driven member 25 from rotating together. The space between the spring receiving member 26 and the retaining ring 28, between the valve body 2 and the driven member 25, is called a back pressure chamber BC.

[0038] The retaining ring 28 is fixed by fitting its inner circumference into the small cylindrical portion 25b and contacting its upper surface with the stepped surface between the large cylindrical portion 25a and the small cylindrical portion 25b, and has the function of holding the internal O-ring OR5.

[0039] In Figures 2 and 3, the cylindrical valve body 41 has a small-diameter portion 41a whose upper end abuts against the lower surface of the retaining ring 28, a large-diameter portion 41b which is larger in diameter than the small-diameter portion 41a, and an enlarged-diameter raised portion 41c which is larger in diameter than the large-diameter portion 41b. The large-diameter portion 41b is slidably fitted into the second inner circumference 2i of the valve body 2. The lower end of the enlarged-diameter raised portion 41c becomes a tapered valve body portion 41d which decreases in diameter as it is directed downward in the axial direction. The valve body portion 41d can seat on the valve seat 21d of the seat member 21. An internal O-ring OR5 is arranged on the outer circumference of the small-diameter portion 41a, and a sliding ring 29 is arranged on its outer circumference.

[0040] To suppress leakage of the high-pressure refrigerant introduced into the valve chamber VC, the set deformation amount of the internal O-ring OR5 must be increased to improve sealing performance compared to when using refrigerant at normal pressure. In such a case, if there were no sliding ring 29, the outer circumference of the internal O-ring OR5 would directly contact the inner circumference of the valve body 2, applying a large frictional force, which could hinder the movement of the valve body 41. Therefore, by inserting a sliding ring 29 made of a low-friction material between the internal O-ring OR5 and the inner circumference of the valve body 2, refrigerant leakage is prevented while ensuring smooth movement of the valve body 41.

[0041] Furthermore, the valve body 41 has a shape that penetrates in the axial direction, and a fitting portion 41e into which the small cylindrical portion 25b fits is formed at the upper end of the through hole, and a first tapered portion 41f and a second tapered portion 41g are formed at the lower end of the through hole, which increase in diameter as they extend downward. The inclination angle of the first tapered portion 41f with respect to the axis L is smaller than the inclination angle of the second tapered portion 41g.

[0042] (Assembly of electric valve) When assembling the electric valve 1 of this embodiment, first, the valve body 41, to which the retaining ring 28, internal O-ring OR5, and sliding ring 29 are attached, is inserted from the lower end of the single valve body 2. Then, the spring receiving member 26, coil spring 27, and driven member 25 are inserted from the upper end of the valve body 2, and the small cylindrical portion 25b is press-fitted into the fitting portion 41e through the retaining ring 28. Furthermore, the seat member 21 is press-fitted into the end opening 2k from the lower end of the valve body 2 toward the side opening 2r. Since the seat member 21 can be inserted into the valve body 2 from the end of the valve body 2, assembly ease is improved.

[0043] After screwing the driven member 25 and the screw drive member 22 of the valve body unit 4 together, the shaft support part 81, support shaft 8, rotor 57, reduction mechanism 6, screw drive member 22, rolling bearing 24, bearing holding member 23, etc. are assembled.

[0044] In this state, the bearing retaining member 23 is fixed to the valve body 2, and the can 3 is fixed via the annular member 31.

[0045] Next, the O-ring is assembled to the valve body 2, then inserted into the flow path block 100, and the male threaded portion 2e and the female threaded portion 105 are screwed together. As the male threaded portion 2e is screwed into the female threaded portion 105, the lower end 21e of the seat member 21 comes into contact with the bottom surface 106 of the flow path block 100, and the contact step surface 21c around the valve seat 21d of the seat member 21 comes into contact with the receiving surface 2q around its entire circumference. After that, the stator 50 is mounted around the can 3. With the above steps, the electric valve unit is completed.

[0046] In this embodiment, the seat member 21 is press-fitted into the end opening 2k of the valve body 2, so the press-fit surface (the contact surface between the outer circumferential surface of the seat member 21 and the inner circumferential surface of the end opening 2k) becomes the sealing surface that seals the refrigerant. However, the seat member 21 may be inserted into the end opening 2k with a dimensional relationship that prevents press-fitting (a small gap exists) with respect to the end opening 2k. In this case, the contact step surface 21c of the seat member 21, which faces the valve body 2, contacts the receiving surface 2q around its entire circumference when the seat member 21 is inserted (not press-fitted) from one end of the valve body 2 toward the side opening 2r.

