Pressure-responsive switch

The pressure-responsive switch addresses wiring challenges by aligning terminals and notches in the vertical direction, facilitating easy and interference-free wiring of electrical wires.

JP7846070B2Active Publication Date: 2026-04-14SAGINOMIYA SEISAKUSHO INC
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
SAGINOMIYA SEISAKUSHO INC
Filing Date
2023-09-27
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

The conventional pressure-responsive switch faces difficulties in wiring electrical wires due to the arrangement of terminals and the connection portion of the electric wire being shifted back and forth, leading to interference with other components.

Method used

The pressure-responsive switch is designed with a case that includes a microswitch with a responsive member and terminals positioned opposite each other in the vertical direction, featuring ribs and notches to facilitate easy wiring by aligning the connection portions and notches, allowing electric wires to be led out vertically without interference.

Benefits of technology

This configuration enables easy and interference-free wiring of electrical wires by aligning the connection portions and notches, ensuring smooth exit of wires from the case, even when multiple terminals are used.

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Abstract

To provide a pressure response switch which allows easy wiring of electric wires.SOLUTION: A pressure response switch 1 includes: a microswitch A including a lever 47; a terminal 60 to be connected to a contact whose conductive state changes in response to the displacement of the lever 47; and a case 10 for accommodating the microswitch A therein. A case 10 includes: a cover 15 and a rear wall 13; and a top wall 12 and a bottom wall 14. The lever 47 is disposed on a rear side X1 inside the case 10. The terminal 60 includes a connection portion (a) for connecting an electric wire 70, and the connection portion (a) is disposed on a front side X2 inside the case 10. A notch portion 17 that opens in a vertical direction Z is formed on an edge of the front side X2 of the bottom wall 14, and the notch portion 17 and the connection portion (a) face each other in the vertical direction Z.SELECTED DRAWING: Figure 5
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Description

Technical Field

[0001] The present invention relates to a pressure-responsive switch.

Background Art

[0002] Conventionally, a pressure-responsive switch for detecting a change in the pressure of a refrigerant in a refrigeration cycle has been known (see, for example, Patent Document 1). The pressure-responsive switch described in Patent Document 1 includes a box-shaped support case and a mechanical switch housed inside the support case. The mechanical switch has terminals. A lower side plate formed in a plate shape is provided on the bottom surface of the support case, and a circular hole penetrating in the plate thickness direction is formed at the center of the lower side plate. An electric wire connected to the terminal inside the support case is led out to the outside of the support case through the hole in the lower side plate.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] However, in the above-described pressure-responsive switch, since it is necessary to secure an operating space for a lever (switch lever) attached to the mechanical switch, when the side on which the lever of the mechanical switch is provided is the rear side (back side) of the mechanical switch, the position where the terminals are arranged has to be arranged on the front side (front surface) of the mechanical switch. For this reason, the connection portion between the terminals and the electric wire is located on the front side of the lower side plate in a bottom view of the pressure-responsive switch. Due to such arrangement constraints, the positions of the terminals and the connection portion of the electric wire and the hole in the lower side plate are shifted back and forth, so when wiring the electric wire, the electric wire is likely to interfere with other components. Therefore, it has been difficult to lead the electric wire to the outside, and the wiring of the electric wire has been difficult.

[0005] The present invention aims to provide a pressure-responsive switch that facilitates the wiring of electrical wires. [Means for solving the problem]

[0006] To solve the aforementioned problems and achieve the objective, the pressure-responsive switch of the present invention comprises a microswitch equipped with a responsive member that displaces in response to an external force, and a contact provided on the microswitch that switches in conductivity in accordance with the displacement of the responsive member. multiple Terminals and The mounting surface portion that supports the terminal, A pressure-sensitive switch comprising a case housing the aforementioned microswitch, wherein the case is At positions sandwiching the aforementioned mounting surface The case comprises a front wall and a rear wall facing each other in the front-rear direction, and a top wall and a bottom wall facing each other in the vertical direction perpendicular to the front-rear direction, wherein the responding member is arranged on one side in the front-rear direction within the case, multiple terminal each It includes a connection section for connecting electric wires, and the connection section is located on the other side in the front-rear direction within the case. Furthermore, multiple ribs are provided in a left-right direction perpendicular to the vertical direction, and the installation surface portion is provided with multiple ribs that rise from between adjacent connection portions toward the other side in the front-rear direction, thereby defining the space in which each connection portion is arranged. A notch is formed at the other end of the bottom wall on the front-rear side, opening in the vertical direction. The space partitioned by the rib extends along the vertical direction from the connection portion toward the notch portion and opens toward the notch portion. The notched portion and the connection portion are characterized in that they face each other in the vertical direction.

