Low-damping large-current toggle switch

By employing a rotatable toggle piece and silver contact design in the toggle switch, the problems of laborious operation and insufficient current carrying capacity of traditional toggle switches are solved, achieving the effect of easy operation and high current switching.

CN120854201AInactive Publication Date: 2025-10-28SHENZHEN FENGHUA RISHENG TECH CO LTD
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Patent Information

Application Number
CN202510952273.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-10
Publication Date
2025-10-28
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Traditional toggle switches have high damping, are difficult to operate, and have limited contact area, making them unable to carry large currents.

Method used

It employs a rotatable toggle and silver contact design, combined with rolling friction and high current-resistant materials, to reduce operating resistance and improve current carrying capacity.

Benefits of technology

It achieves a convenient operating experience and high current switching, improving the applicability and reliability of the toggle switch.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a low-damping large-current toggle switch, and belongs to the technical field of toggle switches, the low-damping large-current toggle switch comprises an insulating shell, a mounting groove is formed in one side of the insulating shell, a circuit communication assembly is arranged in the mounting groove, the circuit communication assembly comprises a first electrode plate, a second electrode plate and a toggle plate, the first electrode plate and the second electrode plate are arranged at the bottom of the mounting groove, and the toggle plate is arranged in the mounting groove. A shifting piece is rotatably arranged between the first electrode plate and the second electrode plate, and the top ends of the first electrode plate and the second electrode plate can be in contact with the shifting piece; a shifting assembly is arranged at the top of the insulating shell and comprises a shifting handle and a gear piece, the shifting handle is arranged at the top of the insulating shell in a sliding mode, the gear piece is rotatably arranged at the bottom of the shifting handle, and the bottom of the gear piece makes contact with the shifting piece; through the arrangement of the rotatable gear piece, in the switching process, friction force is reduced through rolling contact, and a user can smoothly move the toggle handle.
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Description

Technical Field

[0001] This invention belongs to the field of toggle switch technology, and more specifically, relates to a low-damping, high-current toggle switch. Background Technology

[0002] With the continuous advancement of technology, electronic devices are developing towards miniaturization, and toggle switches, as common control components in circuits, are also trending towards miniaturization, facing increasingly higher requirements.

[0003] Traditional toggle switches have high damping, which usually generates significant resistance during operation. This means that users need to overcome considerable resistance when manually toggling the switch to switch circuits, making operation laborious and inconvenient. On the other hand, as the functions of electronic devices continue to expand, the requirements for current carrying capacity are also increasing. However, existing toggle switches are generally small in size, and their internal structure usually relies on only one contact piece to achieve circuit switching. Due to the limited contact area of ​​the contact piece, it cannot carry a large current. At the same time, the performance of the selected conductive metal material itself further limits the upper limit of the switch's current carrying capacity. Summary of the Invention

[0004] To address the aforementioned technical problems, this invention provides a low-damping, high-current toggle switch. This solves the problems in the prior art where traditional toggle switches have high damping, requiring significant resistance to overcome during operation, making operation laborious, and the limited contact area of ​​the contact pieces, which prevents them from carrying large currents.

[0005] The purpose and effect of the low-damping high-current toggle switch of the present invention are achieved by the following specific technical means:

[0006] A low-damping, high-current toggle switch includes an insulating housing with a mounting groove on one side. A circuit connection assembly is disposed within the mounting groove, comprising a first electrode plate, a second electrode plate, and a toggle plate. The first and second electrode plates are disposed at the bottom of the mounting groove, and the toggle plate is rotatably disposed between the first and second electrode plates, with the tops of both the first and second electrode plates contacting the toggle plate. An aggle assembly is disposed at the top of the insulating housing, comprising an aggle handle and a stop element. The aggle handle is slidably disposed at the top of the insulating housing, and the stop element is rotatably disposed at the bottom of the aggle handle, with the bottom of the stop element contacting the toggle plate. A cover plate is detachably disposed at the opening of the mounting groove.

