CN218385045U - Electromagnetic relay resistant to large load - Google Patents

Electromagnetic relay resistant to large load Download PDF

Info

Publication number
CN218385045U
CN218385045U CN202222908996.9U CN202222908996U CN218385045U CN 218385045 U CN218385045 U CN 218385045U CN 202222908996 U CN202222908996 U CN 202222908996U CN 218385045 U CN218385045 U CN 218385045U
Authority
CN
China
Prior art keywords
base
electromagnetic relay
movable
sliding block
spring
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
CN202222908996.9U
Other languages
Chinese (zh)
Inventor
彭碧辉
虞彭鑫
林煜博
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Zhejiang Meishuo Electric Technology Co ltd
Original Assignee
Zhejiang Meishuo Electric Technology Co ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Zhejiang Meishuo Electric Technology Co ltd filed Critical Zhejiang Meishuo Electric Technology Co ltd
Priority to CN202222908996.9U priority Critical patent/CN218385045U/en
Application granted granted Critical
Publication of CN218385045U publication Critical patent/CN218385045U/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Landscapes

  • Electromagnets (AREA)

Abstract

The utility model discloses a resistant heavy load's electromagnetic relay, including setting up in the magnetic circuit drive assembly of base, the movable contact spring structure, static contact structure and drive assembly, drive assembly can set up the armature part on the magnetic circuit drive assembly including but swing, and reciprocating motion sets up the slider structure on the base, the movable contact spring structure includes and forms linkage complex spring assembly with slider structure, the armature part extends the drive division that sets up through the slope and links to each other in slider structure, the electromagnetic relay who adopts this technical scheme is on current structural basis, through optimizing product structure overall arrangement, replace original push rod mode of rotating or erectting the installation through slider structure, the structure is compacter, the mounting structure of this kind of slider structure is simple, it is comparatively convenient to assemble on the base, self volume is also done lessly, the cooperation transmission is reliable, improve assembly efficiency, be favorable to doing the product volume littleer, reduce the production manufacturing cost.

