Relay

By introducing the synergistic effect of the exciter and valve assembly into the relay, timely pressure relief is achieved during high-voltage DC short circuits, solving the problem of relay explosion caused by arcing and improving safety.

CN223771045UActive Publication Date: 2026-01-06XIAMEN HONGFA ELECTRIC POWER CONTROLS CO LTD
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Patent Information

Application Number
CN202423168630.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-20
Publication Date
2026-01-06
Estimated Expiration
2034-12-20

AI Technical Summary

Technical Problem

High-voltage DC relays are prone to arcing when subjected to short-circuit loads due to the electric repulsion force that causes the moving contact to spring apart from the stationary contact, posing a risk of explosion.

Method used

Design a relay comprising a housing, an exciter, and a valve assembly. The exciter releases gas when a threshold current passes through it, causing the pressure inside the housing to rise and the pressure relief port to be opened by the valve assembly to release the pressure and prevent an explosion.

Benefits of technology

By actively releasing gas through the activator and promptly depressurizing the valve assembly, the casing explosion was avoided, thus improving safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

A relay includes a housing, an exciter, and a valve assembly. The shell is provided with a pressure relief hole penetrating through the inner wall face and the outer wall face of the shell. The exciter is arranged in the shell or on the shell and is configured to be activated to release gas into the shell when threshold current passes through the relay. The valve assembly is arranged on the shell and covers the pressure relief hole, and the valve assembly is configured to be broken through by gas in the shell and open the pressure relief hole when the exciter is activated and the gas pressure in the shell is larger than or equal to a threshold value.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of electric control devices, in particular to a relay. BACKGROUND

[0002] A relay is an electronic control device, which has a control system (also known as an input loop) and a controlled system (also known as an output loop), and is usually applied in an automatic control circuit. The relay is actually a kind of "automatic switch" that uses a small current to control a large current. Therefore, it plays a role of automatic adjustment, safety protection, and conversion of circuits in the circuit.

[0003] In work, when the short-circuit load is large, the moving contact of the high-voltage direct-current relay and the static contact will be repelled due to the electrodynamic repulsion of the short-circuit current, and then the contact arc will occur. Because the load short-circuit current and voltage are very high, the instantaneous fierce arc between the moving contact and the static contact is caused, and then the relay is prone to explosion, which has a great safety hazard. CONTENT OF THE INVENTION

[0004] The embodiment of the present application provides a relay to solve the problem that the relay is prone to explosion in the related art.

[0005] The relay of the embodiment of the present application comprises:

[0006] A shell having a pressure relief hole penetrating an inner wall surface and an outer wall surface of the shell;

[0007] An exciter arranged in the shell or on the shell and configured to release gas into the shell when a threshold current passes through the relay; and

[0008] A valve assembly arranged on the shell and covering the pressure relief hole, and configured to be broken by the gas in the shell and open the pressure relief hole when the exciter is activated and the gas pressure in the shell is greater than or equal to a threshold value.

[0009] According to some embodiments of the present application, the shell further has a through hole penetrating the inner wall surface and the outer wall surface of the shell;

[0010] The exciter is arranged on the outer wall surface of the shell and seals the through hole; the exciter releases gas into the shell through the through hole when the exciter is activated.

[0011] According to some embodiments of the present application, at least part of the exciter is located in the through hole.

[0012] According to some embodiments of the present application, the exciter is arranged on the outer wall surface of the shell through an adapter.

[0013] According to some embodiments of the present application, the adapter comprises an adapter sleeve and an adapter flange, an axial one end of the adapter sleeve is connected with the outer wall of the housing, and the adapter flange is connected to an axial other end of the adapter sleeve and protrudes from the outer circumferential side of the adapter sleeve.

[0014] The exciter comprises a body and a lap portion, the body is arranged in the adapter sleeve, and the lap portion is connected to the outer circumferential side of the body and lapped on the side surface of the adapter flange away from the housing.

[0015] According to some embodiments of the present application, the adapter is made of plastic or wood.

