Magnetic induction triggered microswitch

By using a microswitch triggered by magnetic induction, the problem of fixed mouse button travel is solved, achieving a combination of contactless triggering and mechanical feedback, extending service life and improving the user experience.

CN224124121UActive Publication Date: 2026-04-14DONGGUAN HUISHENG ELECTRONICS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
DONGGUAN HUISHENG ELECTRONICS CO LTD
Filing Date
2025-04-18
Publication Date
2026-04-14

AI Technical Summary

Technical Problem

The fixed travel distance of existing mouse buttons cannot adapt to the usage habits of special users, making them inconvenient to operate in video games. Furthermore, the mechanical contact switches have a limited lifespan and are prone to inconvenience due to mechanical or electrical aging.

Method used

The micro switch, which is triggered by magnetic induction, includes an insulated body, a triggering component and a magnetic sensor. It achieves contactless triggering by using the swing of a magnet and a rocker, and provides a personalized operating experience and mechanical trigger feedback by combining a spring structure.

Benefits of technology

It extends the lifespan of the switch, improves stability and sensitivity, enables precise adjustment of the trigger stroke, and enhances the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a microswitch triggered by magnetic induction in the technical field of switches, which comprises an insulation body and a trigger assembly, the trigger assembly comprises a key, a rebound structure and a magnetic sensor arranged below the key, and a magnet is arranged in the key. And a non-contact magnetic induction triggering mechanism is adopted, so that the service life is longer and the stability is higher. The problems of abrasion and electrical aging caused by direct contact of mechanical contacts are avoided, and the durability of the switch is remarkably improved. In addition, the magnetic induction trigger mechanism enables the trigger stroke of the switch to be accurately adjusted, and more personalized operation experience is provided for different users. And secondly, a springback structure with an impact effect is reserved on the basis of a magnetic induction triggering mechanism, so that the microswitch not only can realize a non-contact triggering effect, but also retains triggering feedback of an original mechanical contact switch, and the use experience of a user is greatly improved.
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Description

Technical Field

[0001] This utility model relates to the field of switch technology, specifically to a micro switch triggered by magnetic induction. Background Technology

[0002] The most common input devices for current computer equipment are the keyboard and mouse. A mouse has at least two buttons, left and right, and a scroll wheel between them. Currently, many video games are very popular, attracting widespread attention and enjoyment. Skilled gamers often stream their gameplay online, garnering significant popularity. Some players, due to their superior control skills or game strategies, choose to pursue gaming as a profession, becoming esports players. Video games have evolved into a competitive sport, with the mouse often being pressed hundreds of times during a single game. However, current mouse buttons have fixed travel distances and cannot adapt to the usage habits of specific users, hindering the completion of more precise control tasks in video games and causing inconvenience.

[0003] Traditional mice primarily use mechanical contact switches. In practical use, these switches rely mainly on direct contact between contacts to trigger the switch. However, due to mechanical or electrical aging during use, the lifespan of these switches is relatively limited. Conventional improvements mainly focus on optimizing the alloy materials of the contacts and the structural layout of the springs, but these solutions are costly and present challenges in subsequent design and manufacturing. Therefore, this invention proposes a magnetically triggered microswitch. Summary of the Invention

[0004] This invention provides a magnetically triggered micro switch to solve the problems mentioned in the background section.

[0005] The objective of this utility model is achieved through the following means:

[0006] A magnetically triggered micro switch includes an insulating body and a triggering assembly. The triggering assembly includes a button, a spring-loaded structure, and a magnetic sensor disposed below the button. A magnet is disposed inside the button. The spring-loaded structure includes a bracket and a rocker supported at the bottom of the button. The bracket includes a first contact portion, a second contact portion, a first fulcrum, and a second fulcrum. One end of the rocker is connected to the first fulcrum, and the other end can swing along the first fulcrum, so that the end of the rocker away from the first fulcrum can contact the first contact portion or the second contact portion. A spring piece for connecting with the second fulcrum is disposed in the middle of the rocker.

