Inductive control feedback remote control system

By introducing a signal sensing module into the remote control, different control signals are output based on the force applied by the user, solving the problem that traditional remote controls cannot provide different levels of feedback, and achieving a better user experience and feedback matching.

CN224035983UActive Publication Date: 2026-03-24SHENZHEN LILING INTELLIGENT TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-22
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

Traditional remote controls cannot provide different levels of feedback according to user needs, and cannot meet the control requirements of smart products.

Method used

By introducing a signal sensing module into the remote control, different control signals are output based on the magnitude of the force applied by the user, thereby enabling different levels of control over the feedback modules, including vibrators, sound generators, heaters, etc.

Benefits of technology

It enables feedback to be controlled according to different levels of user needs, making feedback more timely and relevant, and improving the user experience.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model discloses an inductive control feedback remote control system, and belongs to the field of remote controllers. Comprising a remote control end and a controlled end, the remote control end comprises a first control module, a signal sensing module and a signal sending module, and the controlled end comprises a signal receiving module, a second control module and a feedback module; the signal sensing module is connected with the first control module, the first control module is connected with the signal sending module, the signal sending module is connected with the signal receiving module, the signal receiving module is connected with the second control module, and the second control module is connected with the feedback module. Compared with the prior art, the signal sensing module is arranged at the remote control end to sense the force applied by a user, feedback of the feedback module is controlled through the force, and the user can conveniently obtain control feedback of different degrees; meanwhile, the feedback obtained by the user is more timely, the matching degree is better, the use is more convenient, and the use experience of the user can be improved.
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Description

TECHNICAL FIELD

[0001] The utility model belongs to the field of remote controller, especially relates to an inductive control feedback remote control system. BACKGROUND

[0002] Traditional remote controller generally triggers control signal by capturing the action of user pressing the key, sends the control signal to the controlled party, and controls the feedback of the controlled party. The signal generation process is as follows: when the user presses a certain key, the conductive material contacts, the circuit is closed, the resistance or voltage changes, and this change is usually detected by a resistance or capacitance sensor, thereby generating a control signal. Different control signals can be generated when different keys are pressed, thereby being able to control the switching signal to realize the function of remote control. This kind of remote controller is generally used to control the product to switch different functions or states.

[0003] With the development of intelligent products, more products can provide different degrees of feedback according to the user's needs, such as a vibrator that can steplessly adjust its vibration frequency according to the user's needs, and a sound generator that can feedback sound changes according to the user's needs. The progress of such products also puts higher requirements on the function of the remote controller. The single signal switching function cannot meet the user's remote control needs for intelligent products. SUMMARY

[0004] To solve the above problems, the primary purpose of the utility model is to provide an inductive control feedback remote control system, which captures the user's needs through a signal induction module, and then can perform different degrees of control feedback according to the force exerted by the user.

[0005] Another purpose of the utility model is to provide an inductive control feedback remote control system that can better match the user's needs and improve the user's experience.

[0006] To achieve the above purpose, the technical scheme of the utility model is as follows:

[0007] The utility model provides an inductive control feedback remote control system, which comprises:

[0008] a remote control end and a controlled end,

[0009] The remote control end comprises a first control module, a signal induction module and a signal sending module, and the controlled end comprises a signal receiving module, a second control module and a feedback module.

[0010] The signal induction module is connected with the first control module, the first control module is connected with the signal sending module, the signal sending module is connected with the signal receiving module, the signal receiving module is connected with the second control module, and the second control module is connected with the feedback module.

[0011] Further, the signal sending module and the signal receiving module can adopt one of wired communication or wireless communication.

[0012] Further, the wireless communication mode includes one of Bluetooth transmission, WIFI, infrared transmission, radio frequency, Zigbee, LoRa, and mobile communication network.

[0013] Further, the feedback module is one of a vibrator, a sound generator, and a heater.

[0014] Further, the remote control end further comprises a battery, and the battery is electrically connected with the first control module.

[0015] Further, the signal sensing module is one of a pressure sensor, a photoelectric sensor, an electromagnetic sensor, and an air pressure sensor.

