A mouse key tension assembly
By introducing a tension control component into the mouse button and utilizing the reverse tension mechanism of a spring or magnet, the button can be quickly and stably reset, solving the problems of button slack and untimely reset in the existing technology, and improving the user experience and performance of the mouse.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENZHEN LANZU ELECTRONIC TECH CO LTD
- Filing Date
- 2025-08-18
- Publication Date
- 2026-07-21
AI Technical Summary
Existing mouse buttons are prone to tension loss during long-term use, resulting in button loosening, untimely or incomplete reset, which affects user experience and performance.
The tension control component includes a mounting frame, connecting parts, and a spring or magnet. The spring's elastic potential energy or the magnet's magnetic repulsion force enables the button to reset quickly and stably. The connecting parts are connected to the mounting frame via a pivot and the flip travel is limited by a triangular latch.
It ensures that the buttons reset quickly and stably after being pressed, improving the user experience and performance of the mouse. It is suitable for different types of mice and has strong versatility and structural stability.
Smart Images

Figure CN224536921U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of mouse technology, and in particular relates to a mouse button tension component. Background Technology
[0002] In the field of computer peripherals, the mouse is a commonly used input device, and the feel and stability of its buttons are of paramount importance.
[0003] Existing mouse buttons rely on the properties of their own materials as the main source of elasticity. During long-term use, tension loss may occur, causing the buttons to loosen, resulting in poor button feel and affecting the user's operating experience. At the same time, after the tension of the mouse button is lost, there may be problems such as untimely or incomplete reset when the button is reset, which affects the performance of the mouse.
[0004] Therefore, there is an urgent need for a tension component that can ensure that the button returns to its original position quickly and stably after being pressed, thereby improving the user experience and performance of the mouse. Summary of the Invention
[0005] This invention provides a mouse button tension component that ensures the button returns to its original position quickly and stably after being pressed, thereby improving the user experience and performance of the mouse.
[0006] This utility model achieves the above-mentioned objectives through the following technical solution: it includes a mouse body, a main control board, a button assembly, a micro switch, a scroll wheel assembly, and a battery. The button assembly is mounted on the mouse body. The main control board and the micro switch are both mounted inside the mouse body and electrically connected to the battery. A plastic frame is also installed inside the mouse body. A tension adjustment assembly is installed inside the plastic frame. The tension adjustment assembly includes a mounting frame. The button assembly includes a contact part and a connecting part. One end of the connecting part is located below the mounting frame. The connecting part is connected to the mounting frame through a pivot.
[0007] Furthermore, the top of the mounting frame is provided with a fixing buckle that is fastened to the plastic skeleton, and then the mounting frame is fastened with screws through the screw holes on the other side of the top of the mounting frame and the screw posts on the plastic skeleton. The mounting frame is hollow inside and has a downward-facing cylindrical groove on the top of the inner side. A triangular buckle is also fixed inside the mounting frame. The top of the mounting frame is also provided with a first mounting groove at the position opposite to the cylindrical groove.
[0008] Furthermore, the top surface of the connecting component is provided with an arc-shaped groove, and one end of the connecting component is provided with an abutment block. When the contact part is in the loose state, the bottom of the abutment block abuts against the right-angle surface of the triangular buckle tongue of the triangular buckle. The bottom of the connecting component is also provided with a second mounting groove at the position opposite to the arc-shaped groove.
[0009] Furthermore, when the contact part is pressed, the connecting component flips upward and pushes into the inner part of the hollow area of the mounting frame with the axis of the rotating shaft as the reference. After the contact part is released, the connecting component returns to the initial position. The triangular buckle abuts against the abutment block and the connecting component from the bottom to limit the flipping stroke and avoid excessive downward flipping that would cause the contact part to lift up.
[0010] Furthermore, the tension regulating component uses a spring to provide reverse tension, with both ends of the spring connected to the cylindrical groove and the arc-shaped recess, respectively.
[0011] Furthermore, when a spring is selected as a functional component to counteract tension, the connecting part will compress the spring when it is rotated upward with the axis of the rotating shaft as a reference. After the contact part is released, the elastic potential energy generated by the spring actively restoring will push the connecting part to quickly return to its initial position.
[0012] Furthermore, the tension control component for providing reverse tension uses a pair of magnets. The two magnets are respectively installed in the first mounting slot and the second mounting slot and fixed by a snap fastener, and the two magnets are installed in a state where like poles repel each other.
[0013] Furthermore, when using magnets as functional components to counteract tension, the connecting parts are rotated upwards with the axis of the shaft as a reference, which will cause the two magnets to move closer to each other and shorten the distance between them. After the contact part is released, the magnetic repulsion force generated by the repulsion of like poles of the magnets will push the connecting parts to quickly return to the initial position.
