Relay

By optimizing the base and housing design in the magnetic relay, the coil windings and contact parts are arranged, and the auxiliary monitoring switches are arranged along the armature assembly and side walls, the problems of large size, complex assembly and unstable structure of the prior art relay are solved, and the effect of miniaturization and simplification of assembly is achieved.

CN223245512UActive Publication Date: 2025-08-19XIAMEN HONGFA ELECTRIC POWER CONTROLS CO LTD
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Patent Information

Application Number
CN202422374107.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-27
Publication Date
2025-08-19
Estimated Expiration
2034-09-27

AI Technical Summary

Technical Problem

After installing the auxiliary monitoring switch, existing magnetic relays have problems such as large size, inconvenient assembly, unstable structure of the armature assembly, difficult to form, and easy deformation of the bottom wall.

Method used

With a base and housing design, the coil windings and contact parts are arranged along both sides of the armature assembly, the auxiliary monitoring switch is arranged between the armature assembly and the first side wall, and the signal terminal and the connection terminal extend in a specific direction. The auxiliary monitoring switch is installed using the gap between the armature assembly and the first side wall to reduce the weakening of the strength of the first side wall.

Benefits of technology

The relay miniaturization is realized, the assembly process is simplified, the structural stability of the armature assembly and the simplification of forming parts are improved, the material cost and complexity is reduced, and the connection with the PCB board is simplified.

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Abstract

The relay comprises an accommodating member, a magnetic circuit part, a contact part and an auxiliary monitoring switch, the accommodating member comprises a pedestal and a housing, one end of the pedestal along a Z-axis direction is opened and is provided with a first side wall, and the first side wall is provided with a first through groove, a second through groove and a third through groove along an X-axis direction in sequence; the second through groove and the third through groove are opened in the end face of the open end of the base. The shell covers the opening of the base; each signal terminal of the coil winding extends out of the third through groove along the Y-axis direction; each connecting terminal of the contact part extends out of the first through groove along the Y-axis direction; the auxiliary monitoring switch is arranged between the armature assembly and the first side wall in the Y-axis direction and close to the yoke in the X-axis direction, the auxiliary monitoring switch is suitable for being driven by the armature assembly to be switched on and off, and a leading-out terminal of the auxiliary monitoring switch extends out of the second penetrating groove in the Y-axis direction. The accommodating part is small in forming difficulty, and the size of the relay is small.
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Description

Technical Field

[0001] The utility model relates to the field of relays, in particular to a relay. Background Art

[0002] The magnetic holding relay in the prior art usually includes a container and a magnetic circuit part, a contact part and a push card accommodated in the container; the container is provided with a bottom wall and a first side wall, the magnetic circuit part includes a coil assembly and an armature assembly rotating relative to the coil assembly, the coil assembly is supported on the bottom wall and is provided with a signal terminal, the rotating shaft of the armature assembly is often connected to the bottom wall, the contact part has connection terminals for input and output current respectively, and the push card is driven by the armature assembly to move so that the connection terminals for input current and the connection terminals for output current are connected or disconnected. In some environments where connection with a PCB board is required, in the relay, the coil winding and the contact part are usually compactly arranged on both sides of the armature assembly's attraction direction. In this way, the terminals of the coil winding and the contact part can be conveniently led out from the first side wall of the container to connect with the PCB board, while also achieving strong and weak electrical isolation, pushing the card close to one side of the first side wall to make the moving and static contacts of the contact part closer to the first side wall and save copper loss. Due to the compact internal space, if it is necessary to monitor the use status of the relay, the method adopted is generally to set a sampling pin on the connection terminal of the contact part, but the signal collected by the sampling pin requires the terminal product to set a conversion module to convert it into a recognizable signal, which increases the complexity and cost of the terminal product, so the market response is poor.

[0003] To this end, the prior art has proposed a solution of installing an auxiliary monitoring switch inside the relay, which specifically includes the following two forms:

[0004] 1. An opening is provided in the bottom wall, and the auxiliary monitoring switch is installed from the opening of the bottom wall and is located between the armature assembly and the bottom wall. In practice, this solution has the following problems: the relay is large in size, which makes assembly inconvenient; the armature assembly is structurally unstable; the structure of the accommodation part is relatively complex, which makes molding difficult; and the bottom wall is prone to deformation.

[0005] Second, the auxiliary monitoring switch is arranged on the side away from the first side wall, and its lead terminal extends from the bottom wall or the top wall, and then the signal line extends to the first side wall. The bottom wall or the top wall is provided with a positioning groove for accommodating the signal line. In practice, it is found that this solution has the problems of inconvenient assembly, complex structure of the accommodating parts, difficulty in molding and easy deformation. Utility Model Content

[0006] The purpose of the present invention is to overcome the above-mentioned defects or problems existing in the background technology and to provide a relay. Compared with the prior art solution 1 and the prior art solution 2, the molding difficulty of the accommodating part is small, the molding of the accommodating part is simple, the size of the relay is small, and compared with the prior art solution 1, there is not much gap between the rotating shaft and the bottom wall of the armature assembly, the rotating shaft of the armature assembly does not need to be set longer, is not easy to deform, and the structure of the armature assembly is stable.

[0007] To achieve the above objectives, the present invention and its preferred embodiments adopt the following technical solutions, but the embodiments are not limited to the following solutions:

[0008] Technical solution 1 and its preferred embodiment provide a relay, including a accommodating part, which includes a base and a shell, wherein the base is open at one end along the Z-axis direction and is provided with a first side wall perpendicular to the Y-axis direction, and the first side wall is sequentially arranged with a first through-groove, a second through-groove and a third through-groove along the X-axis direction, and the second through-groove and the third through-groove are both open on the end surface of the open end of the base; the shell is suitable for covering the opening of the base; a magnetic circuit part, which includes a coil assembly and an armature assembly, the coil assembly is fixed relative to the base and includes a coil winding extending along the Y-axis direction and two yokes respectively fixed to the two ends of the coil winding; the coil winding has at least two signal terminals; each signal terminal is along the Y-axis direction Extending from the third through-slot; the armature assembly is arranged on one side of the coil winding along the X-axis direction and is suitable for rotating around the rotation axis extending along the Z-axis direction in response to the polarity change of the yoke; the contact part, which is arranged on the side of the armature assembly away from the coil winding along the X-axis direction and is suitable for being driven by the armature assembly to be switched on and off along the X-axis direction, and has at least two connecting terminals for assuming current input or output, and each connecting terminal extends from the first through-slot along the Y-axis direction; and an auxiliary monitoring switch, which is arranged between the armature assembly and the first side wall along the Y-axis direction and close to the yoke along the X-axis direction, is suitable for being driven by the armature assembly to be switched on and off, and has a lead-out terminal for external connection; the lead-out terminal extends from the second through-slot along the Y-axis direction.

[0009] Based on technical solution one, technical solution two is also provided. In technical solution two and its related embodiments, the number of the first through-grooves is equal to and corresponds one-to-one with the number of the connecting terminals, the number of the second through-grooves is relative to and corresponds one-to-one with the number of the lead-out terminals, and the number of the third through-grooves is equal to and corresponds one-to-one with the number of the signal terminals.

[0010] Based on Technical Solution 2, Technical Solution 3 is also provided. In Technical Solution 3 and its related embodiments, each of the lead terminals is arranged along the X-axis direction and is close to the open end of the base; each of the signal terminals is arranged along the X-axis direction and is close to the open end of the base.

[0011] Based on technical solution three, technical solution four is also provided. In technical solution four and its related embodiments, the auxiliary monitoring side switch includes an auxiliary static contact and an auxiliary moving contact. The auxiliary moving contact is suitable for being driven by the armature assembly to move to contact or move away from the auxiliary static contact to turn the auxiliary monitoring switch on or off; the auxiliary static contact is fixed to the yoke close to the first side wall, and it and the auxiliary moving contact each have a lead terminal.

[0012] Based on Technical Solution 4, Technical Solution 5 is also provided. In Technical Solution 5 and its related embodiments, the base is also provided with a bottom wall perpendicular to the Z-axis direction, and the bottom wall is opposite to the opening of the base; a reinforcement portion is also provided in the base, and the reinforcement portion is connected to the first side wall and the bottom wall as a whole.

[0013] Based on technical solution five, technical solution six is also provided. In technical solution six and its related embodiments, the reinforcing portion is provided with a first supporting surface and a second supporting surface perpendicular to the Z-axis direction along the X-axis direction, and the first supporting surface and the second supporting surface are respectively suitable for supporting the auxiliary dynamic contact and the auxiliary static contact.

[0014] Based on Technical Solution Five, Technical Solution Seven is also provided. In Technical Solution Seven and its related embodiments, the auxiliary static contact is provided with an auxiliary static contact portion, and the auxiliary static contact portion is provided with a first side and a second side which are opposite to each other, the first side being used to contact the auxiliary moving contact, and the second side being abutted against the yoke.

[0015] Based on Technical Solution 7, Technical Solution 8 is also provided. In Technical Solution 8 and its related embodiments, the auxiliary static contact portion is abutted against and fixed to the side of the yoke away from the coil winding along the X-axis direction.

[0016] Based on Technical Solution Eight, Technical Solution Nine is also provided. In Technical Solution Nine and its related embodiments, the yoke is provided with a magnetic drive section and a connecting section which are connected as one and are both flat sheets. The magnetic drive section is perpendicular to the X-axis direction, and the connecting section is perpendicular to the Y-axis direction and is fixed to the end face of the coil winding; the auxiliary static contact portion is fixed to the magnetic drive section and is provided with an auxiliary static contact; the auxiliary moving contact is provided with an auxiliary moving contact, and the auxiliary moving contact is suitable for closing or disconnecting with the auxiliary static contact along the X-axis direction.

[0017] Based on Technical Solution 9, there is also provided Technical Solution 10. In Technical Solution 10 and its related embodiments, the auxiliary static contact portion is in the shape of a flat sheet parallel to and abutting against the magnetic drive section.

[0018] Based on Technical Solution Nine, Technical Solution Eleven is also provided. In Technical Solution Eleven and its related embodiments, the connection between the magnetic drive segment and the connecting segment has an arc transition surface, and the position where the auxiliary static contact portion is fixed to the magnetic drive segment avoids the arc transition surface.

[0019] Based on technical solution eleven, technical solution twelve is also provided. In technical solution twelve and its related embodiments, the width direction of the yoke extends along the Z-axis direction; the position where the auxiliary static contact is fixed to the magnetic drive section is set close to the first end of the yoke away from the bottom wall.

[0020] Based on Technical Solution 12, Technical Solution 13 is also provided. In Technical Solution 13 and its related embodiments, at the first end of the yoke, the magnetic drive section is provided with a protrusion protruding along the Z-axis direction relative to the connecting section, and the auxiliary static contact portion is at least partially fixed to the protrusion.

[0021] Based on technical solution thirteen, technical solution fourteen is also provided. In technical solution fourteen and its related embodiments, the auxiliary static contact part is provided with a first connecting part and a second connecting part connected as one body along the Z-axis direction, and an avoidance gap suitable for avoiding the armature assembly is formed between the first connecting part and the second connecting part; along the Z-axis direction, the second connecting part is closer to the bottom wall than the first connecting part; along the Y-axis direction, the second connecting part is closer to the arc transition surface of the yoke than the first connecting part; the first connecting part is fixed to the yoke; and the auxiliary static contact is arranged on the second connecting part.

[0022] Based on Technical Solution 14, Technical Solution 15 is also provided. In Technical Solution 15 and its related embodiments, the auxiliary static contact is also provided with a static lead-out terminal and a bending portion. The static lead-out terminal is one of the two lead-out terminals. The bending portion extends along the X-axis direction, is connected between the first connecting portion and the static lead-out terminal, and is located on one side of the connecting section along the Z-axis direction.

[0023] Based on Technical Solution 12, Technical Solution 16 is also provided. In Technical Solution 16 and its related embodiments, when the auxiliary moving contact contacts the auxiliary static contact, the auxiliary static contact has an electrical path, and the position where the auxiliary static contact is fixed to the magnetic drive section is outside the electrical path.

[0024] Based on Technical Solution 16, Technical Solution 17 is also provided. In Technical Solution 17 and its related embodiments, the auxiliary static contact is also provided with a static lead-out terminal and a bending portion. The static lead-out terminal is one of the two lead-out terminals. The bending portion extends along the X-axis direction, is connected between the auxiliary static contact portion and the static lead-out terminal, and is located on one side of the connecting section along the Z-axis direction.

[0025] Based on technical solution seventeen, technical solution eighteen is also provided. In technical solution eighteen and its related embodiments, the auxiliary static contact is located along the Y-axis direction between the position where the auxiliary static contact part and the magnetic drive segment are fixed and the arc transition surface.

[0026] Based on technical solution seventeen, technical solution nineteen is also provided. In technical solution nineteen and its related embodiments, a mounting groove with an opening facing away from the coil winding and a riveted portion protruding from the mounting groove are stamped on the side of the magnetic drive section of the yoke away from the coil winding; the auxiliary static contact is installed in the mounting groove and is provided with a rivet hole that cooperates with the riveted portion.

[0027] Based on any one of technical solutions eight to eighteen, there is also provided a technical solution twenty. In technical solution twenty and its related embodiments, the auxiliary static contact portion is riveted to the yoke iron.