[0007] According to this invention, the terminal connection portion and the notch portion of the bottom wall of the case are positioned opposite each other in the vertical direction, so that the positions of the connection portion and the notch portion can be aligned when viewed from the bottom of the case. Therefore, when wiring the electric wires, there is no need to bend the wires to avoid interference with other components, and the electric wires can be easily led out from the inside to the outside of the case by pulling them out in the vertical direction. Thus, a pressure-sensitive switch that allows for easy wiring of electric wires can be provided.

[0008] Furthermore, in this case, it is preferable that the terminals are provided in multiple locations on the microswitch, the connection portions are provided in multiple locations arranged in a left-right direction perpendicular to the vertical direction, and the left-right dimension of the notch is set to be larger than the left-right dimension from one end of the multiple connection portions in the left-right direction to the other end of the left-right direction. With such a configuration, since the left-right dimension of the notch is larger than the left-right dimension from one end of the multiple connection portions in the left-right direction to the other end of the left-right direction, even when multiple terminals are provided on the microswitch and the connection portions are arranged in a left-right direction, the above interference can be avoided and the wires can be easily routed.

[0009] Furthermore, it is preferable that the notch is formed in a rectangular shape when viewed from the bottom of the case. With this configuration, by forming the notch in a rectangular shape when viewed from the bottom of the case, the left-right dimension of the opening for guiding the wires to the outside does not change as much in the front-to-back direction, compared to a conventional circular hole (i.e., an arc with the same radius). Therefore, even if the position of the connection part is slightly shifted in the front-to-back direction due to tolerances, for example, it is possible to suppress the shift between the position of the connection part and the position of the notch when viewed from the bottom of the case.

[0010] Furthermore, it is preferable that multiple terminals are provided on the microswitch, and that multiple connection portions are arranged in a stepped manner with their positions offset in the vertical and horizontal directions. With such a configuration, even if multiple terminals are provided on the microswitch, the connection portions are arranged in a stepped manner with their positions offset in the vertical Z direction and the horizontal X direction, so that the wires connected to each connection portion do not overlap and interfere with each other in the vertical and horizontal directions. This makes wiring the wires even easier. [Effects of the Invention]

[0011] According to the present invention, it is possible to provide a pressure-sensitive switch that allows for easy wiring of electrical wires. [Brief explanation of the drawing]

[0012] [Figure 1] Front view of a pressure-responsive switch according to one embodiment of the present invention. [Figure 2] Front view of a pressure-sensitive switch with the cover removed. [Figure 3] A perspective view of the switch components housed in the case of a pressure-sensitive switch. [Figure 4] A perspective view of the switch component as seen from the terminal block side. [Figure 5] Bottom view of a pressure-sensitive switch. [Figure 6] Cross-sectional view taken along line AA in Figure 5. [Modes for carrying out the invention]

[0013] Embodiments of the present invention will be described below with reference to Figures 1 to 6. In the following description, the direction in which the front and back surfaces of the case 10, described later, face each other will be referred to as the "front-to-back direction X," with one side of the front-to-back direction X being referred to as the "rear side X1" and the other side as the "front side X2." The width direction of the case 10 will be referred to as the "left-to-right direction Y," with one side of the left-to-right direction Y being referred to as the "left side Y1" and the other side as the "right side Y2." The height direction of the case 10 will be referred to as the "up-down direction Z," with one side of the up-down direction Z being referred to as the "upper side Z1" and the other side as the "lower side Z2." These definitions are for the convenience of explanation only and do not necessarily coincide with the front-to-back, left-to-right, and up-and-down directions in the actual operating state of the pressure-sensitive switch 1, nor do they limit the directions in the actual operating state of the pressure-sensitive switch 1.

