Inductive control vibrator
By setting a signal sensor on the vibrator to detect the displacement or deformation of the pressing part, the problem of traditional vibration products being unable to steplessly adjust the frequency is solved, realizing real-time vibration feedback to meet user needs and improving the user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENZHEN LILING INTELLIGENT TECHNOLOGY CO LTD
- Filing Date
- 2025-04-22
- Publication Date
- 2026-04-14
AI Technical Summary
Traditional vibration products cannot steplessly adjust the vibration frequency according to user needs, resulting in a poor user experience.
Signal sensors are used to detect the displacement or deformation of the pressing part, and the vibration feedback is controlled by the force applied by the user. These sensors include pressure sensors, photoelectric sensors, electromagnetic sensors, and air pressure sensors to achieve different levels of vibration feedback.
It enables real-time vibration feedback based on user needs, improving user experience and feedback matching, making it more convenient to use.
Smart Images

Figure CN224114471U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of vibrators, and specifically relates to a sensor-controlled vibrator. Background Technology
[0002] Traditional vibration products typically control vibration by pressing a button, and select the vibration frequency using a setting button.
[0003] This type of vibration product is not convenient for stepless adjustment of its vibration frequency according to the user's needs, and cannot provide different levels of vibration feedback according to the user's needs, resulting in a poor user experience. Utility Model Content
[0004] To address the aforementioned problems, the primary objective of this invention is to provide a sensor-controlled vibrator that uses a signal sensor to capture user needs and then provides different levels of control feedback based on the force applied by the user.
[0005] Another objective of this invention is to provide a sensor-controlled vibrator that can better match user needs and improve the user experience.
[0006] To achieve the above objectives, the technical solution of this utility model is as follows:
[0007] This utility model provides a sensor-controlled vibrator, including: a housing, a control module, a pressing part, and a signal sensor capable of detecting the deformation or displacement of the pressing part. The pressing part is mounted on the housing, and the signal sensor is disposed on or inside the housing and connected to the control module.
[0008] Furthermore, the signal sensor includes one of a pressure sensor, a photoelectric sensor, an electromagnetic sensor, and a barometric pressure sensor.
[0009] Furthermore, the pressing part is disposed on the housing and is an integral structure with the housing;
[0010] The signal sensor is a pressure sensor capable of sensing the deformation of the pressing part. The pressure sensor is mounted on the housing. An installation groove is provided on the inner wall of the housing. The signal sensor is placed in the installation groove and is in contact with the bottom wall of the installation groove.
[0011] Alternatively, the signal sensor may be a pressure sensor capable of sensing the deformation of the button section of the housing. The pressure sensor is installed inside the housing, and a force transmission rod is also provided inside the housing. One end of the force transmission rod is connected to the inner wall of the housing, and the other end is connected to the signal sensor.
[0012] Furthermore, the pressing part is a button, the button is movably mounted on the housing, and the signal sensor can detect the displacement of the button.
[0013] The signal sensor is a pressure sensor, which is mounted on the button and connected to the control module.
[0014] Alternatively, the signal sensor may be a photoelectric sensor, which is mounted and connected to the control module.
[0015] Alternatively, the signal sensor may be an electromagnetic sensor, and the button may be equipped with a magnetic component that cooperates with the electromagnetic sensor. The electromagnetic sensor may be installed and connected to the control module and positioned opposite to the magnetic component.
[0016] Alternatively, the signal sensor may be a barometric pressure sensor, and the inner side of the button may be provided with a barometric pressure body having a sealed cavity. The barometric pressure sensor may be disposed in the sealed cavity to detect the barometric pressure of the sealed cavity, and the barometric pressure sensor may be connected to the control module.
[0017] Furthermore, the housing is provided with an elastic cantilever, one end of which is fixedly connected to the housing and the other end is connected to the button;
[0018] Alternatively, a spring is connected to the button, and one end of the spring abuts against or is connected to the button;
[0019] Alternatively, a rubber sleeve may be fitted onto the housing, and the button may be mounted on the rubber sleeve.
[0020] Furthermore, a battery is also provided inside the housing, and the battery is electrically connected to the control module.
[0021] The beneficial effects of this utility model are as follows: Compared with the prior art, this application sets a signal sensor on the vibrator. The signal sensor senses the user's control force by detecting the displacement or deformation of the pressing part, and then can provide feedback on the user's control force through displacement. This makes it easier for the vibrator to make different degrees of vibration according to the user's control force, and facilitates the user to obtain different levels of control feedback. At the same time, the feedback obtained by the user is more timely, the matching degree is better, and the use is more convenient, which can improve the user experience. Attached Figure Description
[0022] Figure 1 This is a structural diagram of the first implementation method of the vibrator.
[0023] Figure 2 This is a structural diagram of the second implementation method of the vibrator.
[0024] Figure 3 This is a structural diagram of the third implementation method of the vibrator.
[0025] Figure 4 This is a structural diagram of the fourth implementation method of the vibrator.