[0028] Based on Technical Solution 20, Technical Solution 21 is also provided. In Technical Solution 21 and its related embodiments, the auxiliary static contact portion is provided with a rivet hole, and the yoke is provided with a rivet portion adapted to the rivet hole; the rivet hole is a countersunk hole, and the rivet portion does not protrude from the rivet hole.

[0029] Based on any one of technical solutions nine to nineteen, a technical solution twenty-two is also provided. In technical solution twenty-two and its related embodiments, the reinforcing part is provided with a first limiting groove; the auxiliary dynamic contact is provided with a fixed part and a swinging part, the fixed part is fixedly inserted into the first limiting groove along the Z-axis direction, and the swinging part is suitable for being driven by the armature assembly to contact or move away from the auxiliary static contact.

[0030] Based on Technical Solution Twenty-Two, Technical Solution Twenty-Three is also provided. In Technical Solution Twenty-Three and its related embodiments, the reinforcing portion also cooperates with the first side wall to form a second limiting groove extending along the X-axis direction; the auxiliary dynamic contact is also provided with a dynamic lead-out portion and a dynamic lead-out terminal, the dynamic lead-out portion is connected to the fixed portion and the dynamic lead-out terminal and is limited in the second limiting groove along the Y-axis direction, the dynamic lead-out portion is located on the side of the fixed portion facing the auxiliary static contact; the dynamic lead-out terminal is the other of the two lead-out terminals.

[0031] Based on Technical Solution 23, there is also Technical Solution 24. In Technical Solution 24 and its related embodiments, the movable lead-out portion is in the shape of a flat sheet perpendicular to the Y-axis direction.

[0032] Based on Technical Solution Twenty-Two, Technical Solution Twenty-Five is also provided. In Technical Solution Twenty-Five and its related embodiments, the auxiliary dynamic contact member includes an auxiliary dynamic spring member extending along the Z-axis direction. The auxiliary dynamic spring member is a sheet-like structure whose thickness direction extends along the X-axis direction. One end thereof along the Z-axis direction is fixedly connected to the fixed part, and the other end thereof constitutes the swinging part.

[0033] Based on Technical Solution 25, Technical Solution 26 is also provided. In Technical Solution 26 and its related embodiments, the auxiliary dynamic spring member is also provided with a pushing portion, one end of which is fixedly connected to the swinging portion, and the other end is suitable for being driven by the armature assembly.

[0034] Based on Technical Solution 25, Technical Solution 27 is also provided. In Technical Solution 27 and its related embodiments, the auxiliary static contact is provided with at least two auxiliary static contacts; each auxiliary static contact is located at the same height along the Z-axis direction; the auxiliary dynamic spring is provided with contact branches that are equal to and one-to-one corresponding to the auxiliary static contacts, one end of each contact branch is fixed to the fixed part, and the other end is provided with an auxiliary dynamic contact suitable for abutting against the auxiliary static contact; the end of each contact branch away from the fixed part forms a swinging part.

[0035] Based on technical solution one, technical solution twenty-eight is also provided. Technical solution twenty-eight and its related embodiments further include a driving member; the armature assembly includes a permanent magnet, two armatures and an insulating member, the two armatures are respectively fixed to the two magnetic poles of the permanent magnet, the permanent magnet is located between the two yokes along the Y-axis direction, and each armature is respectively provided with two attraction parts suitable for being attracted to the yoke; the insulating member is fixed to the permanent magnet and the armature; the driving member and the insulating member are integrally formed and are provided with an integrally formed driving part and an auxiliary pushing part, the contact part is suitable for being driven to switch on and off by the driving part; the auxiliary monitoring switch is suitable for being driven to switch on and off by the auxiliary pushing part.

[0036] From the above description of the present invention and its preferred embodiments, it can be seen that, compared with the prior art, the technical solution of the present invention and its preferred embodiments have the following beneficial effects due to the adoption of the following technical means:

[0037] After continuous observation, experimentation and research, the applicant found that the reason for the technical problem in the prior art solution that "in the prior art solution 1, after the relay is provided with an auxiliary monitoring switch, the relay is large in size, inconvenient to assemble, the structure of the armature assembly is unstable, the structure of the accommodating part is relatively complex, difficult to mold, and the bottom wall is prone to deformation" is that the auxiliary monitoring switch is provided in the gap between the armature assembly and the bottom wall, which increases the space of the relay in the direction of the rotating axis of the armature assembly, thereby increasing the volume of the relay, and also makes there a large distance between the rotating shaft of the armature assembly and the bottom wall, so that the rotating shaft of the armature assembly needs to be set longer and prone to deformation, thereby reducing the stability of the armature assembly. The auxiliary monitoring switch is installed from the bottom surface, and the contact part and the magnetic circuit part are installed from the top surface. The installation directions are different, so assembly is inconvenient. Openings are required on both the bottom wall and the first side wall, so the overall strength of the accommodating part is weak and prone to deformation. The openings in different positions also make the mold design of the accommodating part more difficult, and the accommodating part is difficult to mold. In addition, in this solution, the lead terminal extends for a long length, consumes a lot of materials, and is inconvenient to connect with the PCB board. The reason for the technical problem that "after the auxiliary monitoring switch is set on the relay in the second existing technical solution, the assembly is inconvenient, the structure of the container is relatively complex, the molding is difficult and it is easy to deform" is that the lead terminal of the auxiliary monitoring switch extends from the top wall of the container and then is connected to the signal line, which is inconvenient to assemble and costly. Since a positioning groove needs to be provided on the top wall or the bottom wall, the structure of the container is relatively complex, the mold design is more difficult, the molding is difficult, and the top wall or the bottom wall is easy to deform. In addition, in this solution, the auxiliary monitoring switch is far away from the first side wall, so it is inconvenient to connect with the PCB board.

[0038] In technical solution one and its preferred embodiment, the contact portion is suitable for being driven by the armature assembly to be switched on and off along the X-axis direction. It can be seen that the contact portion extends along the Y-axis direction, and the coil winding and the contact portion are arranged on both sides of the armature assembly along the X-axis direction, and the arrangement is compact, which is conducive to reducing the volume of the relay; the coil winding and the contact portion extend along the Y-axis direction, and on this basis, each signal terminal and each connecting terminal also extends from the first side wall along the Y-axis direction. The extension path is short, which can avoid the complexity of the internal circuit of the relay and the weak circuit strength; since the first through-slot, the second through-slot and the third through-slot are all open on the end face of the open end of the base, each connecting terminal extends from the first through-slot along the Y-axis direction, and each signal terminal and each connecting terminal extends from the first through-slot along the Y-axis direction. Each terminal extends from the third through-slot along the Y-axis, and each lead-out terminal extends from the second through-slot along the Y-axis. Therefore, the contact portion, auxiliary monitoring switch, and coil assembly can all be inserted into the base from the open end of the base during installation, improving installation convenience. This also eliminates the need for the second and third through-slots on the first sidewall to be extended along the Z-axis, minimizing the weakening of the first sidewall. This minimizes the impact on the strength of the first sidewall when the auxiliary monitoring switch is added to the relay, thereby ensuring the strength of the first sidewall. Furthermore, this eliminates the need for through-slots on other walls of the base, thereby improving the overall strength of the base and reducing the difficulty of molding the housing. Furthermore, this facilitates convenient connection of the relay to a PCB along the Y-axis. The auxiliary monitoring switch is located between the armature assembly and the first sidewall along the Y-axis and close to the yoke along the X-axis, fully utilizing the gap between the armature assembly and the first sidewall and the space around the yoke. This allows the auxiliary monitoring switch to be installed without increasing the volume of the housing, thereby reducing the volume of the housing. Among them, the first side wall is sequentially provided with a first through groove, a second through groove and a third through groove along the X-axis direction, so that the lead terminal is located between the connection terminal and the signal terminal along the X-axis direction, which is conducive to achieving electrical isolation between the weak-current terminals of the relay (including signal terminals and lead terminals) and the strong-current terminals of the relay (here mainly referring to the connection terminals of the contact part). Therefore, compared with the existing technical solutions one and two, the present technical solution has less difficulty in molding the accommodating parts, simple molding of the accommodating parts, and a small size of the relay. Compared with the existing technical solution one, there is not much gap between the rotating shaft of the armature assembly and the bottom wall, and the rotating shaft of the armature assembly does not need to be set longer, is not easy to deform, and has a stable structure of the armature assembly. In addition, the auxiliary monitoring switch in the present technical solution occupies less space than the standard auxiliary monitoring switch, and the position of the terminal of the auxiliary monitoring switch can be adjusted as needed, and the structural design is simpler. In this technical solution, the connection terminals, signal terminals and lead terminals all extend along the Y-axis direction. On the one hand, this eliminates the need for complex bending of the terminals, reduces molding difficulty and material costs, and increases their service life. On the other hand, it makes the wiring path on the PCB board simpler.

[0039] In technical solution two and its preferred embodiment, the number of first through-grooves is equal to and corresponds one to one with the number of connecting terminals, the number of second through-grooves is opposite to and corresponds one to one with the number of lead-out terminals, and the number of third through-grooves is equal to and corresponds one to one with the number of signal terminals. Compared with the solution of "each connecting terminal passes through the same first through-grooves, each lead-out terminal passes through the same second through-grooves, and each signal terminal passes through the same third through-grooves", the first through-grooves, the second through-grooves and the third through-grooves are smaller, which reduces the impact on the strength of the first side wall and can better position the corresponding terminals.

[0040] In technical solution three and its preferred embodiment, each lead terminal is arranged along the X-axis direction and is close to the open end of the base; each signal terminal is arranged along the X-axis direction and is close to the open end of the base. Compared with the solution in which the lead terminal and the open end of the base and the signal terminal and the open end of the base have a larger distance, the length of the second through groove and the third through groove in the Z-axis direction can be reduced, thereby further reducing the impact on the strength of the first side wall, and is conducive to limiting the lead terminal and the signal terminal in the Z-axis direction through the outer shell and the corresponding through groove bottom.

[0041] In technical solution four and its preferred embodiment, since the yoke is usually fixed to the end face of the coil winding and is fixedly inserted into the accommodating part together with the coil winding, in this solution, since the auxiliary monitoring switch is arranged close to the yoke along the X-axis direction, the auxiliary static contact is directly fixed to the yoke, and the auxiliary static contact can be installed and positioned simultaneously when the yoke is installed, avoiding the problem of needing to install the auxiliary static contact again. The assembly is simple, thereby solving the problem of difficult assembly and positioning of small parts. In addition, the problem of scraping that is easy to occur when the auxiliary static contact is installed with the base can be avoided. More preferably, the stability of the yoke and the coil body on the base is also utilized, so that the auxiliary static contact is directly supported by the yoke to obtain strength and stability, so that there is no need to form a mounting portion on the accommodating part, making the structure of the accommodating part simple, easy to form and saving materials. In addition, it is also beneficial to reduce the volume of the accommodating part and the miniaturized design of the relay to better meet usage requirements and reduce costs. In the present technical solution, since the auxiliary moving contact only needs to be installed on the base, the situation in which two installation positions are originally required on the container for the installation of the auxiliary static contact and the auxiliary moving contact respectively is changed to only providing one installation position, and the installation of the auxiliary moving contact only needs to consider the ability to be reliably separated from the auxiliary moving contact and ensure that the auxiliary moving contact can avoid other structures of the armature assembly and the coil assembly. Therefore, the space used for the overall installation of the auxiliary monitoring switch is effectively reduced without increasing the volume of the container, thereby providing favorable conditions for installing the auxiliary monitoring switch in a compact space without increasing the volume of the container.

[0042] In technical solution five and its preferred embodiment, a reinforcement portion is further provided in the base, which is integrated with the first side wall and the bottom wall, thereby not only strengthening the strength of the first side wall, but also strengthening the strength of the bottom wall, thereby improving the overall strength of the base.

[0043] In technical solution six and its preferred embodiment, the reinforcement part is provided with a first supporting surface and a second supporting surface perpendicular to the Z-axis direction along the X-axis direction. The first supporting surface and the second supporting surface are respectively suitable for supporting the auxiliary moving contact and the auxiliary static contact, thereby improving the stability of the auxiliary monitoring switch.

[0044] In technical solution seven and its preferred embodiment, the first side of the auxiliary static contact part is used to contact the auxiliary moving contact, and its second side opposite to it is abutted against the yoke. When the auxiliary moving contact contacts the auxiliary static contact part, the auxiliary static contact part is supported by the yoke, which further makes the auxiliary static contact part stable in the contact direction of the auxiliary moving contact, so that the contact between the auxiliary moving contact and the auxiliary static contact part is reliable.

[0045] In technical solution eight and its preferred embodiment, the auxiliary static contact is abutted against and fixed to the side of the yoke facing away from the coil winding along the X-axis direction. Compared with being fixed to the side of the yoke facing the coil winding, the auxiliary static contact is easier to avoid the coil winding, and the distance between the coil winding and the armature assembly (along the X-axis direction) does not need to be too large, thereby reducing the space occupied by the relay in the X-axis direction.