[0014] The pressure-sensitive switch 1 according to this embodiment is used, for example, as a switch to detect changes in the pressure of the refrigerant in a compressor of a refrigeration cycle, or changes in the temperature of a fluid such as a refrigerant. As shown in Figure 1, the pressure-sensitive switch 1 is equipped with a case 10 that is roughly rectangular in shape. The case 10 is composed of a C-shaped main frame 11 that opens to the front X2 and a cover 15 (front wall) that closes the opening of the main frame 11, and houses various components such as a microswitch A, which will be described later, inside. The main frame 11 is formed by bending a metal plate and is equipped with a top wall 12, a rear wall 13, and a bottom wall 14. The top wall 12 is formed in the shape of a rectangular plate that extends in the front-rear direction X and the left-right direction Y. The rear wall 13 is formed in the shape of a rectangular plate and extends from the rear edge X1 of the top wall 12 to the lower Z2. The bottom wall 14 is formed in the shape of a rectangular plate, extending from the lower edge of the rear wall 13 to the front X2, and facing the top wall 12 in the vertical direction Z. The cover 15 is formed in the shape of a rectangular plate, closing the opening of the main frame 11, and facing the rear wall 13 in the front-to-back direction X. A pair of left and right windows 16 that penetrate in the front-to-back direction X are formed on the plate surface of the cover 15, and the inside of the case 10 can be seen through the windows 16.

[0015] The bottom wall 14 of the case 10 is connected to a pair of elements 20 and a pair of connecting pipes 21, each connected to the pair of elements 20. The elements 20 are equipped with a sensing member, such as a bellows or diaphragm (not shown), inside. The sensing member deforms or displaces in the vertical direction Z in response to pressure changes of the pressurized fluid introduced through the connecting pipes 21. Inside the case 10, as shown in Figure 2, a pair of left and right transmission mechanisms 30 and a pair of left and right switch components 40 are housed. The transmission mechanism 30 includes a reinforcing plate 31 formed in a C-shape by bending a metal plate material and opening to the rear side X1, and houses a transmission member 32 inside the reinforcing plate 31. An example of the transmission member 32 is an operating plate 32a, which receives the force of deformation or displacement of the above-mentioned sensing member as an external force, and rotates around the pivot axis 33 to convert the external force into an operating force, which is then transmitted to the lever 47 (responsive member) described later.

[0016] The switch component 40 is configured to include a plurality of contacts (not shown) inside, and changes the conduction state of the contacts upon receiving the above-described operating force. A pair of switch components 40 are provided adjacent to each other in the left-right direction Y, and constitute a dual-type microswitch A. As shown in FIG. 3, the switch component 40 includes a box portion 41. The box portion 41 is formed in a substantially cubic shape using, for example, a resin material. A connection portion 43 that protrudes downward in the Z2 direction is formed on the lower wall 42 of the box portion 41. The connection portion 43 is formed in a plate shape extending in the front-rear direction X and the left-right direction Y, and is fixed to the bottom wall 14 of the case 10 described above. A rectangular box-shaped fixing member 45 is attached to the rear surface portion 44 of the box portion 41. A rotation shaft 46 extending in the left-right direction Y is fixed to the side wall of the fixing member 45, and a lever 47 (responsive member) is attached to the rotation shaft 46 so as to be rotatable about the axis. That is, the lever 47 is disposed on the rear side X1 within the case 10.