Description

Electromagnetic relay resistant to large load
Technical Field
The utility model relates to a low-voltage apparatus technical field, specifically speaking relate to an electromagnetic relay of resistant heavy load.
Background
An electromagnetic relay is an electronic control device having a control system (also called an input loop) and a controlled system (also called an output loop), which is usually applied in an automatic control circuit, and which is actually an "automatic switch" that uses a smaller current and a lower voltage to control a larger current and a higher voltage. Therefore, the circuit plays the roles of automatic regulation, safety protection, circuit conversion and the like.
The existing electromagnetic relay generally comprises a base, a magnetic circuit part, a contact part and a push rod arranged between the magnetic circuit part and the contact part, wherein the contact part consists of a movable spring and a static spring which are inserted on the base, the push rod is driven by an armature in the magnetic circuit part, the installation mode of the push rod generally adopts the following two modes, for example, chinese patent document CN212062311U discloses a clapper type electromagnetic relay which comprises a base, an electromagnetic component, a push piece and a contact part, wherein the electromagnetic component is arranged on the base, the electromagnetic component comprises an iron core coil, the armature and a framework for installing the armature, the lower end of the push piece is rotatably installed on the base, one side of the push piece is provided with a push plate which interacts with the armature, the other side of the push piece is provided with a push rod which interacts with the contact part, the lower end of the push piece is arranged into a circular rotating shaft, and the push piece has a complex structure, a larger volume and a large installation occupied space, and is not beneficial to the miniaturization development of products. Still like chinese patent document CN 207719106U discloses a power relay, including the housing, a pedestal, armature, yoke, the push rod, normally closed static spring, normally open static spring and movable spring, armature and yoke link together through the shell fragment, wherein, the armature vertical section passes through the connecting hole and links to each other with the armature link of push rod, the movable spring link of push rod links to each other with the connecting hole of movable spring, the push rod middle part is equipped with the insulating barrier, be the push rod for it erects between armature and movable spring that the horizontal form is to be the push rod, this kind of push rod easily takes place position collision interference phenomenon between armature, lead to the push rod to take place the phenomenon of falling easily in the installation, this kind of push rod mounting structure is complicated, increase the installation degree of difficulty, the installation effectiveness is low, be unfavorable for the automated production of product like this.
In summary, the conventional electromagnetic relay usually adopts the two installation methods of the push rod, and is difficult to change greatly due to the limitations of the structure and space of the electromagnetic relay, but the following problems still exist in practical application: the structure of this kind of push rod sets up complicacy, and the volume is done great to and install also comparatively loaded down with trivial details at the base, mounting structure is complicated, and assembly efficiency is low, is unfavorable for control manufacturing cost, has also increaseed automated production's the degree of difficulty. Therefore, on the premise of meeting the basic performance requirements of relay products, technicians need to develop an electromagnetic relay product which is simple in mounting structure, small in occupied space, good in action reliability and beneficial to automatic production and assembly at the present stage.
SUMMERY OF THE UTILITY MODEL
The utility model discloses the push rod structure of the technical problem that solves overcoming among the prior art sets up complicatedly, and the volume is done great to and the process of installing on the base is comparatively loaded down with trivial details, and mounting structure is complicated, is unfavorable for control manufacturing cost's problem, thereby provides one kind and optimizes product structure overall arrangement, and mounting structure is simple, improves assembly efficiency, is favorable to being done littleer with product volume, reduction in production cost's electromagnetic relay.
In order to solve the problems, the utility model provides a large-load-resistant electromagnetic relay, which comprises a base, a magnetic circuit driving component, a movable contact piece structure, a static contact piece structure and a transmission component, wherein the magnetic circuit driving component, the movable contact piece structure and the static contact piece structure are arranged on the base, the transmission component is movably arranged between the magnetic circuit driving component and the movable contact piece structure, the transmission component comprises an armature component which can be arranged on the magnetic circuit driving component in a swinging way and a slider structure which can be arranged on the base in a reciprocating way, the movable contact piece structure comprises a spring component which is in linkage fit with the slider structure, the spring component is arranged opposite to the static contact piece structure, the armature component is provided with a driving part which is inclined towards one side of the slider structure and extends for a set length, and the slider structure is connected with the driving part through a limit structure; when the armature part is sucked and swung by the magnetic circuit driving assembly, the sliding block structure is pushed to move, so that the sliding block structure drives the spring assembly to be contacted with the static contact piece structure.
In the electromagnetic relay, the base is provided with an installation sliding groove extending along the length direction of the base, the slider structure is movably accommodated in the installation sliding groove, and a guide structure for guiding the slider structure to move along the length direction of the base is arranged between the installation sliding groove and the slider structure.