[0046] In Technical Solution 9 and its preferred embodiment, the yoke is provided with a magnetic drive section extending perpendicular to the X-axis direction, and the auxiliary static contact is fixed to the side of the magnetic drive section facing away from the coil winding. Utilizing the advantage of the larger surface area of the magnetic drive section, this helps to improve the connection strength and stability of the auxiliary static contact after it is fixed to the magnetic drive section. Furthermore, compared to the form in which the auxiliary static contact is fixed to the connecting section of the yoke, the auxiliary monitoring switch occupies less space in the Y-axis direction. The auxiliary moving contact is suitable for closing or opening with the auxiliary static contact along the X-axis direction, so that when the auxiliary moving contact and the auxiliary static contact are closed, the auxiliary static contact can be supported by the magnetic drive section, making the structure more stable.

[0047] In technical solution ten and its preferred embodiment, the auxiliary static contact part is in the shape of a flat sheet parallel to the magnetic drive section, which is beneficial to reducing the space occupied by the auxiliary static contact part in the X-axis direction, so as to avoid interference with the movement of the armature assembly.

[0048] In technical solution eleven and its preferred embodiment, the connection between the magnetic drive section and the connecting section has an arc transition surface, and the position where the auxiliary static contact part is fixed to the magnetic drive section avoids the arc transition surface, so that the auxiliary static contact part and the yoke iron have a larger connection area, thereby improving the fixing strength between the auxiliary static contact part and the yoke iron.

[0049] In technical solution 12 and its preferred embodiment, the width direction of the yoke extends along the Z-axis direction; the position where the auxiliary static contact is fixed to the magnetic drive section is close to the first end of the yoke away from the bottom wall. Compared with the setting close to the middle of the yoke, the auxiliary static contact is easier to avoid the armature assembly in the Z-axis direction, and it is also easier to realize the fixing operation of the auxiliary static contact and the yoke.

[0050] In technical solution thirteen and its preferred embodiment, at the first end of the yoke, the magnetic drive section is provided with a protrusion protruding relative to the connecting section in the Z-axis direction, and the auxiliary static contact portion is at least partially fixed to the protrusion. On the one hand, it makes it easier for the auxiliary static contact to avoid the armature assembly in the Z-axis direction. On the other hand, it makes it easier for the fixed position to avoid the arc transition surface of the yoke, so that the connection between the auxiliary static contact and the yoke is more stable. In addition, it can also make the auxiliary static contact and the yoke have a larger connection area, thereby improving the fixing strength.

[0051] In technical solution fourteen and its preferred embodiment, an avoidance gap suitable for avoiding the armature assembly is formed between the first connecting part and the second connecting part; the second connecting part is closer to the bottom wall than the first connecting part; along the Y-axis direction, the second connecting part is closer to the arc transition surface of the yoke than the first connecting part; the first connecting part is fixed to the yoke; the auxiliary static contact is arranged on the second connecting part, on the one hand, making it easier for the auxiliary static contact to avoid the armature assembly in the Y-axis direction and the Z-axis direction, and on the other hand, making the first connecting part farther away from the arc transition surface of the yoke, thereby improving the connection stability between the first connecting part and the yoke; in addition, setting the second connecting part closer to the arc transition surface is conducive to avoiding interference of the second connecting part with the movement of the armature assembly.

[0052] In technical solution fifteen and its preferred embodiment, the auxiliary static contact is also provided with a static lead-out terminal and a bending portion, which extends along the X-axis direction, is connected between the first connecting portion and the static lead-out terminal and is located on one side of the connecting section along the Z-axis direction. On the one hand, the space on one side of the connecting section along the Z-axis direction is fully utilized to avoid the auxiliary static contact from expanding the occupied space of the relay in the Z-axis direction; on the other hand, the static lead-out terminal is close to the coil assembly, which is more conducive to achieving electrical isolation between the weak-current terminals of the relay (including the terminals of the coil assembly and the terminals of the auxiliary monitoring switch) and the strong-current terminals of the relay (here mainly refers to the connection terminals of the contact part below). In addition, the static lead-out terminal is connected to the bending portion, which is beneficial to saving the length of the bending portion, saving consumables and costs.

[0053] In technical solution sixteen and its preferred embodiment, when the auxiliary moving contact contacts the auxiliary static contact, the auxiliary static contact has an electrical path, and the position where the auxiliary static contact is fixed to the magnetic drive segment is located outside the electrical path. When the auxiliary monitoring switch is closed, the current does not enter the yoke through the position where the auxiliary static contact is fixed to the magnetic drive segment. Therefore, there is no need to set an insulating structure between the auxiliary static contact and the magnetic drive segment, which can avoid the current of the auxiliary monitoring switch from affecting the magnetic circuit in the yoke and reduce the complexity of the structure.

[0054] In technical solution seventeen and its preferred embodiment, the auxiliary static contact is also provided with a static lead-out terminal and a bending portion, which extends along the X-axis direction, is connected between the auxiliary static contact portion and the static lead-out terminal and is located on one side of the connecting section along the Z-axis direction. On the one hand, the space on one side of the connecting section along the Z-axis direction is fully utilized to avoid the auxiliary static contact from expanding the occupied space of the relay in the Z-axis direction; on the other hand, the static lead-out terminal is close to the coil assembly, which is more conducive to achieving electrical isolation between the weak-current terminals of the relay (including the terminals of the coil assembly and the terminals of the auxiliary monitoring switch) and the strong-current terminals of the relay (here mainly referring to the connecting terminals of the contact part). In addition, the static lead-out terminal is connected to the bending portion, which is beneficial to saving the length of the bending portion, saving consumables and costs.

[0055] In technical solution eighteen and its preferred embodiment, the auxiliary static contact is located between the position where the auxiliary static contact part and the magnetic drive segment are fixed and the arc transition surface along the Y-axis direction, which is conducive to realizing that the position where the auxiliary static contact part and the magnetic drive segment are fixed is outside the electrical path, and makes the fixed position farther away from the arc transition surface of the yoke iron, and the connection between the auxiliary static contact part and the yoke iron is more stable.

[0056] In technical solution nineteen and its preferred embodiment, a mounting groove with an opening facing away from the coil winding and a riveted portion protruding from the mounting groove are stamped on the side of the magnetic drive section of the yoke iron facing away from the coil winding. The auxiliary static contact is installed in the mounting groove and is provided with a riveted hole that cooperates with the riveted portion. The stamping process allows the riveted portion to have a longer length in the X-axis direction, thereby also allowing the auxiliary static contact to have a larger thickness, and when applied to a relay, it occupies less space in the X-axis direction.

[0057] In technical solution 20 and its preferred embodiment, the auxiliary static contact part is riveted to the yoke, which makes the process simpler and the structure more stable.

[0058] In technical solution twenty-one and its preferred embodiment, the rivet hole is a countersunk hole, and the riveted part does not protrude from the rivet hole, which is more conducive to reducing the space occupied by the auxiliary static contact part in the X-axis direction.

[0059] In Technical Solution Twenty-Two and its preferred embodiment, the reinforcing part is provided with a first limiting groove, and the auxiliary moving contact is provided with a fixed part and a swinging part. The fixed part is fixedly inserted into the first limiting groove along the Z-axis direction, so that the reinforcing part can not only strengthen the overall strength of the base, but also limit the fixed part of the auxiliary moving contact, thereby eliminating the need to set a separate positioning structure for the auxiliary moving contact, reducing the difficulty of forming the base.

[0060] In Technical Solution 23 and its preferred embodiments, the reinforcement portion further cooperates with the first sidewall to form a second limiting groove extending along the X-axis direction. The auxiliary movable contact further includes a movable lead portion, which connects the fixed portion and the movable lead terminal and is limited in the second limiting groove along the Y-axis direction. This facilitates the extension of the movable lead terminal along the Y-axis direction, thereby increasing the number of matching structures between the auxiliary movable contact and the base, and further improving the stability of the movable lead terminal. The movable lead portion is located on the side of the fixed portion facing the auxiliary static contact, allowing the movable lead terminal to be close to the static lead terminal, which is beneficial for improving its electrical isolation from the connection terminal.

[0061] In technical solution twenty-four and its preferred embodiment, the movable lead-out part is in the shape of a flat sheet perpendicular to the Y-axis direction, which is beneficial to reducing the space occupied by the movable lead-out part in the Y-axis direction, thereby providing favorable conditions for installing the auxiliary monitoring switch in a compact space.

[0062] In Technical Solution 25 and its preferred embodiments, the auxiliary dynamic contact is provided with an auxiliary dynamic spring extending along the Z-axis. Compared to an auxiliary dynamic spring extending along the Y-axis, the auxiliary monitoring switch occupies less space along the Y-axis. Furthermore, because the fixed portion is fixedly inserted into the first limiting groove, the length between the swinging portion and the fixed end of the auxiliary dynamic spring is longer, further facilitating reduced stress concentration on the auxiliary dynamic spring and improving its service life. The auxiliary dynamic spring is a sheet-like structure with its thickness extending along the X-axis, which helps reduce the space occupied by the auxiliary dynamic spring in the X-axis direction and further facilitates installation of the auxiliary dynamic contact in a compact space.

[0063] In technical solution twenty-six and its preferred embodiment, one end of the pushing part is fixedly connected to the swinging part, and the other end is suitable for being driven by the armature assembly. The pushing part is arranged close to the swinging part, which is conducive to ensuring stable contact between the auxiliary moving contact and the auxiliary static contact.

[0064] In technical solution twenty-seven and its preferred embodiment, the auxiliary static contact is provided with at least two auxiliary static contacts, and each auxiliary static contact is located at the same height along the Z-axis direction; the auxiliary dynamic spring is provided with contact branches equal to and corresponding to the auxiliary static contacts, one end of each contact branch is fixed to the fixed part, and the other end is provided with an auxiliary dynamic contact suitable for abutting the auxiliary static contact; each contact branch forms a swinging part at one end away from the fixed part. On the one hand, the provision of multiple auxiliary dynamic and static contacts can improve the connection reliability of the auxiliary monitoring switch, and is also beneficial to the processing of the auxiliary dynamic contact and the auxiliary static contact. On the other hand, it is also beneficial to the deformation of the auxiliary dynamic contact along the X-axis direction, thereby improving the connection reliability and extending the service life; each auxiliary static contact is located at the same height along the Z-axis direction so that the contact pressure of each auxiliary dynamic contact and each auxiliary static contact is consistent.

[0065] In technical solution twenty-eight and its preferred embodiments, under normal circumstances, if the armature assembly drives the moving contact to move by driving an independent pushing card, then the area on the side of the yoke facing the contact part along the X-axis direction is usually used as the activity space of the pushing card. If it is necessary to install an auxiliary monitoring switch on the side of the armature along the Y-axis direction, it is necessary to lead out a swing arm from the armature assembly to push the auxiliary monitoring switch, and the swing arm also needs to bypass the armature in the armature assembly, resulting in a more complex structure, large consumables and large volume. In this technical solution, the driving member is provided with an integrally formed driving part and an auxiliary pushing part, the driving member and the insulating member are integrally formed, and the insulating member is fixed to the permanent magnet member. Through reasonable design and processing, the driving part can avoid the space for installing the auxiliary monitoring switch, and at the same time, the small-structured auxiliary pushing part is used to drive the auxiliary moving contact in the auxiliary monitoring switch to move. The structure is simple, the consumables are small, it is easy to form, and there is no need to increase the volume of the relay. In the present technical solution, a driving part and an auxiliary pushing part are integrally arranged on the driving part, which has a simple structure, is easy to form and is conducive to reducing production costs. In addition, the driving part and the auxiliary pushing part are stable relative to the armature assembly, thereby reducing the shaking of the moving contact and the auxiliary moving contact during disconnection, avoiding affecting the arc burning characteristics of the disconnecting arc, and reducing the hazards of contact erosion and uncontrolled arc erosion of other components. BRIEF DESCRIPTION OF THE DRAWINGS

[0066] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0067] Figure 1 This is a three-dimensional exploded view of the relay in Example 1 of the present application;

[0068] Figure 2This is a schematic diagram of the base of Example 1 of the present application;

[0069] Figure 3 for Figure 2 An enlarged schematic diagram of part A;

[0070] Figure 4 This is a top view of the hidden housing of the relay in Example 1 of the present application, wherein the armature assembly is rotated to the first position;

[0071] Figure 5 for Figure 4 Cross-sectional view in the AA direction;

[0072] Figure 6 for Figure 4 Cross-sectional view in the BB direction;

[0073] Figure 7 This is a top view of the hidden housing of the relay in Example 1 of the present application, wherein the armature assembly is rotated to the second position;

[0074] Figure 8 for Figure 7 Cross-sectional view in CC direction;

[0075] Figure 9 This is a side view of a hidden housing of a relay according to an embodiment of the present application;

[0076] Figure 10 This is a schematic diagram of the armature assembly of Example 1 of the present application;

[0077] Figure 11 This is a schematic diagram of the coil assembly of Example 1 of the present application;

[0078] Figure 12 This is a schematic diagram of the coil assembly and the auxiliary static contact member of Example 1 of the present application;

[0079] Figure 13 This is a schematic diagram of the coil assembly and auxiliary monitoring switch of Example 1 of the present application;

[0080] Figure 14 This is a schematic diagram of the auxiliary movable contact member of Example 1 of the present application;

[0081] Figure 15 Schematic diagram of the yoke and auxiliary static contact member of Example 2 of the present application;

[0082] Figure 16 This is a schematic diagram of the base, yoke and auxiliary static contact of Example 3 of the present application.