[0017] The lever 47 is formed in a plate shape and extends upward in the Z1 direction from the rotation shaft 46, and is inclined so as to be located on the rear side X1 as it goes from the lower end portion supported by the rotation shaft 46 toward the upper end portion. The lever 47 rotates about the rotation shaft 46 upon receiving the above-described operating force. That is, it is displaced about the rotation shaft 46 according to the external force described above. The rotational movement of the lever 47 is transmitted to a micro operating shaft (not shown) and converted into a forward and backward movement in the front-rear direction X. Then, as the micro operating shaft moves forward and backward, a switching means (not shown) provided within the box portion 41 operates, and the conduction destinations of the plurality of contacts are switched by the switching means. That is, the conduction destinations of the contacts are switched as the lever 47 is displaced.

[0018] As shown in Fig. 4, a terminal block 50 is formed in the front X2 portion of the box portion 41. The terminal block 50 is a portion for installing and fixing the terminals 60. In this embodiment, there are three upper terminal blocks 50a arranged in the left-right direction Y, and three lower terminal blocks 50b adjacent to the lower side Z2 of the upper terminal block 50a and arranged in the left-right direction Y at the rear side X1 relative to the upper terminal block 50a, for a total of six. The upper terminal block 50a includes a rectangular upper installation surface portion 51 in plan view extending along the front surface portion 48 of the box portion 41, an upper wall rib 52 extending from the upper Z1 edge portion of the upper installation surface portion 51 to the front side X2, a pair of upper side wall ribs 53 extending from the left side Y1 and the right side Y2 of the upper installation surface portion 51 to the front side X2, and an upper insertion hole 54 penetrating the upper installation surface portion 51 and communicating with the inside of the box portion 41. The lower terminal block 50b includes a rectangular lower installation surface portion 55 in plan view extending along the front surface portion 48 of the box portion 41 at the lower side Z2 and the rear side X1 relative to the upper installation surface portion 51, a connection surface 56 extending from the upper Z1 edge portion of the lower installation surface portion 55 to the front side X2 and connected to the upper installation surface portion 51 and facing the lower side Z2, a pair of lower side wall ribs 57 extending from the left side Y1 and the right side Y2 of the lower installation surface portion 55 to the front side X2, and a lower insertion hole 58 penetrating the lower installation surface portion 55 and communicating with the inside of the box portion 41.

[0019] As described above, the terminal block 50 is located on the front side X2 within the case 10, and is formed in a stepped shape with the upper terminal block 50a and lower terminal block 50b offset from each other in the vertical Z and front-to-back X directions, and is provided in multiples arranged in the left-to-right Y direction. Terminals 60 are inserted into the upper insertion hole 54 and the lower insertion hole 58. The terminals 60 are members that are connected one-to-one to the aforementioned contacts, and are formed in a plate shape using a conductive material, with multiple terminals 60 each fixed to the terminal block 50. The terminal 60 comprises a main body portion 61 that is inserted into the upper insertion hole 54 or the lower insertion hole 58 and extends in the front-to-back X direction, and a connecting portion 62 that is continuous with the main body portion 61 and bent in the left-to-right Y direction and fixed to the upper mounting surface portion 51 or the lower mounting surface portion 55. A female screw portion 63 that penetrates in the plate thickness direction is formed in the center of the connecting portion 62. As shown in Figure 5, a fastening member 64 is screwed into the female threaded portion 63, and the contact portion 73 of the electric wire 70, which will be described later, is connected and fixed to the connection portion 62 of the terminal 60 via the fastening member 64. In this embodiment, the portion of the connection portion 62 that abuts the contact portion 73 of the electric wire 70 is referred to as the connection portion a.

[0020] Since the connection portion 62 is provided on both the upper terminal block 50a and the lower terminal block 50b, in this embodiment, the connection portion a consists of an upper connection portion a1 provided on the upper terminal block 50a side and a lower connection portion a2 provided on the lower terminal block 50b side. As shown in Figures 5 and 6, the upper connection portion a1 and the lower connection portion a2 are arranged in a row in the left-right direction Y, with the position of the lower connection portion a2 shifted downwards Z2 and rearward X1 relative to the position of the upper connection portion a1.