[0007] In a preferred embodiment, the circuit connection component further includes two sets of silver contacts. A contact electrode is provided on the side of the second electrode plate near the toggle plate. The silver contacts are provided on one end of the toggle plate and the top of the contact electrode plate, and the two sets of silver contacts can contact each other.

[0008] In a preferred embodiment, a rotating rod is provided on one side of the mounting groove, and a rotating column is provided on one end of the actuating plate. A through rotating hole is opened at one end of the rotating column, and the rotating column is rotatably sleeved on the rotating rod through the rotating hole. A connecting electrode plate is also provided on one side of the mounting groove. A first connecting groove is opened on one side of the connecting electrode plate corresponding to the rotating column. The first connecting groove contacts the rotating column. A second connecting groove is opened on one side of the connecting electrode plate, and the top end of the first electrode plate is engaged in the second connecting groove.

[0009] In a preferred embodiment, two sets of fixing grooves communicating with the mounting groove are further provided on one side of the insulating shell. An insulating sealing sleeve is provided in each of the two sets of fixing grooves. The bottom ends of the first electrode plate and the second electrode plate pass through the two sets of insulating sealing sleeves and are respectively installed in the two sets of fixing grooves. Mounting clips are provided on the outer side of the first electrode plate and the second electrode plate. The two sets of mounting clips are respectively in contact with the top of the two sets of insulating sealing sleeves. Fixing members are provided on the top of the two sets of fixing grooves and one side of the cover plate. The bottom of the fixing members are respectively in contact with the two sets of mounting clips.

[0010] In a preferred embodiment, the actuating component further includes an I-shaped sliding member. A first limiting rod is provided on the side of the mounting groove adjacent to the cover plate. Two sets of sliding grooves are formed between the two sets of first limiting rods and the mounting groove. The two sides of the I-shaped sliding member are slidably connected to the two sets of sliding grooves respectively.

[0011] In a preferred embodiment, the bottom of the I-shaped sliding member is provided with a column, and the bottom end of the column is provided with a rectangular lifting groove. A rectangular lifting rod is slidably inserted in the rectangular lifting groove. The bottom end of the rectangular lifting rod is provided with a rotating seat. The rotating seat is rotatably connected to the stop member through a rotating shaft pin. The side of the mounting groove adjacent to the cover plate is provided with a limit track corresponding to the rotating shaft pin. The two ends of the rotating shaft pin are slidably connected to two sets of the limit tracks respectively.

[0012] In a preferred embodiment, a spring is sleeved on the outer side of the column, the top end of the spring contacts the I-shaped sliding member, and the bottom end is connected to the top of the rotating seat; a mounting plate is provided on one side of the mounting groove, a mounting protrusion is provided on the top of the mounting plate, a disconnecting spring is sleeved on the mounting protrusion, a groove is opened on the periphery of the mounting protrusion, the bottom end of the disconnecting spring is connected to the groove, and the top end contacts the toggle piece.

[0013] In a preferred embodiment, the top of the I-shaped sliding member is provided with a connecting post, and the top of the insulating housing is provided with a sliding groove corresponding to the connecting post. The top of the connecting post passes through the sliding groove and has a toggle handle. The top of the toggle handle is provided with anti-slip texture.

[0014] In a preferred embodiment, a limit post is provided on one side of the mounting groove corresponding to the toggle piece and the stop piece, and a mounting hole is provided on the top of the insulating housing. A power-on indicator light is provided in the mounting hole, and the power-on indicator light is electrically connected to the circuit connection component.