[0083] Description of main reference numerals:

[0084] Container 10; base 11; bottom wall 111; first insertion hole 1111; first side wall 112; first through-groove 1121; second through-groove 1122; third through-groove 1123; partition wall 113; through-opening 1131; first groove 114; first positioning groove 1141; mating groove 1142; second groove 115; second positioning groove 1151; limiting strip 1152; reinforcing portion 116; first limiting groove 1161; second limiting groove 1162; first support surface 1163; second support surface 1164; support seat 117;

[0085] Housing 12; fixing frame 13; second insertion hole 131; magnetic circuit portion 100; coil assembly 20; coil frame 21; retaining wall 211; coil winding 22; yoke 23; magnetic drive section 231; protrusion 2311; connecting section 232; arc transition surface 233; first magnetic drive section 234; second magnetic drive section 235; rivet portion 2351; mounting groove 2352; signal terminal 01; armature assembly 30; armature 31; first armature 32; first engaging portion 321; second armature 33; second engaging portion 331; insulating member 34; insertion shaft 341; driving member 80; driving portion 81; driving groove 811; auxiliary driving portion 82; driving groove 82 1; contact portion 200; movable contact 40; movable spring piece 41; movable contact 411; movable spring lead-out piece 42; avoidance groove 421; static contact 50; static contact 51; connecting terminal 02; auxiliary monitoring switch 300; auxiliary static contact 60; auxiliary static contact portion 61; first connecting portion 611; rivet hole 6111; second connecting portion 612; auxiliary static contact 613; avoidance notch 614; bending portion 62; static lead-out terminal 03; auxiliary movable contact 70; auxiliary movable spring member 71; swinging portion 711; auxiliary movable contact 7111; contact branch 712; pushing portion 713; lead-out member 72; fixing portion 73; movable lead-out portion 74; movable lead-out terminal 04. DETAILED DESCRIPTION

[0086] In the claims and the specification, except in the embodiments, the terms "X-axis direction," "Y-axis direction," and "Z-axis direction" simply refer to the fact that features having one of these directions are perpendicular to features having another direction, and do not require that they be implemented in accordance with the "X-axis direction," "Y-axis direction," and "Z-axis direction" described in the embodiments. In the embodiments, the X-axis direction is perpendicular to both the Y-axis direction and the Z-axis direction. The X-axis direction can be divided into left and right, the Y-axis direction can be divided into front and back, and the Z-axis direction can be divided into up and down.

[0087] In the claims and the description, unless otherwise defined, the terms "first", "second" or "third", etc. are intended to distinguish different objects rather than to describe a specific order.

[0088] In the claims and the specification, unless otherwise specified, the terms "center", "transverse", "longitudinal", "horizontal", "vertical", "top", "bottom", "inside", "outside", "up", "down", "front", "back", "left", "right", "clockwise", "counterclockwise" and the like to indicate directions or positional relationships are based on the directions and positional relationships shown in the accompanying drawings and are only for the convenience of simplifying the description, and do not imply that the device or element referred to must have a specific direction or be constructed and operated in a specific direction.

[0089] In the claims and description, unless otherwise specified, the term "fixed connection" or "fixed connection" should be understood in a broad sense, that is, any connection method in which there is no displacement relationship or relative rotation relationship between the two parties, that is, including non-detachable fixed connection, detachable fixed connection, integral connection, and fixed connection through other devices or elements.

[0090] In the claims and the description, unless otherwise defined, the terms "include", "have" and their variations mean "including but not limited to".

[0091] In the claims and the description, unless otherwise defined, the term "provided with" means that the technical feature thereafter is part of the technical feature therefor.

[0092] In the claims and the specification, unless otherwise defined, the term "support" means that the weight of an object will act on another object.

[0093] In the claims and the specification, unless otherwise defined, the term “connected as one body” means that two parts are directly connected without any other parts between them.

[0094] In the claims and the specification, unless otherwise defined, the term "extension direction" refers to the length direction of the object, including portions of the object that are bent or inclined in the length direction.

[0095] See also Figure 1 , Figure 1 The structure of a relay is shown. The relay includes an accommodating part 10 , a magnetic circuit part 100 , a contact part 200 and an auxiliary monitoring switch 300 .

[0096] A relay is used to receive electrical signals to control the on / off state of an external circuit. Specifically, the relay in this embodiment is a magnetic latching relay, which controls the on / off state of an external circuit by receiving pulsed electrical signals. In this embodiment, the pulsed electrical signals can be divided into a first pulsed electrical signal and a second pulsed electrical signal. The first pulsed electrical signal and the second pulsed electrical signal are used to control the switching or on / off state of the external circuit, respectively.

[0097] The container 10 includes a base 11, a housing 12 and a fixing frame 13. Figure 1The structure of the base 11 and the housing 12 in this embodiment is shown. Figure 2 The structure of the base 11 in this embodiment is shown. Figure 3 Shown Figure 2 For an enlarged schematic diagram of part A, see Figure 1-3The base 11 is a box-shaped structure with an opening at one end. The length direction of the base 11 is the X-axis direction, the width direction is the Y-axis direction, and the height direction is the Z-axis direction. In this embodiment, the base 11 is open at one end along the Z-axis direction, and the shell 12 is suitable for covering the opening of the base 11 and is fixed to the base 11. In this embodiment, the opening is located at the upper end of the base 11, and the base 11 is provided with a bottom wall 111 perpendicular to the Z-axis direction and a first side wall 112 perpendicular to the Y-axis direction. The bottom wall 111 is opposite to the opening of the base 11, and the first side wall 112 is sequentially arranged along the X-axis direction with a first through-groove 1121, a second through-groove 1122, and a third through-groove 1123 opened along the Y-axis direction. The first through-groove 1121, the second through-groove 1122, and the third through-groove 1123 are all opened on the end surface of the open end of the base 11, and the open ends of the first through-groove 1121, the second through-groove 1122, and the third through-groove 1123 are all located at the same height along the Z-axis direction; The partition wall 113 divides the base 11 into a first groove 114 and a second groove 115 along the X-axis direction. The partition wall 113 is provided with a through opening 1131 near the first side wall 112. The bottom wall 111 forms the bottom of the first groove 114 and the second groove 115. The width of the second groove 115 along the X-axis direction is greater than the width of the first groove 114 along the X-axis direction. The inner cavities of the first groove 114 and the second groove 115 are both rectangular parallelepiped structures. The first groove 114 is provided with a first positioning groove 114 1 and a mating groove 1142. The first positioning groove 1141 is located at one end of the first groove 114 along the Y-axis, and the mating groove 1142 is located at the other end of the first groove 114 along the Y-axis. In this embodiment, there are two first through-grooves 1121, which correspond to the first groove 114 and are arranged along the X-axis. The bottom of the second groove 115 is provided with a protruding shaft near the partition wall 113, and a first insertion hole 1111 extending along the Z-axis is formed in the protruding shaft. The second groove 115 also has two L-shaped second positioning grooves 1151 arranged along the Y-axis. The second positioning grooves 1151 can limit the yoke 23 described below along the X-axis and Y-axis directions. A plurality of limiting bars 1152 extending along the X-axis and arranged along the Y-axis are further provided on a side of the second slot 115 away from the first slot 114. The limiting bars 1152 have arc-shaped surfaces and are adapted to abut against the coil winding 22, described below, to limit the sliding movement of the coil winding 22. There are two second through-slots 1122 and three third through-slots 1123. The two second through-slots 1122 are arranged along the X-axis, and the three third through-slots 1123 are also arranged along the X-axis. Both the second through-slots 1122 and the third through-slots 1123 correspond to the second slot 115.The base 11 also includes a reinforcement portion 116 within the second groove 115. The reinforcement portion 116 is integrally connected to both the first side wall 112 and the bottom wall 111. In this embodiment, the reinforcement portion 116 includes a first limiting groove 1161, which cooperates with the first side wall 112 to form a second limiting groove 1162 extending along the X-axis. The first limiting groove 1161 and the second limiting groove 1162 cooperate to limit a portion of the auxiliary movable contact 70, described below, along the X-axis and the Y-axis. The reinforcement portion 116 includes a first supporting surface 1163 and a second supporting surface 1164, arranged along the X-axis and perpendicular to the Z-axis. These first supporting surfaces 1163 and second supporting surfaces 1164 are respectively adapted to support the auxiliary movable contact 70 and the auxiliary static contact 60, described below, of the auxiliary monitoring switch 300. The base 11 also includes a support seat 117, located near the partition wall 113 and located in the second groove 115.

[0098] Still see Figure 1 The shell 12 is a rectangular parallelepiped structure, which is similar in length, width and height to the base 11 but slightly larger than the length, width and height of the base 11. One end along the Y-axis is open, and the shell 12 can be sleeved outside the base 11 along the Y-axis. The first side wall 112 of the base 11 is located at the opening of the shell 12 and is sealed and fixed to the shell 12 to block the opening of the base 11.

[0099] The fixing frame 13 is supported on the support seat 117 and fixed to the support seat 117. The fixing frame 13 is provided with a second socket 131 coaxial with the first socket 1111. After the shell 12 is fixed to the base 11, the fixing frame 13 is also limited by the shell 12 in the Z-axis direction.

[0100] See also Figure 4 and Figure 7 , Figure 4 and Figure 7 The schematic diagram shows the magnetic circuit portion 100 installed in the accommodating member 10 . The magnetic circuit portion 100 (except for the signal terminal 01 hereinafter) is basically accommodated in the second slot 115 . The magnetic circuit portion 100 includes a coil assembly 20 and an armature assembly 30 .

[0101] Figure 1 and Figure 11 A schematic diagram of the coil assembly 20 is shown in FIG. Figure 1 and Figure 11The coil assembly 20 is placed in the second slot 115 and supported on the bottom wall 111 of the second slot 115. The coil assembly 20 includes a coil frame 21, a coil winding 22, an iron core and two yokes 23. The coil frame 21 is fixed in the second slot 115. The coil frame 21 extends along the Y-axis direction and is provided with a center hole extending along the Y-axis direction (not shown in the figure). The coil frame 21 is provided with retaining walls 211 at both ends along the Y-axis direction. The coil winding 22 is wound on the coil frame 21 and is located between the two retaining walls 211. Therefore, the coil winding 22 also extends along the Y-axis direction and is fixed relative to the base 11. In this embodiment, the coil winding 22 is fixed in the base 11. The coil winding 22 has at least two signal terminals 01. The signal terminals 01 are fixed to the retaining wall 211 of the coil frame 21 and pass through the first side wall 112 along the Y-axis direction. In this embodiment, the number of signal terminals 01 is three and corresponds one-to-one with the three third through-slots 1123, that is, the number of signal terminals 01 and the third through-slots 1123 are equal and correspond one-to-one. The three signal terminals 01 are respectively suitable for extending from the three third through-slots 1123 along the Y-axis direction and are close to the open end of the base 11. The iron core extends along the Y-axis direction and is inserted into the center hole of the coil frame 21. The two yokes 23 are respectively fixed to the two ends of the iron core, that is, the two yokes 23 are fixed to the end faces of the coil winding 22, see Figure 11 The width of the yoke 23 extends along the Z-axis. A magnetic drive segment 231 is formed at each end of the two yokes 23 away from the core. The yokes 23 also include a connecting segment 232 integrally connected to the magnetic drive segment 231. Both the magnetic drive segment 231 and the connecting segment 232 are flat sheets. The magnetic drive segment 231 is perpendicular to the X-axis, while the connecting segment 232 is perpendicular to the Y-axis and affixed to the end face of the coil. In this embodiment, a circular transition surface 233 is formed at the junction of the magnetic drive segment 231 and the connecting segment 232. At the first end (upper end) of the yoke 23 away from the bottom wall 111, the magnetic drive segment 231 includes a protrusion 2311 that protrudes along the Z-axis relative to the connecting segment 232. The two magnetic drive segments 231 are arranged along the Y-axis and are respectively a first magnetic drive segment 234 and a second magnetic drive segment 235.

[0102] Figure 1 The structure of the armature assembly 30 and the insulating member 34 is shown. Figure 4 and Figure 7 In the embodiment, the armature assembly 30 is disposed on one side of the coil winding 22 along the X-axis and is adapted to rotate about a rotation axis extending along the Z-axis in response to a change in polarity of the yoke 23. In this embodiment, the armature assembly 30 rotates between a first position and a second position. The rotation axis of the armature assembly 30 and the axis of the coil winding 22 are spaced apart along the X-axis.