[0016] Further, the remote control end has a shell, the signal sensing module adopts a pressure sensor capable of sensing the deformation of the pressed part of the shell, the pressure sensor is installed on the shell, an installation groove is formed on the inner wall of the shell, the signal sensing module is arranged in the installation groove and is attached to the bottom wall of the installation groove.

[0017] Alternatively, the signal sensing module adopts a pressure sensor capable of sensing the deformation of the pressed part of the shell, the pressure sensor is installed in the shell, and a force transmission rod is further arranged in the shell, one end of the force transmission rod is connected with the inner wall of the shell, and the other end is connected with the signal sensing module.

[0018] Further, the remote control end has a shell, the shell is installed with a movable key, and the signal sensing module can detect the displacement of the key;

[0019] The signal sensing module adopts a pressure sensor, the pressure sensor is arranged on the key and is connected with the control module;

[0020] Alternatively, the signal sensing module adopts a photoelectric sensor, the photoelectric sensor is installed and connected on the control module;

[0021] Alternatively, the signal sensing module adopts an electromagnetic sensor, the key is installed with a magnetic part matched with the electromagnetic sensor, the electromagnetic sensor is installed and connected on the control module, and is arranged opposite to the magnetic part;

[0022] Alternatively, the signal sensing module adopts an air pressure sensor, the inside of the key is provided with an air pressure body with a closed cavity, the air pressure sensor is arranged in the closed cavity for detecting the air pressure of the closed cavity, and the air pressure sensor is connected with the control module.

[0023] Further, the shell is provided with an elastic suspension arm, one end of the elastic suspension arm is fixedly connected with the shell, and the other end is connected with the button.

[0024] Or, the spring is connected on the button, one end of the spring is abutted or connected with the button.

[0025] Or, the shell is sleeved with a rubber sleeve, and the button is mounted on the rubber sleeve.

[0026] The beneficial effects of the present application are: compared with the prior art, the signal sensing module is arranged on the remote control end to capture the user's demand, the signal sensing module senses the user's control force by detecting the displacement or deformation size of the button, and then different control signals can be output to the controlled end according to the size of the force applied by the user, so as to control the feedback degree of the feedback module in different degrees, and the user can obtain different degrees of control feedback conveniently; at the same time, the user can also adjust the feedback intensity of the feedback module by applying the force, the feedback is more timely, the matching degree is better, the use is more convenient, and the use experience of the user can be improved. BRIEF DESCRIPTION OF DRAWINGS

[0027] Figure 1 is a system framework diagram of embodiment 1.

[0028] Figure 2 is a system framework diagram of embodiment 2.

[0029] Figure 3 is a structure schematic diagram of the first implementation manner of the remote control end of embodiment 1.

[0030] Figure 4 is a structure schematic diagram of the second implementation manner of the remote control end of embodiment 1.

[0031] Figure 5 is a structure schematic diagram of the third implementation manner of the remote control end of embodiment 1.

[0032] Figure 6 is a structure schematic diagram of the fourth implementation manner of the remote control end of embodiment 1.

[0033] Figure 7 is a structure schematic diagram of the fifth implementation manner of the remote control end of embodiment 1.

[0034] Figure 8 is a structure schematic diagram of the sixth implementation manner of the remote control end of embodiment 1.

[0035] In the figure: 1, shell; 2, mounting groove; 3, magnetic piece; 4, first control module; 5, signal sending module; 6, battery; 7, pressure sensor; 8, force transmission rod; 9, button; 10, elastic cantilever; 11, photoelectric sensor; 12, electromagnetic sensor; 13, air pressure main body; 14, air pressure sensor. DETAILED DESCRIPTION

[0036] In order to make the purpose, technical scheme and advantages of the utility model more clearly, the following will be further described in detail with the help of the drawings and examples. It should be understood that the specific examples described here are only used to explain the utility model, and are not used to limit the utility model.