[0015] Compared with the prior art, the present invention has the following beneficial effects:

[0016] 1. By setting up the toggle assembly, when using this toggle switch, a sliding toggle handle is set on the top of the insulating housing, and a stop component is rotatably connected to its bottom. The bottom of the stop component contacts the toggle piece. During the switching process, the rolling contact reduces the friction, allowing the user to move the toggle handle smoothly. This solves the problem of the traditional toggle switch relying on sliding friction to achieve the position switching operation, which is laborious. The traditional sliding friction between the stop component and the toggle block is changed to rolling friction, which reduces the operating resistance when toggling and makes the switching process of the switch more convenient.

[0017] 2. By setting up the circuit connection component, when using this toggle switch, a high-current-resistant silver contact is installed at the contact point. A contact electrode is set on one side of the second electrode plate in the circuit connection component, and silver contacts are set at the contact points between the toggle plate and the contact electrode. Silver has excellent conductivity and corrosion resistance, which can effectively reduce contact resistance and ensure the stable passage of large current. This solves the problem that traditional toggle switches cannot carry large currents due to small contact area of ​​the contact plate and limited performance of conductive materials, thus improving the versatility of the toggle switch.

[0018] 3. By featuring a removable cover, the internal components of the toggle switch can be easily removed for inspection and maintenance when necessary. The limit post and two sets of limit rails ensure stable switching of the toggle switch, preventing short circuits and other malfunctions caused by excessive component displacement during operation. The on / off indicator light, electrically connected to the circuit connection component, displays the switch's on / off status in real time, preventing accidental operation. Two sets of insulating sealing sleeves installed within the mounting groove prevent external environmental influences on the switch's internal components. Attached Figure Description

[0019] Figure 1 This is a schematic diagram of the assembled structure of a low-damping, high-current toggle switch according to the present invention.

[0020] Figure 2 This is a schematic diagram of the structure of a low-damping high-current toggle switch after it has been unfolded according to the present invention.

[0021] Figure 3 This is a left view of a low-damping, high-current toggle switch according to the present invention.

[0022] Figure 4 yes Figure 3 Sectional view of AA;

[0023] Figure 5 This is a schematic diagram of the assembled circuit connection components in a low-damping high-current toggle switch according to the present invention.

[0024] Figure 6 This is a schematic diagram of the circuit connection component after being disassembled in a low-damping high-current toggle switch of the present invention;

[0025] Figure 7 This is a schematic diagram of the assembled toggle assembly in a low-damping, high-current toggle switch according to the present invention.

[0026] Figure 8 yes Figure 7 A schematic diagram of the disassembled structure.

[0027] In the figure, the corresponding relationship between the component names and the drawing numbers is as follows:

[0028] 101. Insulating housing; 102. Mounting groove; 103. Cover plate; 104. Fixing groove; 105. Insulating sealing sleeve; 106. Fixing component; 107. Sliding through groove; 108. Limiting post; 109. Mounting hole; 110. On indicator light; 201. First electrode plate; 202. Second electrode plate; 203. Actuating piece; 204. Silver contact; 205. Contact electrode plate; 206. Rotating rod; 207. Rotating column; 208. Rotating hole; 209. Connecting electrode plate; 210. First connecting groove ; 211. Second connecting groove; 212. Mounting clip; 301. Toggle handle; 302. Gear positioner; 303. I-shaped sliding component; 304. First limit rod; 305. Sliding groove; 306. Column; 307. Rectangular lifting groove; 308. Rectangular lifting rod; 309. Rotating seat; 310. Rotating shaft pin; 311. Limiting track; 312. Spring; 313. Mounting plate; 314. Mounting protrusion; 315. Contact spring; 316. Groove; 317. Connecting column; 318. Anti-slip texture. Detailed Implementation

[0029] The embodiments of the present invention will be described in further detail below with reference to the accompanying drawings and examples. The following examples are used to illustrate the technical solutions of the present invention, but should not be used to limit the scope of protection of the present invention.