[0016] According to some embodiments of the present application, the housing comprises an insulating cover and a yoke plate, the insulating cover is located on one side of the thickness direction of the yoke plate, the insulating cover has the through hole, the yoke plate has the pressure relief hole, the exciter is arranged on the insulating cover, and the valve assembly is arranged on the yoke plate.

[0017] According to some embodiments of the present application, the housing comprises an insulating cover, the insulating cover comprises a top wall and a side wall connected with each other, one of the top wall and the side wall has the through hole, and the other has the pressure relief hole.

[0018] According to some embodiments of the present application, the valve assembly is configured to close the pressure relief hole when the gas pressure in the housing is less than the threshold value.

[0019] According to some embodiments of the present application, the housing is provided with a plurality of pairs of static contacts.

[0020] The relay further comprises an internal component movably arranged inside the housing, the internal component comprises a push rod member and a plurality of spaced-apart moving contact pieces arranged on the push rod member, and the plurality of moving contact pieces are used to respectively contact or separate from the plurality of pairs of static contacts.

[0021] According to some embodiments of the present application, the structural strength of the valve assembly is less than the structural strength of the housing.

[0022] The above-mentioned one embodiment of the application has at least the following advantages or beneficial effects:

[0023] In this embodiment of the relay, when a threshold current passes through the relay, the exciter is activated, releasing gas into the housing. This causes the internal gas pressure to rise, rapidly reaching the threshold pressure and rupturing the valve assembly to open the pressure relief port. The gas inside the housing is then discharged to the outside through the pressure relief port, achieving pressure relief and preventing the housing from exploding. Therefore, this embodiment of the relay, through the coordinated action of the exciter and the valve assembly, achieves pressure relief by the exciter "actively" releasing gas into the housing and the valve assembly "actively" exploding. The valve assembly's explosion action is more timely and safer. Attached Figure Description

[0024] Figure 1 The diagram shown is an exploded view of a relay according to an embodiment of this application.

[0025] Figure 2 The diagram shown is a cross-sectional view of a relay according to an embodiment of this application.

[0026] Figure 3 The diagram shown is a three-dimensional representation of the internal components.

[0027] The reference numerals in the attached figures are explained as follows:

[0028] 100. Shell

[0029] 101. Through hole

[0030] 110. Insulating cover

[0031] 111. Top Wall

[0032] 112. Sidewall

[0033] 120. Frame piece

[0034] 130. Yoke plate

[0035] 131. Pressure relief hole

[0036] 140. Metal Cover

[0037] 200. Stationary contact

[0038] 300. Internal components

[0039] 310. Push rod components

[0040] 330. Moving contact plate

[0041] 340. Elastic components

[0042] 400. Valve assembly

[0043] 500, Exciter

[0044] 510. Ontology

[0045] 520. Overlap section

[0046] 600, Adapter

[0047] 610. Adapter sleeve

[0048] 620. Adapter flange Detailed Implementation

[0049] Exemplary embodiments will now be described more fully with reference to the accompanying drawings. However, these exemplary embodiments can be implemented in many forms and should not be construed as limited to the embodiments set forth herein; rather, they are provided so that this application will be thorough and complete, and will fully convey the concept of the exemplary embodiments to those skilled in the art. The same reference numerals in the drawings denote the same or similar structures, and therefore their detailed description will be omitted.

[0050] It is understood that the terms "comprising" and "having," and any variations thereof, in the embodiments of this application are intended to cover non-exclusive inclusion. For example, a process, method, system, product, or device that includes a series of steps or units is not limited to the steps or units listed, but may optionally include steps or units not listed, or may optionally include other steps or components inherent to these processes, methods, products, or devices.

[0051] like Figure 1 and Figure 2 As shown, the relay in this embodiment includes a housing 100, an actuator 500, and a valve assembly 400. The housing 100 has a pressure relief hole 131 penetrating the inner and outer walls of the housing 100; the actuator 500 is installed inside or on the housing 100 and is configured to be activated to release gas into the housing 100 when a threshold current passes through the relay; the valve assembly 400 is installed in the housing 100 and covers the pressure relief hole 131, and is configured to be ruptured by the gas in the housing 100 and open the pressure relief hole 131 when the actuator 500 is activated and the gas pressure inside the housing 100 is greater than or equal to a threshold.