[0014] Beneficial effects: This utility model is reasonably designed and has the following beneficial effects: 1. In this utility model, by setting a tension adjustment component, a spring or a magnet can be selected as the component providing reverse tension according to user needs, meeting different usage scenarios and tactile requirements. When a spring is selected, pressing the contact part causes the connecting part to flip upwards and compress the spring. After releasing, the elastic potential energy of the spring pushes the connecting part to quickly return to its initial position. When a magnet is selected, the connecting part flips upwards and brings the two magnets close together. After releasing, the magnetic repulsion force of the like poles of the magnets pushes the connecting part back to its original position, ensuring timely and stable button reset. The setting of two tension adjustment components makes this component applicable to different types of mice, with strong versatility. 2. In this utility model, the mounting frame is fastened to the plastic skeleton by fixing buckles and screws. The connecting part is connected to the mounting frame by a pivot. When the contact part is released, the triangular buckle abuts against the abutment block and the connecting part, limiting its flipping stroke and preventing the contact part from lifting, thus improving the structural stability of the component. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the structure of this utility model; Figure 2This is a schematic diagram of the tension control component of this utility model; Figure 3 This is a cross-sectional view of the mounting frame and spring structure of this utility model; Figure 4 This is a cross-sectional view of the mounting frame and magnet structure of this utility model.
[0016] In the diagram: 1-Mouse body, 2-Button assembly, 3-Micro switch, 4-Plastic frame, 5-Tension adjustment assembly; 21-Contact part, 22-Connecting component, 23-Arc-shaped groove, 24-Abutting block, 25-Second mounting groove, 51-Mounting frame, 52-Fixing buckle, 53-Cylindrical groove, 54-Triangular buckle, 55-First mounting groove, 56-Spring, 57-Magnet, 58-Screw hole. Detailed Implementation
[0017] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0018] Combination Figures 1 to 4 The mouse button tension assembly shown includes a mouse body 1, a main control board, a button assembly 2, a micro switch 3, a scroll wheel assembly, and a battery. The button assembly 2 is mounted on the mouse body 1. The main control board and the micro switch 3 are both mounted inside the mouse body 1 and electrically connected to the battery. A plastic frame 4 is also installed inside the mouse body 1. A tension adjustment assembly 5 is installed inside the plastic frame 4. The tension adjustment assembly 5 includes a mounting frame 51. The button assembly 2 includes a contact part 21 and a connecting part 22. One end of the connecting part 22 is located below the mounting frame 51. The connecting part 22 is connected to the mounting frame 51 through a pivot.
[0019] The mounting frame 51 has a fixing buckle 52 at the top, which is fastened to the plastic frame 4. Then, the mounting frame 51 is connected to the screw post on the plastic frame 4 through the screw hole 58 on the other side of the top and is fastened with screws. The mounting frame 51 has a hollow design inside and a downward-facing cylindrical groove 53 is opened on the top of the inner side. A triangular buckle 54 is also fixed inside the mounting frame 51. The top of the mounting frame 51 is also provided with a first mounting groove 55 at the position opposite to the cylindrical groove 53.
[0020] The top surface of the connecting component 22 is provided with an arc-shaped groove 23, and one end of the connecting component 22 is provided with an abutment block 24. When the contact part 21 is in the loose state, the bottom of the abutment block 24 abuts against the right angle surface of the triangular buckle tongue of the triangular buckle 54. The bottom of the connecting component 22 is also provided with a second mounting groove 25 at the relative position of the arc-shaped groove 23.
[0021] When the contact part 21 is pressed, the connecting part 22 flips upward and pushes into the inner side of the hollow area of the mounting frame 51 with the axis of the rotating shaft as the reference. After the contact part 21 is released, the connecting part 22 returns to the initial position. The triangular buckle 54 abuts against the abutting block 24 and the connecting part 22 from the bottom to limit the starting flip stroke and avoid excessive downward flipping, which would cause the contact part 21 to lift up.
[0022] The tension regulating component 5 uses a spring 56 to provide reverse tension. The two ends of the spring 56 are connected to the cylindrical groove 53 and the arc-shaped groove 23, respectively.
[0023] When spring 56 is selected as a functional component to counteract tension, the connecting part 22 will compress spring 56 when it is rotated upward with the axis of the rotating shaft as the reference. After the contact part 21 is released, the elastic potential energy generated by the active recovery of spring 56 will push the connecting part 22 to quickly return to the initial position.
