solenoid valve

The solenoid valve design addresses malfunctions caused by condensation through recesses on the valve body that restrict coil rotation and facilitate moisture drainage, ensuring reliable operation in moist environments.

JP7745838B2Active Publication Date: 2025-09-30FUJIKOKI MFG CO LTD
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Patent Information

Application Number
JP2023187678
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-11-01
Publication Date
2025-09-30
Estimated Expiration
2043-11-01

AI Technical Summary

Technical Problem

Solenoid valves are prone to malfunction due to condensation or moisture ingress, which can cause displacement or deformation of the coil unit when exposed to external environments, particularly in refrigeration systems.

Method used

The solenoid valve design incorporates a valve body with a mounting surface featuring recesses that restrict the rotation of the coil unit, combined with gaps that facilitate drainage of moisture, preventing misalignment and damage from condensation.

Benefits of technology

The design effectively prevents coil unit misalignment and damage from condensation, ensuring reliable operation even in moist environments by allowing moisture to drain away, thus reducing the risk of malfunctions.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a solenoid valve preventing inconvenience from occurring because of dew condensation water.SOLUTION: A solenoid valve 100 includes: a valve body 30 that has a mounting surface 30a having an upper large-diameter hole section 30b (connection hole section); a connection section 22 that is fastened to the upper large-diameter hole section 30b while one end of a case 51 is welded and fixed; a coil unit 70 that is fixed to the other end side of the case 51 and has a housing 73; a plunger 50 that is housed inside the case 51; and a main valve element 40 that travels following the plunger 50. The housing 73 is formed by connecting an upper plate 73a, a lower plate 73b, and a side plate 73c for connecting them. The connection section is disposed while projecting from the mounting surface 30a and has a base section 22a that opposes the lower plate 73b with a gap. The lower plate 73b has a projection 74 projecting toward the mounting surface 30a. The mounting surface 30a regulates the rotation of the housing 73 by fitting the projection 74 and has a recess 37 that is continuous to the upper large-diameter hole section 30b.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a solenoid valve that can be used in a refrigeration cycle device. [Background technology]

[0002] BACKGROUND ART Solenoid valves that use an electromagnetic actuator to open and close a valve have conventionally been used in refrigeration cycle systems that have a refrigerant circuit, such as air conditioners, refrigerators, and refrigeration devices.

[0003] Because lead wires are connected to the coil unit of a solenoid valve, the coil unit needs to be fixed so that its assembly position relative to the valve body is constant. For example, in the solenoid valve of Patent Document 1, a convex part on the bottom of the coil unit housing engages with a concave part in the valve body to fix it in a constant position. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2013-213524 Summary of the Invention [Problem to be solved by the invention]

[0005] However, depending on the conditions under which the solenoid valve is used, condensation or moisture (liquid moisture) from the external environment may seep into the gap between the valve body and the coil unit. In the solenoid valve of Patent Document 1, if the moisture that has seeped into the gap freezes, there is a concern that the expansion caused by freezing could cause problems such as displacement of the coil unit or deformation of the case that houses the plunger.

[0006] An object of the present invention is to provide a solenoid valve that is less likely to malfunction even in an environment where it is exposed to condensation or moisture from the external environment. [Means for solving the problem]

[0007] In order to solve the above problems and achieve the object, the solenoid valve of the present invention comprises a valve body having a mounting surface with a connection hole portion, a cylindrical case, a connection portion to which one end side of the case is fixed and fastened to a fastening portion formed in the connection hole portion, a coil unit having a housing fixed to the other end side of the case and attached to a coil, a plunger housed inside the case and driven by the coil, and a valve body that moves with the plunger, wherein the housing is composed of an upper plate, a lower plate, and side plates connecting the upper and lower plates, the connection portion has a base that faces the lower plate with a gap between them, the lower plate has a convex portion that protrudes toward the mounting surface, and the mounting surface has a concave portion that fits into the convex portion to restrict rotation of the housing, and the concave portion is continuous at least from the position where the convex portion is fitted to the connection hole portion. [Effects of the Invention]

[0008] According to the present invention, it is possible to provide a solenoid valve that is less likely to suffer from problems such as misalignment of the coil unit even when exposed to condensation or moisture from the external environment.

