Mouse key springback noise elimination structure

By setting a silicone pad between the mouse button hook and the contact point, absorbing and dispersing the vibration and sound generated by collisions, the problem of high noise in existing mouse buttons is solved, achieving a quieter and more durable user experience.

CN222980009UActive Publication Date: 2025-06-13渴创技术(深圳)有限公司
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Patent Information

Application Number
CN202421832642.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-31
Publication Date
2025-06-13
Estimated Expiration
2034-07-31

AI Technical Summary

Technical Problem

Due to the use of hard materials, existing mouse buttons produce large noise during pressing and rebounding, which affects the user experience and shortens the service life of the mouse.

Method used

A silicone pad is used as a silence assembly, located between the mouse button hook and the contact point, absorbing and dispersing the vibration and sound generated by collision through the cushioning of the silicone pad.

Benefits of technology

It effectively reduces the noise when the button rebounds, creates a quiet use environment, extends the service life of the mouse, and improves the comfort and smoothness of operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of mice, and particularly discloses a mouse key springback noise elimination structure. The mouse comprises a mouse body, the mouse body comprises an upper cover and an inner cover, a silencing assembly used for springback silencing is arranged between the upper cover and the inner cover on the mouse body, the silencing assembly comprises a first silica gel pad, two key contact points are arranged on one side of the upper cover, two key hooks are arranged on one side of the inner cover, and the first silica gel pad is arranged between the upper cover and the inner cover. The number of the first silica gel pads is set to be two, the two first silica gel pads are used for conducting springback noise reduction on the mouse body, the first silica gel pads are located between the key hooks and the key contact points, vibration and sound generated when the key hooks and the key contact points collide can be effectively absorbed and buffered, and a quiet use environment is created for a user; by means of the buffering effect of the first silica gel pad, rebounding of the key is softer, the comfort level and smoothness of operation are enhanced, direct collision between a key hook and a contact point is relieved, the risks of abrasion and damage are reduced, and the service life of the mouse is prolonged.
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Description

Technical Field

[0001] This application relates to the technical field of mice, and more specifically, to a mouse button rebound noise reduction structure. Background Art

[0002] Mouse buttons all adopt a mechanical structure. By pressing the trigger part on the micro switch with the button, force is applied to the action reed. When the action reed displaces to the critical point, an instantaneous action occurs, causing the moving contact at the end of the action reed to quickly connect or disconnect from the fixed contact. The action reed also provides the rebound power. When the external force is removed, the system returns to its original position. When the reed triggers and returns, a clear ticking sound will be produced.

[0003] Currently in the market, the structures of the left and right mouse buttons generally directly clamp the left and right button hooks on the mouse skeleton through the button contacts on the left and right upper covers. In terms of materials, either both the skeleton and the upper cover are plastic; or both the skeleton and the upper cover are metal; or the upper cover is metal and the skeleton is plastic; or the upper cover is plastic and the skeleton is metal. However, in any case, the materials used in these two structures are all hard materials, which collide with each other during the pressing and rebounding processes, thus generating relatively large noises. Excessive button noises will make users feel irritable and uncomfortable during operation. Especially in a quiet environment such as an office or a library, it may interfere with others and also disrupt one's own concentration. Moreover, it will also increase the wear of the button hooks and contacts, shorten the service life of the mouse, and increase the cost of maintenance or replacement. Content of the Utility Model

[0004] In order to solve the above problems, this application provides a mouse button rebound noise reduction structure.

[0005] A mouse button rebound noise reduction structure provided by this application adopts the following technical solutions:

[0006] A mouse button rebound noise reduction structure includes a mouse body, the mouse body includes an upper cover and an inner cover, and a noise reduction component for rebound noise reduction is arranged between the upper cover and the inner cover on the mouse body;

[0007] The noise reduction component includes a first silica gel pad. There are two button contact points on one side of the upper cover, and two button hooks on one side of the inner cover. The number of the first silica gel pads is set to two, and the two first silica gel pads are used for rebound noise reduction of the mouse body.

[0008] Furthermore, the two first silica gel pads are respectively located between the corresponding button hooks and button contact points. Each first silica gel pad is adhesively bonded to the corresponding button hook, and the cross-sectional shape of each first silica gel pad is set to be square.

[0009] Through the above technical solutions, it is possible to effectively absorb and buffer the vibration and sound generated during the collision of the two, creating a quiet use environment for users.

[0010] Further, a first placement seat is provided on one side of each key hook. The cross-sectional shape of each first placement seat is set as a cross shape, and a plurality of second silicone pads are provided inside each first placement seat. The cross-sectional shape of each second silicone pad is set as a square, and each second silicone pad is snap-fitted with the corresponding first placement seat.