[0021] As shown in Figure 6, the electric wire 70 comprises an electric wire section 71 consisting of a core wire and an insulation, and a terminal section 72 provided at the end of the electric wire section 71. A plate-shaped contact section 73 is formed at the tip of the terminal section 72. The electric wire section 71 of the electric wire 70 connected to the terminal 60 is led out to the outside through a notch 17 formed in the bottom wall 14 of the case 10. The notch 17 is a section for leading the electric wire 70, which is connected and fixed to the connection section a, from the inside to the outside of the case 10, and is formed at the front edge X2 of the bottom wall 14 of the case 10. As shown in Figure 5, the notch 17 comprises a first edge 17a extending in the left-right direction Y, and a second edge 17b extending from both the left and right ends of the first edge 17a to the front X2, and is formed in a substantially rectangular shape when viewed from the bottom of the case 10, opening to the front X2 and in the up-down direction Z.

[0022] In the notch portion 17, the dimension S1 from one second edge portion 17b to the other second edge portion 17b (hereinafter referred to as the dimension S1 in the left-right direction Y of the notch portion 17) is set to be larger than the dimension S2 in the left-right direction Y from the left end (one end in the left-right direction Y) to the right end (the other end in the left-right direction Y) of the multiple connection portions a. Furthermore, as shown in Figure 6, the position of the first edge portion 17a roughly coincides with the position of the upper surface of the lower mounting surface portion 55 of the lower terminal block 50b in the vertical direction Z. As a result, the depth dimension S3 of the notch portion 17 (dimension in the front-rear direction X) is approximately the same as the sum of the front-rear dimensions S4 of the upper wall rib 52 of the upper terminal block 50a and the connection surface 56 of the lower terminal block 50b in the front-rear direction X. Note that this is merely an example, and the position of the first edge portion 17a may be set to be X1 behind the connection surface 56, and the depth dimension S3 of the notch portion 17 may be made larger than in this embodiment.

[0023] With this configuration, as shown in Figure 6, the notch 17 and the connection part a are opposite each other in the vertical direction Z, and the positions of the connection part a and the notch 17 coincide in the vertical direction Z. Therefore, when wiring the electric wire 70, the electric wire 70 can be led out from the inside of the case 10 to the outside by pulling it out from the connection part a downward Z2 without bending the electric wire 71 or anything like that.

[0024] As described above, according to the embodiment, the connection portion a of the terminal 60 and the notch 17 of the bottom wall 14 of the case 10 are opposite each other in the vertical direction Z, so that the position of the connection portion a and the position of the notch 17 can be aligned when viewed from the bottom of the case 10. Therefore, when wiring the electric wire 70, there is no need to bend the electric wire 70 to avoid interference with other components, and the electric wire portion 71 can be easily led out from the inside to the outside of the case 10 by pulling the electric wire 70 out in the vertical direction Z. Thus, a pressure-sensitive switch 1 can be provided that allows for easy wiring of the electric wire 70.

[0025] Furthermore, with the above configuration, the dimension S1 in the left-right direction Y of the notch 17 is larger than the dimension S2 in the left-right direction Y from the left end (one end in the left-right direction Y) to the right end (the other end in the left-right direction Y) of the multiple connection parts a. Therefore, even when multiple terminals 60 are provided on the microswitch A and the connection parts a are arranged in the left-right direction Y, the above interference can be avoided and the electric wires 70 can be easily wired.

[0026] Furthermore, with the above configuration, by forming the notch 17 in a rectangular shape when viewed from the bottom of the case 10, the left-right dimension Y of the opening for guiding the electric wire 70 to the outside is less likely to change in the front-back direction X compared to a conventional circular hole. Therefore, even if the position of the connection part a is slightly shifted in the front-back direction X due to tolerances, for example, it is possible to suppress the shift between the position of the connection part a and the position of the notch 17 when viewed from the bottom of the case 10.

[0027] Furthermore, according to the above embodiment, even if the microswitch A is provided with multiple terminals 60, the connection portions a are arranged in a stepped manner with their positions offset in the vertical Z direction and the front-to-back X direction. This prevents the electric wires 70 connected to each connection portion a from overlapping and interfering with each other in the vertical Z direction and the front-to-back X direction. This makes wiring the electric wires 70 even easier.

