Multi-gear mechanical wireless remote controller structure

By setting a retractable isolation sleeve and an elastic telescopic component on the outside of the buttons of the multi-position mechanical wireless remote control, the problem of accidental button presses is solved, the accuracy and safety of operation are improved, and the portability and ease of use of the device are maintained.

CN223986505UActive Publication Date: 2026-03-10DONGGUAN CHUANGJIANG ELECTRONICS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-01
Publication Date
2026-03-10

AI Technical Summary

Technical Problem

Existing multi-level mechanical wireless remote controls are prone to accidental touches due to the close proximity of the buttons, which affects operational efficiency and safety, especially when wearing gloves in complex environments where the possibility of accidental touches increases.

Method used

A telescopic isolation sleeve consisting of a lower and upper sleeve is set on the outside of the button. Combined with an elastic telescopic component, including a pressure post, a fixed ring, a compression spring, and a support ring, the design of the elastic telescopic component ensures the accuracy and stability of button operation and reduces accidental touches.

Benefits of technology

It effectively reduces accidental touches, improves operational accuracy and safety, while maintaining the portability and ease of use of the device, and ensuring precise feedback and comfort of button operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of wireless remote controllers, in particular to a multi-gear mechanical wireless remote controller structure which comprises an outer shell, a plurality of keys are arranged on the top of the outer shell, and connecting rings are welded and fixed to the outer edges of the joints of the outer shell and the keys. A telescopic isolation sleeve composed of a lower sleeve ring and an upper sleeve ring is installed on the connecting ring, the telescopic isolation sleeve is located outside the key to form an independent physical isolation area, and elastic telescopic assemblies are arranged between the inner walls of the two sides of the lower sleeve ring and the inner walls of the two sides of the upper sleeve ring. The elastic telescopic assembly is composed of a pressing column, a fixing ring compression spring and a supporting ring. According to the multi-gear mechanical wireless remote controller structure, by adding a physical isolation measure of the keys, the mistaken touch phenomenon is effectively reduced, the operation accuracy and safety are improved, and meanwhile, the portability and usability of equipment are kept.
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Description

TECHNICAL FIELD

[0001] The utility model relates to wireless remote controller technical field, concretely is a multi -gear mechanical type wireless remote controller structure. BACKGROUND

[0002] In modern industrial automation production, wireless remote controllers are widely used for remote operation and control of various mechanical equipment. Such remote controllers transmit instructions through wireless signals, allowing operators to accurately control the equipment from a distance, greatly improving work efficiency and safety. Traditional multi-gear mechanical wireless remote controllers usually include multiple buttons or knobs, each corresponding to different control functions or control levels.

[0003] The existing multi-gear mechanical wireless remote controllers generally have the problem of button mis-touching, mainly due to their compact design, which makes the distance between buttons close. This leads to misoperation when operators quickly switch between different gears or functions, affecting work efficiency and even causing safety hazards. In addition, in complex industrial environments, operators often need to wear gloves for work, which further increases the likelihood of mis-touching. SUMMARY

[0004] The utility model aims at providing a multi-gear mechanical wireless remote controller structure to solve the problem of button mis-touching in current multi-gear mechanical wireless remote controllers.

[0005] To achieve the above purpose, the utility model provides the following technical scheme: a multi-gear mechanical wireless remote controller structure, including an outer shell, the outer shell top is equipped with a plurality of buttons, the outer shell and the button connection place outer edge all weld fixedly have connecting ring, the connecting ring upper installation is by the lower ring and the upper ring constitutes the telescopic isolation sleeve, this telescopic isolation sleeve all is located the outside of button and constitutes the separate physical isolation area, and the both sides inner wall between the lower ring and the upper ring is equipped with elastic telescopic component, this elastic telescopic component is by the pressure column, the fixed ring compression spring and the support ring jointly constitutes.

[0006] Preferably, the pressure column of the elastic telescopic component is vertically fixed on the both sides inner wall of the upper ring through the connecting piece, the fixed ring is welded and fixed on the both sides inner wall of the lower ring top end along the mouth and forms sliding connection with the lower end of the pressure column, the support ring is sleeved on the outside of the bottom end of the pressure column, and the compression spring is connected between the bottom of the fixed ring and the top of the support ring and also sleeved on the outside of the lower end of the pressure column.

[0007] Preferably, the bottom end of the support ring is provided with a push ring, and a locking screw is connected to the push ring on the bottom end of the support ring through a threaded structure.

[0008] Preferably, the inner walls on both sides of the lower end of the upper collar are tumblingly connected with balls, and the outer walls on both sides of the lower collar are provided with strip-shaped ball grooves that cooperate with the ball structure.

[0009] Preferably, the edge of the top of the upper collar is provided with an elastic pressing ring, and the elastic pressing ring is located outside the top of the button.

[0010] Preferably, the bottom edge of the lower collar is provided with a snap-fit ​​ring, and the interior of the connecting ring is provided with an annular snap-fit ​​groove that matches the structure of the snap-fit ​​ring.