[0011] Further, the height of each second silicone pad is greater than the height of the first placement seat, and the sizes of each second silicone pad are the same.

[0012] Through the above technical solution, the area and levels of buffering and vibration absorption are further increased, and the energy generated by collision can be more effectively absorbed and dispersed.

[0013] Further, a second placement seat is provided on one side of each key hook. The number of second placement seats is set to be multiple, and the multiple second placement seats are arranged in parallel.

[0014] Further, a third silicone pad is provided inside each second placement seat. The thicknesses of the multiple third silicone pads gradually decrease from the center to both ends. The cross-sectional shapes of each second placement seat and the third silicone pad are both set as long strips, and each third silicone pad is snap-fitted with the corresponding second placement seat.

[0015] Through the above technical solution, buffering of different degrees can be obtained, and a more ergonomic key pressing experience can be achieved.

[0016] Further, a fourth silicone pad is provided on one side of each key hook. Fifth silicone pads are provided on both sides of each fourth silicone pad, and rounded corners are provided at both ends of one side of each fifth silicone pad away from the fourth silicone pad.

[0017] Further, a sixth silicone pad is provided on one side of each fifth silicone pad away from the fourth silicone pad. Each fourth silicone pad, fifth silicone pad, and sixth silicone pad are symmetrically distributed along the axis of the corresponding fourth silicone pad. The cross-sectional shape of each fourth silicone pad is set as a rectangle, the cross-sectional shape of each fifth silicone pad is set as a trapezoid, and the cross-sectional shape of each sixth silicone pad is set as a semi-circle.

[0018] Through the above technical solution, it can better adapt to the process of key pressing and rebounding, and provide a smoother operation experience.

[0019] In summary, the present application includes at least one of the following beneficial technical effects:

[0020] (1) In the present utility model, with the first silica gel pad located between the button hook and the button contact point, it can effectively absorb and buffer the vibration and sound generated during the collision between the two, creating a quiet usage environment for the user. When using the mouse in a quiet office environment or study environment, it will not interfere with others or distract oneself due to the button sound. Through the buffering effect of the first silica gel pad, the button rebound becomes more gentle, enhancing the comfort and smoothness of the operation, reducing the direct collision between the button hook and the contact point, lowering the risk of wear and damage, and extending the service life of the mouse.

[0021] (2) In the second embodiment of the present utility model, through the arrangement of multiple second silica gel pads, the area and level of buffering and vibration absorption are further increased, and the energy generated by the collision can be more effectively absorbed and dispersed, further reducing the sound when the button rebounds. By engaging the second silica gel pad with the first placement seat and having a height greater than that of the first placement seat, this structure makes the second silica gel pad less likely to shift or fall off during use, improving the stability and reliability of the entire sound insulation structure, thus extending the service life of the mouse, and it can be separately removed and replaced when wear occurs.

[0022] (3) In the third embodiment of the present utility model, the thickness of the third silica gel pad gradually decreases from the center to both ends, which enables the button to obtain different degrees of buffering when pressed at different positions, providing a more ergonomic button experience. Through the design of different thicknesses, it can more specifically absorb and eliminate the button collision sounds with different frequencies and intensities, further enhancing the overall sound insulation performance.

[0023] (4) In the fourth embodiment of the present utility model, by combining the fourth silica gel pad with the fifth and sixth silica gel pads on both sides, a more comprehensive buffering and sound insulation structure is formed. No matter in which direction the button is pressed, effective buffering and sound insulation can be obtained, further enhancing the overall sound insulation effect. And through the combination of silica gel pads with different shapes, such as the rectangular fourth silica gel pad providing stable basic support, the trapezoidal fifth silica gel pad realizing the buffer transition, and the semi-circular sixth silica gel pad reducing stress concentration and providing a gentle rebound, it can better adapt to the process of button pressing and rebounding, providing a more smooth operation experience. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 is the overall structural schematic diagram of the present utility model;

[0025] Figure 2 is the overall structural schematic diagram of the upper cover and the inner cover of the present utility model;

[0026] Figure 3 is for the present utility model Figure 2 enlarged view of the structure at A;

[0027] Figure 4Schematic diagram of the connection structure between the first silicone pad and the key hook of the present utility model;

[0028] Figure 5 Schematic diagram of the connection structure between the second silicone pad and the key hook of the present utility model;

[0029] Figure 6 Schematic diagram of the connection structure between the third silicone pad and the key hook of the present utility model;

[0030] Figure 7 Schematic diagram of the connection structure between the fourth silicone pad and the key hook of the present utility model.