[0030] Example:

[0031] As attached Figures 1 to 8 As shown:

[0032] This invention provides a low-damping, high-current toggle switch, comprising an insulating housing 101, a mounting groove 102 on one side of the insulating housing 101, and a circuit connection assembly disposed within the mounting groove 102. The circuit connection assembly includes a first electrode plate 201, a second electrode plate 202, and a toggle piece 203. The first electrode plate 201 and the second electrode plate 202 are respectively mounted at the bottom of the mounting groove 102. The toggle piece 203 is rotatably disposed between the first electrode plate 201 and the second electrode plate 202. One end of the toggle piece 203 is in constant contact with the first electrode plate 201, and when the toggle piece 203 rotates, its other end contacts or separates from the top of the second electrode plate 202, thereby connecting or disconnecting the circuit. Unlike traditional toggle switches, a rotatable toggle piece 203 is used instead of a simple sliding structure, thereby reducing the operating force required for toggle operation. The toggle assembly is disposed on the top of the insulating housing 101. The device includes a toggle handle 301 and a stop element 302. The toggle handle 301 can move laterally on the top of the insulating housing 101, while the stop element 302 is installed below the toggle handle 301 and can rotate. The bottom of the stop element 302 contacts the toggle plate 203. Unlike traditional toggle switches, the stop element 302 and the toggle plate 203 use a rolling contact method instead of simple sliding friction. During the toggle switching process, the stop element 302 rolls on the toggle plate 203 instead of sliding against it. In this way, the force required for operation is reduced, and the user can move the toggle handle 301 more smoothly to complete the switch switching. This solves the problem of the traditional toggle switch relying on sliding friction to achieve the position switching operation, and changes the traditional sliding friction between the stop element 302 and the toggle plate 203 to rolling friction, reducing the operating resistance during toggle and making the switch switching process easier and smoother.

[0033] A removable cover plate 103 is provided at the opening of the mounting slot 102, which allows the cover plate 103 to be easily removed when the toggle switch needs to be inspected and maintained. This facilitates the maintenance and handling of various parts inside the mounting slot 102, improving the accessibility of the internal parts of the switch. When encountering switch malfunctions or needing regular maintenance, users can quickly open the cover plate 103 to quickly inspect and handle the internal components, making maintenance operations more convenient and faster, and helping to extend the service life of the toggle switch.

[0034] Please see as follows Figure 4 , Figure 5 and Figure 6As shown, the circuit connection component also includes two sets of silver contacts 204. A contact electrode 205 is provided on the side of the second electrode 202 near the toggle piece 203, and the two sets of silver contacts 204 are correspondingly provided on one end of the toggle piece 203 and the top of the contact electrode 205. The two sets of silver contacts 204 can contact each other when the toggle piece 203 rotates, forming a circuit connection. By providing silver contacts 204 at the contact points between the toggle piece 203 and the contact electrode 205, silver has excellent conductivity and corrosion resistance. Compared with other conductive materials commonly used in traditional toggle switches, silver contacts can reduce contact resistance and ensure a stable electrical connection even when a large current passes through. This solves the problem that traditional toggle switches cannot carry large currents due to small contact area and limited conductive material performance, thus improving the applicability of the toggle switch.

[0035] Please see as follows Figure 5 and Figure 6 As shown, a rotating rod 206 is provided on one side of the mounting groove 102, and a rotating column 207 is provided at one end of the actuating piece 203. A through rotating hole 208 is opened at one end of the rotating column 207, and the rotating column 207 is rotatably sleeved on the rotating rod 206 through the rotating hole 208. A connecting electrode piece 209 is also provided on one side of the mounting groove 102. A first connecting groove 210 is opened on one side of the connecting electrode piece 209 corresponding to the rotating column 207. The first connecting groove 210 can contact the rotating column 207. In addition, a second connecting groove 211 is opened on the other side of the connecting electrode piece 209. The top end of the first electrode piece 201 is locked in this second connecting groove 211. This allows the actuating piece 203 to rotate under the support of the rotating rod 206. During the rotation, the rotating column 207 will also roll in the first connecting groove 210 to ensure good electrical contact. At the same time, the first electrode piece 201 achieves a reliable electrical connection with the connecting electrode piece 209 by being locked in the second connecting groove 211.