[0026] Figure 5 This is a structural diagram of the fifth implementation method of the vibrator.
[0027] Figure 6 This is a structural diagram of the sixth implementation method of the vibrator.
[0028] In the diagram: 1. Housing; 2. Mounting slot; 3. Magnetic component; 4. Control module; 5. Signal transmission module; 6. Battery; 7. Signal sensor; 8. Force transmission rod; 9. Pressing part; 10. Elastic cantilever; 11. Photoelectric sensor; 12. Electromagnetic sensor; 13. Pressure bulb; 14. Pressure sensor. Detailed Implementation
[0029] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.
[0030] To achieve the above objectives, the technical solution of this utility model is as follows:
[0031] See Figure 1-6 This embodiment provides a sensor-controlled vibrator, including: a housing 1, a control module 4, a pressing part 9, and a signal sensor capable of detecting the deformation or displacement of the pressing part 9. The control module 4 is disposed inside the housing 1; the signal sensor is disposed on or inside the housing 1 and connected to the control module 4.
[0032] Specifically, the control module 4 uses a PCB board with a main control chip, which can receive the pressure signal collected by the signal sensor, control the motor of the vibrator to work, and provide vibration feedback.
[0033] Furthermore, the signal sensor includes one of the following: pressure sensor, photoelectric sensor, electromagnetic sensor, or barometric pressure sensor.
[0034] Further, see Figure 1 The pressing part 9 is located on the housing 1 and is an integral structure with the housing 1. The signal sensor adopts a pressure sensor 7 that can sense the deformation of the pressing part. The pressure sensor 7 is installed on the inner and outer walls of the pressing part of the housing 1. A mounting groove 2 is provided on the inner wall of the pressing part. The pressure sensor 7 is set in the mounting groove 2 and is attached to the bottom wall of the mounting groove 2.
[0035] Further, see Figure 2The pressure sensor 7 is installed inside the housing 1 and is mounted on the control module 4. A force transmission rod 8 is also installed inside the housing 1, with one end connected to the inner wall of the housing 1 and the other end connected to the pressure sensor 7. The user can apply pressure by gripping the pressing part of the housing 1, and the pressure is transmitted to the pressure sensor 7 via the force transmission rod 8, allowing the pressure sensor 7 to sense the pressure applied by the user.
[0036] In both of the above implementation methods, the housing 1 does not have a separate button. By pressing the pressing part of the housing 1, the housing 1 deforms and triggers the pressure sensor 7.
[0037] In another implementation, the pressing part uses a button that can be positioned relative to the housing 1. The button 9 is movably mounted on the housing 1. The signal sensor can also trigger the signal by detecting the displacement of the button 9. Specifically, the signal sensor can be one of a pressure sensor 7, a photoelectric sensor 11, an electromagnetic sensor 12, or a barometric pressure sensor 14. When the user presses the button, the feedback level can be controlled by the pressing force. The greater the pressing force, the greater the displacement of the button. Different signal triggers are achieved by detecting the displacement of the button, thus realizing different levels of control feedback. The implementation method is as follows:
[0038] 1. See Figure 3 When the signal sensor is a pressure sensor 7, the pressure sensor 7 is set on the button 9 and connected to the control module 4. When the user presses the button 9, the greater the pressing force, the greater the displacement of the button, and correspondingly, the pressure sensor 7 detects a different signal.
[0039] 2. See Figure 4 When the signal sensor uses photoelectric sensor 11, the photoelectric sensor is installed and connected to the control module 4 and set opposite to the button 9. It can detect the position of the button 9. When the button 9 moves, the photoelectric sensor 11 detects the displacement through position feedback.
[0040] 3. See Figure 5 When the signal sensor uses an electromagnetic sensor 12, the housing 1 is equipped with a movable button 9. The button 9 is equipped with a magnetic component 3 that cooperates with the electromagnetic sensor 12. The magnetic component 3 is a magnet or a metal with magnetism. The electromagnetic sensor 12 is preferably a Hall sensor, which is installed and connected to the control module 4 and is set opposite to the magnetic component. It can sense the movement displacement of the button 9 by sensing the distance between the magnetic component and the button.
[0041] 4. See Figure 6When the signal sensor uses a pressure sensor 14, the housing 1 is equipped with a movable button 9. The inner side of the button 9 is provided with a pressure body 13 with a sealed cavity. The pressure sensor 14 is located in the sealed cavity and connected to the control module 4. When the button 9 is moved, it will compress the pressure body 13, and the air pressure in the sealed cavity will change, which will be detected by the pressure sensor 14. The greater the displacement of the button 9, the greater the air pressure change detected by the pressure sensor 14.