[0009] Other objects, features, and advantages of the present invention will become apparent from the following detailed description of the preferred embodiments of the present invention, which is given with reference to the accompanying drawings. In the drawings, the same reference numerals indicate the same or corresponding parts. [Brief explanation of the drawings]

[0010] [Figure 1] 1 is a cross-sectional view of a solenoid valve according to an embodiment of the present invention, showing a valve closed state. [Figure 2] 1 is a cross-sectional view of a solenoid valve according to an embodiment of the present invention, showing an open state. [Figure 3] 3 is a cross-sectional view of the solenoid valve according to the embodiment of the present invention (a cross-section seen from a direction rotated 90 degrees around the axis from the state of FIG. 2). [Figure 4] 1 is an external view of a solenoid valve according to an embodiment of the present invention, with a coil unit removed, as viewed from above (above the axis L). [Figure 5] FIG. 4 is an enlarged view of part A in FIG. DETAILED DESCRIPTION OF THE INVENTION

[0011] A solenoid valve according to an embodiment of the present invention will now be described with reference to FIGS. 1 to 5. These figures explain the configuration of a solenoid valve according to an embodiment of the present invention, with FIG. 1 being a cross-sectional view showing a fully closed state, and FIGS. 2 and 3 being cross-sectional views showing a fully open state. FIG. 4 is a top view showing the appearance with the coil unit removed, so that the mounting surface of the valve body can be seen. FIG. 5 is a partial cross-sectional view enlarging part A in FIG. 3. Also, only FIG. 5 is hatched. In the following description of the embodiment, the directions of up / down, left / right, and inside / outside indicate directions within the plane of the paper in FIGS. 1 to 5, and are not to be construed as narrowing the technical scope of the present invention.

[0012] First, the basic structure of a solenoid valve will be described. As shown in FIGS. 1 to 3 , a pilot-operated solenoid valve 100 (simply referred to as a solenoid valve) according to an embodiment of the present invention is a solenoid valve that includes a main valve section 10 and a pilot valve section 20 within a valve body 30 and can be used in the refrigeration cycle of an air conditioner, for example. Opening and closing the main valve section 10 controls the flow of fluid between a fluid inlet 31 and an outlet 32. The inlet 31 and the outlet 32 ​​are formed in the valve body 30, and a main valve chamber 33 is provided between the inlet 31 and the outlet 32. A main valve element 40, as described below, is housed within the main valve chamber 33 so as to be slidable up and down. The main valve section 10 is located on one side (the lower side in the illustrated embodiment) of the sliding direction of the main valve element 40, and the pilot valve section 20 is located on the other side (the upper side in the illustrated embodiment). In this solenoid valve 100, the valve body 30 and the main valve element 40 are made of aluminum or an aluminum alloy.

[0013] A plunger 50 that moves a pilot valve element 60 serving as a valve element is slidably housed in a cylindrical case 51 at the center of the upper part of the solenoid valve 100. The case 51 is open downward, and is fixed (secured) to the connecting part 22 with its outer circumferential surface sealed by means of caulking, welding, or the like. In addition, an attractor 80 is fixed (secured) to the upper open end (other end) of the case 51 with the upper end of the case 51 sealed. A spring 52 is disposed between the plunger 50 and the attractor 80.

[0014] The connection part 22 has an overall cylindrical shape with through holes formed at the top and bottom. The connection part 22 includes a base 22a having an upper inner circumferential surface to which the open end (one end) below the case 51 is fixed in a sealed state, as described above, and a threaded cylindrical part 22b connected to the lower side of the base 22a and having an external thread formed on its outer circumferential surface. The base 22a of the connection part 22 has a flat surface on its surface (top surface) to which the case 51 is fixed so as to protrude. The connection part 22 is fastened to a fastening part formed in an upper large-diameter hole 30b, which serves as a connection hole formed in the valve body 30, via the external threads of the threaded cylindrical part 22b. The upper large-diameter hole 30b is formed in the mounting surface 30a, which is the upper surface of the valve body 30. When the connection part 22 is fastened to the upper large-diameter hole 30b, the upper surface of the valve body 30 is positioned so that the upper surface of the base 22a does not protrude from the mounting surface 30a when viewed from the side (perpendicular to the axis L). The upper large diameter hole portion 30b has a fastening portion (female thread) that fastens with the male thread of the connecting portion 22, and a cylindrical portion (consisting of two-stage cylindrical portions in this embodiment) formed above the fastening portion. The connecting portion 22 is made of stainless steel.