[0103] like Figure 1As shown, in this embodiment, the armature assembly 30 includes a permanent magnet (not shown), two armatures 31, and an insulating member 34. The permanent magnet is formed of magnetized steel. In other embodiments, the permanent magnet may also be made of other permanent magnetic materials, such as neodymium iron boron permanent magnets. The permanent magnet has two fixed magnetic poles with opposite polarity. The two armatures 31 are respectively fixed to the two magnetic poles of the permanent magnet. Each armature 31 has two engaging portions suitable for engaging with the magnetic drive segment 231. When the magnetic circuit portion 100 is in the magnetic holding state and the coil winding 22 is no longer energized, the two armatures 31 each have an engaging portion that attracts the corresponding magnetic drive segment 231 to form a closed magnetic circuit passing through the two magnetic drive segments 231. In this embodiment, the two armatures 31 are respectively a first armature 32 and a second armature 33. The first armature 32 has two first engaging portions 321 at each end of its length, and the second armature 33 has two second engaging portions 331 at each end of its length. The length of the first armature 32 is longer than the length of the second armature 33 .

[0104] The insulator 34 is fixedly connected to the permanent magnet and the two armatures 31. For example, the insulator 34 can be an injection-molded part. It encapsulates the two armatures 31 and the permanent magnet to form a single unit. Both ends of the first armature 32 and the second armature 33 are located outside the insulator 34. Protruding from either side of the insulator 34 along the Z-axis, near the first armature 32, are inserted shafts 341 extending along the Z-axis. These two inserted shafts 341 are coaxial and form the rotation axis of the armature assembly 30. Therefore, the rotation axis is closer to the first armature 32 along the width of the armature assembly 30 and is centered along the length of the armature assembly 30.

[0105] See also Figure 10 , Figure 10 The structure of the driving member 80 is shown in the figure. The driving member 80 is integrally formed with the insulating member 34 and is located on the side of the first armature 32 away from the second armature 33. The driving member 80 is provided with an integrally formed driving portion 81 and an auxiliary pushing portion 82. The driving portion 81 and the auxiliary pushing portion 82 are both located on one side of the length direction of the armature assembly 30. Figure 10 In the embodiment, the driving portion 81 and the auxiliary pushing portion 82 are respectively located at the two ends of the height direction of the armature assembly 30, and the driving portion 81 is lower than the auxiliary pushing portion 82. The driving portion 81 is provided with a driving groove 811 opening upward, and the extending direction of the driving groove 811 is parallel to the length direction of the armature assembly 30. The lengths of the two groove walls of the driving groove 811 are inconsistent. Figure 10In the embodiment, the width of the two groove walls of the driving groove 811 at the location where they contact the movable spring 41 described below is smaller than the width of the driving portion 81 at other locations. The auxiliary pushing portion 82 is provided with a pushing groove 821 that opens toward the insulating member 34. It should be understood that the openings in the driving groove 811 and the pushing groove 821 are provided to facilitate the insertion of the movable spring 41 and the auxiliary movable contact 70, respectively. In other embodiments, the driving groove 811 and the pushing groove 821 may not have openings. Figure 1 and Figure 10 In the embodiment, the insulating member 34 is only the portion that wraps the permanent magnet member, and the rest of the portion is the driving member 80 .

[0106] The contact portion 200, except for the connection terminal 02 hereinafter, is accommodated in the first groove 114. Figure 4 and Figure 7 In the embodiment, the contact portion 200 is arranged along the X-axis direction on the side of the armature assembly 30 away from the coil winding 22 and is suitable for being driven by the armature assembly 30 to be switched on and off along the X-axis direction. It has at least two connecting terminals 02 for accepting current input or output. In this embodiment, the contact portion 200 is suitable for being driven by the driving portion 81 to be switched on and off. The number of connecting terminals 02 is two and corresponds one-to-one with the two first through-slots 1121. That is, the number of connecting terminals 02 and the number of first through-slots 1121 are equal and correspond one-to-one. The two connecting terminals 02 are respectively suitable for extending from the two first through-slots 1121 along the Y-axis direction. For details, see also Figure 1 The contact portion 200 includes a dynamic contact 40 and a static contact 50. The dynamic contact 40 includes a dynamic spring 41 and a dynamic spring lead-out piece 42. One end of the dynamic spring 41 along its length direction is fixed to the first positioning groove 1141, and the other end is suitable for cooperating with the driving part 81 and is provided with a dynamic contact 411. The dynamic contact 411 is suitable for being driven by the driving part 81 to close or disconnect with the static contact 50. The movable spring lead-out piece 42 avoids the movable contact 411 and is fixedly connected to the movable spring piece 41 and passes through one of the first through grooves 1121 of the first side wall 112 to form one of the connecting terminals 02. The movable spring lead-out piece 42 is provided with a downward-opening avoidance groove 421 near the movable contact 411. In this embodiment, the movable spring lead-out piece 42 is fixedly connected to the fixed end of the movable spring piece 41 and cooperates with the first positioning groove 1141 of the base 11 to be fixed in the accommodating part 10. It is located on the side of the movable contact 40 away from the static contact 50. When current is passed through, the current direction of the movable spring lead-out piece 42 is opposite to the current direction of the movable contact 40. The Ampere force formed on the movable contact 40 helps to increase the contact pressure between the movable contact 40 and the static contact 50, thereby preventing the movable contact 411 and the static contact 51 mentioned below from being disconnected and exploding due to electric repulsion when a large fault current occurs.

[0107] The static contact 50 extends along the Y-axis direction and is fixed in the matching groove 1142. The static contact 50 is provided with a static contact 51 and another connecting terminal 02 passing through another first through groove 1121 of the first side wall 112; the moving contact 411 and the static contact 51 are suitable for closing or opening along the X-axis direction.

[0108] See also Figure 1 、 Figure 4 and Figure 7 The auxiliary monitoring switch 300 is arranged between the armature assembly 30 and the first side wall 112 along the Y-axis direction and close to the yoke 23 along the X-axis direction. It is suitable for being driven by the armature assembly 30 to be turned on and off, and has a lead-out terminal for external connection; the lead-out terminal extends from the second through-slot 1122 along the Y-axis direction. In this embodiment, the number of lead-out terminals is two, and the two lead-out terminals correspond one-to-one to the two second through-slots 1122, that is, the number of lead-out terminals and the second through-slots 1122 are equal and one-to-one corresponding, and the two lead-out terminals are respectively suitable for extending from the two second through-slots 1122 along the Y-axis direction and are both close to the open end of the base 11.

[0109] Specifically, the auxiliary monitoring switch 300 includes an auxiliary static contact 60 and an auxiliary movable contact 70. In this embodiment, the auxiliary static contact 60 is fixed to the yoke 23 near the first side wall 112, and both the auxiliary static contact 60 and the auxiliary movable contact 70 have a lead terminal. The auxiliary movable contact 70 is adapted to be driven by the armature assembly 30 to move into contact with or away from the auxiliary static contact 60, thereby switching the auxiliary monitoring switch 300 on or off.

[0110] In this embodiment, see Figure 12 , Figure 12The figure shows a schematic diagram of the coordination between the auxiliary static contact 60 and the yoke 23. The auxiliary static contact 60 is provided with an auxiliary static contact portion 61, a bent portion 62 and a static lead-out terminal 03. The auxiliary static contact portion 61 is provided with a first side and a second side facing away from each other. The first side is used to contact the auxiliary dynamic contact 70, and the second side is abutted against the yoke 23. The auxiliary static contact portion 61 is abutted against and fixed to the side of the yoke 23 facing away from the coil winding 22 along the X-axis direction. Specifically, the auxiliary static contact portion 61 is in the shape of a flat sheet parallel to the magnetic drive section 231. One side surface of the auxiliary static contact portion 61 is abutted against the magnetic drive section 231 and is provided with a first connecting portion 611 and a second connecting portion 612 connected together along the Z-axis direction. An avoidance gap 614 suitable for avoiding the armature assembly 30 is formed between the first connecting portion 611 and the second connecting portion 612. Along the Z-axis direction, the second connecting portion 612 is further away from the first end of the yoke 23 than the first connecting portion 611. The yoke 23 is located along its width. The first end of the direction is away from the bottom wall 111, that is, the second connecting portion 612 is closer to the bottom wall 111 than the first connecting portion 611; along the Y-axis direction, the second connecting portion 612 is closer to the arc transition surface 233 of the yoke 23 than the first connecting portion 611; the first connecting portion 611 is fixed to the yoke 23; at least two auxiliary static contacts 613 are provided on the side of the second connecting portion 612 that is away from the magnetic drive section 231, and each auxiliary static contact 613 is arranged along the Y-axis direction and is at the same height along the Z-axis direction. Therefore, the position where the auxiliary static contact portion 61 is fixed to the magnetic drive section 231 avoids the arc transition surface 233. In this embodiment, the position where the auxiliary static contact portion 61 is fixed to the magnetic drive section 231 is arranged close to the first end of the yoke 23 along the Z-axis direction and is at least partially fixed to the protrusion 2311. The bent portion 62 extends along the X-axis, connecting between the first connecting portion 611 and the static lead terminal 03 and located on one side of the connecting section 232 along the Z-axis. In a specific embodiment, the auxiliary static contact portion 61 is riveted to the yoke 23. During riveting, the auxiliary static contact portion 61 is provided with a rivet hole 6111, and the yoke 23 is provided with a rivet portion 2351 that matches the rivet hole 6111. The rivet hole 6111 is a countersunk hole, and the rivet portion 2351 does not protrude from the rivet hole 6111. However, it should be understood that in other embodiments, the auxiliary static contact 60 can also be fixed to the yoke 23 through other methods, such as welding or bonding.

[0111] See also Figure 13-14 , Figure 13-14Schematic diagrams of the auxiliary monitoring switch 300 are shown in the figures. The auxiliary dynamic contact 70 includes an auxiliary dynamic spring member 71 and a lead-out member 72. The auxiliary dynamic spring member 71 extends along the Z-axis direction. The auxiliary dynamic spring member 71 is a sheet-like structure whose thickness direction extends along the X-axis direction. One end of the auxiliary dynamic spring member 71 along the Z-axis direction is fixedly connected to the bottom wall 111 of the accommodating member 10 mentioned above to form a fixed end, and the other end forms a swinging portion 711. In this embodiment, the auxiliary dynamic spring member 71 is provided with contact branches 712 equal in number to and corresponding to the auxiliary static contacts 613. One end of each contact branch 712 is fixedly connected to the fixed portion 73, and the other end is provided with an auxiliary dynamic contact 7111 suitable for abutting against the auxiliary static contact 613; the end of each contact branch 712 away from the fixed portion 73 forms a swinging portion 711. In this embodiment, the auxiliary dynamic contact 7111 is suitable for closing or opening with the auxiliary static contact 613 along the X-axis direction. The auxiliary dynamic spring member 71 further includes a pushing portion 713. One end of the pushing portion 713 is fixedly connected to the swinging portion 711, and the other end is adapted to be inserted into the pushing groove 821, thereby being directly pushed by the auxiliary pushing portion 82. In this embodiment, the pushing portion 713 is at least partially inclined relative to the X-axis and the Z-axis. In this embodiment, the pushing portion 713 includes an equal number of pushing branches as the contact branches 712. The pushing branches are integrally formed with the end of the contact branch 712 that is distal from the fixed portion 73. The lead-out member 72 is provided with a fixed portion 73, a movable lead-out portion 74 and a movable lead-out terminal 04. The fixed portion 73 is fixed to the accommodating member 10 and is fixed to the fixed end of the auxiliary dynamic spring member 71, mainly fixed to the bottom end of the contact branch 712. In this embodiment, the movable lead-out portion 74 is a flat sheet perpendicular to the Y-axis direction. The movable lead-out portion 74 connects the fixed portion 73 and the movable lead-out terminal 04 and is limited in the second limiting groove 1162 along the Y-axis direction. The movable lead-out portion 74 is located on the side of the fixed portion 73 facing the auxiliary static contact 60. Figure 6 and Figure 6 , Figure 6 Schematic diagram showing the cooperation between the movable lead-out portion 74 and the reinforcement portion 116, Figure 8 shows a cross-sectional view of the dynamic lead portion 74. In this embodiment, the dynamic lead portion 74 is also adapted to be supported on the first support surface 1163. The static lead terminal 03 and the dynamic lead terminal 04 form the two lead terminals of the auxiliary monitoring switch 300. Therefore, the static lead terminal 03 and the dynamic lead terminal 04 both extend along the Y-axis and are flush along the Z-axis. In this embodiment, the static lead terminal 03 and the dynamic lead terminal 04 respectively extend through the two second through slots 1122 of the first side wall 112. The static lead terminal 03 is also adapted to be supported on the second support surface 1164.

[0112] The assembly process of the relay of this embodiment is as follows:

[0113] The static contact 50 is inserted into the matching groove 1142 and one end thereof passes through one of the first through grooves 1121 of the first side wall 112 to form a connecting terminal 02;

[0114] The fixing portion 73 of the auxiliary movable contact 70 is inserted into the first limiting groove 1161, and the movable lead portion 74 of the auxiliary movable contact 70 is inserted into the second limiting groove 1162. The movable lead portion 74 is supported on the first supporting surface 1163, so that the first limiting groove 1161 can limit the displacement of the fixing portion 73 along the X-axis direction, and the second limiting groove 1162 can limit the displacement of the movable lead portion 74 along the Y-axis direction. The movable lead terminal 04 of the auxiliary movable contact 70 passes through one of the second through-grooves 1122 of the first side wall 112.