In the above electromagnetic relay, the guide structure includes a guide groove extending in the same direction as the mounting chute and disposed in the mounting chute, and a guide projection disposed at the bottom of the slider structure and slidably connected to the guide groove, and the guide groove extends out of one end of the mounting chute and extends to the static contact structure.
In the above electromagnetic relay, the limit structure includes a limit slot provided on the slider structure, and one end of the driving portion is inserted into the limit slot.
In the electromagnetic relay, the magnetic circuit driving assembly comprises a driving coil and a yoke, the armature part is connected to the upper end of the yoke in an L-shaped swinging manner, and a spring plate structure is arranged between the armature part and the yoke; the driving part is an inclined plate structure formed by reducing the width of one end of the armature part and then extending downwards.
In the electromagnetic relay, the base comprises two mounting bosses formed on two sides of the mounting chute, the movable contact spring structure comprises a conductive support erected on the two mounting bosses, the spring assembly comprises two movable contact springs symmetrically arranged on the conductive support, one ends of the two movable contact springs are respectively fixed on the conductive support, and the other ends of the two movable contact springs extend to the lower part of the conductive support and are linked with the slider structure through a positioning structure.
In the electromagnetic relay, the positioning structure comprises two positioning hooks arranged on two sides of the front end of the sliding block structure and two hook grooves arranged on the two positioning hooks, and the other ends of the two movable springs are respectively positioned and inserted in the two hook grooves.
In the electromagnetic relay, the conductive support comprises two vertical plate parts respectively connected with the two movable spring pieces, a middle separation groove formed between the two vertical plate parts and extending to the top of the conductive support, and a connecting part connected to the bottoms of the two vertical plate parts, two mounting grooves are formed in the two mounting bosses, two mounting clamping pins respectively inserted into the two mounting grooves are bent and formed on the bottom edge of the connecting part, and a U-shaped current path passing through the two vertical plate parts and the connecting part is formed between the two movable spring pieces.
In the electromagnetic relay, the static contact piece structure comprises two static conductive pieces which are arranged on the base at intervals corresponding to the two movable spring pieces, two pairs of movable contacts and static contacts are respectively arranged on the two static conductive pieces and the two movable spring pieces in an opposite mode, and the bottoms of the two static conductive pieces are bent and formed with the pin ends penetrating through the bottom of the base.
In the electromagnetic relay, the base is provided with an installation partition plate blocking the other end of the installation chute, and the magnetic circuit driving assembly and the slider structure are respectively arranged on two sides of the installation partition plate; the armature component is arranged on the base in a sleeved mode, and the armature component is arranged on the conductive support in a sleeved mode.
Compared with the prior art, the technical scheme of the utility model have following advantage:
1. the utility model provides an among the resistant heavy load electromagnetic relay, but through the slider structure who sets up reciprocating motion on the base, then when assembly armature part and movable contact spring structure, make the armature part link to each other with slider structure through the drive division that the slope extends, and make the movable contact spring structure pass through the spring subassembly and form linkage cooperation with the slider structure, thereby utilize the slider structure of reciprocating motion design to transmit motion and power between armature part and spring subassembly, can actuation armature part swing when magnetic circuit drive subassembly circular telegram produces the electromagnetic force, make the slider structure drive spring subassembly and static contact structure contact under the promotion of armature part, and when magnetic circuit drive subassembly outage, this slider part will reset the removal under the elastic force effect of spring subassembly, this technical scheme's relay is on current structure basis, through optimizing product structure overall arrangement, adopt the slider structure to replace original push rod that rotates or erect the installation, the structure is compacter, easily realize the automated production assembly of product, the mounting structure of this kind of slider structure is simple, conveniently accomplish the equipment on the base fast, self volume also does lessly, cooperation transmission is reliable, improve assembly efficiency, be favorable to make the product, the volume is more reduced.
2. The utility model provides an among the resistant heavy load electromagnetic relay, it is provided with the installation spout to extend along its length direction on the base, but slider structure passes through guide structure reciprocating motion and sets up at the installation spout, this kind of structure sets up, design through installation spout and guide structure plays installation direction and motion guide effect to slider structure at the base, guarantee that slider structure makes reciprocating motion along the length direction of base in the installation spout, in order to prevent slider structure reciprocating motion in-process from taking place the offset phenomenon, can be reliable between coil part and spring piece subassembly transmission motion, installation stability is good.