[0024] The tension control component 5 is a pair of magnets 57 used to provide reverse tension. The two magnets 57 are respectively installed in the first mounting groove 55 and the second mounting groove 25 and fixed by snaps. The two magnets 57 are installed in a state where like poles repel each other.
[0025] When magnet 57 is selected as a functional accessory to counteract tension, the connecting part 22 is rotated upward with the axis of the rotating shaft as a reference, which will cause the two magnets 57 to move closer to each other and shorten the distance. After the contact part 21 is released, the magnetic repulsion force generated by the repulsion of like poles of magnet 57 will push the connecting part 22 to quickly return to the initial position. Example
[0026] Springs were selected as functional components. Combination Figure 2 and Figure 3 As shown, when the contact part 21 is pressed, the connecting part 22 flips upward with the axis of the rotating shaft as the reference and pushes into the inner side of the hollow area of the mounting frame 51. At this time, the spring 56 is located between the cylindrical groove 53 and the arc-shaped groove 23. The flipping of the connecting part 22 will compress the spring 56, so that the spring 56 stores elastic potential energy. After the contact part 21 is released, the spring 56 actively returns to its original position. The generated elastic potential energy pushes the connecting part 22 to quickly return to its initial position, realizing the reset of the button. During the return process of the connecting part 22, the triangular buckle 54 abuts against the abutting block 24 and the connecting part 22 from the bottom, limiting its flipping stroke and ensuring that the contact part 21 is in the correct position after reset. Example
[0027] Magnets were chosen as functional components. Combination Figure 2 and Figure 4As shown, two magnets 57 are respectively installed in the first mounting slot and the second mounting slot, and are installed in a state of like poles repulsion. When the contact part 21 is pressed, the connecting part 22 flips upward, so that the two magnets 57 are close to each other and the distance between them is shortened. At this time, the repulsive force between the magnets 57 increases. After the contact part 21 is released, the magnetic repulsive force generated by the like poles of the magnets 57 will push the connecting part 22 to quickly return to the initial position, completing the button reset. Similarly, the triangular buckle 54 plays a role in limiting the flipping stroke in this process, ensuring the stable operation of the button assembly 2.
[0028] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention. Therefore, the embodiments should be considered illustrative and non-limiting in all respects, and the scope of this invention is defined by the appended claims rather than the foregoing description. Thus, it is intended that all variations falling within the meaning and scope of equivalents of the claims be included within this invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
[0029] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. A mouse button tension assembly, comprising a mouse body (1), a main control board, a button assembly (2), a micro switch (3), a scroll wheel assembly, and a battery, wherein the button assembly (2) is mounted on the mouse body (1), and the main control board and the micro switch (3) are both mounted inside the mouse body (1) and electrically connected to the battery, characterized in that: The mouse body (1) is also equipped with a plastic frame (4), and a tension control component (5) is installed inside the plastic frame (4). The tension control component (5) includes a mounting frame (51). The button component (2) includes a contact part (21) and a connecting part (22). One end of the connecting part (22) is located below the mounting frame (51), and the connecting part (22) is connected to the mounting frame (51) through a pivot.
2. The mouse button tension assembly according to claim 1, characterized in that: The mounting frame (51) is provided with a fixing buckle (52) at the top and is fastened to the plastic skeleton (4). Then, it is fastened with screws through the screw hole (58) provided on the other side of the top of the mounting frame (51) and the screw post on the plastic skeleton (4). The mounting frame (51) is hollow inside and has a downward-facing cylindrical groove (53) on the top of the inner side. The mounting frame (51) is also fixed with a triangular buckle (54). The top of the mounting frame (51) is also provided with a first mounting groove (55) at the relative position of the cylindrical groove (53).
3. A mouse button tension assembly according to claim 2, characterized in that: The top surface of the connecting component (22) is provided with an arc-shaped groove (23), and one end of the connecting component (22) is provided with an abutment block (24). When the contact part (21) is in the loose state, the bottom of the abutment block (24) abuts against the right angle surface of the triangular buckle tongue of the triangular buckle (54). The bottom of the connecting component (22) is also provided with a second mounting groove (25) at the relative position of the arc-shaped groove (23).
4. A mouse button tension assembly according to claim 3, characterized in that: The tension control component (5) is equipped with a spring (56) for providing reverse tension. The two ends of the spring (56) are connected to the cylindrical groove (53) and the arc-shaped groove (23) respectively.
5. A mouse button tension assembly according to claim 3, characterized in that: The tension control component (5) is equipped with a pair of magnets (57) for providing reverse tension. The two magnets (57) are respectively installed in the first mounting groove (55) and the second mounting groove (25) and fixed by buckles. The two magnets (57) are installed in a state of like repulsion.