[0115] Place the armature assembly 30 into the base 11. Insert the insertion shaft 341 of the armature assembly 30 into the first insertion hole 1111. The driving portion 81 of the armature assembly 30 extends through the through-opening 1131 of the partition wall 113 and into the first groove 114. The pushing portion 713 of the auxiliary movable contact 70 is inserted into the pushing groove 821 of the auxiliary pushing portion 82.

[0116] Insert the fixed end of the movable contact 40 into the first positioning groove 1141, and the movable spring lead-out piece 42 of the movable contact 40 passes through the first through groove 1121 of the first side wall 112 to form the connection terminal 02. The swing end of the movable contact 40 is inserted into the driving groove 811 of the driving part 81, and the driving part 81 also passes through the avoidance groove 421 of the movable spring lead-out piece 42.

[0117] The auxiliary static contact 60 is fixed to the yoke 23 near the first side wall 112, that is, the second magnetic drive section 235, and the coil assembly 20 is placed in the second slot 115 so that the signal terminal 01 of the coil assembly 20 passes through the second through slot 1122. The coil winding 22 is in contact with the limit bar 1152. The two yokes 23 are respectively inserted into the two second positioning slots 1151. The static lead terminal 03 of the auxiliary static contact 60 passes through the other second through slot 1122 of the first side wall 112. At this time, the relay can be referred to Figure 4 、 Figure 7 and Figure 9 ;

[0118] Then, the base 11 is inserted into the housing 12 along the Y-axis direction and fixed to the housing 12. It should be understood that the order of the various parts during the installation process can be adjusted as needed.

[0119] After installation, the contact portion 200 and the coil winding 22 are located on both sides of the first plane in the X-axis direction. The first plane is perpendicular to the X-axis direction and passes through the rotation axis. The permanent magnet is located between the two yokes 23 along the Y-axis direction. Figure 9 The upper ends of the signal terminal 01, the static lead terminal 03 and the dynamic lead terminal 04 are all located at the same height along the Z-axis direction, and are all located on the side of the first side wall 112 close to the opening.

[0120] The working process of this embodiment is as follows:

[0121] When the signal terminal 01 receives the first pulse signal, the armature assembly 30 rotates from the second position to the first position, see Figure 4 , one of the first attracting parts 321 attracts the first magnetic driving segment 234, and one of the second attracting parts 331 attracts the second magnetic driving segment 235, and the driving part 81 drives the moving contact 411 and the static contact 51 to close; the auxiliary pushing part 82 drives the auxiliary moving contact 7111 and the auxiliary static contact 613 to disconnect;

[0122] When the signal terminal 01 receives the pulse signal, the armature assembly 30 rotates from the first position to the second position. Figure 7 , another second attracting part 331 attracts the first magnetic driving section 234, and another first attracting part 321 attracts the second magnetic driving section 235. The driving part 81 drives the moving contact 411 and the static contact 51 to disconnect; the auxiliary pushing part 82 drives the auxiliary moving contact 7111 and the auxiliary static contact 613 to close.

[0123] In this embodiment, the contact portion 200 is suitable for being driven by the armature assembly 30 and being switched on and off along the X-axis direction. It can be seen that the contact portion 200 extends along the Y-axis direction, and the coil winding 22 and the contact portion 200 are arranged on both sides of the armature assembly 30 along the X-axis direction. The arrangement is compact, which is conducive to reducing the volume of the relay; the coil winding 22 and the contact portion 200 extend along the Y-axis direction. On this basis, each signal terminal 01 and each connecting terminal 02 also extends from the first side wall 112 along the Y-axis direction. The extension path is short, which can avoid the complexity of the internal circuit of the relay and the weak circuit strength; since the first through-groove 1121, the second through-groove 1122 and the third through-groove 1123 are all open on the end surface of the open end of the base 11, each connecting terminal 02 extends from the first through-groove 1121 along the Y-axis direction, and each signal terminal 01 is The lead terminals extend from the third through-slot 1123 along the Y-axis, and each lead terminal extends from the second through-slot 1122 along the Y-axis. Therefore, during installation, the contact portion 200, the auxiliary monitoring switch 300, and the coil assembly 20 can all be placed into the base 11 from the open end of the base 11, improving installation convenience. This also eliminates the need for the second through-slot 1122 and the third through-slot 1123 on the first side wall 112 to be very long along the Z-axis, minimizing the weakening of the first side wall 112. This minimizes the impact on the strength of the first side wall 112 when the auxiliary monitoring switch 300 is added to the relay, thereby ensuring the strength of the first side wall 112. Furthermore, this eliminates the need for through-slots on other walls of the base 11, thereby improving the overall strength of the base 11 and reducing the difficulty of molding the accommodating member 10. Furthermore, this facilitates the convenient connection of the relay to the PCB along the Y-axis. The auxiliary monitoring switch 300 is disposed between the armature assembly 30 and the first side wall 112 along the Y-axis and close to the yoke 23 along the X-axis. This fully utilizes the gap between the armature assembly 30 and the first side wall 112 and the space around the yoke 23, allowing the auxiliary monitoring switch 300 to be installed without increasing the volume of the container 10, thereby reducing the volume of the container 10. Specifically, the first side wall 112 is sequentially provided with a first through-groove 1121, a second through-groove 1122, and a third through-groove 1123 along the X-axis, positioning the lead terminal between the connection terminal 02 and the signal terminal 01 along the X-axis. This facilitates electrical isolation between the relay's weak-current terminals (including the signal terminal 01 and the lead terminal) and the relay's strong-current terminals (here primarily referring to the connection terminal 02 of the contact portion 200). Therefore, compared with the prior art one and the prior art two, the molding difficulty of the accommodating part 10 in this embodiment is small, the molding of the accommodating part 10 is simple, the volume of the relay is small, and compared with the prior art one, there is not much gap between the rotating shaft of the armature assembly 30 and the bottom wall 111, the rotating shaft of the armature assembly 30 does not need to be set longer, is not easy to deform, and the structure of the armature assembly 30 is stable.Furthermore, the auxiliary monitoring switch 300 in this embodiment occupies less space than a standard auxiliary monitoring switch 300, and the position of the terminals of the auxiliary monitoring switch 300 can be adjusted as needed, resulting in a simpler structural design. In this embodiment, the connection terminal 02, signal terminal 01, and lead terminal all extend along the Y-axis. This eliminates the need for complex bending of the terminals, reducing molding difficulty, material costs, and extending their service life. Furthermore, it simplifies the wiring path on the PCB.

[0124] In this embodiment, the number of the first through-grooves 1121 is equal to and corresponds one-to-one with the number of the connecting terminals 02, the number of the second through-grooves 1122 is opposite to and corresponds one-to-one with the number of the lead terminals, and the number of the third through-grooves 1123 is equal to and corresponds one-to-one with the number of the signal terminals 01. Compared with the scheme of "each connecting terminal 02 passes through the same first through-grooves 1121, each lead terminal passes through the same second through-grooves 1122, and each signal terminal 01 passes through the same third through-grooves 1123", the first through-grooves 1121, the second through-grooves 1122 and the third through-grooves 1123 are smaller, which reduces the impact on the strength of the first side wall 112 and can better position the corresponding terminals.

[0125] In this embodiment, each lead-out terminal is arranged along the X-axis direction and is close to the open end of the base 11; each signal terminal 01 is arranged along the X-axis direction and is close to the open end of the base 11. Compared with the solution in which the lead-out terminal and the open end of the base 11 and the signal terminal 01 and the open end of the base 11 have a larger distance, the length of the second through-groove 1122 and the third through-groove 1123 in the Z-axis direction can be reduced, thereby further reducing the impact on the strength of the first side wall 112, and is conducive to limiting the lead-out terminal and the signal terminal 01 in the Z-axis direction through the housing 12 and the bottom of the corresponding through-groove.

[0126] In this embodiment, a reinforcement portion 116 is further provided in the base 11 , and the reinforcement portion 116 is integrally connected to the first side wall 112 and the bottom wall 111 , thereby not only strengthening the strength of the first side wall 112 , but also strengthening the strength of the bottom wall 111 , thereby improving the overall strength of the base 11 .

[0127] In this embodiment, since the yoke 23 is usually fixed to the end surface of the coil winding 22 and is fixedly inserted into the accommodating part 10 together with the coil winding 22, in this embodiment, since the auxiliary monitoring switch 300 is arranged close to the yoke 23 along the X-axis direction, the auxiliary static contact 60 is directly fixed to the yoke 23, and the auxiliary static contact 60 can be installed and positioned simultaneously when the yoke 23 is installed, avoiding the problem of needing to install the auxiliary static contact 60 again. The assembly is simple, thereby solving the problem of difficulty in assembling and positioning small parts. In addition, the problem of scraping that is easy to occur when the auxiliary static contact 60 is installed with the base 11 can be avoided. More preferably, the stability of the yoke 23 and the coil body on the base 11 is also utilized, so that the auxiliary static contact 60 is directly supported by the yoke 23 to obtain strength and stability, so that there is no need to form a mounting portion on the accommodating part 10, so that the structure of the accommodating part 10 is simple, easy to form and saves materials. In addition, it is also beneficial to reduce the volume of the accommodating part 10 and the miniaturized design of the relay to better meet usage requirements and reduce costs. In this embodiment, since the auxiliary moving contact 70 only needs to be installed on the base 11, it is sufficient to ensure that the auxiliary moving contact 70 can avoid other structures of the armature assembly 30 and the coil assembly 20. The auxiliary monitoring switch 300 as a whole requires less space in the container 10, thereby providing favorable conditions for installing the auxiliary monitoring switch 300 in a compact space without increasing the volume of the container 10.

[0128] In this embodiment, the reinforcing portion 116 is provided with a first supporting surface 1163 and a second supporting surface 1164 perpendicular to the Z-axis direction along the X-axis direction. The first supporting surface 1163 and the second supporting surface 1164 are respectively suitable for supporting the auxiliary moving contact 70 and the auxiliary static contact 60, thereby improving the stability of the auxiliary monitoring switch 300.

[0129] In this embodiment, the first side of the auxiliary static contact portion 61 is used to contact the auxiliary moving contact 70, and its second side opposite to it is abutted against the yoke 23. When the auxiliary moving contact 70 contacts the auxiliary static contact portion 61, the auxiliary static contact portion 61 is supported by the yoke 23, which further makes the auxiliary static contact 60 have good stability in the contact direction of the auxiliary moving contact 70, so that the contact between the auxiliary moving contact 70 and the auxiliary static contact 60 is reliable.

[0130] In this embodiment, the auxiliary static contact portion 61 is abutted against and fixed to the side of the yoke 23 facing away from the coil winding 22 along the X-axis direction. Compared with being fixed to the side of the yoke 23 facing the coil winding 22, the auxiliary static contact 60 is easier to avoid the coil winding 22, and the distance between the coil winding 22 and the armature assembly 30 (along the X-axis direction) does not need to be too large, thereby reducing the space occupied by the relay in the X-axis direction.

[0131] In this embodiment, the yoke 23 is provided with a magnetic drive section 231 extending perpendicularly to the X-axis. The auxiliary static contact portion 61 is fixedly connected to the side of the magnetic drive section 231 facing away from the coil winding 22. Taking advantage of the larger surface area of the magnetic drive section 231, this helps to improve the connection strength and stability of the auxiliary static contact 60 after being fixed to the magnetic drive section 231. Furthermore, compared to the form in which the auxiliary static contact 60 is fixed to the connecting section 232 of the yoke 23, the auxiliary monitoring switch 300 occupies less space in the Y-axis direction. The auxiliary movable contact 7111 is suitable for closing or opening with the auxiliary static contact 613 along the X-axis direction, so that when the auxiliary movable contact 7111 and the auxiliary static contact 613 are closed, the auxiliary static contact 613 can be supported by the magnetic drive section 231, resulting in a more stable structure.

[0132] In this embodiment, the auxiliary static contact portion 61 is in the shape of a flat sheet parallel to and in contact with the magnetic drive section 231 , which helps to reduce the space occupied by the auxiliary static contact portion 61 in the X-axis direction, thereby avoiding interference with the movement of the armature assembly 30 .

[0133] In this embodiment, the connection between the magnetic drive section 231 and the connecting section 232 has an arc transition surface 233, and the position where the auxiliary static contact part 61 is fixed to the magnetic drive section 231 avoids the arc transition surface 233, so that the auxiliary static contact part 60 and the yoke 23 have a larger connection area, thereby improving the fixing strength of the auxiliary static contact part 60 and the yoke 23.

[0134] In this embodiment, the width direction of the yoke 23 extends along the Z-axis direction; the position where the auxiliary static contact portion 61 is fixed to the magnetic drive section 231 is close to the first end of the yoke 23 away from the bottom wall 111. Compared with the setting close to the middle of the yoke 23, the auxiliary static contact 60 is easier to avoid the armature assembly 30 in the Z-axis direction, and it is also easier to achieve the fixing operation of the auxiliary static contact 60 and the yoke 23.

[0135] In this embodiment, at the first end of the yoke 23, the magnetic drive section 231 is provided with a protrusion 2311 protruding along the Z-axis direction relative to the connecting section 232, and the auxiliary static contact portion 61 is at least partially fixed to the protrusion 2311. On the one hand, it makes it easier for the auxiliary static contact 60 to avoid the armature assembly 30 in the Z-axis direction. On the other hand, it makes it easier for the fixed position to avoid the arc transition surface 233 of the yoke 23, so that the connection between the auxiliary static contact 60 and the yoke 23 is more stable. In addition, it can also make the auxiliary static contact 60 and the yoke 23 have a larger connection area, thereby improving the fixing strength.