[0052] In this embodiment of the relay, when a threshold current passes through the relay, the exciter 500 is activated, releasing gas into the housing 100. This causes the internal gas pressure of the housing 100 to rise rapidly, quickly reaching the threshold pressure and breaking through the valve assembly 400 to open the pressure relief port 131. The gas inside the housing 100 is then discharged to the outside through the pressure relief port 131, achieving pressure relief and preventing the housing 100 from exploding. Therefore, this embodiment of the relay, through the synergistic action of the exciter 500 and the valve assembly 400, achieves pressure relief by the exciter 500 "actively" releasing gas into the housing 100 and the valve assembly 400 "actively" exploding. The explosion of the valve assembly 400 is more timely and safer.

[0053] In one embodiment, the valve assembly 400 is also configured to close the pressure relief port 131 when the gas pressure inside the housing 100 is less than a threshold.

[0054] Understandably, when the relay is in normal operating condition, the actuator 500 is not activated, and the gas pressure inside the housing 100 is less than the threshold. At this time, the valve assembly 400 is not ruptured by the gas inside the housing 100, and the valve assembly 400 remains closed to the pressure relief port 131. When the relay is in abnormal operating condition, the actuator 500 is activated, and the gas pressure inside the housing 100 is greater than or equal to the threshold. At this time, the valve assembly 400 is ruptured by the gas.

[0055] The structural strength of the valve assembly 400 is less than that of the housing 100. In other words, the ultimate strength of the valve assembly 400 is greater than the upper limit of the strength of the housing 100 during normal operation, but less than the ultimate strength of the housing 100.

[0056] The structural strength of the valve assembly 400 is less than that of the housing 100, which can be achieved by using different materials and / or different structures for the two. For example, in one embodiment, when the valve assembly 400 and the housing 100 are made of the same material, the thickness of the valve assembly 400 can be designed to be thinner and less than the wall thickness of the housing 100. In another embodiment, when the wall thickness of the valve assembly 400 and the housing 100 is the same, the valve assembly 400 can be made of ceramic material, while the housing 100 can be made of metal material. Of course, other suitable combinations can also be used to make the structural strength of the valve assembly 400 less than that of the housing 100, which will not be listed here.

[0057] It should be noted that the term "normal operating condition" refers to the relay current being at its rated operating condition, while the term "abnormal operating condition" refers to the relay current being at a high-current short-circuit moment or an overload trip moment. Furthermore, the pressure represented by the term "threshold" is slightly greater than the gas pressure within the housing 100 when the relay is in its normal operating condition. The threshold may be adjusted depending on the relay model, but it cannot exceed the structural strength of the housing 100.

[0058] In other words, when the relay is in normal working condition, the gas pressure inside the housing 100 will not reach this threshold, and the valve assembly 400 will not be ruptured. When the relay is in abnormal working condition, the gas pressure inside the housing 100 is greater than or equal to this threshold, and the valve assembly 400 can be ruptured by the gas.

[0059] like Figure 1 As shown, the valve assembly 400 can be a plate-like structure, such as a circular plate-like structure, a rectangular plate-like structure, an oval plate-like structure, an elliptical plate-like structure, etc.

[0060] In addition, the valve assembly 400 can be made of materials such as ceramics and glass. Ceramic and glass materials are more brittle, making the valve assembly 400 more likely to be broken by gas, thus releasing the gas in a timely manner.

[0061] like Figure 1 and Figure 2 As shown, the relay also includes an internal component 300, which is movably disposed within the housing 100 and configured to switch the state of the relay from a closed state to an open state and from an open state to a closed state in response to an input signal.

[0062] In one embodiment, the igniter 500 may include gunpowder. When a threshold current passes through the internal component 300, a large amount of gas is generated instantaneously in response to the ignition of the gunpowder. The release of this large amount of gas into the housing 100 instantaneously increases the gas pressure inside the housing 100.

[0063] For example, the exciter 500 can be an electric detonator or an electric detonating tube, but is not limited to this.

[0064] Furthermore, for threshold current monitoring, a Hall effect sensor can be used to monitor the magnetic field strength near the moving and stationary contacts to detect the current value passing through the internal component 300. Based on the correlation between magnetic field strength and current value, the current value can be derived from the magnetic field strength.