[0007] Furthermore, a positioning cylinder is provided at the bottom of the button, and the magnet is fitted inside the positioning cylinder.

[0008] Furthermore, the rocker is provided with a first slot and a second slot at an interval in the middle, the spring is integrally bent at one end of the first slot, and the positioning cylinder passes through the second slot.

[0009] Furthermore, one end of the rocker is provided with a contact point for contacting the first contact portion or the second contact portion.

[0010] Furthermore, the first fulcrum and the second fulcrum are respectively provided with V-shaped grooves for engaging with the rocker and the spring piece.

[0011] Furthermore, the spring piece engages with the V-shaped groove via a U-shaped groove.

[0012] Furthermore, the spring sheet has an arc-shaped structure.

[0013] Furthermore, the bracket is composed of a first terminal and a second terminal, the first contact portion is disposed at one end of the first terminal, and the second contact portion, the first fulcrum and the second fulcrum are sequentially formed at the upper end of the second terminal, and the rocker is made of conductive material.

[0014] Furthermore, both the first and second terminals are electrically connected to the outside via a circuit board.

[0015] Compared to traditional mechanical contact switches, this invention employs a contactless magnetic induction triggering mechanism, resulting in a longer service life and higher stability. It avoids the wear and electrical aging problems caused by direct mechanical contact, significantly improving the switch's durability. Furthermore, the magnetic induction triggering mechanism allows for precise adjustment of the trigger stroke, providing a more personalized operating experience for different users. Secondly, this invention retains a spring-loaded structure with an impact effect on the magnetic induction triggering mechanism, enabling the micro switch to achieve both contactless triggering and the trigger feedback of the original mechanical contact switch, greatly enhancing the user experience. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the structure of a magnetically triggered micro switch according to the present invention;

[0017] Figure 2 This is a first schematic diagram of the use of a magnetically triggered micro switch according to the present invention;

[0018] Figure 3 This is a second schematic diagram of the use of a magnetically triggered micro switch according to the present invention;

[0019] Figure 4 This is a schematic diagram of the structure of the rocker arm in this utility model;

[0020] The reference numerals in the figure are as follows: 1-Insulating body, 2-Magnetic sensor, 3-Button, 4-Magnet, 5-Rocker, 6-First contact part, 7-Second contact part, 8-First fulcrum, 9-Second fulcrum, 10-Spring piece, 11-Contact point, 12-Positioning cylinder, 13-PCB board, 14-First slot, 15-Second slot. Detailed Implementation

[0021] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments.

[0022] In this embodiment, refer to Figure 1 - Figure 4 The present invention relates to a magnetically triggered micro switch, comprising an insulating body 1 and a triggering assembly. The triggering assembly includes a button 3, a spring-loaded structure, and a magnetic sensor 2 disposed below the button 3. A magnet 4 is disposed inside the button 3. The spring-loaded structure includes a bracket and a rocker 5 supported at the bottom of the button 3. The bracket includes a first contact portion 6, a second contact portion 7, a first fulcrum 8, and a second fulcrum 9. One end of the rocker 5 is connected to the first fulcrum 8, and the other end can swing along the first fulcrum 8, so that the end of the rocker 5 away from the first fulcrum 8 can contact the first contact portion 6 or the second contact portion 7. A spring piece 10 for connecting with the second fulcrum 9 is disposed in the middle of the rocker 5.

[0023] Furthermore, a positioning cylinder 12 is provided at the bottom of the button 3, and the magnet 4 is fitted inside the positioning cylinder 12. The positioning cylinder 12 is provided with a receiving groove for fitting and installing the magnet 4. The fitting installation method improves the assembly and production efficiency of the switch.

[0024] The outer peripheral surface of the button 3 is provided with a guide portion, and the insulating body 1 is provided with a guide groove that matches the guide portion, which is used to guide the button 3 and ensure the stability of the button 3 during the pressing process.