[0037] In order to achieve the above-mentioned purpose, the technical scheme of the utility model is as follows:

[0038] Example 1:

[0039] Referring to Figure 1 , 3 8, the embodiment provides a force induction control feedback one-way remote control system,

[0040] Specifically, referring to Figure 1 , the system comprises:

[0041] Remote control end, controlled end,

[0042] The remote control end comprises a first control module 4, a signal sensing module and a signal sending module 5, and the controlled end comprises a signal receiving module, a second control module and a feedback module.

[0043] The signal sensing module is connected with the first control module 4, the first control module 4 is connected with the signal sending module 5, the signal sending module 5 is connected with the signal receiving module, the signal receiving module is connected with the second control module, and the second control module is connected with the feedback module.

[0044] Specifically, the first control module and the second control module both adopt a PCB board with a main control chip, the first control module can receive the pressure signal collected by the pressure sensor and transmit the pressure signal to the second control module of the controlled product in a wired or wireless manner, and the second control module controls the motor, sound generator and heater of the controlled product to make feedback.

[0045] Further, the signal sending module 5 and the signal receiving module can adopt one of wired communication or wireless communication.

[0046] Further, the wireless communication mode comprises one of Bluetooth transmission, WIFI, infrared transmission, radio frequency, Zigbee, LoRa and mobile communication network, and the wireless signal transmission is realized by being connected with the first control module and the second control module.

[0047] Further, the feedback module is one of a vibrator, a sound generator, and a heater.

[0048] Further, the remote control end further comprises a battery 6, and the battery 6 is electrically connected with the first control module 4.

[0049] Further, the signal sensing module is one of a pressure sensor, a photoelectric sensor, an electromagnetic sensor, and an air pressure sensor.

[0050] Further, referring to Figure 3 , the remote control end further comprises a shell, the signal sensing module adopts the pressure sensor 7, the pressure sensor 7 is installed on the inner and outer walls of the shell 1, the inner wall of the shell 1 is provided with a mounting groove 2, the pressure sensor 7 is arranged in the mounting groove 2 and is attached to the bottom wall of the mounting groove 2.

[0051] Further, referring to Figure 4 , the remote control end further comprises a shell, the signal sensing module adopts the pressure sensor 7, the pressure sensor 7 is installed in the shell 1, the pressure sensor 7 is arranged on the control module 4, the shell 1 is further provided with a force transmission rod 8, one end of the force transmission rod 8 is connected with the inner wall of the shell 1, and the other end is connected with the pressure sensor 7. The user can exert pressure by holding the shell 1, and the force transmission rod 8 can conduct the pressure to the pressure sensor 7, so as to facilitate the pressure sensor 7 to sense the pressure exerted by the user.

[0052] In the above two implementation manners, the shell 1 is not provided with a separate button, and the shell 1 at the position corresponding to the pressure sensor 7 is pressed to deform the shell 1 and trigger the pressure sensor 7.

[0053] In another implementation manner, the shell 1 is provided with a button 9 which can move, and the signal sensing module can also be triggered by displacement detection of the button 9, specifically: the signal sensing module can adopt one of the pressure sensor 7, the photoelectric sensor 11, the electromagnetic sensor 12, and the air pressure sensor 14, when the user presses the button, the pressing force can be used to control the feedback degree, the greater the pressing force, the greater the displacement of the button, and different signal triggers are realized by detecting the displacement of the button, and different degrees of control feedback are realized, and the implementation manner is as follows:

[0054] 1. Referring to Figure 5 , when the signal sensing module adopts the pressure sensor 7, the pressure sensor 7 is arranged on the button 9 and is connected with 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 also detects different signals.

[0055] 2. Referring to Figure 6When the signal sensing module adopts the photoelectric sensor 11, the photoelectric sensor is installed and connected to the control module 4, is arranged opposite to the button 9, can detect the position of the button 9, the button 9 is active, the photoelectric sensor 11 detects the displacement size through position feedback.

[0056] 3, see Figure 7 When the signal sensing module adopts the electromagnetic sensor 12, the shell 1 is installed with the movable button 9, the button 9 is installed with the magnetic piece 3 matched with the electromagnetic sensor 12, the magnetic piece 3 adopts the magnet or the metal with magnetism, the electromagnetic sensor 12 is preferably the hall sensor, is installed and connected to the control module 4, and is arranged opposite to the magnetic piece, can be inductive between the magnetic piece and the spacing, and further inductive the active displacement of the button 9.