[0065] Of course, the monitoring of threshold current is not limited to the Hall element mentioned above. For example, it can also be a device that directly monitors the current value passing through the internal component 300 in the current loop.

[0066] Please continue reading.Figure 1 and Figure 2 The housing 100 is an airtight housing. This airtight construction helps prevent arcing between adjacent conductive elements in the relay and helps provide electrical isolation between moving and stationary contacts.

[0067] The housing 100 may include an insulating cover 110, a frame 120, a yoke plate 130, and a metal cover 140. The insulating cover 110 and the frame 120 are located on one side of the thickness direction of the yoke plate 130, and the metal cover 140 is located on the other side of the thickness direction of the yoke plate 130.

[0068] In one embodiment, the insulating cover 110 is made of ceramic material and is connected to the yoke plate 130 via a frame plate 120. The frame plate 120 can be a ring-shaped metal part, such as an iron-nickel alloy. One end of the frame plate 120 is connected to the opening edge of the insulating cover 110, for example, by laser welding, brazing, resistance welding, or adhesive bonding. The other end of the frame plate 120 is connected to the yoke plate 130, also by laser welding, brazing, resistance welding, or adhesive bonding. The frame plate 120 is provided between the insulating cover 110 and the yoke plate 130 to facilitate the connection between them.

[0069] The insulating cover 110 includes a top wall 111 and a side wall 112. The top wall 111 is located at one end of the internal component 300, and the side wall 112 is located around the periphery of the internal component 300. A stationary contact 200 is mounted on the top wall 111. When the relay is in the closed state, the internal component 300 is in contact with the stationary contact 200; when the relay is in the open state, the internal component 300 is separated from the stationary contact 200. One end of the side wall 112 is connected to the edge of the top wall 111, and the other end of the side wall 112 is connected to the yoke plate 130 through a frame plate 120.

[0070] The sidewall 112 can be a rectangular ring structure, a circular ring structure, or a ring structure of other shapes. This application does not make any special limitation on this.

[0071] In one embodiment, the housing 100 further has a through hole 101 penetrating both the inner and outer wall surfaces of the housing 100; the exciter 500 is mounted on the outer wall surface of the housing 100 and seals the through hole 101. When the exciter 500 is activated, it releases gas into the housing 100 through the through hole 101. On the one hand, when assembling the exciter 500, it is convenient for operators to operate from outside the housing 100, providing a larger operating space and facilitating assembly; on the other hand, since the exciter 500 is mounted on the outer wall surface of the housing 100 and not inside the housing 100, it does not occupy the internal space of the housing 100, which is beneficial for achieving miniaturized relay design.

[0072] In one implementation, such as Figure 1As shown, the insulating cover 110 has a through hole 101, the yoke plate 130 has a pressure relief hole 131, the exciter 500 is installed on the insulating cover 110, and the valve assembly 400 is installed on the yoke plate 130.

[0073] In other embodiments, the through hole 101 may also be formed on any one of the frame plate 120, the yoke plate 130, and the metal cover 140, and the pressure relief hole 131 may also be formed on any one of the frame plate 120, the yoke plate 130, and the metal cover 140. For example, when the through hole 101 is formed on the yoke plate 130, the exciter 500 is mounted on the yoke plate 130; when the pressure relief hole 131 is formed on the metal cover 140, the valve assembly 400 is mounted on the metal cover 140.

[0074] Furthermore, when the through hole 101 is formed in the insulating cover 110, the through hole 101 can be formed in the top wall 111 or the side wall 112 of the insulating cover 110; when the pressure relief hole 131 is formed in the metal cover 140, the pressure relief hole 131 can be formed in the top wall 111 or the side wall 112 of the insulating cover 110.

[0075] In one embodiment, the top wall 111 has a through hole 101 that penetrates the inner and outer wall surfaces of the top wall 111, and the exciter 500 is mounted on the outer wall surface of the top wall 111.