[0047] On the other hand, when the valve body 2 is attached to the flow path block 100 (by screwing in the male threaded portion 2e and applying a downward axial force to the valve body 2), the seat member 21 is pressed and compressed between the receiving surface (first contact surface) 2q and the flow path block (the bottom surface (second contact surface) 106 of the flow path block 100 that contacts the lower end 21e). At this time, the axially opposing contact step surfaces 21c and the lower end 21e of the seat member 21 become sealing surfaces that seal the refrigerant. However, the contact step surface 21c is preferable as a sealing surface because it has a smaller contact area and is subjected to stronger surface pressure than the lower end 21e.

[0048] The press-fit surface, contact step surface 21c, or lower end 21e of the sheet member 21 seals to prevent high-pressure refrigerant entering the gap between the outer circumference of the thin-walled cylindrical portion 21b and the inner circumference of the third inner circumference portion 2j from leaking beyond the press-fit surface, contact step surface 21c, or lower end 21e to the first flow path 101 side. When the step surface 21c is used as the sealing surface, the screw diameter of the male screw portion 2e is, for example, 1.5 times or more larger than the outer diameter of the contact step surface 21c, so the surface pressure between the contact step surface 21c and the receiving surface 2q increases. Therefore, refrigerant leakage can be effectively suppressed.

[0049] Furthermore, even when the seat member 21 is press-fitted into the end opening 2k of the valve body 2, if the outer circumferential surface of the seat member 21 has an axial groove, the contact step surface 21c can be used as a sealing surface.

[0050] (Operation of the electric valve) In the closed valve state shown in Figure 2, the valve body portion 41d of the valve body 41 is seated on the valve seat 21d, preventing the refrigerant from flowing from the valve chamber VC through the valve opening to the first flow path 101.

[0051] In this closed valve state, the pressure of the first flow path 101 is transmitted to the back pressure chamber BC between the driven member 25 and the valve body 41 via the valve port of the seat member 21, the inside of the valve body 41, and the communication hole 25f. The space between the back pressure chamber BC and the side opening 2r is sealed by an internal O-ring OR5. As a result, the pressure on both sides in the axial direction L across the valve body 41 is made uniform, so as not to hinder the valve opening operation.

[0052] When the valve is closed, the magnetic force generated by supplying power to the stator 50 drives the rotor 57 to rotate. The rotational torque of the rotor 57 is transmitted to the sun gear 61 of the reduction mechanism 6 via the rotor support member 56, and the rotational torque, reduced by a predetermined reduction ratio, is output from the output gear member 65. As a result, the screw drive member 22 rotates together with the output gear member 65.

[0053] The rotational movement of the screw drive member 22 is converted into linear movement by a screw feed mechanism consisting of a male screw portion 22e and a female screw portion 25e. As a result, the driven member 25 rises along the axis L direction with the valve body 41 relative to the valve body 2, and the valve body portion 41d separates from the valve seat 21d, resulting in the open valve state shown in Figure 3. In the open valve state, fluid flows from the valve chamber VC toward the valve port of the seat member 21 and the first flow path 101 at a flow rate corresponding to the gap between the valve body portion 41d and the valve seat 21d.

[0054] By supplying power with reverse characteristics to the stator 50 from the open valve state, the rotor 57 rotates in the reverse direction. This causes the valve body 41 to descend in the opposite direction to the above-mentioned operation, and the valve body portion 41d of the valve body 41 is seated on the valve seat 21d, thereby closing the valve.

[0055] As shown in Figure 2, according to this embodiment, a gap (BA) is formed between the lower end 2s of the valve body 2 and the bottom surface 106. Therefore, the axial force of the valve body 2 in the axial direction L generated by screwing it into the flow path block 100 is entirely received by the annular contact region C between the lower end 21e of the seat member 21 and the bottom surface 106 of the flow path block 100. Furthermore, since the contact step surface 21c facing the lower end 21e across the thick cylindrical portion 21a is in contact with the receiving surface 2q of the valve body 2 at the annular contact region D, the upward reaction force generated in the annular contact region C can be received by the annular contact region D. For this reason, the seat member 21 is fixed by applying pressing force from both sides in the axial direction. Since the area of ​​the annular contact region D is smaller than the area of ​​the annular contact region C, a high surface pressure can be secured and sealing performance is improved. It is preferable that, when viewed in the axial direction, the annular contact region C partially overlaps with the annular contact region D.