[0011] Compared with existing technologies, the beneficial effects of this utility model are as follows: This multi-position mechanical wireless remote control structure effectively reduces accidental touches and improves operational accuracy and safety by adding physical isolation measures to the buttons, while maintaining the portability and ease of use of the device. The multi-position mechanical wireless remote control structure features a telescopic isolation sleeve composed of a collar and an upper collar around the buttons, effectively reducing accidental touches. Furthermore, the design of the pressure post, retaining ring, compression spring, and support ring of the elastic telescopic component not only ensures accurate feedback of button operation but also enhances user comfort and response efficiency. Attached Figure Description

[0012] Figure 1 This is a structural diagram of a multi-position mechanical wireless remote control according to the present invention;

[0013] Figure 2 This is a schematic diagram of the connection structure between the upper and lower collars of a multi-position mechanical wireless remote control structure according to this utility model.

[0014] Figure 3 This is a schematic diagram of the bottom end structure of the lower ring of a multi-position mechanical wireless remote control structure according to this utility model;

[0015] Figure 4 This is a schematic diagram of the external structure of a multi-position mechanical wireless remote control according to this utility model.

[0016] In the diagram: 1. Outer shell; 2. Button; 3. Connecting ring; 4. Lower collar; 5. Upper collar; 6. Elastic telescopic component; 61. Pressure post; 62. Fixing ring; 63. Compression spring; 64. Support ring; 7. Ball bearing; 8. Strip ball bearing groove; 9. Elastic pressing ring; 10. Snap-fit ​​ring. 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. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0018] Please see Figures 1-4This utility model provides a technical solution: a multi-position mechanical wireless remote control structure, including a housing 1, with several buttons 2 on the top of the housing 1. Connecting rings 3 are welded and fixed to the outer edges of the connection between the housing 1 and the buttons 2. Telescopic isolation sleeves, consisting of a lower sleeve 4 and an upper sleeve 5, are installed on the connecting rings 3. These telescopic isolation sleeves are located outside the buttons 2, forming separate physical isolation areas. Elastic telescopic components 6 are provided between the inner walls of the lower sleeve 4 and the upper sleeve 5 on both sides. Each elastic telescopic component 6 consists of a pressure post 61, a fixed ring 62, a compression spring 63, and a support ring 64. When the operator needs to press a button 2, they first press the corresponding upper sleeve 5 of the telescopic isolation sleeve. The upper sleeve 5 moves downwards outside the lower sleeve 4 until the button 2 is exposed before operation. As the upper sleeve 5 moves downwards, the pressure post 61, fixed ring 62, compression spring 63, and support ring 64 of the elastic telescopic component 6 cooperate to provide an elastic telescopic mechanism for the upper sleeve 5 and the lower sleeve 4, thus enabling… The upper collar 5 can automatically rise or fall according to the pressure applied, maintaining the stability and reset capability of the entire structure, thereby effectively reducing the risk of accidental touches. This solves the problem of accidental touches caused by the close proximity of buttons in existing technologies. Especially in complex and changing industrial environments, it greatly improves the accuracy and safety of operation, avoiding potential safety hazards caused by misoperation. At the same time, this structure maintains the portability and ease of use of the device, making the remote control more suitable for different usage scenarios. The pressure post 61 of the elastic telescopic component 6 is vertically fixed to the inner walls of both sides of the upper collar 5 via connectors. The fixed ring 62 is welded and fixed to the inner walls of both sides of the top edge of the lower collar 4, forming a sliding connection with the lower end of the pressure post 61. The support ring 64 is sleeved on the outside of the bottom end of the pressure post 61. The compression spring 63 is connected between the bottom of the fixed ring 62 and the top of the support ring 64, and is also sleeved on the outside of the lower end of the pressure post 61. This structure allows the pressure post 61 to move smoothly up and down inside the fixed ring 62 as the upper collar 5 moves downward.Furthermore, as the pressure column 61 moves downward, the compression spring 63 is also compressed in cooperation with the support ring 64. This ensures that each action during the operation of button 2 receives precise feedback, avoiding operational errors caused by accidental touches or other external factors. In addition, once the pressure is released, the compression spring 63 will quickly push the pressure column 61 back to its initial position, causing the upper sleeve 5 to spring back to its original position, ensuring the efficiency and accuracy of button 2 operation. The bottom end of the support ring 64 is provided with a push ring, and a locking screw is connected to the push ring at the bottom end of the support ring 64 through a threaded structure. When the operator applies pressure to the support ring 64, the support ring 64 reaches the required position through the push ring. By rotating the locking screw, the threaded structure of the support ring 64 is used to firmly lock the support ring 64 in the appropriate position. This not only ensures the stability and consistency of the elastic telescopic component 6 throughout the operation of button 2, but also allows for fine-tuning according to actual application needs, enhancing the adaptability and reliability of the equipment. The inner walls on both sides of the lower end of the upper sleeve 5 are rolled with ball bearings 7, and the lower sleeve... Both outer walls of ring 4 are provided with strip-shaped ball grooves 8 that mate with the structure of ball 7. The precise fit between ball 7 and strip-shaped ball grooves 8 ensures smooth movement between upper ring 5 and lower ring 4, reducing friction and making button 2 operation smoother and less strenuous. An elastic pressing ring 9 is glued and fixed to the edge of the top of upper ring 5, and the elastic pressing ring 9 is located outside the top of button 2. This structure of elastic pressing ring 9 enhances the user's pressing feel and operating comfort. A clip is welded and fixed to the bottom edge of lower ring 4. The connecting ring 10 has an annular locking groove inside, which matches the structure of the locking ring 10. When the user aligns the lower sleeve 4 with the connecting ring 3 and applies appropriate pressure, the locking ring 10 slides smoothly into the annular locking groove, achieving a secure connection through its tight mechanical fit. This not only ensures a firm connection between the lower sleeve 4 and the connecting ring 3, preventing loosening or detachment during operation, but also greatly simplifies the assembly and disassembly process, allowing for quick assembly and disassembly without the need for additional tools.