[0136] In this embodiment, an avoidance gap 614 suitable for avoiding the armature assembly 30 is formed between the first connection part 611 and the second connection part 612; the second connection part 612 is farther away from the first end of the yoke 23 than the first connection part 611; along the Y-axis direction, the second connection part 612 is closer to the arc transition surface 233 of the yoke 23 than the first connection part 611; the first connection part 611 is fixed to the yoke 23; the auxiliary static contact 613 is arranged on the second connection part 612, on the one hand, it makes it easier for the auxiliary static contact 60 to avoid the armature assembly 30 in the Y-axis direction and the Z-axis direction, and on the other hand, it makes the first connection part 611 able to be farther away from the arc transition surface 233 of the yoke 23, thereby improving the connection stability between the first connection part 611 and the yoke 23; in addition, setting the second connection part 612 closer to the arc transition surface 233 is conducive to avoiding the second connection part 612 from interfering with the movement of the armature assembly 30.

[0137] In this embodiment, the auxiliary static contact 60 is also provided with a static lead-out terminal 03 and a bending portion 62. The bending portion 62 extends along the X-axis direction, is connected between the first connecting portion 611 and the static lead-out terminal 03, and is located on one side of the connecting section 232 along the Z-axis direction. On the one hand, the space on one side of the connecting section 232 along the Z-axis direction is fully utilized to avoid the auxiliary static contact 60 from expanding the occupied space of the relay in the Z-axis direction; on the other hand, the static lead-out terminal 03 is close to the coil assembly 20, which is more conducive to achieving electrical isolation between the weak-current terminals of the relay (including the terminals of the coil assembly 20 and the terminals of the auxiliary monitoring switch 300) and the strong-current terminals of the relay (here mainly referring to the connection terminals 02 of the contact part 200). In addition, the static lead-out terminal 03 is connected to the bending portion 62, which is conducive to saving the length of the bending portion 62, saving consumables and costs.

[0138] In this embodiment, the auxiliary static contact portion 61 is riveted to the yoke 23 , which simplifies the process and provides a stable structure.

[0139] In this embodiment, the rivet hole 6111 is a countersunk hole, and the rivet portion 2351 does not protrude from the rivet hole 6111 , which is more conducive to reducing the space occupied by the auxiliary static contact portion 61 in the X-axis direction.

[0140] In this embodiment, the reinforcing portion 116 is provided with a first limiting groove 1161, and the auxiliary dynamic contact 70 is provided with a fixed portion 73 and a swinging portion 711. The fixed portion 73 is fixedly inserted into the first limiting groove 1161 along the Z-axis direction, so that the reinforcing portion 116 can not only strengthen the overall strength of the base 11, but also limit the fixed portion 73 of the auxiliary dynamic contact 70, thereby eliminating the need to set a separate positioning structure for the auxiliary dynamic contact, thereby reducing the difficulty of molding the base 11.

[0141] In this embodiment, the reinforcing portion 116 further cooperates with the first sidewall 112 to form a second limiting groove 1162 extending along the X-axis. The auxiliary movable contact 70 further includes a movable lead portion 74. The movable lead portion 74 connects the fixed portion 73 and the movable lead terminal 04 and is limited in the second limiting groove 1162 along the Y-axis. This facilitates the extension of the movable lead terminal 04 along the Y-axis and thereby increases the number of matching structures between the auxiliary movable contact 70 and the base 11, further improving the stability of the movable lead terminal 04. The movable lead portion 74 is located on the side of the fixed portion 73 facing the auxiliary static contact 60, allowing the movable lead terminal 04 to be close to the static lead terminal 03, thereby improving its electrical isolation from the connecting terminal 02.

[0142] In this embodiment, the movable lead-out portion 74 is in the shape of a flat sheet perpendicular to the Y-axis direction, which is beneficial for reducing the space occupied by the movable lead-out portion 74 in the Y-axis direction, thereby providing favorable conditions for installing the auxiliary monitoring switch 300 in a compact space.

[0143] In this embodiment, the auxiliary dynamic contact 70 is provided with an auxiliary dynamic spring 71 extending along the Z-axis. Compared to an auxiliary dynamic spring 71 extending along the Y-axis, the auxiliary monitoring switch 300 occupies less space along the Y-axis. Furthermore, because the fixed portion 73 is fixedly inserted into the first limiting groove 1161, the length between the swinging portion 711 and the fixed end of the auxiliary dynamic spring 71 is longer, further reducing stress concentration on the auxiliary dynamic spring 71 and improving its service life. The auxiliary dynamic spring 71 is a sheet-like structure with its thickness extending along the X-axis, which helps reduce the space occupied by the auxiliary dynamic spring 71 along the X-axis and further facilitates installation of the auxiliary dynamic contact 70 in a compact space.

[0144] In this embodiment, one end of the pushing portion 713 is fixedly connected to the swinging portion 711 of the auxiliary dynamic spring member 71, and the other end is suitable for being driven by the armature assembly 30. The pushing portion 713 is arranged close to the swinging portion 711, which is conducive to ensuring stable contact between the auxiliary dynamic contact 7111 and the auxiliary static contact 613.

[0145] In this embodiment, the auxiliary static contact 60 is provided with at least two auxiliary static contacts 613, and each auxiliary static contact 613 is located at the same height along the Z-axis direction; the auxiliary dynamic spring member 71 is provided with contact branches 712 equal to and corresponding to the auxiliary static contacts 613, one end of each contact branch 712 is fixed to the fixed portion 73, and the other end is provided with an auxiliary dynamic contact 7111 suitable for abutting the auxiliary static contact 613; the end of each contact branch 712 away from the fixed portion 73 forms a swinging portion 711. On the one hand, the provision of multiple auxiliary dynamic and static contacts 51 can improve the connection reliability of the auxiliary monitoring switch 300, and is also beneficial to the processing of the auxiliary dynamic contact 70 and the auxiliary static contact 60. On the other hand, it is also beneficial to the deformation of the auxiliary dynamic contact 70 along the X-axis direction, thereby improving the connection reliability and extending the service life; each auxiliary static contact 613 is located at the same height along the Z-axis direction so that the contact pressure of each auxiliary dynamic contact 7111 and each auxiliary static contact 613 is consistent.

[0146] In this embodiment, under normal circumstances, if the armature assembly 30 drives the movable contact 40 by driving an independent pushing card, then the area of the yoke 23 on the side facing the contact part 200 along the X-axis direction is usually used as the activity space of the pushing card. If it is necessary to install the auxiliary monitoring switch 300 on the side of the armature 31 along the Y-axis direction, it is necessary to lead out a swing arm from the armature assembly 30 to push the auxiliary monitoring switch 300, and the swing arm also needs to bypass the armature 31 in the armature assembly 30, resulting in a more complex structure, large consumables and large volume. In this embodiment, the driving member 80 is provided with an integrally formed driving part 81 and an auxiliary pushing part 82. The driving member 80 is integrally formed with the insulating member 34, and the insulating member 34 is fixed to the permanent magnet member. Through reasonable design and processing, the driving part 81 can avoid the space for installing the auxiliary monitoring switch 300, and the small-structured auxiliary pushing part 82 is also used to drive the auxiliary movable contact 70 in the auxiliary monitoring switch 300 to move. The structure is simple, the consumables are small, the molding is good, and there is no need to increase the volume of the relay. In this embodiment, a driving part 81 and an auxiliary pushing part 82 are integrally provided on the driving member 80, which has a simple structure, is easy to form and is conducive to reducing production costs. In addition, the driving part 81 and the auxiliary pushing part 82 are stable relative to the armature assembly 30, thereby reducing the shaking of the moving contact 40 and the auxiliary moving contact 70 during disconnection, avoiding affecting the arc burning characteristics of the disconnecting arc, and reducing the hazards of contact erosion and uncontrolled arc erosion of other components.

[0147] Example 2

[0148] The structure of the embodiment 2 is basically the same as that of the embodiment 1, except that the structure of the auxiliary static contact 60 is different. Figure 15In this embodiment, the auxiliary static contact 61 does not include the first connecting portion 611 and the second connecting portion 612. The auxiliary static contact 613 is located along the Y-axis between the location where the auxiliary static contact 61 is fixed to the magnetic drive segment 231 and the arc transition surface 233. When the auxiliary movable contact 7111 contacts the auxiliary static contact 613, the auxiliary static contact 60 defines an electrical path, and the location where the auxiliary static contact 60 is fixed to the magnetic drive segment 231 is outside the electrical path. The auxiliary static contact 60 also has a static lead terminal 03 and a bent portion 62. The bent portion 62 extends along the X-axis, connecting between the auxiliary static contact 61 and the static lead terminal 03 and located on one side of the connecting segment 232 along the Z-axis.

[0149] In this embodiment, the auxiliary static contact 613 is located between the position where the auxiliary static contact part 61 and the magnetic drive section 231 are fixed and the arc transition surface 233 along the Y-axis direction, which is conducive to achieving that the position where the auxiliary static contact 60 and the magnetic drive section 231 are fixed is located outside the electrical path, and makes the fixed position farther away from the arc transition surface 233 of the yoke 23, and the connection between the auxiliary static contact 60 and the yoke 23 is more stable.

[0150] In this embodiment, when the auxiliary moving contact 7111 contacts the auxiliary static contact 613, the auxiliary static contact 60 has an electrical path, and the position where the auxiliary static contact 60 is fixed to the magnetic drive section 231 is located outside the electrical path. When the auxiliary monitoring switch 300 is closed, the current does not pass through the position where the auxiliary static contact 60 is fixed to the magnetic drive section 231 to enter the yoke 23. Therefore, there is no need to set an insulating structure between the auxiliary static contact 60 and the magnetic drive section 231, so that the current of the auxiliary monitoring switch 300 can be avoided from affecting the magnetic circuit in the yoke 23, thereby reducing the complexity of the structure.

[0151] In this embodiment, the auxiliary static contact 60 is also provided with a static lead-out terminal 03 and a bending portion 62. The bending portion 62 extends along the X-axis direction, is connected between the auxiliary static contact portion 61 and the static lead-out terminal 03, and is located on one side of the connecting section 232 along the Z-axis direction. On the one hand, the space on one side of the connecting section 232 along the Z-axis direction is fully utilized to avoid the auxiliary static contact 60 from expanding the occupied space of the relay in the Z-axis direction; on the other hand, the static lead-out terminal 03 is close to the coil assembly 20, which is more conducive to achieving electrical isolation between the weak-current terminals of the relay (including the terminals of the coil assembly 20 and the terminals of the auxiliary monitoring switch 300) and the strong-current terminals of the relay (here mainly referring to the connection terminals 02 of the contact part 200). In addition, the static lead-out terminal 03 is connected to the bending portion 62, which is conducive to saving the length of the bending portion 62, saving consumables and costs.

[0152] Example 3

[0153] The structure of the embodiment 3 is basically the same as that of the embodiment 1, except that the structure of the auxiliary static contact 60 is different. Figure 16 In this embodiment, the auxiliary static contact portion 61 does not include the first connecting portion 611 and the second connecting portion 612. A mounting slot 2352 with an opening facing away from the coil winding 22 and a riveted portion 2351 protruding from the mounting slot 2352 are stamped on the side of the magnetic drive section 231 of the yoke 23. The auxiliary static contact 60 is mounted in the mounting slot 2352 and is provided with a riveted hole 6111 that mates with the riveted portion 2351. There are three riveted portions 2351, each located near the auxiliary static contact portion 61 and away from the arc transition surface 233. When the auxiliary movable contact 7111 contacts the auxiliary static contact 613, an electrical path is established for the auxiliary static contact 60, and the location where the auxiliary static contact 60 is fixed to the magnetic drive section 231 is outside the electrical path.

[0154] In this embodiment, the magnetic drive section 231 of the yoke 23 is stamped on the side away from the coil winding 22 to form a mounting groove 2352 with an opening away from the coil winding 22 and a riveted portion 2351 protruding from the mounting groove 2352. The auxiliary static contact 60 is installed in the mounting groove 2352 and is provided with a rivet hole 6111 that cooperates with the riveted portion 2351. The stamping process allows the riveted portion 2351 to have a longer length in the X-axis direction, thereby also allowing the auxiliary static contact 60 to have a larger thickness, and when applied to a relay, it occupies less space in the X-axis direction.

[0155] In this embodiment, when the auxiliary moving contact 7111 contacts the auxiliary static contact 613, the auxiliary static contact 60 has an electrical path, and the position where the auxiliary static contact 60 is fixed to the magnetic drive section 231 is located outside the electrical path. When the auxiliary monitoring switch 300 is closed, the current does not pass through the position where the auxiliary static contact 60 is fixed to the magnetic drive section 231 to enter the yoke 23. Therefore, there is no need to set an insulating structure between the auxiliary static contact 60 and the magnetic drive section 231, so that the current of the auxiliary monitoring switch 300 can be avoided from affecting the magnetic circuit in the yoke 23, thereby reducing the complexity of the structure.