[0015] A cylindrical main valve element accommodating portion (space portion) 82 is formed inside the threaded cylindrical portion 22b of the connection portion 22, and the main valve element 40 is accommodated in this main valve element accommodating portion 82 so that it can slide vertically. The space is divided into upper and lower portions by the main valve element 40, so that the lower portion of the space serves as the main valve chamber 33 and the upper portion serves as the pilot valve chamber 34. The outside of the connection portion 22 is sealed from the valve body 30 by an appropriate O-ring 83. A piston ring 43 is arranged on the outer peripheral surface of the main valve element 40 that slides inside the connection portion 22 (the portion that slides against the inner peripheral surface of the threaded portion of the connection portion 22), and is configured to prevent refrigerant leakage.

[0016] The main valve section 10 is made up of a main valve packing 41 attached to the underside of the main valve element 40 and a main valve seat 35 formed between the inlet 31 and the outlet 32 ​​of the valve body 30. The pilot valve section 20 is made up of a pilot valve packing 60 (pilot valve element) attached to the bottom surface of the plunger 50 and a pilot valve seat 42 formed on the upper side of the main valve element 40. The main valve element 40 is formed with a main valve element shaft hole (pilot passage) 45 and a pressure equalizing hole 44. The pressure equalizing hole 44 communicates between the main valve chamber 33 and the pilot valve chamber 34. The cross-sectional area of ​​the narrowest point of the pressure equalizing hole 44 is smaller than the cross-sectional area of ​​the narrowest point of the pilot passage 45. As will be described later, the formation of this pressure equalizing hole 44 equalizes the pressure between the main valve chamber 33 and the pilot valve chamber 34, facilitating and smoothing the opening and closing operation of the main valve element 40.

[0017] Coil unit 70 is constructed by surrounding bobbin 72, around which coil 71 is wound, with housing 73 made of magnetic material. The bobbin 72 is covered with resin to prevent moisture from penetrating into coil 71. As can be seen from FIG. 3, housing 73 is a so-called yoke, made of soft magnetic material processed into a U-shaped cross section. Specifically, housing 73 is constructed by connecting a plate-shaped upper plate 73a disposed on the upper surface, a lower plate 73b disposed on the lower surface, and a side plate 73c connecting upper plate 73a and lower plate 73b. Upper plate 73a of housing 73 is fixed to attractor 80 at the upper end of case 51 with bolts 75.

[0018] As shown in FIG. 3, a circular protrusion 74 protruding downward is formed on the lower plate 73b of the housing 73. Meanwhile, a linear groove, or recess 37, is formed on the mounting surface 30a of the valve body 30. The coil unit 70 is fixed with a bolt 75, with the tip of the protrusion 74 fitted into and locked in the recess 37. As a result, the locking portion of the protrusion 74 in the recess 37 acts as a rotation stopper that restricts rotation of the coil unit 70 around the axis L. The specific configuration of this rotation stopper mechanism will be described later. Furthermore, when the connection portion 22 is attached to the upper large-diameter hole portion 30b and the coil unit 70 is fixed to the other end of the case 51 via the bolt 75 and the attractor 80, the lower plate 73b faces the upper surface (mounting surface 30a) of the valve body 30 with a gap (G2) between them (see FIG. 5). Here, the state in which the tip of the protrusion 74 is fitted into the recess 37 refers to a state in which the recess 37 and the protrusion 74 have an overlapping area in the height direction (axis L direction).

[0019] Next, the operation of the solenoid valve 100 will be described. FIG. 1 shows a state in which the coil unit 70 (coil 70a) is not energized. In this state, no suction force is generated in the suction element 80, so the spring 52 pushes the plunger 50 downward within the case 51, closing the pilot valve portion 20 (pilot valve seat 42) (i.e., blocking the pilot passage 45). Because the pilot valve seat 42 is closed, the pressures in the main valve chamber 33 and the pilot valve chamber 34 are equal, and no pressure differential occurs to raise the main valve element 40. Because the spring 52 has a stronger force than the main valve element spring 46, the main valve element 40 is pressed downward within the main valve chamber 33. The main valve packing 41 formed below the main valve element 40 closes the main valve seat 35 formed within the valve body 30, closing the main valve portion 10. In this state, the flow of fluid, such as a refrigerant, from the inlet 31 to the outlet 32 ​​is blocked.

