Glass panel structure for preventing mistaken touch of switch

By incorporating a sliding guide component and a latch into the touch switch, and combining this with multi-dimensional detection using sensors and a processor, the problem of accidental touches in touch switches has been solved, resulting in stable switching of switch states and a reduction in erroneous operations.

CN224083522UActive Publication Date: 2026-04-03CIXI DONGFANG GLASS CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-26
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Existing touch switches are prone to accidental touches, affecting the user experience, and their high sensitivity leads to unnecessary switching operations.

Method used

It adopts an anti-accidental touch switch glass panel structure, and changes the distance between the glass panel and the touch sensor by setting a first sliding guide component and a buckle. It combines the touch sensor, displacement sensor and central processing unit to perform multi-dimensional detection and flexibly switch the switch state.

Benefits of technology

It reduces accidental switch operation caused by accidental touch, improves the user experience, and ensures stable switching between the on and off states.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224083522U_ABST
    Figure CN224083522U_ABST
Patent Text Reader

Abstract

The utility model relates to a mistaken touch prevention switch glass panel structure which comprises a base, a first sliding guide assembly, a glass panel and a buckle, the buckle comprises a primary buckle and a secondary buckle, the secondary buckle is connected to the glass panel, the primary buckle is connected to the base, a central processing unit is installed in the base, and a touch sensor is elastically connected to the base in the direction from the base to the glass panel. The side, facing the glass panel, of the base is connected with a displacement sensor, the touch sensor and the displacement sensor are connected to the central processing unit, and the glass panel moves relative to the base through the first sliding guide assembly and is connected to the touch sensor by clamping the son buckle to the mother buckle. The distance between the glass panel and the touch sensor is changed through the arrangement of the first sliding guide assembly and the buckle, so that the switch is flexibly switched between the starting state and the stopping state, the starting and stopping states of the switch are detected in a multi-dimensional mode through the touch sensor, the displacement sensor and the central processing unit, and the situation that the use of the switch is affected by mistaken touch is reduced.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application relates to the field of glass panel technology, and in particular to a glass panel structure for an anti-accidental touch switch. Background Technology

[0002] Touch switches are an emerging product resulting from technological advancements. They generally refer to wall switches designed using touch-sensing chip principles. They are a replacement for traditional mechanical button wall switches, offering greater intelligence and ease of operation. Touch switches have unparalleled advantages over traditional switches and are a very popular decorative switch in home products.

[0003] Touch switches typically consist of an insulating panel and a touch sensor. Users turn the switch circuit on or off by touching the corresponding position on the insulating panel. In the current technology, touch switches are highly sensitive and are prone to accidental activation or deactivation when not needed, affecting the user experience. Utility Model Content

[0004] This application provides a glass panel structure for an anti-accidental touch switch.

[0005] The technical solution for the anti-accidental touch switch glass panel structure provided in this application is as follows:

[0006] An anti-accidental touch switch glass panel structure includes a base, a first sliding guide assembly, a glass panel, and a buckle. The base, the first sliding guide assembly, and the glass panel are connected sequentially. The buckle includes a female buckle and a female buckle. The female buckle is connected to the glass panel, and the female buckle is connected to the base corresponding to the female buckle. A central processing unit is installed inside the base. A touch sensor is elastically connected to the base in the direction from the glass panel. A displacement sensor is connected to the side of the base facing the glass panel. The touch sensor and the displacement sensor are connected to the central processing unit. The glass panel moves relative to the base through the first sliding guide assembly and is connected to the touch sensor by the female buckle being engaged by the female buckle.

[0007] Preferably, the first sliding guide assembly includes a first sleeve rod, a first inner rod, and a first spring. The first inner rod passes through the first sleeve rod. One end of the first spring is connected to the bottom of the first sleeve rod, and the other end is connected to the first inner rod. The first sleeve rod is connected to the glass panel, and the first inner rod is connected to the base.

[0008] Preferably, the touch sensor and the base are elastically connected by a second sliding guide assembly. The second sliding guide assembly includes a second sleeve rod, a second inner rod, and a second spring. The second inner rod passes through the second sleeve rod. One end of the second spring is connected to the bottom of the second sleeve rod, and the other end is connected to the second inner rod. The second sleeve rod is connected to the base, and the second inner rod is connected to the touch sensor.

[0009] Preferably, the base has a through hole, a collar is fitted onto the through hole, a hollow guide rod passes through the collar, the hollow guide rod is connected to the touch sensor, and the output line of the touch sensor is connected to the central processing unit through the interior of the hollow guide rod.

[0010] Preferably, the side of the glass panel facing away from the touch sensor has a sensing groove corresponding to the touch sensor.