[0042] All four implementation methods described above trigger the sensor to generate a signal by pressing button 9. When button 9 is pressed, it moves; the greater the pressing force, the greater the displacement of button 9. The pressure sensor can directly detect the pressing force and control the output of different control signals to the controlled end based on the magnitude of the pressing force, thereby controlling the feedback level of the feedback module to varying degrees. The photoelectric sensor and electromagnetic sensor can detect the displacement of button 9 and output different control signals to the controlled end based on the displacement, thereby controlling the feedback level of the feedback module to varying degrees. The air pressure sensor can detect the pressure within the air pressure unit; the greater the displacement of button 9, the greater the compression of the air pressure unit, and the greater the pressure within the air pressure unit. Therefore, the air pressure sensor can output different control signals to the controlled end based on the pressure detected, thereby controlling the feedback level of the feedback module to varying degrees.
[0043] Furthermore, an elastic cantilever 10 is provided on the housing 1. One end of the elastic cantilever 10 is fixedly connected to the housing 1, and the other end is connected to the button 9. Since the suspended end of the elastic cantilever 10 is connected to the button 9, when the button 9 is pressed, the button 9 can move through the elastic cantilever 10, causing displacement and triggering the sensor; when the button 9 is released, the button 9 returns to its elastic state based on the elasticity of the elastic cantilever 10.
[0044] In another implementation, a spring can be used to replace the elastic cantilever 10. One end of the spring abuts against or connects to the button 9, and the other end abuts against or connects to the PCB board or housing of the control module. When the button 9 is pressed, the button 9 can be displaced by compressing the spring, triggering the sensor; when the button is released, the button resets based on the elastic deformation of the spring.
[0045] In another implementation, a rubber sleeve is fitted on the housing 1, and the button 9 is fixedly installed on the rubber sleeve. When pressed, the rubber sleeve and the button 9 move together. When the pressing force is removed, the button 9 returns to its original position along with the rubber sleeve.
[0046] Furthermore, a battery 6 is also installed inside the housing 1, and the battery is electrically connected to the control module 4.
[0047] In this embodiment, when the user operates the vibrator, he only needs to apply pressure by gripping the housing 1 or pressing the button to trigger the deformation of the pressing part of the housing or the displacement of the button, thereby triggering the signal sensor. The greater the user's pressing pressure or gripping force, the greater the deformation or displacement, and thus the control module 4 can feed back different electrical signals according to the force applied by the user, thereby controlling the vibrator to emit vibrations of different vibration frequencies.
[0048] Compared with existing technologies, this embodiment can provide users with different levels of control feedback according to their needs; at the same time, adjusting the feedback intensity by applying force is more timely, convenient, and has better matching, making it easier to use and improving the user experience.
[0049] The above are merely preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A sensor-controlled vibrator, characterized in that, include: The device includes a housing, a control module, a pressing part, and a signal sensor capable of detecting the deformation or displacement of the pressing part. The pressing part is mounted on the housing, and the signal sensor is disposed on or inside the housing and connected to the control module.
2. The induction-controlled vibrator as described in claim 1, characterized in that, The signal sensor includes one of the following: a pressure sensor, a photoelectric sensor, an electromagnetic sensor, and a barometric pressure sensor.
3. The induction-controlled vibrator as described in claim 2, characterized in that, The pressing part is disposed on the housing and is an integral structure with the housing; The signal sensor is a pressure sensor capable of sensing the deformation of the pressing part. The pressure sensor is mounted on the housing. An installation groove is provided on the inner wall of the housing. The signal sensor is placed in the installation groove and is in contact with the bottom wall of the installation groove. Alternatively, the signal sensor may be a pressure sensor capable of sensing the deformation of the button section of the housing. The pressure sensor is installed inside the housing, and a force transmission rod is also provided inside the housing. One end of the force transmission rod is connected to the inner wall of the housing, and the other end is connected to the signal sensor.
4. The induction-controlled vibrator as described in claim 2, characterized in that, The pressing part is a button, the button is movably mounted on the housing, and the signal sensor can detect the displacement of the button. The signal sensor is a pressure sensor, which is mounted on the button and connected to the control module. Alternatively, the signal sensor may be a photoelectric sensor, which is mounted and connected to the control module. Alternatively, the signal sensor may be an electromagnetic sensor, and the button may be equipped with a magnetic component that cooperates with the electromagnetic sensor. The electromagnetic sensor may be installed and connected to the control module and positioned opposite to the magnetic component. Alternatively, the signal sensor may be a barometric pressure sensor, and the inner side of the button may be provided with a barometric pressure body having a sealed cavity. The barometric pressure sensor may be disposed in the sealed cavity to detect the barometric pressure of the sealed cavity, and the barometric pressure sensor may be connected to the control module.
5. A sensor-controlled vibrator as described in claim 4, characterized in that, The housing is provided with an elastic cantilever, one end of which is fixedly connected to the housing and the other end is connected to the button; Alternatively, a spring is connected to the button, and one end of the spring abuts against or is connected to the button; Alternatively, a rubber sleeve may be fitted onto the housing, and the button may be mounted on the rubber sleeve.
6. The induction-controlled vibrator as described in claim 1, characterized in that, A battery is also installed inside the housing, and the battery is electrically connected to the control module.