[0056] Here, because the internal pressure difference between the second flow path 102, into which high-pressure refrigerant is introduced, and the first flow path 101 is large, a downward axial pressing force corresponding to this internal pressure difference acts on the seat member 21. In this embodiment, since the lower end 21e of the seat member 21 is in contact with the bottom surface 106 of the flow path block 100, the seat member 21 does not come out of the valve body 2 even when a downward pressing force is applied, and the sealing performance of the annular contact region D is maintained. As a result, it is not necessary to consider the press-fit amount of the seat member 21 to the valve body 2, the seat member 21 can be made smaller, and a compact and low-cost electric valve 1 can be provided.

[0057] In this example, the pressing force on the seat member 21 due to the internal pressure difference between the second flow path 102 and the first flow path 101, and the axial force in the axial direction L generated by screwing the valve body 2 into the flow path block 100, are mainly received in the annular contact region C.

[0058] Furthermore, even if the lower end 21e of the seat member 21 is at the same position as or above the lower end 2s of the valve body 2, the same effect as in this embodiment can be obtained by, for example, making the bottom surface 106 of the flow path block 100 annularly raised in correspondence with the seat member 21 instead of being flat. By configuring the raised portion of the bottom surface 106 of the flow path block 100 to abut against the lower end 21e of the seat member 21 without contacting the lower end 2s of the valve body 2, a predetermined gap can be formed between the lower end 2s of the valve body 2 and the bottom surface 106.

[0059] (modified version) Furthermore, conversely to the above embodiment, even if the first flow path 101 is connected to a high-pressure pipe to create a high-pressure side flow path and the second flow path 102 is connected to a low-pressure pipe to create a low-pressure side flow path, the electric valve 1 of this embodiment can be used with the same configuration. In this case, when the valve is closed, the radially outer side of the thin-walled cylindrical portion 21b becomes low pressure, and the radially outer side of the thick-walled cylindrical portion 21a becomes high pressure, with the annular contact region D in between.

[0060] In the modified electric valve 1, the valve opening and closing operation is the same except that when the valve is opened, the refrigerant flows from the first passage 101 to the second passage 102. In this example, due to the internal pressure difference between the first passage 101, into which high-pressure refrigerant is introduced, and the second passage 102, an upward axial pressing force corresponding to the internal pressure difference acts on the seat member 21, which contributes to improving the sealing performance of the annular contact region D. In this modified example, the contact step surface 21c of the seat member 21 constitutes a first contact surface and sealing surface that contacts the receiving surface 2q of the valve body 2, facing the insertion direction of the seat member 21 and the pressing direction due to the differential pressure, and the lower end 21e of the seat member 21 constitutes a second contact surface that contacts the passage block 100, facing the contact step surface 21c in the axial direction, with the thick cylindrical portion 21a in between.

[0061] Furthermore, in the above modified example, the inner diameter of the first flow path 101 can be made larger than the outer diameter of the seat member 21. In this case, a pressing force acts on the seat member 21 from the first flow path 101 side toward the valve chamber VC side due to the differential pressure of the refrigerant, so that the contact step surface 21c is in contact with the receiving surface 2q of the valve body 2, and the seat member 21 does not come out of the valve body 2 even without a second contact surface. Also, with this configuration, after the valve body 2 is attached to the flow path block 100, the seat member 21 can be press-fitted into the valve body 2 through the first flow path 101 from the outside of the flow path block 100. In this example, the seat member 21 has a first contact surface and a sealing surface as the contact step surface 21c, but does not have a second contact surface.

[0062] It should be noted that the present invention is not limited to the embodiments described above. Within the scope of the present invention, any component of the embodiments described above can be modified. Furthermore, any component can be added or omitted in the embodiments described above. For example, instead of a planetary gear reduction mechanism, a reduction mechanism consisting of a gear pair may be provided as the reduction mechanism. In addition, the electric valve of the present invention can be used, for example, to control the flow rate of a high-pressure fluid containing CO2.