3. The utility model provides an among the resistant heavy load electromagnetic relay, through structural spacing slot that is provided with at the slider, the one end slope that makes the drive division inserts in spacing slot to realize that the transmission between armature part and the slider structure is connected, according to the drive division by armature part one end reduce the fashioned swash plate structure of downwardly extending behind the width, the design can satisfy the transmission distance requirement between armature part and the slider structure like this, the erection joint is convenient, the cooperation transmission is reliable.
4. The utility model provides an among the resistant heavy load electromagnetic relay, front end both sides through at the slider structure set up two location pothooks, and be provided with the pothook groove on two location pothooks respectively, as long as fix a position the other end of two movable contact springs respectively and peg graft at two pothook grooves, through the location fit that forms between two location pothooks and two movable contact springs, break away from the location pothook with the other end that prevents the movable contact spring, installation stability is good, adopt the linkage cooperation between this kind of location structural design realized slider structure and two movable contact springs, make two movable contact springs be close to two static conducting strip one side elastic deflection at synchronous court under the slider structure drives, and when movable contact spring and static conducting strip break off, make the slider structure receive the elastic force effect of two movable contact springs and down can realize the removal that resets, the assembly between this kind of slider structure and two movable contact springs is also comparatively simple and convenient, it is applicable in automatic assembly production, and installation effectiveness is improved.
5. The utility model provides an among the resistant heavy load electromagnetic relay, when two movable contact reeds and two static conducting strip contact circular telegrams, make the electric current from one of them static conducting strip on input, then after the transmission between two movable contact reeds and the electrically conductive support, export on another static conducting strip again, constitute by two riser portions and connecting portion according to electrically conductive support, form the U-shaped current path through two riser portions and connecting portion between two movable contact reeds, be favorable to having increased the sectional area that the electric current passes through movable contact reed and electrically conductive support like this, the electric current that can pass is big, and reduce the contact temperature rise, make the load that the relay product can break the high-voltage heavy current, promote the performance of product.
6. The utility model provides an among the resistant heavy load electromagnetic relay, through set up the insulating barrier of pegging graft between two installation bosss on the housing, utilize insulating barrier to separate armature part and electrically conductive support, be used for increaseing electric clearance between armature part and the electrically conductive support, prevent to take place to scurry arc creepage, improve the overvoltage performance of product.
Drawings
In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the drawings used in the embodiments or the prior art descriptions will be briefly described below.
Fig. 1 is a schematic perspective view of a heavy-load-resistant electromagnetic relay according to the present invention;
fig. 2 is a schematic cross-sectional structure diagram of the electromagnetic relay with heavy load resistance of the present invention;
fig. 3 is a schematic structural diagram of the electromagnetic relay shown in fig. 1 after the base is hidden;
fig. 4 is a schematic view of a connection structure of the armature component and the push block structure of the present invention;
fig. 5 is a schematic structural view of the movable contact spring structure of the present invention;
fig. 6 is a schematic structural view of the base of the present invention;
description of the reference numerals: 1. a base; 11. installing a chute; 12. a guide groove; 13. mounting a boss; 14. installing a partition plate; 2. a static contact structure; 21. a static conductive sheet; 22. a lead terminal; 3. a movable contact spring structure; 31. a reed assembly; 311. a movable reed; 32. a conductive support; 321. a vertical plate portion; 322. a connecting portion; 323. installing a clamping pin; 4. a slider structure; 41. a guide projection; 5. a positioning hook; 51. a hook groove; 6. limiting slots; 7. an armature member; 71. a drive section; 8. a magnetic circuit driving assembly; 81. a drive coil; 82. a yoke; 83. elastic tabletting; 9. a housing; 91. an insulating barrier.
Detailed Description
The technical solution of the present invention will be described clearly and completely with reference to the accompanying drawings, and obviously, the described embodiments are some, but not all embodiments of the present invention.
In the description of the present invention, it should be noted that the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", and the like indicate orientations or positional relationships based on the orientations or positional relationships shown in the drawings, and are only for convenience of description and simplification of description, but do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus, should not be construed as limiting the present invention. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and are not to be construed as indicating or implying relative importance.
In the description of the present invention, it is to be noted that, unless otherwise explicitly specified or limited, the terms "mounted," "connected," and "connected" are to be construed broadly, and may be, for example, fixedly connected, detachably connected, or integrally connected; can be mechanically or electrically connected; they may be connected directly or indirectly through intervening media, or they may be interconnected between two elements. The specific meaning of the above terms in the present invention can be understood as a specific case by those skilled in the art.
Example 1
The present embodiment is described in detail below with reference to the accompanying drawings:
the present embodiment provides an electromagnetic relay with large load resistance as shown in fig. 1-6, which comprises a base 1, and a magnetic circuit driving assembly 8, a movable contact structure 3, a stationary contact structure 2 arranged on the base 1, and a transmission assembly movably arranged between the magnetic circuit driving assembly 8 and the movable contact structure 3, and is characterized in that: the transmission assembly comprises an armature component 7 which can be arranged on the magnetic circuit driving assembly 8 in a swinging mode and a sliding block structure 4 which can be arranged on the base 1 in a reciprocating mode, the movable contact spring structure 3 comprises a spring component 31 which is matched with the sliding block structure 4 in a linkage mode, the spring component 31 is arranged opposite to the static contact spring structure 2, the armature component 7 is provided with a driving part 71 which extends towards one side of the sliding block structure 4 in an inclined mode for a set length, and the sliding block structure 4 is connected with the driving part 71 through a limiting structure; when the armature component 7 is attracted and swung by the magnetic circuit driving component 8, the sliding block structure 4 is pushed to move, so that the sliding block structure 4 drives the spring component 31 to be contacted with the static contact piece structure 2.
In the above embodiment, by arranging the slider structure capable of moving back and forth on the base 1, and then when assembling the armature component 7 and the moving contact piece structure 3, the armature component 7 is connected with the slider structure 4 through the obliquely extending driving part 71, and the moving contact piece structure 3 is in linkage fit with the slider structure 4 through the spring piece assembly 31, so that the slider structure 4 designed by back and forth movement is utilized to transmit movement and force between the armature component 7 and the spring piece assembly 31, when the magnetic circuit driving assembly is electrified to generate electromagnetic force, the armature component 7 is attracted and swings, the slider structure 4 drives the spring piece assembly 31 to be in contact with the stationary contact piece structure 2 under the pushing of the armature component 7, and when the magnetic circuit driving assembly is powered off, the slider component resets and moves under the elastic force of the spring piece assembly 31.
In order to ensure the stability and reliability of the reciprocating movement of the slider structure 4 on the base 1, a mounting chute 11 is extended along the length direction of the base 1, the slider structure 4 is movably accommodated in the mounting chute 11, a guiding structure for guiding the slider structure 4 to move along the length direction of the base 1 is arranged between the mounting chute 11 and the slider structure 4, as a specific structure, the guiding structure comprises a guiding groove 12 extended in the same direction as the mounting chute 11 and arranged in the mounting chute 11, and a guiding projection 41 arranged at the bottom of the slider structure 4 and slidably connected to the guiding groove 12, wherein the guiding groove 12 extends out of one end of the mounting chute 11 and extends to the static contact piece structure 2. According to the structure, the slider structure 4 plays a role in installation guiding and motion guiding on the base through the design of the installation sliding groove and the guiding structure, the slider structure 4 is ensured to move back and forth in the installation sliding groove along the length direction of the base, so that the position deviation phenomenon in the back and forth movement process of the slider structure is prevented, the slider structure can lean against the coil component and the spring component to transfer motion, and the installation stability is good.
In the present embodiment, as shown in fig. 3 to 4, the magnetic circuit driving assembly 8 includes a driving coil 81 and a yoke, the armature component 7 is connected to an upper end of the yoke 82 in an L-shaped swing manner, and an elastic pressing piece 83 is disposed between the driving coil 81 and the yoke 82, when the driving coil is energized, an electromagnetic force for attracting the armature component 7 is generated by the driving coil 81, so that the armature component 7 pushes the slider structure 4 to move toward the side close to the stationary contact structure 2 under the electromagnetic force. The limiting structure comprises a limiting slot 6 arranged on the slider structure 4, one end of the driving part 71 is inserted into the limiting slot 6, the limiting slot is positioned at the rear end part of the slider structure, so that the driving connection between the armature part 7 and the slider structure 4 is realized, the structure is simple, the installation is convenient and quick, and the requirement on the transmission distance between the armature part 7 and the slider structure 4 can be met by designing the inclined plate structure formed by extending downwards after the width of one end of the armature part 7 is reduced according to the driving part 71.
The following detailed description will be made with reference to fig. 1-3 for the specific arrangement of the moving contact structure and the sliding block structure:
the base 1 includes two mounting bosses 13 formed on both sides of the mounting chute 11, and the movable contact spring structure 3 includes a conductive bracket 32 erected on the two mounting bosses 13, so that the conductive bracket 32 is configured to be positioned above the slider structure 4 so as not to interfere with the reciprocating movement of the slider structure 4 in the mounting chute. The spring assembly 31 comprises two movable springs 311 symmetrically arranged on the conductive support 32, one ends of the two movable springs 311 are respectively fixed on the conductive support 32, the other ends of the two movable springs extend to the lower side of the conductive support 32 and are linked with the slider structure 4 through a positioning structure, the movable springs are formed by overlapping a plurality of springs and can elastically deform and deflect in a pressed state, the static contact piece structure 2 comprises two static conductive pieces 21 which are arranged on the base 1 corresponding to the two movable springs at intervals, the two static conductive pieces 21 and the two movable springs are respectively provided with two pairs of movable contacts and static contacts in an opposite mode, the bottoms of the two static conductive pieces 21 are bent and formed to be provided with guide pin ends 22 penetrating through the bottom of the base 1, and the two static conductive pieces 21 are connected with a circuit board in an installing mode through the respective guide pin ends 22. In this way, when the driving coil 81 is powered on to operate, the armature component 7 is driven by electromagnetic force to push the slider structure 4 to move, the two movable spring pieces are driven by the slider structure to electrically contact with the two static conductive pieces 21, and due to the structural design of the movable spring pieces and the conductive bracket, current can generate an electric repulsive force for pushing the movable spring pieces when passing through the conductive bracket, so as to increase the contact force between the movable contact and the static contact.
As a preferred embodiment, the positioning structure includes two positioning hooks 5 disposed on two sides of the front end of the slider structure 4, and two hook grooves 51 disposed on the two positioning hooks 5, and the other ends of the two movable springs are respectively positioned and inserted in the two hook grooves 51, and correspondingly, a bayonet matched with the positioning hooks 5 is disposed on the other end of the movable spring, the positioning structure is designed to realize linkage matching between the slider structure 4 and the two movable springs, so as to prevent the other ends of the two movable springs from being separated from the positioning hooks of the slider structure 4, so that the mounting stability is good, the two movable springs are driven by the slider structure 4 to synchronously elastically deflect toward one side close to the two static conductive sheets 21, and when the movable spring is separated from the static conductive sheets 21, the slider structure 4 can realize reset movement under the elastic force of the two movable springs, the assembly between the slider structure and the two movable springs is simple and convenient, and the assembly between the slider structure and the two movable springs is applicable to automated assembly production, and the mounting efficiency is improved.
As shown in fig. 5, the conductive bracket 32 includes two vertical plate portions 321 respectively connecting the two movable springs, a middle spacing groove formed between the two vertical plate portions 321 and extending to the top of the conductive bracket 32, and a connecting portion 322 connected to the bottom of the two vertical plate portions 321, in order to reliably and fixedly mount the conductive bracket 32 on the base 1, two mounting grooves are provided on the two mounting bosses 13, two mounting pins 323 respectively fixedly inserted into the two mounting grooves are bent and formed at the bottom edge of the connecting portion 322, and the two mounting pins 323 are in an L-shaped structure. It should be noted that, after the movable spring piece 311 is assembled, a gap is left between the movable spring piece 311 and the conductive bracket, and only the upper end portion of the movable spring piece is fixedly contacted with the vertical plate portion 321, so that a U-shaped current path passing through the two vertical plate portions 321 and the connecting portion 322 is formed between the two movable spring pieces 311, that is, the current is transmitted to the conductive bracket 32 through one movable spring piece and then transmitted to the other movable spring piece along the U-shaped current path on the conductive bracket 32. The advantage of design like this lies in, through at two static conducting strips, link to each other and form a conductive loop between two movable reed and the electrically conductive support, when two movable reed 311 and two static conducting strips 21 contact circular telegrams, make the electric current input from one of them static conducting strip 21, then after the transmission between two movable reed and electrically conductive support 32, export from another static conducting strip 21 again, because the electric current is along U-shaped current path transmission between two movable reed and the electrically conductive support, be favorable to having increased the sectional area that the electric current passes through movable reed and electrically conductive support like this, and reduce the contact temperature rise, passable electric current is big, make the relay product can open and shut off the load of high voltage heavy current, promote the performance of product.
As shown in fig. 1-2, a mounting partition 14 blocking the other end of the mounting chute 11 is disposed on the base 1, the magnetic circuit driving assembly 8 and the slider structure 4 are respectively disposed on two sides of the mounting partition 14, a yoke is mounted in a clamping groove formed on one side of the mounting partition 14, the driving coil 81 and the driving portion 71 of the armature component 7 are separated from each other by the mounting partition 14, the base 1 is sleeved with a housing 9, an insulating baffle 91 blocking between the two mounting bosses 13 for separating the armature component 7 from the conductive bracket 32 is disposed in the housing 9, the armature component 7 and the conductive bracket 32 are separated from each other by the insulating baffle 91 on the housing 9, an electrical gap between the armature component 7 and the conductive bracket 32 is enlarged by the insulating baffle 91, an arc-leaping and creepage phenomena are prevented, and overvoltage performance of the product is improved.
It should be understood that the above examples are only for clarity of illustration and are not intended to limit the embodiments. Other variations and modifications will be apparent to persons skilled in the art in light of the above description. And are neither required nor exhaustive of all embodiments. And obvious variations or modifications can be made without departing from the scope of the invention.