[0036] Please see as follows Figure 6As shown, two sets of fixing slots 104 communicating with the mounting slots 102 are also provided on one side of the insulating housing 101. Insulating sealing sleeves 105 are provided inside both sets of fixing slots 104. The bottom ends of the first electrode plate 201 and the second electrode plate 202 pass through these two sets of insulating sealing sleeves 105 and are inserted into the two sets of fixing slots 104, improving the stability of the installation of the first electrode plate 201 and the second electrode plate 202, and preventing the influence of the external environment on the inside of the toggle switch; the first electrode plate 201 and the second electrode plate 202... The outer side of the electrode plate 202 is provided with mounting clips 212. These two sets of mounting clips 212 contact the top of the two sets of insulating sealing sleeves 105 respectively. The top of the two sets of fixing grooves 104 and one side of the cover plate 103 are provided with fixing parts 106. The bottom of these fixing parts 106 can contact the two sets of mounting clips 212, which further enhances the installation stability of the first electrode plate 201 and the second electrode plate 202, ensures that they maintain a good position during use, and improves the overall reliability of the toggle switch.

[0037] Please see as follows Figure 2 , Figure 7 and Figure 8 As shown, the toggle assembly also includes an I-shaped slider 303. A first limiting rod 304 is provided on the side of the mounting groove 102 adjacent to the cover plate 103. Two sets of sliding grooves 305 are formed between the two sets of first limiting rods 304 and the mounting groove 102, respectively. The two sides of the I-shaped slider 303 are slidably connected to the two sets of sliding grooves 305, so that the I-shaped slider 303 can slide back and forth along the sliding grooves 305 under the constraint of the first limiting rods 304. This can not only guide the movement of the toggle handle 301, but also limit its range of motion to prevent movement beyond the expected range. At the same time, the sliding of the I-shaped slider 303 can also drive the rotation of the gear position member 302 to realize the switching operation of the toggle switch.

[0038] Please see as follows Figure 7 and Figure 8As shown, the bottom of the I-shaped sliding member 303 is provided with a column 306. The bottom end of the column 306 is provided with a rectangular lifting groove 307. A rectangular lifting rod 308 is slidably inserted in the rectangular lifting groove 307. The bottom end of the rectangular lifting rod 308 is provided with a rotating seat 309. The rotating seat 309 and the gear position member 302 are rotatably connected by a rotating shaft pin 310. During the switching process of the toggle switch, the rotatability of the gear position member 302 can reduce friction and make the switching operation smoother. At the same time, on the side of the mounting groove 102 adjacent to the cover plate 103, there are limit rails 311 corresponding to the rotating shaft pin 310. The two ends of the rotating shaft pin 310 are slidably connected to these two sets of limit rails 311 respectively, so that the rotating seat 309 and the gear position member 302 move on the top of the toggle piece 203 and the connecting electrode piece 209, which also ensures the stability of the toggle switch during the switching process and prevents short circuits and other faults caused by excessive displacement of components.

[0039] Please see as follows Figure 8 As shown, a spring 312 is fitted on the outside of the column 306. The top end of the spring 312 contacts the I-shaped sliding member 303, while the bottom end is connected to the top of the rotating seat 309. The spring 312 applies pressure to the rotating seat 309, so that the bottom of the stop member 302 is constantly in contact with the toggle plate 203 or the connecting electrode plate 209. A mounting plate 313 is provided on one side of the mounting groove 102. A mounting protrusion 314 is provided on the top of the mounting plate 313. A contact-breaking spring 315 is fitted on this mounting protrusion 314. Meanwhile, a groove 316 is also provided on the periphery of the mounting protrusion 314. The bottom end of the contact-breaking spring 315 is connected to the groove 316, while the top end is in contact with the toggle piece 203. When the toggle handle 301 moves to the connected position at one end, the gear position 302 is farther away from the rotating rod 206 than the contact-breaking spring 315. Based on the lever principle, one end of the toggle piece 203 rotates under the action of the spring 312, so that the two sets of silver contacts 204 contact each other to connect the circuit. When the toggle handle 301 moves to the disconnected position at the other end, the gear position 302 moves from the top of the toggle piece 203 to the top of the connecting electrode piece 209, and one end of the toggle piece 203 rotates under the action of the contact-breaking spring 315, so that the two sets of silver contacts 204 separate and disconnect the circuit.