[0028] The embodiments described above are merely representative forms of the present invention, and the present invention is not limited thereto. That is, it can be implemented with various modifications without departing from the core principles of the present invention. As long as such modifications still possess the configuration of the pressure-responsive switch 1 of the present invention, they are of course included within the scope of the present invention. For example, in this embodiment, the notch 17 was formed in a rectangular shape, but the shape of the notch 17 does not necessarily have to be rectangular, and the notch 17 can be formed in various shapes such as circular, oval, or elliptical. Also, the number and arrangement of the terminal block 50, terminal 60, and connection part a described above are merely examples, and these numbers can be changed as appropriate. That is, the connection part a does not necessarily have to be arranged in a row in the left-right direction Y, nor does it have to be arranged in a stepped manner with offset positions in the up-down direction Z and the front-back direction X.

[0029] Furthermore, although the use of the pressure-sensitive switch 1 in this embodiment has been mainly described as a pressure switch, the pressure-sensitive switch 1 can also be used as a temperature switch. That is, in this embodiment, the use as a pressure switch was described as an example in which a fluid to be detected (in this case, a refrigerant circulating in a refrigeration cycle) is introduced via a joint pipe 21 and the pressure to be detected is applied directly to a sensing member such as a bellows or diaphragm to detect a pressure change, but the use of the pressure-sensitive switch 1 is not limited to this. That is, a temperature switch can be constructed by connecting a temperature-sensing tube to the element 20 of the pressure-sensitive switch 1 in this embodiment via a capillary, and filling the closed space formed by the sensing member, capillary, and temperature-sensing tube with refrigerant. In this way, in a temperature switch using the pressure-sensitive switch 1 of this embodiment, the sensing member deforms or displaces in the vertical Z direction in response to the pressure inside the closed space which changes due to the temperature change detected by the temperature-sensing tube, and this force is transmitted to the lever 47 (responsive member), changing the conductivity state of the contacts. [Explanation of Symbols]

[0030] X Anteroposterior direction Z vertical direction A microswitch a. Connection section 1. Pressure-responsive switch 10 cases 12. Ceiling Wall 13 Back wall 14 Bottom wall 15 Cover (front wall) 17 Notch 47 Lever (responsive member) 60 terminals 70 Electric wire

Claims

1. A pressure-sensitive switch comprising: a microswitch having a responsive member that displaces in response to an external force; a plurality of terminals provided on the microswitch and connected to contacts whose conductive state switches in accordance with the displacement of the responsive member; a mounting surface supporting the terminals; and a case housing the microswitch, The case comprises a front wall and a rear wall facing each other in the front-rear direction at positions that sandwich the mounting surface, and a top wall and a bottom wall facing each other in the vertical direction perpendicular to the front-rear direction. The responding member is arranged on one side in the front-rear direction within the case. Each of the aforementioned plurality of terminals is provided with a connection part for connecting electric wires, The aforementioned connection section is arranged within the case on the other side in the front-rear direction, and multiple connection sections are provided side by side in the left-right direction perpendicular to the vertical direction. The mounting surface is provided with a plurality of ribs that rise from between adjacent connection portions to the other side in the front-rear direction, thereby defining the space in which each connection portion is arranged. A notch is formed at the other end of the bottom wall on the front-rear side, opening in the vertical direction. The space partitioned by the rib extends along the vertical direction from the connection portion toward the notch portion and opens toward the notch portion. A pressure-responsive switch characterized in that the notch and the connection portion are opposite each other in the vertical direction.

2. The pressure-responsive switch according to Claim 1, characterized in that the left-right dimension of the notch is set to be larger than the left-right dimension from one end of the plurality of connection portions to the other end of the plurality of connection portions.

3. The pressure-responsive switch according to claim 2, characterized in that the notch is formed in a rectangular shape when viewed from the bottom of the case.

4. Multiple terminals are provided on the microswitch. The pressure-responsive switch according to any one of claims 1 to 3, characterized in that the connection portions are arranged in a stepped manner with their positions offset in the vertical and horizontal directions.

Citation Information

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