[0020] 1, when current is applied to the coil unit 70 (coil 71), the attractor 80 and the plunger 50 are magnetized, generating an electromagnetic attractive force between them, causing the plunger 50 to be pulled up against the elastic force of the spring 52. Since the pilot valve element 60 is fixed to the bottom surface of the plunger 50, the pilot valve portion 20 (pilot valve seat 42) is in an open state.

[0021] In this state, when the compressor (not shown) is operated, refrigerant flows into the main valve chamber 33 from the inlet 31. At this time, the refrigerant flows from the main valve chamber 33 through the pressure equalizing hole 44 (more precisely, through the gap between the inner circumferential surface of the threaded cylindrical portion 22b and the outer circumferential surface of the main valve element 40 and the pressure equalizing hole 44) to the pilot valve chamber 34. However, the amount of refrigerant flowing out from the pilot valve chamber 34 to the outlet 32 ​​via the pilot passage 45 is greater than the amount of refrigerant flowing into the pilot valve chamber 34. Therefore, the pressure in the pilot valve chamber 34 becomes smaller than the pressure in the main valve chamber 33, and an upward force acts on the main valve element 40. Together with the elastic force of the main valve element spring 46, the main valve unit 10 transitions to the open state (the state shown in FIGS. 2 and 3). In this state, the refrigerant or other fluid flows from the inlet 31 to the outlet 32. In this embodiment, if the pilot valve portion 20 is in an open state, the main valve element 40 opens (the state in FIGS. 2 and 3) due to the elastic force of the main valve element spring 46 even when the compressor is stopped.

[0022] 2 and 3 (open valve state), when the power supply to the coil unit 70 is stopped, the electromagnetic attraction force of the attractor 80 by the coil unit 70 disappears, and the plunger 50 is pushed downward by the elastic force of the spring 52. The pilot valve element 60 moves downward together with the plunger 50 and abuts against the pilot valve seat 42, and the pilot valve portion 20 enters the closed state.

[0023] Because the pilot valve seat 42 is closed, when refrigerant flows into the pilot valve chamber 34 through the pressure equalizing hole 44, the pressure difference between the pilot valve chamber 34 and the main valve chamber 33 gradually decreases, and the force moving the main valve element 40 upward becomes weaker. When the pressure difference between the pilot valve chamber 34 and the main valve chamber 33 becomes sufficiently small, the main valve element 40 moves downward due to the elastic force of the spring 52, and the main valve packing 41 formed on the lower side of the main valve element 40 is pressed against the elastic force of the spring 40 against the main valve seat 35 formed in the valve body 30, and the main valve unit 10 becomes closed (the state shown in FIG. 1).

[0024] Here, the characteristic features of the present invention will be described. As shown in Fig. 4, four recesses 37 are formed on the mounting surface 30a of the valve body 30 by cutting or grinding. All four recesses 37 are linear and continue from the side end of the valve body 30 to the upper large-diameter hole portion 30b. The four recesses 37 are arranged to intersect at right angles at the center of the upper large-diameter hole portion 30b. Specifically, as shown in Fig. 4, two pairs of recesses 37 formed on the mounting surface 30a on either side of the center of the upper large-diameter hole portion 30b each have common center lines C1 and C2, and the center lines C1 and C2 intersect at right angles at the center of the upper large-diameter hole portion 30b.

[0025] The cross section of the recess 37 perpendicular to the center line C1 (or C2) is rectangular, and the depth (the dimension from the upper surface of the mounting surface 30a to the bottom surface 37a of the recess 37) and width (the width of the recess 37) are slightly larger than the height (the amount of protrusion from the bottom surface of the lower plate 73b) and diameter of the protrusion 74, respectively. In particular, the width of the recess 37 is desirably such that there is no or only a small gap in the transverse direction (the direction toward the side wall of the recess 37) when the protrusion 74 is fitted (when the coil unit 70 is locked), and there is no rattle in the rotational direction when the coil unit 70 is attached to the valve body 30. Note that, because the cross section of the recess 37 is rectangular, the bottom surface 37a is flat, but the bottom shape does not have to be flat.