[0040] Please see as follows Figure 2 and Figure 8As shown, the top of the I-shaped slider 303 is provided with a connecting post 317, and the top of the insulating housing 101 is provided with a sliding groove 107 corresponding to the position of the connecting post 317. The top of the connecting post 317 passes through this sliding groove 107 and is connected to the toggle handle 301. The top of the toggle handle 301 is also provided with anti-slip texture 318. This allows the toggle handle 301 to be connected to the I-shaped slider 303 through the connecting post 317 and to slide within the sliding groove 107 of the insulating housing 101. The user can move the I-shaped slider 303 by toggle the handle 301, thereby realizing the switching operation. At the same time, the anti-slip texture 318 on the top of the toggle handle 301 can improve the friction when the fingers grip, making the toggle process more stable and smooth.

[0041] Please see as follows Figure 2 and Figure 8 As shown, a limit post 108 is provided on one side of the mounting groove 102 corresponding to the position of the toggle piece 203 and the stop piece 302, which restricts the movement of the toggle piece 203 and the stop piece 302 and prevents them from exceeding the expected range. At the same time, a mounting hole 109 is provided on the top of the insulating housing 101, and an on / off indicator light 110 is installed in this mounting hole 109. This on / off indicator light 110 is electrically connected to the circuit connection component and can display the on / off status of the switch in real time, realizing the status indication function of the toggle switch. The on / off indicator light 110 can provide real-time feedback on the on / off status of the switch, avoiding accidental operation by the user without their knowledge, and providing the user with a safer and more reliable user experience.

[0042] The above-described embodiments are only used to illustrate the technical solutions of the present invention, and are not intended to limit it. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention, and should all be included within the protection scope of the present invention.

Claims

1. A low-damping, high-current toggle switch, characterized in that: The device includes an insulating housing (101), with a mounting groove (102) on one side. A circuit connection assembly is disposed within the mounting groove (102), comprising a first electrode plate (201), a second electrode plate (202), and a toggle plate (203). The first electrode plate (201) and the second electrode plate (202) are disposed at the bottom of the mounting groove (102). The toggle plate (203) is rotatably disposed between the first electrode plate (201) and the second electrode plate (202). Both the top of the first electrode (202) and the second electrode plate (202) can contact the actuating plate (203); the top of the insulating housing (101) is provided with an actuating assembly, which includes an actuating handle (301) and a stop member (302). The top of the insulating housing (101) is slidably provided with the actuating handle (301), and the bottom of the actuating handle (301) is rotatably provided with the stop member (302). The bottom of the stop member (302) contacts the actuating plate (203); a cover plate (103) is detachably provided at the opening of the mounting groove (102).

2. The low-damping, high-current toggle switch according to claim 1, characterized in that: The circuit connection component also includes two sets of silver contacts (204). The second electrode plate (202) is provided with a contact electrode plate (205) on the side near the toggle plate (203). One end of the toggle plate (203) and the top of the contact electrode plate (205) are respectively provided with the silver contacts (204). The two sets of silver contacts (204) can contact each other.