[0031] Explanation of reference numerals: 1, mouse body; 2, upper cover; 3, key hook; 4, key contact point; 5, first silicone pad; 6, first placement seat; 7, second silicone pad; 8, second placement seat; 9, third silicone pad; 10, fourth silicone pad; 11, fifth silicone pad; 12, sixth silicone pad; 13, inner cover. Detailed implementation manners

[0032] Next, the technical solutions in the embodiments of the present application will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present application; obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present application.

[0033] Embodiment 1

[0034] Refer to Figures 1-4 , a mouse key rebound and noise reduction structure, including a mouse body 1, the mouse body 1 includes an upper cover 2 and an inner cover 13, and a noise reduction component for rebound and noise reduction is provided between the upper cover 2 and the inner cover 13 on the mouse body 1;

[0035] The noise reduction component includes a first silicone pad 5. Two key contact points 4 are provided on one side of the upper cover 2, and two key hooks 3 are provided on one side of the inner cover 13. The number of the first silicone pads 5 is set to two, and the two first silicone pads 5 are used for rebound and noise reduction of the mouse body 1.

[0036] Refer to Figures 1-4 , the two first silicone pads 5 are respectively located between the corresponding key hooks 3 and key contact points 4, each first silicone pad 5 is adhesively bonded to the corresponding key hook 3, and the cross-sectional shape of each first silicone pad 5 is set to be square.

[0037] Since the first silicone pad 5 is a silicone material with an adhesive backing, it can be adhesively bonded to the corresponding key hook 3.

[0038] By having the first silicone pad 5 located between the key hook 3 and the key contact point 4, it can effectively absorb and buffer the vibrations and sounds generated during the collision between the two, creating a quiet usage environment for the user. When using the mouse in a quiet office environment or study environment, it will not interfere with others or distract oneself due to the key sounds. Through the buffering effect of the first silicone pad 5, the key rebound becomes softer, enhancing the comfort and smoothness of the operation, reducing the direct collision between the key hook 3 and the contact point, lowering the risk of wear and damage, and extending the service life of the mouse.

[0039] Embodiment Two

[0040] The difference between this embodiment and Embodiment One lies in that, referring to Figure 5 , on one side of each key hook 3, there is a first placement seat 6. The cross-sectional shape of each first placement seat 6 is set as a cross shape. Inside each first placement seat 6, there are multiple second silicone pads 7. The cross-sectional shape of each second silicone pad 7 is set as a square. Each second silicone pad 7 is snap-fitted with the corresponding first placement seat 6. The height of each second silicone pad 7 is greater than the height of the first placement seat 6. The sizes of each second silicone pad 7 are the same.

[0041] In this embodiment, through the arrangement of multiple second silicone pads 7, the area and level of buffering and vibration absorption are further increased, and the energy generated by the collision can be more effectively absorbed and dispersed, further reducing the sound during key rebound. For example, in environments with extremely high requirements for silence, such as recording studios and conference rooms, this design with multiple silicone pads can provide better sound insulation performance. By snap-fitting the second silicone pad 7 with the first placement seat 6 and having a height greater than that of the first placement seat 6, this structure makes the second silicone pad 7 less likely to shift or fall off during use, improving the stability and reliability of the entire sound insulation structure, thereby extending the service life of the mouse, and it can be individually removed and replaced when worn.

[0042] Embodiment Three

[0043] The difference between this embodiment and Embodiment One and Embodiment Two lies in that, referring to Figure 6 , on one side of each key hook 3, there is a second placement seat 8. The number of second placement seats 8 is set to be multiple. The multiple second placement seats 8 are arranged in parallel. Inside each second placement seat 8, there is a third silicone pad 9. The thickness of the multiple third silicone pads 9 gradually decreases from the center to both ends. The cross-sectional shapes of each second placement seat 8 and the third silicone pad 9 are set as long strips. Each third silicone pad 9 is snap-fitted with the corresponding second placement seat 8.

[0044] In this embodiment, the thickness of the third silicone pad 9 gradually decreases from the center to both ends, which enables the button to obtain different degrees of buffering when pressed at different positions. For example, when the button is pressed at the center, the buffering force is greater, while when the button is pressed at the edge, the buffering force is relatively smaller, thus providing a more ergonomic button experience. Through the design of different thicknesses, it is possible to more specifically absorb and eliminate button collision sounds of different frequencies and intensities, further improving the overall sound insulation performance.