[0063] This specification includes disclosures of the following inventions. (First form) A valve body having a valve chamber, an end opening communicating with the valve chamber and opening in the axial direction, and a side opening communicating with the valve chamber and opening in a direction intersecting the axis, A seat member having a valve seat on the valve chamber side, with at least a portion of it positioned within the end opening, A valve body that moves closer to or further away from the valve seat, It has a conversion mechanism that converts the rotational movement of the rotor into the linear movement of the valve body, The electric valve is characterized in that the valve body has a contact surface that restricts the movement of the seat member toward the valve chamber within the end opening.

[0064] (Second form) The electric valve according to claim 1, wherein, when the valve body is attached to a flow path block having a first flow path and a second flow path, the seat member has a first contact surface provided on the upper end side of the seat member that abuts against the valve body, and a second contact surface provided on the lower end of the seat member that abuts against the flow path block.

[0065] (Third form) A second embodiment of an electric valve, characterized in that the sheet member is press-fitted into the end opening, and the contact surface between the outer circumferential surface of the sheet member and the end opening becomes a sealing surface that seals the fluid.

[0066] (Fourth form) A second embodiment of an electric valve, characterized in that at least one of the first contact surface and the second contact surface is a sealing surface that seals fluid.

[0067] (Fifth form) A valve body having a valve chamber, an end opening communicating with the valve chamber and opening in the axial direction, and a side opening communicating with the valve chamber and opening in a direction intersecting the axis, A seat member having a valve seat on the valve chamber side, with at least a portion of it positioned within the end opening, A valve body that moves closer to or further away from the valve seat, It has a conversion mechanism that converts the rotational movement of the rotor into the linear movement of the valve body, The seat member is inserted into the end opening from one end of the valve body toward the valve chamber, and is characterized in that it abuts the valve body around the valve seat with its entire circumference.

[0068] (Sixth form) The electric valve of claim 5, characterized in that, when the valve body is attached to a flow path block having a first flow path and a second flow path, the seat member has a first contact surface provided on the upper end side of the seat member that abuts against the valve body, and a second contact surface provided on the lower end of the seat member that abuts against the flow path block.

[0069] (Seventh form) A sixth embodiment of an electric valve, characterized in that the sheet member is press-fitted into the end opening, and the contact surface between the outer circumferential surface of the sheet member and the end opening forms a sealing surface that seals the fluid.

[0070] (Eighth form) A sixth embodiment of an electric valve, characterized in that at least one of the first contact surface and the second contact surface is a sealing surface that seals fluid.

[0071] (Ninth form) In the state in which the valve body is attached to the flow path block, the lower end of the seat member is located on the bottom surface side of the flow path block, An electric valve according to any of the first to eighth embodiments, characterized by the above.

[0072] (Tenth form) When the valve body, to which the seat member is assembled, is brought close to the bottom surface of the flow path block, the lower end of the seat member comes into contact with the bottom surface before the lower end of the valve body comes into contact with the bottom surface. An electric valve according to any of the first to ninth embodiments, characterized by the above.

[0073] (11th form) An electric valve unit characterized by having an electric valve of any of the first to eighth forms and a flow path block to which the electric valve is assembled. [Explanation of Symbols]

[0074] 1. Electric valve 2 Valve body 2k end opening 2r side opening 2s Valve body end 3 Can 6 Reduction mechanism 8 Support shaft 21 Sheet material 21c Contact step surface 21d valve seat 21e End of sheet member 22 Screw drive member 23 Bearing retaining member 24 Rolling bearings 25 Driven member 26 Spring support member 27 Coil springs 41 Valve body 41d Valve body 50 staters 57 Rotor 81 Shaft support part 100 flow path blocks 101 First channel 102 Second channel BC back pressure chamber VC valve chamber

Claims

1. A valve body having a valve chamber, an end opening communicating with the valve chamber and opening in the axial direction, and a side opening communicating with the valve chamber and opening in a direction intersecting the axis, A seat member having a valve seat on the valve chamber side, with at least a portion of it positioned within the end opening, A valve body that moves closer to or further away from the valve seat, It has a conversion mechanism that converts the rotational movement of the rotor into the linear movement of the valve body, The valve body is provided with a contact surface that restricts the movement of the seat member toward the valve chamber within the end opening, In the state in which the valve body is attached to the flow path block, the lower end of the seat member is located on the bottom surface side of the flow path block, An electric valve characterized by the following features.