[0025] Furthermore, the rocker arm 5 is provided with a first slot 14 and a second slot 15 spaced apart in the middle. The spring piece 10 is integrally bent at one end of the first slot 14, and the other end of the spring piece 10 is connected to the second fulcrum 9. When the rocker arm 5 is pressed by the button 3, the elastic deformation of the spring piece 10 allows the rocker arm 5 to swing along the reset point 8, thereby achieving the trigger feedback effect of the original mechanical contact switch. The positioning cylinder 12 passes through the second slot 15, and a gap is provided between the outer circumferential surface of the positioning cylinder 12 and the inner wall of the second slot 15 to ensure that the rocker arm 5 is not interfered with by the positioning cylinder 12 during swinging, thus ensuring the flexibility and stability of the rocker arm 5's swing. The provision of the first slot 14 and the second slot 15 not only provides space for the installation of the spring piece 10, but also provides a certain stroke range for the swing of the rocker arm 5, allowing the rocker arm 5 to accurately contact the first contact part 6 or the second contact part 7 to realize the closing or opening of the switch.

[0026] Furthermore, one end of the rocker 5 is provided with a contact point 11 for contacting the first contact part 6 or the second contact part 7. The contact method of the contact point 11 can significantly enhance the trigger feedback effect when the button 3 is pressed.

[0027] Furthermore, the first fulcrum 8 and the second fulcrum 9 are respectively provided with V-shaped grooves for engaging with the rocker arm 5 and the spring contact 10. The spring contact 10 engages with the V-shaped grooves via U-shaped grooves. This snap-fit ​​installation method facilitates the quick installation and removal of the rocker arm 5 and the spring contact 10, improving the assembly efficiency and maintenance convenience of the switch. The V-shaped groove design also effectively prevents the rocker arm 5 and the spring contact 10 from loosening or falling off during use, ensuring the stability and reliability of the switch.

[0028] Furthermore, the spring 10 has an arc-shaped structure. This arc-shaped design allows the spring 10 to undergo uniform elastic deformation when subjected to external forces, thereby ensuring that the rocker 5 can swing smoothly and improving the triggering sensitivity and stability of the switch. The arc-shaped structure of the spring 10 can also effectively disperse the effects of external forces on the spring 10, extending its service life.

[0029] Compared to traditional mechanical contact switches, this invention employs a contactless magnetic induction triggering mechanism, resulting in a longer service life and higher stability. It avoids the wear and electrical aging problems caused by direct contact of the mechanical contacts 11, significantly improving the switch's durability. Furthermore, the magnetic induction triggering mechanism allows for precise adjustment of the trigger stroke, providing a more personalized operating experience for different users. Secondly, this invention retains a spring-loaded structure with an impact effect on the magnetic induction triggering mechanism, enabling the micro switch to achieve both contactless triggering and the trigger feedback of the original mechanical contact switch, greatly enhancing the user experience.

[0030] The magnetic sensor 2 is disposed inside the insulating body 1 and corresponds to the magnet 4. When the button 3 is pressed, the magnet 4 moves with the button 3, changing the distance between it and the magnetic sensor 2, thereby triggering the magnetic sensor 2 to output an electrical signal, realizing the trigger control of the micro switch.

[0031] The magnetic sensor 2 is preferably a Hall sensor, AMR sensor, GMR sensor, or TMR sensor. When the button 3 is pressed, the magnet 4 moves with the button 3 into the sensing range of the Hall sensor, thereby triggering the switch action. In addition, the spring 10 of the rebound structure is made of a highly elastic metal material to ensure that the rocker 5 can quickly return to its initial position after the button 3 is released, improving the sensitivity and service life of the switch.