Claims (10)

1. The utility model provides a resistant heavy load's electromagnetic relay, includes base (1), and set up in magnetic circuit drive assembly (8), movable contact structure (3), static contact structure (2) of base (1), and the activity sets up transmission assembly between magnetic circuit drive assembly (8) and movable contact structure (3), its characterized in that: the transmission assembly comprises an armature component (7) which can be arranged on the magnetic circuit driving assembly (8) in a swinging mode and a sliding block structure (4) which can be arranged on the base (1) in a reciprocating mode, the movable contact spring structure (3) comprises a spring component (31) which is matched with the sliding block structure (4) in a linkage mode, the spring component (31) is arranged opposite to the static contact spring structure (2), the armature component (7) is provided with a driving part (71) which extends towards one side of the sliding block structure (4) in an inclined mode and is set in length, and the sliding block structure (4) is connected with the driving part (71) through a limiting structure; the armature component (7) is attracted and swung by the magnetic circuit driving component (8) to push the sliding block structure (4) to move, so that the sliding block structure (4) drives the spring component to be in contact with the static contact piece structure.
2. A large load resistant electromagnetic relay according to claim 1, characterized in that: the base (1) is provided with an installation sliding groove (11) in an extending mode along the length direction of the base, the sliding block structure (4) is movably contained in the installation sliding groove (11), and a guide structure for guiding the sliding block structure (4) to move along the length direction of the base is arranged between the installation sliding groove (11) and the sliding block structure (4).
3. A heavy load tolerant electromagnetic relay according to claim 2, wherein: the guide structure comprises a guide groove (12) extending in the same direction with the installation sliding groove (11) and arranged in the installation sliding groove (11), and a guide projection (41) arranged at the bottom of the sliding block structure (4) and connected to the guide groove (12) in a sliding mode, wherein the guide groove (12) extends out of one end of the installation sliding groove (11) and extends to the static contact piece structure (2).
4. A large load resistant electromagnetic relay according to claim 3, characterized in that: the limiting structure comprises a limiting slot arranged on the sliding block structure, and one end of the driving part is inserted into the limiting slot.
5. A heavy load tolerant electromagnetic relay according to any one of claims 2-4, characterized in that: the magnetic circuit driving assembly (8) comprises a driving coil (81) and a yoke, the armature component (7) is connected to the upper end of the yoke (82) in an L-shaped swing mode, and a spring piece structure is arranged between the armature component and the yoke (82); the driving part (71) is a sloping plate structure formed by reducing the width of one end of the armature component (7) and then extending downwards.
6. The large load resistant electromagnetic relay according to claim 5, characterized in that: the base (1) comprises two mounting bosses (13) which are formed on two sides of the mounting chute (11), the movable contact spring structure (3) comprises a conductive support (32) erected on the two mounting bosses (13), the spring assembly (31) comprises two movable spring pieces (311) which are symmetrically arranged on the conductive support (32), one ends of the movable spring pieces (311) are respectively fixed on the conductive support (32), and the other ends of the movable spring pieces extend to the lower portion of the conductive support (32) and are in linkage arrangement with the sliding block structure (4) through a positioning structure.
7. The heavy load tolerant electromagnetic relay of claim 6, wherein: the positioning structure comprises two positioning hooks (5) arranged on two sides of the front end of the sliding block structure (4) and two hook grooves (51) arranged on the two positioning hooks (5), and the other ends of the two movable reeds are respectively positioned and inserted into the two hook grooves (51).
8. The large load resistant electromagnetic relay according to claim 7, characterized in that: the conductive support (32) comprises two vertical plate parts (321) which are respectively connected with two movable spring pieces, a middle spacing groove which is formed between the two vertical plate parts (321) and extends to the top of the conductive support (32), and a connecting part (322) which is connected to the bottoms of the two vertical plate parts (321), wherein two mounting grooves are formed in the mounting boss (13), two mounting clamping feet (323) which are respectively inserted into the two mounting grooves are bent and formed at the bottom edge of the connecting part (322), and a U-shaped current path which passes through the two vertical plate parts (321) and the connecting part (322) is formed between the movable spring pieces.
9. The large load resistant electromagnetic relay according to claim 8, characterized in that: the static contact piece structure (2) comprises two static conductive pieces (21) which are arranged on the base (1) at intervals corresponding to the two movable spring pieces, two pairs of movable contacts and static contacts are arranged on the two static conductive pieces (21) and the two movable spring pieces in an opposite mode respectively, and guide pin ends (22) penetrating through the bottom of the base are formed at the bottoms of the two static conductive pieces (21) in a bending mode.
10. A large load resistant electromagnetic relay according to any one of claims 6-9, characterized in that: the base (1) is provided with an installation partition plate (14) blocking the other end of the installation chute (11), and the magnetic circuit driving assembly (8) and the slider structure (4) are respectively arranged on two sides of the installation partition plate (14); the magnetic circuit breaker further comprises a housing (9) sleeved on the base (1), wherein an insulating baffle (91) which is inserted between the two mounting bosses (13) and used for separating the armature component (7) from the conductive support (32) is arranged in the housing (9).
CN202222908996.9U 2022-10-31 2022-10-31 Electromagnetic relay resistant to large load Active CN218385045U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202222908996.9U CN218385045U (en) 2022-10-31 2022-10-31 Electromagnetic relay resistant to large load