[0011] In summary, this application includes at least one of the following beneficial technical effects:

[0012] 1. This application changes the distance between the glass panel and the touch sensor by setting a first sliding guide component and a buckle, so that the switch can flexibly switch between the two states of being enabled and disabled.

[0013] 2. By setting up touch sensors, displacement sensors, and a central processing unit, the on / off status of the switch is detected from multiple dimensions, reducing the impact of accidental touches on the use of the switch. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the overall structure of a preferred embodiment of this application.

[0015] Figure 2 This is a schematic diagram of the overall structure from another angle of a preferred embodiment of this application.

[0016] Figure 3 This is a schematic diagram of the glass panel structure in a preferred embodiment of this application.

[0017] Figure 4 yes Figure 3 Cross-sectional view along AA.

[0018] Figure 5 This is a schematic diagram of the structure of the second sliding guide component in a preferred embodiment of this application.

[0019] Explanation of reference numerals in the attached drawings: 1. Base; 11. Through hole; 12. Collar; 13. Hollow guide rod; 2. First sliding guide assembly; 21. First sleeve rod; 22. First inner rod; 23. First spring; 3. Glass panel; 31. Sensing groove; 4. Buckle; 41. Female buckle; 42. Female buckle; 5. Central processing unit; 6. Touch sensor; 7. Displacement sensor; 8. Second sliding guide assembly; 81. Second sleeve rod; 82. Second inner rod; 83. Second spring. Detailed Implementation

[0020] The present application will be further described in detail below with reference to the accompanying drawings.

[0021] This application provides a glass panel structure for an anti-accidental touch switch, such as... Figures 1 to 5 As shown, the device includes a base 1, a first sliding guide assembly 2, a glass panel 3, and a buckle 4. The base 1, the first sliding guide assembly 2, and the glass panel 3 are connected in sequence. The buckle 4 includes a female buckle 42 and a female buckle 41. The female buckle 41 is connected to the glass panel 3, and the female buckle 42 is connected to the base 1 corresponding to the female buckle 41. A central processing unit 5 is installed inside the base 1. A touch sensor 6 is elastically connected from the base 1 to the glass panel 3. A displacement sensor 7 is connected to the side of the base 1 facing the glass panel 3. The touch sensor 6 and the displacement sensor 7 are connected to the central processing unit 5. The touch sensor 6 is used to sense touch signals, and the displacement sensor 7 is used to detect the displacement signal of the glass panel 3 relative to the base 1. The central processing unit 5 is used to receive the touch signal from the touch sensor 6 and the displacement signal from the displacement sensor 7, and to control the switching circuit according to the touch signal and the displacement signal. The glass panel 3 moves relative to the base 1 through the first sliding guide assembly 2 and is connected to the touch sensor 6 by the female buckle 42 through the female buckle 41.

[0022] This application discloses a glass panel structure for an anti-accidental touch switch. By setting a first sliding guide component 2 and a latch 4, the distance between the glass panel 3 and the touch sensor 6 is changed, allowing the switch to flexibly switch between on and off states. By setting the touch sensor 6, displacement sensor 7, and central processing unit 5, the on / off state of the switch is detected from multiple dimensions, reducing the impact of accidental touches on switch operation. Specifically, in the off state, the first sliding guide component 2 supports the glass panel 3, creating a certain distance between it and the touch sensor 6. In the event of an accidental touch, the displacement sensor 7 may receive a displacement signal on the side of the glass panel 3 facing away from the touch sensor 6, but a distance still exists between the glass panel 3 and the touch sensor 6. If the touch sensor 6 cannot receive a touch signal, the central processing unit 5 will not change the state of the switch circuit if it determines that the displacement value of the glass panel 3 in the displacement signal is less than a preset value and there is no touch signal. The preset displacement value is the minimum distance required for the male buckle 41 to engage with the female buckle 42 when the switch is not activated. When the switch needs to be activated, the operator presses the glass panel 3 until it comes into contact with the touch sensor 6, and the male buckle 41 engages with the female buckle 42 to fix the glass panel 3, keeping it on the windowsill that is in contact with the touch sensor 6. The displacement sensor 7 detects that the displacement distance of the glass panel 3 is not less than the preset value. The operator can control the switch by touching the glass panel 3 to turn the connected electrical appliances on or off.

[0023] There are four first sliding guide components 2 and four buckles 4. The four first sliding guide components 2 and four buckles 4 are evenly distributed so that the glass panel 3 can be smoothly pressed against the touch sensor 6 and firmly fixed on the base 1.