[0032] When the user presses down on button 3, magnet 4 also moves downwards. This causes the magnetic sensor 2 on the PCB board 13 at the bottom of the microswitch to detect the increase in magnetic field strength. Magnetic sensor 2 converts the detected change in magnetic field strength into a voltage change signal, which is transmitted to the mouse controller via PCB board 13, thus recognizing that button 3 has been pressed. When the user releases their hand, the spring force of the contact spring 10 rebounds, causing button 3 and magnet 4 to move upwards. Magnetic sensor 2 then detects the decrease in magnetic field strength. Similarly, magnetic sensor 2 converts the detected change in magnetic field strength into a voltage change signal, which is transmitted to the mouse controller via PCB board 13, allowing the mouse controller to recognize that button 3 has been released.

[0033] Furthermore, since the downward travel of button 3 causes magnet 4 to move downwards as well, the distance between magnet 4 and magnetic sensor 2 gradually decreases. We know that the magnetic field strength around magnet 4 decreases with increasing distance and increases with decreasing distance. This means that the magnetic field strength sensed by magnetic sensor 2 gradually increases as button 3 is pressed downwards. Magnetic sensor 2 can convert this gradually increasing magnetic field strength into a gradually changing voltage signal. Similarly, when button 3 is released, as the spring 10 rebounds, the distance between button 3 and magnetic sensor 2 increases, and magnetic sensor 2 can also convert this into a reverse voltage signal. Based on the monotonic correspondence between button travel and voltage signal, the mouse controller can adjust the trigger travel of button 3 by setting different trigger voltage thresholds, and can even set different values ​​for the trigger travel of pressing button 3 and releasing the microswitch.

[0034] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the present utility model in any way. Although the present utility model has been disclosed above with reference to a preferred embodiment, it is not intended to limit the present utility model. Any person skilled in the art can make some changes or modifications to the above-disclosed technical content to create equivalent embodiments without departing from the scope of the present utility model. Any simple modifications, equivalent changes, and modifications made to the above embodiments based on the present utility model without departing from the scope of the present utility model shall fall within the scope of the present utility model.

Claims

1. A magnetically induced triggered microswitch comprising an insulating body (1) and a triggering assembly, characterized in that: The triggering component includes a button (3), a rebound structure, and a magnetic sensor (2) disposed below the button (3). A magnet (4) is disposed inside the button (3). The rebound structure includes a rocker (5) and a bracket supported at the bottom of the button (3). The bracket includes a first contact part (6), a second contact part (7), a first fulcrum (8), and a second fulcrum (9). One end of the rocker (5) is connected to the first fulcrum (8), and the other end can swing along the first fulcrum (8) so that the end of the rocker (5) away from the first fulcrum (8) can contact the first contact part (6) or the second contact part (7). A spring piece (10) for connecting with the second fulcrum (9) is provided in the middle of the rocker (5).

2. A magnetically actuated microswitch according to claim 1, wherein: The bottom of the button (3) is provided with a positioning cylinder (12), and the magnet (4) is fitted inside the positioning cylinder (12).

3. A magnetically actuated microswitch according to claim 2, wherein: The rocker (5) has a first slot (14) and a second slot (15) spaced apart in the middle. The spring piece (10) is integrally bent at one end of the first slot (14), and the positioning cylinder (12) passes through the second slot (15).

4. A magnetically triggered micro switch according to any one of claims 1-3, characterized in that: One end of the rocker (5) is provided with a contact point (11) for contacting the first contact part (6) or the second contact part (7).

5. A magnetically triggered micro switch according to any one of claims 1-3, characterized in that: The first fulcrum (8) and the second fulcrum (9) are respectively provided with V-shaped grooves for engaging with the rocker (5) and the spring piece (10).

6. A magnetically triggered micro switch according to claim 5, characterized in that: The spring piece (10) is engaged with the V-shaped groove through a U-shaped groove.

7. A magnetically triggered micro switch according to claim 6, characterized in that: The spring clip (10) has an arc-shaped structure.