[0076] like Figure 2 As shown, at least a portion of the exciter 500 is located within the through hole 101. Since at least a portion of the exciter 500 is located within the through hole 101, when the exciter 500 is activated, the gas generated by the exciter 500 can be rapidly released into the interior of the housing 100 through the through hole 101, so that the gas pressure inside the housing 100 instantaneously reaches the threshold.

[0077] like Figure 2 As shown, the exciter 500 is mounted on the outer wall surface of the top wall 111 of the insulating cover 110 via the adapter 600.

[0078] In this embodiment of the application, the exciter 500 is connected to the insulating cover 110 via the adapter 600 but is not directly connected to the insulating cover 110, which can prevent the heat generated when the relay is working from being transferred to the exciter 500 and causing the exciter 500 to be falsely triggered.

[0079] The adapter 600 can be made of a material with poor thermal conductivity, such as plastic or wood, which can further prevent the heat from the insulating cover 110 from being transferred to the exciter 500.

[0080] In one embodiment, the adapter 600 includes an adapter sleeve 610 and an adapter flange 620. One axial end of the adapter sleeve 610 is connected to the outer wall surface of the housing 100, and the adapter flange 620 is connected to the other axial end of the adapter sleeve 610 and protrudes from the outer peripheral side surface of the adapter sleeve 610. The actuator 500 includes a body 510 and an overlapping portion 520. The body 510 passes through the adapter sleeve 610, and the overlapping portion 520 is connected to the outer peripheral side surface of the body 510 and overlaps the side surface of the adapter flange 620 facing away from the housing 100. The body 510 contains gunpowder.

[0081] In another embodiment, the adapter 600 may also include only an adapter sleeve 610, one axial end of which is connected to the top wall 111 of the insulating cover 110, and the other end is connected to the exciter 500.

[0082] In another embodiment, a transition flange 620 is provided at each of the two axial ends of the adapter sleeve 610, one of the transition flanges 620 is connected to the top wall 111 of the insulating cover 110, and the other transition flange 620 is connected to the exciter 500.

[0083] It is understood that the adapter 600 and the insulating cover 110, as well as the adapter 600 and the exciter 500, can be connected by welding, gluing, or other methods, and this application does not impose any special restrictions on this.

[0084] like Figure 2 and Figure 3 As shown, the internal component 300 includes a push rod member 310, a moving contact 330, and an elastic element 340. The moving contact 330 is mounted on the push rod member 310 and is used to contact or separate from the stationary contact 200. The elastic element 340 is used to provide contact pressure to the moving contact 330. Specifically, when the relay is in the closed state, the moving contact 330 is in contact with the stationary contact 200; when the relay is in the open state, the moving contact 330 is separated from the stationary contact 200.

[0085] like Figure 1 and Figure 3 As shown, the relay also includes multiple pairs of stationary contacts 200. The internal component 300 includes multiple elastic elements 340 and multiple spaced-apart moving contacts 330. The moving contacts 330 are mounted on the push rod component 310 and are used to contact or separate from the multiple pairs of stationary contacts 200 respectively. The multiple elastic elements 340 correspond to the multiple moving contacts 330 respectively. Each moving contact 330 corresponds to a pair of stationary contacts 200. When the relay is in the closed state, the multiple moving contacts 330 are in contact with the multiple pairs of stationary contacts 200; when the relay is in the open state, the multiple moving contacts 330 are separated from the multiple pairs of stationary contacts 200.

[0086] In the embodiments of this application, multiple moving contacts 330 are mounted on the same push rod component 310, and each moving contact 330 corresponds to a pair of stationary contacts 200. When the push rod component 310 moves, multiple moving contacts 330 move simultaneously, thereby achieving the effect of "single-drive multiple-action", which is conducive to the miniaturization and integration of the relay size, and at the same time reduces the cost of the product to a certain extent.

[0087] In summary, the relays of the embodiments of this application have at least the following advantages and beneficial effects:

[0088] In this embodiment of the relay, when a threshold current passes through the relay, the exciter 500 is activated, releasing gas into the housing 100. This causes the internal gas pressure of the housing 100 to rise rapidly, quickly reaching the threshold pressure and breaking through the valve assembly 400 to open the pressure relief port 131. The gas inside the housing 100 is then discharged to the outside through the pressure relief port 131, achieving pressure relief and preventing the housing 100 from exploding. Therefore, this embodiment of the relay, through the synergistic action of the exciter 500 and the valve assembly 400, achieves pressure relief by the exciter 500 "actively" releasing gas into the housing 100 and the valve assembly 400 "actively" exploding. The explosion of the valve assembly 400 is more timely and safer.