[0024] like Figures 4 to 5As shown, the first sliding guide assembly 2 includes a first sleeve rod 21, a first inner rod 22, and a first spring 23. The first inner rod 22 passes through the first sleeve rod 21. One end of the first spring 23 is connected to the bottom of the first sleeve rod 21, and the other end is connected to the first inner rod 22. The first sleeve rod 21 is connected to the glass panel 3, and the first inner rod 22 is connected to the base 1. The touch sensor 6 is elastically connected to the base 1 through a second sliding guide assembly 8. The second sliding guide assembly 8 includes a second sleeve rod 81, a second inner rod 82, and a second spring 83. The second inner rod 82 passes through the second sleeve rod 81. One end of the second spring 83 is connected to the bottom of the second sleeve rod 81, and the other end is connected to the second inner rod 82. The second sleeve rod 81 is connected to the base 1, and the second inner rod 82 is connected to the touch sensor 6. Specifically, the buckle 4 is a press-type self-locking buckle 4. The glass panel 3 moves towards the touch sensor 6 under force, which drives the first sleeve rod 21 to cooperate with the first inner rod 22 to compress the first spring 23. When the glass panel 3 abuts against the touch sensor 6, it drives the second sleeve rod 81 to cooperate with the second inner rod 82 to compress the second spring 83 until the male buckle 41 is engaged with the female buckle 42. When the switch needs to be turned off, press the glass panel 3 to make the male buckle 41 disengage from the female buckle 42. Under the action of the first sliding guide assembly 2 and the second sliding guide assembly 8, the glass panel 3 returns to a position with a gap between it and the touch sensor 6. The male buckle 41 and the female buckle 42 are conventional fastening parts, and their specific operating principle will not be described in detail.

[0025] There are four second sliding guide components 8, which are evenly arranged so that the touch sensor 6 can move smoothly when pressed by the glass panel 3, thereby ensuring the touch effect.

[0026] A through hole 11 is provided on the base 1, and a collar 12 is fitted on the through hole 11. A hollow guide rod 13 is inserted through the collar 12. The hollow guide rod 13 is connected to the touch sensor 6. The output line of the touch sensor 6 is connected to the central processing unit 5 through the inside of the hollow guide rod 13. A sensing groove 31 is provided on the side of the glass panel 3 facing away from the touch sensor 6, corresponding to the touch sensor 6. The size of the sensing groove 31 corresponds to the maximum contact area between the touch sensor 6 and the glass panel 3, and is used to indicate the touch position of the switch.

[0027] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A mistaken touch prevention switch glass panel structure is characterized in that: It comprises a base (1), a first sliding guide assembly (2), a glass panel (3) and a buckle (4), the base (1), the first sliding guide assembly (2) and the glass panel (3) are connected in turn, the buckle (4) comprises a female buckle (42) and a male buckle (41), the male buckle (41) is connected on the glass panel (3), the female buckle (42) is connected on the base (1) corresponding to the male buckle (41), a central processing unit (5) is installed inside the base (1), a touch sensor (6) is elastically connected from the base (1) to the glass panel (3), a displacement sensor (7) is connected on one side of the base (1) facing the glass panel (3), the touch sensor (6) and the displacement sensor (7) are connected on the central processing unit (5), the glass panel (3) moves relative to the base (1) through the first sliding guide assembly (2), and is connected to the touch sensor (6) by clamping the male buckle (41) to the female buckle (42).

2. The mistaken touch prevention switch glass panel structure according to claim 1 is characterized in that: The first sliding guide assembly (2) comprises a first sleeve rod (21), a first inner rod (22) and a first spring (23), the first inner rod (22) is arranged in the first sleeve rod (21), one end of the first spring (23) is connected to the bottom of the first sleeve rod (21), and the other end is connected to the first inner rod (22), the first sleeve rod (21) is connected to the glass panel (3), and the first inner rod (22) is connected to the base (1).

3. The mistaken touch prevention switch glass panel structure according to claim 1 is characterized in that: The touch sensor (6) and the base (1) are elastically connected through a second sliding guide assembly (8), the second sliding guide assembly (8) comprises a second sleeve rod (81), a second inner rod (82) and a second spring (83), the second inner rod (82) is arranged in the second sleeve rod (81), one end of the second spring (83) is connected to the bottom of the second sleeve rod (81), and the other end is connected to the second inner rod (82), the second sleeve rod (81) is connected to the base (1), and the second inner rod (82) is connected to the touch sensor (6).

4. The mistaken touch prevention switch glass panel structure according to claim 1 is characterized in that: A through hole (11) is formed in the base (1), a sleeve ring (12) is arranged on the through hole (11), a hollow guide rod (13) is arranged in the sleeve ring (12), the hollow guide rod (13) is connected in the touch sensor (6), and output lines of the touch sensor (6) are connected to the central processing unit (5) through the inside of the hollow guide rod (13).

5. The mistaken touch prevention switch glass panel structure according to claim 1 is characterized in that: The side of the glass panel (3) facing away from the touch sensor (6) is provided with an induction groove (31) corresponding to the touch sensor (6).