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202222908996.9U CN218385045U (en) 2022-10-31 2022-10-31 Electromagnetic relay resistant to large load

Publications (1)

Publication Number Publication Date
CN218385045U true CN218385045U (en) 2023-01-24

Family

ID=84936940

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202222908996.9U Active CN218385045U (en) 2022-10-31 2022-10-31 Electromagnetic relay resistant to large load

Country Status (1)

Country Link
CN (1) CN218385045U (en)

Similar Documents

Publication Publication Date Title
US20230368997A1 (en) Operating mechanism of circuit breaker and assembling breaker
CN218385045U (en) Electromagnetic relay resistant to large load
WO2024078424A1 (en) Relay
CN216288255U (en) Operating mechanism of circuit breaker and circuit breaker
CN212257298U (en) Multi-contact arc-extinguishing relay
CN115642057A (en) Electromagnetic relay resistant to large load
CN216928406U (en) Relay convenient to equipment
CN209981115U (en) Small-size high-voltage-resistance electromagnetic relay
CN215869245U (en) Shunt release
EP3764385B1 (en) Magnetic latching relay
CN108666164B (en) Rotary electrical switch contact system and rotary electrical switch
US20230178318A1 (en) High-voltage dc relay
CN217822583U (en) Electromagnetic relay for preventing contact adhesion
CN213277961U (en) Relay
CN218385015U (en) Small electromagnetic relay with high contact travel
CN219958802U (en) Contact mechanism
CN1218346C (en) Miniaturized great-power electromagnetic relay having yoke with concessive notch
CN1237565C (en) High-isolated vertical miniaturized variable-section high-power electromagnetic relay
CN219040365U (en) Contact structure and relay
CN220253063U (en) Switching device suitable for horizontal installation
CN220963150U (en) Power supply control magnetic latching relay
WO2024027774A1 (en) Relay
CN219958885U (en) Moving spring assembly of relay, contact system and electromagnetic relay
CN218513383U (en) All-in-one electromagnetic relay
CN220796594U (en) Bridging type magnetic latching relay

Legal Events

Date Code Title Description
GR01 Patent grant
GR01 Patent grant