[0089] It is understood that the various embodiments / implementations provided in this application can be combined with each other without creating contradictions, and will not be described one by one here.

[0090] In the embodiments of this application, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance; the term "multiple" refers to two or more unless otherwise expressly defined. The terms "install," "connect," "link," and "fix" should be interpreted broadly. For example, "connect" can be a fixed connection, a detachable connection, or an integral connection; "link" can be a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in the embodiments of this application based on the specific circumstances.

[0091] In the description of the embodiments of the application, it should be understood that the terms "upper", "lower", "left", "right", "front", "rear", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing the embodiments of the application and simplifying the description, and do not indicate or imply that the device or unit referred to must have a specific orientation or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on the embodiments of the application.

[0092] In the description of this specification, the terms "one embodiment," "some embodiments," "specific embodiment," etc., refer to a specific feature, structure, material, or characteristic described in connection with that embodiment or example, which is included in at least one embodiment or example of the claims. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0093] The above are merely preferred embodiments of the application examples and are not intended to limit the application examples. For those skilled in the art, the application examples can have various modifications and variations. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the application examples should be included within the protection scope of the application examples.

Claims

1. A relay characterized by comprising: The application relates to a relay, comprising: a housing having a pressure relief hole penetrating an inner wall surface and an outer wall surface of the housing; an exciter arranged in the housing or on the housing and configured to release gas into the housing when a threshold current passes through the relay, the exciter being activated to release the gas into the housing; and a valve assembly arranged on the housing and covering the pressure relief hole, the valve assembly being broken by the gas in the housing and opening the pressure relief hole when the exciter is activated and the gas pressure in the housing is greater than or equal to a threshold value.

2. The relay according to claim 1, characterized in that The housing further has a through hole penetrating the inner wall surface and the outer wall surface of the housing; The exciter is arranged on the outer wall surface of the housing and seals the through hole, the exciter being activated to release the gas into the housing through the through hole.

3. The relay according to claim 2, characterized in that At least part of the exciter is located in the through hole.

4. The relay of claim 2, wherein The exciter is arranged on the outer wall surface of the housing through an adapter.

5. The relay of claim 4, wherein The adapter comprises an adapter sleeve and an adapter flange, an axial end of the adapter sleeve being connected to the outer wall surface of the housing, the adapter flange being connected to an axial other end of the adapter sleeve and protruding from an outer peripheral side surface of the adapter sleeve; The exciter comprises a body and a lap portion, the body being arranged in the adapter sleeve, the lap portion being connected to an outer peripheral side surface of the body and lapping a side surface of the adapter flange away from the housing.

6. The relay of claim 4, wherein The adapter is made of plastic or wood.

7. The relay of claim 2, wherein The housing comprises an insulating cover and a yoke plate, the insulating cover being located on one side in the thickness direction of the yoke plate, the insulating cover having the through hole, the yoke plate having the pressure relief hole, the exciter being arranged on the insulating cover, and the valve assembly being arranged on the yoke plate.

8. The relay of claim 2, wherein The housing comprises an insulating cover, the insulating cover comprising a top wall and a side wall connected to each other, one of the top wall and the side wall having the through hole, and the other having the pressure relief hole.

9. The relay of claim 1, wherein The valve assembly is configured to close the pressure relief hole when the gas pressure in the housing is less than the threshold value.

10. The relay of claim 1, wherein The housing is arranged with a plurality of pairs of static contacts; The relay further comprises an internal component movably arranged in the housing, the internal component comprising a push rod member and a plurality of spaced-apart moving contact pieces arranged on the push rod member, the plurality of moving contact pieces being used to respectively contact or separate from the plurality of pairs of static contacts.

11. The relay of claim 1, wherein The structural strength of the valve assembly is less than that of the housing.