[0045] Embodiment 4

[0046] The difference between this embodiment and Embodiment 1, Embodiment 2, and Embodiment 3 is that, referring to Figure 7 , a fourth silicone pad 10 is provided on one side of each button hook 3, fifth silicone pads 11 are provided on both sides of each fourth silicone pad 10, rounded corners are provided at both ends of one side of each fifth silicone pad 11 away from the fourth silicone pad 10, sixth silicone pads 12 are provided on one side of each fifth silicone pad 11 away from the fourth silicone pad 10, each fourth silicone pad 10, fifth silicone pad 11, and sixth silicone pad 12 are symmetrically distributed along the axis of the corresponding fourth silicone pad 10, the cross-sectional shape of each fourth silicone pad 10 is set to a rectangle, the cross-sectional shape of each fifth silicone pad 11 is set to a trapezoid, and the cross-sectional shape of each sixth silicone pad 12 is set to a semi-circle.

[0047] In this embodiment, by combining the fourth silicone pad 10 with the fifth silicone pads 11 and sixth silicone pads 12 on both sides, a more comprehensive buffering and sound insulation structure is formed. No matter in which direction the button is pressed, effective buffering and sound insulation can be obtained, further improving the overall sound insulation effect. Moreover, through the combination of silicone pads with different shapes, such as the rectangular fourth silicone pad 10 providing stable basic support, the trapezoidal fifth silicone pad 11 realizing the transition of buffering, and the semi-circular sixth silicone pad 12 reducing stress concentration and providing a soft rebound, it can better adapt to the process of button pressing and rebounding, providing a smoother operation experience.

[0048] The above are all preferred embodiments of the present application, and the protection scope of the present application is not limited thereby. Therefore, all equivalent changes made according to the structure, shape, and principle of the present application should be covered within the protection scope of the present application.

Claims

1. A mouse button rebound silencing structure, comprising a mouse body (1), characterized in that: The mouse body (1) comprises an upper cover (2) and an inner cover (13); a silencer component for rebound silencer is arranged between the upper cover (2) and the inner cover (13) on the mouse body (1); The silencer assembly comprises a first silicone pad (5), two button contact points (4) are provided on one side of the upper cover (2), two button hooks (3) are provided on one side of the inner cover (13), the number of the first silicone pads (5) is set to two, and the two first silicone pads (5) are used for rebound silencer of the mouse body (1).

2. A mouse button rebound silencing structure according to claim 1, characterized in that: The two first silicone pads (5) are respectively located between the corresponding key hook (3) and the key contact point (4), each of the first silicone pads (5) is respectively bonded to the corresponding key hook (3), and the cross-sectional shape of each of the first silicone pads (5) is set to be square.

3. The mouse button rebound silencing structure according to claim 1, characterized in that: A first placement seat (6) is provided on one side of each of the button hooks (3); the cross-sectional shape of each of the first placement seats (6) is set to be a field shape; a plurality of second silicone pads (7) are provided inside each of the first placement seats (6); the cross-sectional shape of each of the second silicone pads (7) is set to be a square; and each of the second silicone pads (7) is snap-connected with the corresponding first placement seat (6).

4. A mouse button rebound silencing structure according to claim 3, characterized in that: The height of each of the second silicone pads (7) is greater than the height of the first placement seat (6), and the dimensions of each of the second silicone pads (7) are the same.

5. The mouse button rebound silencing structure according to claim 1, characterized in that: A second placement seat (8) is provided on one side of each of the button hooks (3), the number of the second placement seats (8) is set to be multiple, and the multiple second placement seats (8) are arranged in parallel.

6. A mouse button rebound silencing structure according to claim 5, characterized in that: A third silicone pad (9) is provided inside each of the second placement seats (8), and the thickness of the third silicone pads (9) gradually decreases from the center to both ends. The cross-sectional shape of each of the second placement seats (8) and the third silicone pad (9) is set to be a long strip, and each of the third silicone pads (9) is snap-connected with the corresponding second placement seat (8).

7. The mouse button rebound silencing structure according to claim 1, characterized in that: A fourth silicone pad (10) is provided on one side of each of the button hooks (3), a fifth silicone pad (11) is provided on both sides of each of the fourth silicone pads (10), and rounded corners are provided at both ends of a side of each of the fifth silicone pads (11) away from the fourth silicone pad (10).

8. The mouse button rebound silencing structure according to claim 7, characterized in that: A sixth silicone pad (12) is provided on a side of each of the fifth silicone pads (11) away from the fourth silicone pad (10); each of the fourth silicone pads (10), the fifth silicone pad (11) and the sixth silicone pad (12) are symmetrically distributed along the axis of the corresponding fourth silicone pad (10); the cross-sectional shape of each of the fourth silicone pads (10) is set to be a rectangle; the cross-sectional shape of each of the fifth silicone pads (11) is set to be a trapezoid; and the cross-sectional shape of each of the sixth silicone pads (12) is set to be a semicircle.