[0019] Working principle: When using this multi-position mechanical wireless remote control structure, when the operator needs to press the corresponding button 2, they first press the upper ring 5 of the corresponding telescopic isolation sleeve. The upper ring 5 moves downward outside the lower ring 4 until the button 2 is exposed for operation. As the upper ring 5 moves downward, the pressure column 61 in the elastic telescopic component 6 begins to move smoothly downward inside the fixed ring 62. The compression spring 63 is compressed by the cooperation between the support ring 64 and the pressure column 61, and the balls 7 move along the strip-shaped ball grooves provided on both sides of the outer wall of the lower ring 4. 8. Once the operation of button 2 is completed and the pressure is released, the compression spring 63 quickly pushes the support ring 64 and the pressure column 61 back to the initial position, causing the upper sleeve 5 to spring back to its original position. If it is necessary to fine-tune or fix the position of the support ring 64, the locking screw can be rotated to securely lock the support ring 64 in the appropriate position using its threaded structure. When it is necessary to disassemble or maintain the equipment, the user can smoothly slide the snap ring 10 at the bottom edge of the lower sleeve 4 out of the annular snap groove inside the connecting ring 3, thereby achieving quick disassembly and assembly, and thus completing a series of tasks.

[0020] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A multi-gear mechanical wireless remote controller structure, comprising a shell body (1), the top of the shell body (1) is provided with a plurality of buttons (2), characterized in that: The outer shell (1) and the connection of the button (2) are welded and fixed with the connecting ring (3), the connecting ring (3) is installed with the telescopic isolation sleeve composed of the lower sleeve ring (4) and the upper sleeve ring (5), the telescopic isolation sleeve is located outside the button (2) to form a separate physical isolation area, and the elastic telescopic assembly (6) is arranged between the two side inner walls of the lower sleeve ring (4) and the upper sleeve ring (5), the elastic telescopic assembly (6) is composed of the pressing column (61), the fixed ring (62), the compression spring (63) and the supporting ring (64).

2. The multi-gear mechanical wireless remote controller structure according to claim 1, characterized in that: The pressing column (61) of the elastic telescopic assembly (6) is vertically fixed on the two side inner walls of the upper sleeve ring (5) through the connecting piece, the fixed ring (62) is welded and fixed on the two side inner walls of the top edge of the lower sleeve ring (4) and is in sliding connection with the lower end of the pressing column (61), the supporting ring (64) is sleeved outside the bottom end of the pressing column (61), and the compression spring (63) is connected between the bottom of the fixed ring (62) and the top of the supporting ring (64) and is also sleeved outside the lower end of the pressing column (61).

3. A multi-gear mechanical wireless remote controller structure according to claim 2, characterized in that: The bottom end of the supporting ring (64) is provided with a pushing ring, and the pushing ring on the bottom end of the supporting ring (64) is connected with a locking screw through a threaded structure.

4. The multi-gear mechanical wireless remote controller structure according to claim 1, characterized in that: The two side inner walls of the lower end of the upper sleeve ring (5) are rollingly connected with the ball (7), and the two side outer walls of the lower sleeve ring (4) are provided with the strip-shaped ball groove (8) matched with the structure of the ball (7).

5. The multi-gear mechanical wireless remote control structure according to claim 1, characterized in that: The edge of the top end of the upper sleeve ring (5) is provided with the elastic pressing ring (9), and the elastic pressing ring (9) is located outside the top end of the button (2).

6. The multi-gear mechanical wireless remote control structure according to claim 1, characterized in that: The bottom edge of the lower sleeve ring (4) is provided with the clamping ring (10), and the inside of the connecting ring (3) is provided with the annular clamping groove matched with the structure of the clamping ring (10).