3. A low-damping, high-current toggle switch according to claim 2, characterized in that: A rotating rod (206) is provided on one side of the mounting groove (102), and a rotating column (207) is provided at one end of the actuating piece (203). A through rotating hole (208) is opened at one end of the rotating column (207), and the rotating column (207) is rotatably sleeved on the rotating rod (206) through the rotating hole (208). A connecting electrode piece (209) is also provided on one side of the mounting groove (102). A first connecting groove (210) is opened on one side of the connecting electrode piece (209) corresponding to the rotating column (207). The first connecting groove (210) is in contact with the rotating column (207). A second connecting groove (211) is opened on one side of the connecting electrode piece (209), and the top end of the first electrode piece (201) is stuck in the second connecting groove (211).

4. The low-damping, high-current toggle switch according to claim 1, characterized in that: Two sets of fixing grooves (104) communicating with the mounting groove (102) are also provided on one side of the insulating shell (101). An insulating sealing sleeve (105) is provided in each of the two sets of fixing grooves (104). The bottom ends of the first electrode plate (201) and the second electrode plate (202) pass through the two sets of insulating sealing sleeves (105) and are installed in the two sets of fixing grooves (104). The outer sides of the first electrode plate (201) and the second electrode plate (202) are provided with mounting clips (212). The two sets of mounting clips (212) are respectively in contact with the top of the two sets of insulating sealing sleeves (105). The top of the two sets of fixing grooves (104) and one side of the cover plate (103) are provided with fixing members (106). The bottom of the fixing members (106) is in contact with the two sets of mounting clips (212).

5. A low-damping, high-current toggle switch according to claim 1, characterized in that: The actuating assembly also includes an I-shaped sliding member (303). The mounting groove (102) is provided with a first limiting rod (304) on the side adjacent to the cover plate (103). Two sets of sliding grooves (305) are formed between the two sets of first limiting rods (304) and the mounting groove (102). The two sides of the I-shaped sliding member (303) are slidably connected to the two sets of sliding grooves (305).

6. A low-damping, high-current toggle switch according to claim 5, characterized in that: The bottom of the I-shaped sliding member (303) is provided with a column (306), and a rectangular lifting groove (307) is opened at the bottom end of the column (306). A rectangular lifting rod (308) is slidably inserted in the rectangular lifting groove (307). A rotating seat (309) is provided at the bottom end of the rectangular lifting rod (308). The rotating seat (309) and the stop member (302) are rotatably connected by a rotating shaft pin (310). On the side of the mounting groove (102) adjacent to the cover plate (103), a limiting rail (311) is provided corresponding to the rotating shaft pin (310). The two ends of the rotating shaft pin (310) are slidably connected to two sets of the limiting rails (311).

7. A low-damping, high-current toggle switch according to claim 6, characterized in that: A spring (312) is sleeved on the outside of the column (306). The top end of the spring (312) contacts the I-shaped sliding member (303), and the bottom end is connected to the top of the rotating seat (309). A mounting plate (313) is provided on one side of the mounting groove (102). A mounting protrusion (314) is provided on the top of the mounting plate (313). A contact-breaking spring (315) is sleeved on the mounting protrusion (314). A groove (316) is opened on the periphery of the mounting protrusion (314). The bottom end of the contact-breaking spring (315) is connected to the groove (316), and the top end contacts the toggle piece (203).

8. A low-damping, high-current toggle switch according to claim 5, characterized in that: The top of the I-shaped sliding member (303) is provided with a connecting post (317), and the top of the insulating shell (101) is provided with a sliding groove (107) corresponding to the connecting post (317). The top of the connecting post (317) passes through the sliding groove (107) and has a toggle handle (301). The top of the toggle handle (301) is provided with anti-slip texture (318).

9. A low-damping, high-current toggle switch according to claim 1, characterized in that: A limit post (108) is provided on one side of the mounting groove (102) corresponding to the toggle piece (203) and the stop piece (302). A mounting hole (109) is provided on the top of the insulating housing (101). A power-on indicator light (110) is provided in the mounting hole (109). The power-on indicator light (110) is electrically connected to the circuit connection component.