[0026] Furthermore, the protrusions 74 are located outside (on the outer periphery when viewed from above) the base 22a of the connecting part 22 so that the protrusions 74 can be fitted into the recesses 37 when the coil unit 70 is attached to the valve body 30. Furthermore, there are four positions at 90-degree intervals around the axis L for fitting the protrusions 74 into the recesses 37, so that the recesses 37 into which the protrusions 74 are fitted can be selected from the four positions depending on the direction in which the coil unit 70 is to be fixed. Furthermore, the upper surface of the connecting part 22 is formed with two locking holes 22c for locking a tool when screwing the connecting part 22 into the upper large-diameter hole 30b of the valve body 30.

[0027] In this embodiment, all four recesses 37 are formed continuously from the upper large diameter hole portion 30b to the outer end of the mounting surface 30a of the valve body 30. In other words, by forming recesses 37 that extend coaxially in the vertical and horizontal directions on the mounting surface 30a, sandwiching the upper large diameter hole portion 30b, the number of steps required for cutting (or grinding) can be reduced. Note that as long as the recesses 37 are continuous from the position where the protrusion 74 is fitted to the upper large diameter hole portion 30b (more precisely, the cylindrical portion above the fastening portion of the upper large diameter hole portion 30b), they can function as the anti-rotation mechanism of the present invention. In other words, there is no functional problem even if the recesses 37 do not extend outward beyond the position where the protrusion 74 is fitted.

[0028] As can be seen from FIG. 5 , when the coil unit 70 is fixed to the other end of the case 51 via the bolt 75 and the attractor 80, a gap (G1) is formed between the lower plate 73b and the upper surface of the base 22a, and a gap (G2) is formed between the lower plate 73b and the mounting surface 30a (the surface of the mounting surface 30a where the recess 37 is not formed). The gaps (G1) and (G2) are connected and continuous in the horizontal direction (a direction perpendicular to the axis L). This configuration allows the gap (G1) to communicate with the outside through the gap (G2), making it easier for infiltrating liquids, such as condensed water, to be discharged. In other words, even if condensed water or the like adheres or freezes, problems such as misalignment of the coil unit can be prevented. Furthermore, as described above, the recess 37 is continuous from the position where the protrusion 74 is fitted to the upper large-diameter hole 30b, so the recess 37 and the gap (G1) are continuous. Condensed water or the like that has infiltrated into the gap (G1) is also discharged from the recess 37.

[0029] In this embodiment, the height of a gap (referred to as G3) between the lower plate 73b and the bottom surface 37a of the recess 37 is set to be larger than the height of the gap (G1). The heights of the gaps (G1, G2) are both greater than 0 (zero), and in this embodiment, the height of the gap (G1) is set to be larger than the height of the gap (G2), and the height of the gap (G3) is set to be larger than the height of the gap (G1). Therefore, water such as condensation water in the gap (G1) is easily discharged from the recess 37.

[0030] In this embodiment, the upper surface of the base 22a is located at a lower position than the mounting surface 30a, but even if the upper surface of the base 22a is located at a higher position than the mounting surface 30a or at the same height, as long as the gap (G1) and the gap (G2) are connected, water or the like that has entered (G1) will be discharged to the outside through the gap (G2) or the gap (G3).

[0031] Furthermore, because the recesses 37 continue to the upper large-diameter hole portion 30b, the other three recesses 37 into which the protrusions 74 are not fitted also function as drainage paths for draining water accumulated in the gaps (G1, G2) to the outside. This configuration facilitates drainage of condensed water from the gaps (G1, G2, G3), thereby effectively preventing rust and malfunctions caused by freezing of condensed water. Because water that has infiltrated into the gap (G1) is drained to the outside, water is less likely to infiltrate the gap between the outer periphery of the case 51 and the coil unit 70, eliminating the risk of damage to the case 51 due to ice punctures. While the upper surface of the base 22a in this embodiment is flat, it may be a tapered surface or a stepped surface that slopes downward toward the outer periphery as long as the gap (G1) is present.