2. A valve body having a valve chamber, an end opening communicating with the valve chamber and opening in the axial direction, and a side opening communicating with the valve chamber and opening in a direction intersecting the axis, A seat member having a valve seat on the valve chamber side, with at least a portion of it positioned within the end opening, A valve body that moves closer to or further away from the valve seat, It has a conversion mechanism that converts the rotational movement of the rotor into the linear movement of the valve body, The valve body is provided with a contact surface that restricts the movement of the seat member toward the valve chamber within the end opening, When the valve body with the seat member assembled is brought close to the bottom surface of the flow path block, the lower end of the seat member comes into contact with the bottom surface before the lower end of the valve body comes into contact with the bottom surface. An electric valve characterized by the following features.

3. The electric valve according to claim 1 or 2, wherein, when the valve body is attached to a flow path block having a first flow path and a second flow path, the seat member has a first contact surface provided on the upper end side of the seat member that abuts against the valve body, and a second contact surface provided on the lower end of the seat member that abuts against the flow path block.

4. The electric valve according to claim 3, characterized in that the sheet member is press-fitted into the end opening, and the contact surface between the outer circumferential surface of the sheet member and the end opening becomes a sealing surface that seals the fluid.

5. The electric valve according to claim 3, characterized in that at least one of the first contact surface and the second contact surface is a sealing surface that seals fluid.

6. An electric valve unit characterized by comprising the electric valve described in Claim 1 and a flow path block to which the electric valve is assembled.

7. An electric valve unit characterized by comprising an electric valve according to Claim 2 and a flow path block to which the electric valve is assembled.

8. A valve body having a valve chamber, an end opening communicating with the valve chamber and opening in the axial direction, and a side opening communicating with the valve chamber and opening in a direction intersecting the axis, A seat member having a valve seat on the valve chamber side, with at least a portion of it positioned within the end opening, A valve body that moves closer to or further away from the valve seat, It has a conversion mechanism that converts the rotational movement of the rotor into the linear movement of the valve body, The seat member is inserted into the end opening from one end of the valve body toward the valve chamber, and contacts the valve body around the valve seat with respect to its entire circumference. In the state in which the valve body is attached to the flow path block, the lower end of the seat member is located on the bottom surface side of the flow path block, An electric valve characterized by the following features.

9. A valve body having a valve chamber, an end opening communicating with the valve chamber and opening in the axial direction, and a side opening communicating with the valve chamber and opening in a direction intersecting the axis, A seat member having a valve seat on the valve chamber side, with at least a portion of it positioned within the end opening, A valve body that moves closer to or further away from the valve seat, It has a conversion mechanism that converts the rotational movement of the rotor into the linear movement of the valve body, The seat member is inserted into the end opening from one end of the valve body toward the valve chamber, and contacts the valve body around the valve seat with respect to its entire circumference. When the valve body with the seat member assembled is brought close to the bottom surface of the flow path block, the lower end of the seat member comes into contact with the bottom surface before the lower end of the valve body comes into contact with the bottom surface. An electric valve characterized by the following features.

10. The electric valve according to claim 8 or 9, wherein, when the valve body is attached to a flow path block having a first flow path and a second flow path, the seat member has a first contact surface provided on the upper end side of the seat member that abuts against the valve body, and a second contact surface provided on the lower end of the seat member that abuts against the flow path block.

11. The electric valve according to claim 10, characterized in that the sheet member is press-fitted into the end opening, and the contact surface between the outer circumferential surface of the sheet member and the end opening becomes a sealing surface that seals the fluid.

12. The electric valve according to claim 10, characterized in that at least one of the first contact surface and the second contact surface is a sealing surface that seals fluid.

13. An electric valve unit characterized by having an electric valve according to claim 8 and a flow path block to which the electric valve is assembled.

14. An electric valve unit characterized by having an electric valve according to claim 9 and a flow path block to which the electric valve is assembled.

Citation Information

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