[0156] In this embodiment, the auxiliary static contact 60 is also provided with a static lead-out terminal 03 and a bending portion 62. The bending portion 62 extends along the X-axis direction, is connected between the auxiliary static contact portion 61 and the static lead-out terminal 03, and is located on one side of the connecting section 232 along the Z-axis direction. On the one hand, the space on one side of the connecting section 232 along the Z-axis direction is fully utilized to avoid the auxiliary static contact 60 from expanding the occupied space of the relay in the Z-axis direction; on the other hand, the static lead-out terminal 03 is close to the coil assembly 20, which is more conducive to achieving electrical isolation between the weak-current terminals of the relay (including the terminals of the coil assembly 20 and the terminals of the auxiliary monitoring switch 300) and the strong-current terminals of the relay (here mainly referring to the connection terminals 02 of the contact part 200). In addition, the static lead-out terminal 03 is connected to the bending portion 62, which is conducive to saving the length of the bending portion 62, saving consumables and costs.

[0157] The above description and embodiments are used to explain the scope of protection of the utility model, but do not constitute a limitation on the scope of protection of the utility model. Based on the enlightenment of the utility model or the above embodiments, modifications, equivalent replacements, or other improvements to the embodiments of the utility model or part of the technical features thereof that can be obtained by ordinary technicians in this field through logical analysis, reasoning, or limited experiments in combination with common knowledge, ordinary technical knowledge in this field and / or existing technology should be included in the scope of protection of the utility model.

Claims

1. A relay, characterized in that: include A container (10) comprises a base (11) and a shell (12); the base (11) is open at one end along the Z-axis direction and is provided with a first side wall (112) perpendicular to the Y-axis direction; the first side wall (112) is sequentially provided with a first through groove (1121), a second through groove (1122) and a third through groove (1123) along the X-axis direction; the second through groove (1122) and the third through groove (1123) are both open on the end surface of the open end of the base (11); and the shell (12) is suitable for covering the opening of the base (11); A magnetic circuit portion (100) includes a coil assembly (20) and an armature assembly (30), wherein the coil assembly (20) is fixed relative to the base (11) and includes a coil winding (22) extending in the Y-axis direction and two yokes (23) respectively fixed to two ends of the coil winding (22); the coil winding (22) has at least two signal terminals (01); each signal terminal (01) extends from a third through slot (1123) in the Y-axis direction; the armature assembly (30) is provided on one side of the coil winding (22) in the X-axis direction and is adapted to rotate around a rotation axis extending in the Z-axis direction in response to a change in polarity of the yoke (23); A contact portion (200) is arranged along the X-axis direction on a side of the armature assembly (30) away from the coil winding (22) and is adapted to be driven by the armature assembly (30) to be switched on and off along the X-axis direction, and has at least two connection terminals (02) for receiving or outputting current, each connection terminal (02) extending from the first through slot (1121) along the Y-axis direction; and An auxiliary monitoring switch (300) is arranged between the armature assembly (30) and the first side wall (112) along the Y-axis direction and close to the yoke (23) along the X-axis direction. It is suitable for being driven by the armature assembly (30) to be turned on and off, and has a lead terminal for external connection; the lead terminal extends from the second through slot (1122) along the Y-axis direction.

2. A relay as claimed in claim 1, characterized in that: The number of the first through-grooves (1121) is equal to and corresponds one-to-one with the number of the connection terminals (02); the number of the second through-grooves (1122) is opposite to and corresponds one-to-one with the number of the lead-out terminals; and the number of the third through-grooves (1123) is equal to and corresponds one-to-one with the number of the signal terminals (01).

3. A relay as claimed in claim 2, characterized in that: Each of the lead-out terminals is arranged along the X-axis direction and is close to the open end of the base (11); each of the signal terminals (01) is arranged along the X-axis direction and is close to the open end of the base (11).

4. A relay as claimed in claim 3, characterized in that: The auxiliary monitoring switch comprises an auxiliary static contact (60) and an auxiliary movable contact (70), wherein the auxiliary movable contact (70) is adapted to be driven by the armature assembly (30) to move to contact with or away from the auxiliary static contact (60) so as to switch the auxiliary monitoring switch (300) on or off; the auxiliary static contact (60) is fixed to a yoke (23) near the first side wall (112), and each of the auxiliary static contact (60) and the auxiliary movable contact (70) has a lead terminal.

5. A relay as claimed in claim 4, characterized in that: The base (11) is further provided with a bottom wall (111) perpendicular to the Z-axis direction, and the bottom wall (111) is opposite to the opening of the base (11); a reinforcing portion (116) is further provided in the base (11), and the reinforcing portion (116) is integrally connected to the first side wall (112) and the bottom wall (111).

6. A relay as claimed in claim 5, characterized in that: The reinforcing portion (116) is provided with a first supporting surface (1163) and a second supporting surface (1164) perpendicular to the Z-axis direction along the X-axis direction, and the first supporting surface (1163) and the second supporting surface (1164) are respectively suitable for supporting the auxiliary moving contact (70) and the auxiliary static contact (60) along the Z-axis direction.

7. A relay as claimed in claim 5, characterized in that: The auxiliary static contact (60) is provided with an auxiliary static contact portion (61), and the auxiliary static contact portion (61) is provided with a first side and a second side that are separated from each other, the first side is used to contact the auxiliary moving contact (70), and the second side is in contact with the yoke (23).

8. A relay as claimed in claim 7, characterized in that: The auxiliary static contact portion (61) is abutted against and fixed to a side of the yoke (23) that is away from the coil winding (22) along the X-axis direction.

9. A relay as claimed in claim 8, characterized in that: The yoke (23) is provided with a magnetic drive section (231) and a connecting section (232) which are both connected as one body and are in the shape of flat sheets. The magnetic drive section (231) is perpendicular to the X-axis direction, and the connecting section (232) is perpendicular to the Y-axis direction and is fixed to the end face of the coil winding (22). The auxiliary static contact portion (61) is fixed to the magnetic drive section (231) and is provided with an auxiliary static contact (613). The auxiliary moving contact (70) is provided with an auxiliary moving contact (7111), and the auxiliary moving contact (7111) is suitable for closing or opening with the auxiliary static contact (613) along the X-axis direction.

10. A relay as claimed in claim 9, characterized in that: The auxiliary static contact portion (61) is in the shape of a flat sheet that is parallel to and in contact with the magnetic drive section (231).

11. A relay as claimed in claim 9, characterized in that: The connection between the magnetic drive section (231) and the connection section (232) is provided with an arc transition surface (233), and the position where the auxiliary static contact portion (61) is fixed to the magnetic drive section (231) avoids the arc transition surface (233).

12. A relay as claimed in claim 11, characterized in that: The width direction of the yoke (23) extends along the Z-axis direction; the position where the auxiliary static contact (60) is fixed to the magnetic drive section (231) is arranged close to the first end of the yoke (23) away from the bottom wall (111).

13. A relay as claimed in claim 12, characterized in that At the first end of the yoke (23), the magnetic drive section (231) is provided with a protruding portion (2311) protruding relative to the connecting section (232) along the Z-axis direction, and the auxiliary static contact portion (61) is at least partially fixed to the protruding portion (2311).

14. A relay as claimed in claim 13, characterized in that: The auxiliary static contact portion (61) is provided with a first connecting portion (611) and a second connecting portion (612) connected as one body along the Z-axis direction; an avoidance notch (614) suitable for avoiding the armature assembly (30) is formed between the first connecting portion (611) and the second connecting portion (612); along the Z-axis direction, the second connecting portion (612) is closer to the bottom wall (111) than the first connecting portion (611); along the Y-axis direction, the second connecting portion (612) is closer to the arc transition surface (233) of the yoke (23) than the first connecting portion (611); the first connecting portion (611) is fixedly connected to the yoke (23); and the auxiliary static contact (613) is provided on the second connecting portion (612).

15. A relay as described in claim 14, wherein the auxiliary static contact (60) is further provided with a static lead-out terminal (03) and a bending portion (62), the static lead-out terminal (03) is one of the two lead-out terminals, and the bending portion (62) extends along the X-axis direction, is connected between the first connecting portion (611) and the static lead-out terminal (03), and is located on one side of the connecting section (232) along the Z-axis direction.

16. A relay as claimed in claim 12, characterized in that: When the auxiliary moving contact (7111) contacts the auxiliary static contact (613), the auxiliary static contact (60) has an electrical path, and the position where the auxiliary static contact (60) is fixed to the magnetic drive section (231) is located outside the electrical path.

17. A relay as claimed in claim 16, characterized in that: The auxiliary static contact (60) is further provided with a static lead-out terminal (03) and a bending portion (62), wherein the static lead-out terminal (03) is one of the two lead-out terminals, and the bending portion (62) extends along the X-axis direction, is connected between the auxiliary static contact portion (61) and the static lead-out terminal (03), and is located on one side of the connecting section (232) along the Z-axis direction.

18. A relay as claimed in claim 17, characterized in that: The auxiliary static contact point (613) is located along the Y-axis direction between the position where the auxiliary static contact portion (61) and the magnetic drive section (231) are fixed and the arc transition surface (233).

19. A relay as claimed in claim 17, characterized in that: A mounting groove (2352) with an opening facing away from the coil winding (22) and a riveted portion (2351) protruding from the mounting groove (2352) are punched on a side of the magnetic drive section (231) of the yoke (23) facing away from the coil winding (22); the auxiliary static contact (60) is mounted in the mounting groove (2352) and is provided with a riveted hole (6111) that cooperates with the riveted portion (2351).

20. A relay according to any one of claims 8 to 18, characterized in that: The auxiliary static contact portion (61) is riveted to the yoke (23).

21. A relay as claimed in claim 20, characterized in that: The auxiliary static contact portion (61) is provided with a rivet hole (6111), and the yoke (23) is provided with a rivet portion (2351) adapted to the rivet hole (6111); the rivet hole (6111) is a countersunk hole, and the rivet portion (2351) does not protrude from the rivet hole (6111).

22. A relay according to any one of claims 9 to 19, characterized in that: The reinforcing portion (116) is provided with a first limiting groove (1161); the auxiliary moving contact (70) is provided with a fixed portion (73) and a swinging portion (711), the fixed portion (73) is fixedly inserted into the first limiting groove (1161) along the Z-axis direction, and the swinging portion (711) is suitable for being driven by the armature assembly (30) to contact or move away from the auxiliary static contact (613).

23. A relay as claimed in claim 22, characterized in that: The reinforcing portion (116) also cooperates with the first side wall (112) to form a second limiting groove (1162) extending along the X-axis direction; the auxiliary movable contact (70) is also provided with a movable lead-out portion (74) and a movable lead-out terminal (04), the movable lead-out portion (74) is connected to the fixed portion (73) and the movable lead-out terminal (04) and is limited in the second limiting groove (1162) along the Y-axis direction, the movable lead-out portion (74) is located on the side of the fixed portion (73) facing the auxiliary static contact (60); the movable lead-out terminal (04) is the other of the two lead-out terminals.

24. A relay as claimed in claim 23, characterized in that: The movable lead-out portion (74) is in the shape of a flat sheet perpendicular to the Y-axis direction.

25. A relay as claimed in claim 22, characterized in that: The auxiliary movable contact (70) includes an auxiliary movable spring (71) extending along the Z-axis direction. The auxiliary movable spring (71) is a sheet-like structure with its thickness direction extending along the X-axis direction. One end of the auxiliary movable spring (71) along the Z-axis direction is fixedly connected to the fixed portion (73), and the other end of the auxiliary movable spring (71) constitutes the swing portion (711).

26. A relay as claimed in claim 25, characterized in that: The auxiliary dynamic spring member (71) is further provided with a pushing portion (713), one end of which is fixedly connected to the swinging portion (711), and the other end of which is suitable for being driven by the armature assembly (30).

27. A relay as claimed in claim 25, characterized in that: The auxiliary static contact member (60) is provided with at least two auxiliary static contacts (613); each auxiliary static contact (613) is located at the same height along the Z-axis direction; the auxiliary dynamic spring member (71) is provided with contact branches (712) equal in number to and corresponding to the auxiliary static contacts (613); one end of each contact branch (712) is fixedly connected to the fixed portion (73), and the other end is provided with an auxiliary dynamic contact (7111) suitable for abutting against the auxiliary static contact (613); and one end of each contact branch (712) away from the fixed portion (73) forms a swinging portion (711).

28. A relay as claimed in claim 1, characterized in that: The magnetic circuit portion (100) further includes a driving member (80); the armature assembly (30) includes a permanent magnet, two armatures (31) and an insulating member (34); the two armatures (31) are respectively fixed to two magnetic poles of the permanent magnet; the permanent magnet is located between two yokes (23) along the Y-axis direction; each armature (31) is respectively provided with two attracting portions adapted to be attracted to the yokes (23); the insulating member (34) is fixed to the permanent magnet and the armature (31); the driving member (80) and the insulating member (34) are integrally formed and provided with an integrally formed driving portion (81) and an auxiliary pushing portion (82); the contact portion (200) is adapted to be driven on and off by the driving portion (81); and the auxiliary monitoring switch (300) is adapted to be driven on and off by the auxiliary pushing portion (82).

Citation Information

Cited By

  • Relay

    CN119092360A