[0032] Other embodiments of the present invention will be described below. Although the embodiments of the present invention have been described above, the present invention is not limited to these configurations and can be modified in various ways. For example, in the above-mentioned embodiments, a solenoid valve that is closed when de-energized (a normally closed solenoid valve) has been described, but the present invention may also be applied to a normally open solenoid valve as long as there is a gap between the base 22a of the connection portion 22 and the housing 73 (lower plate 73b). Furthermore, it is of course possible to adopt a locking structure using a clip or pin instead of the bolt 75 of the above-mentioned embodiment.

[0033] In the above-described embodiment, the pilot valve 60 is provided at the tip of the plunger 50, and the main valve packing 41 is provided on the underside of the main valve body 40. However, the present invention is not limited to this, and a configuration without the pilot valve 60 and / or packing 41 may be adopted as long as the pilot valve seat 42 and / or the main valve seat 35 can be closed satisfactorily.

[0034] In the above-described embodiment, four recesses 37 are formed on the mounting surface 30a at 90-degree intervals, but the number of recesses 37 and the angular intervals can be changed as appropriate. For example, a configuration may be provided with two recesses at 180-degree intervals, two or three recesses at 90-degree intervals, or eight or four recesses at 45-degree intervals. In other words, it is sufficient to have a plurality of recesses formed at least at predetermined angular intervals. Furthermore, while the mounting surface 30a in the above-described embodiment is formed on the entire upper surface of the valve body 30, it may also be the upper surface of a cylindrical portion (in this case, a cylindrical surface) formed continuously from the upper surface of the valve body 30.

[0035] Furthermore, although the solenoid valves in the above-described embodiments are pilot-type solenoid valves, the present invention is not limited to pilot-type solenoid valves, and the fixing structure of the coil unit, which is a characteristic feature of the present invention, can also be applied to direct-acting solenoid valves. For example, a direct-acting solenoid valve does not have a main valve body as in the above-described embodiments, and instead opens and closes the main valve seat using a valve part attached to a plunger. The fixing structure of the coil unit attached to the connection part and the case can be used as is for such direct-acting solenoid valves.

[0036] Furthermore, the solenoid valve according to the present invention can be preferably used in refrigeration cycle devices equipped with a refrigerant circuit, such as air conditioners (air conditioners), freezers, and refrigerators, but is not limited to these and can also be used for a variety of other purposes. [Explanation of symbols]

[0037] 100 Pilot-operated solenoid valve (solenoid valve) 10 Main valve section 20 Pilot valve section 22 Connection 22a base 22b Threaded cylindrical part 22c Locking hole 30 Valve body 30a Mounting surface 30b Upper large diameter hole (connection hole) 31 Inlet 32 Outlet 33 Main valve chamber 34 Pilot valve chest 35 Main valve seat 37 Recess 37a Bottom of recess 40 Main valve body 41 Main valve packing 42 Pilot valve seat 43 Piston rings 44 Pressure equalization hole 45 Main valve body shaft hole (pilot passage) 46 Main valve body spring 50 plunger 51 cases 52 Spring 60 Pilot valve packing (pilot valve body) 70 Coil unit 71 Coil 72 Bobbin 73 Housing 73a Upper board 73b Lower plate 73c side plate 74 Convex part 75 volts 80 Aspirator 82 Main valve body housing portion (space portion) 83 O-ring

Claims

1. a valve body having a mounting surface with a connection hole; A cylindrical case, a connection portion to which one end of the case is fixed and which is fastened to a fastening portion formed in the connection hole portion; a coil unit including a housing fixed to the other end of the case and attached to a coil; a plunger housed inside the case and driven by the coil; a valve body that moves along with the plunger, the housing is made up of an upper plate, a lower plate, and a side plate connecting the upper plate and the lower plate, The connection portion has a base portion facing the lower plate with a gap (G1), the lower plate has a protrusion that protrudes toward the mounting surface, the mounting surface includes a recess into which the protrusion is fitted to restrict rotation of the housing, The solenoid valve is characterized in that the recess is continuous at least from the position where the protrusion is fitted to the connection hole.

2. 2. The solenoid valve according to claim 1, wherein the recessed portion is continuous from the connecting hole portion to an end of the mounting surface.

3. 3. The solenoid valve according to claim 1, wherein a gap (G1) formed between the lower plate and the base and a gap (G2) formed between the lower plate and the mounting surface are connected horizontally.

4. 2. The solenoid valve according to claim 1, wherein a plurality of the recesses are formed at predetermined angular intervals.

Citation Information

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