[0057] 4, see Figure 8 When the signal sensing module adopts the air pressure sensor 14, the shell 1 is installed with the movable button 9, the inside of the button 9 is provided with the air pressure main body 13 with a closed cavity, the air pressure sensor 14 is arranged in the closed cavity, is connected with the control module 4, when the button 9 is active, the air pressure main body 13 is compressed, the air pressure in the closed cavity changes, is detected by the air pressure sensor 14, the greater the active displacement of the button 9, the greater the air pressure change detected by the air pressure sensor 14.

[0058] The above four kinds of implementation manners are all through pressing the button 9 to trigger the sensor to generate signal. When pressing the button 9, the button 9 can be active, the more the pressing force, the greater the displacement of the button 9, wherein the pressure sensor can directly detect the pressing force, the size of the pressing force is controlled to output different control signals to the controlled end, to control the feedback degree of the feedback module in different degrees; the photoelectric sensor, the electromagnetic sensor can detect the displacement size of the button 9, the size of the position is output to the controlled end to control the feedback degree of the feedback module in different degrees; the air pressure sensor can detect the pressure in the air pressure main body 13, the greater the displacement of the button 9, the greater the compression of the air pressure main body 13, the greater the pressure in the air pressure main body 13, and further the pressure detected by the air pressure sensor can be output to the controlled end to control the feedback degree of the feedback module in different degrees.

[0059] Further, the shell 1 is provided with the elastic suspension arm 10, one end of the elastic suspension arm 10 is fixedly connected with the shell 1, the other end is connected with the button 9. Since the end of the elastic suspension arm 10 is connected with the button 9, when pressing the button 9, the button 9 can be active through the elastic suspension arm 10, displacement occurs, triggers the sensor; when the button 9 is released, the button 9 is reset based on the elasticity of the elastic suspension arm 10.

[0060] In another implementation, the elastic suspension arm 10 can also be replaced by a spring, one end of the spring abutting or connected with the button 9, and the other end abutting or connected with the PCB board or the shell of the control module. When the button 9 is pressed, the button 9 can be displaced by compressing the spring to trigger the sensor; when the button is released, the button resets based on the elastic deformation of the spring.

[0061] In yet another implementation, a rubber sleeve is provided on the shell 1, and the button 9 is fixedly installed on the rubber sleeve. When pressed, the rubber sleeve moves together with the button 9, and when the pressing force is removed, the button 9 resets together with the rubber sleeve.

[0062] In the embodiment, when the user manipulates the remote control end, the user only needs to apply pressure or press the button by holding the shell 1 to trigger the sensor. The greater the pressing force or holding force applied by the user, the greater the displacement of the button 9, and thus different electrical signals can be fed back to the control module 4 according to the size of the holding force or the button force applied by the user. The first control module can output different control signals according to the electrical signals, which are transmitted to the second control module through the signal sending module 5 and the signal receiving module. The second control module controls the feedback module to make different degrees of feedback, such as the vibrator emitting vibrations of different frequencies, the sound emitter emitting different decibel volumes, and the heater adjusting different heating temperatures.

[0063] Compared with the prior art, the embodiment can facilitate the user to obtain different degrees of control feedback according to the user's needs. At the same time, the feedback intensity is adjusted by the applied force, which is more timely, convenient, and better matched, and the use is more convenient, which can improve the user's experience.

[0064] Embodiment 2:

[0065] Referring to Figure 2 , the embodiment provides a force sensing control feedback bidirectional interaction remote control system, which comprises:

[0066] a remote control end and a controlled end,

[0067] The remote control end comprises a first control module, a first signal sensing module, a signal sending module, and a first feedback module, and the controlled end comprises a second control module, a second signal sensing module, a signal receiving module, a second control module, and a second feedback module.

[0068] Specifically, the first control module and the second control module both adopt a PCB board with a main control chip. The first control module can receive the pressure signal collected by the pressure sensor and transmit the pressure signal to the second control module of the controlled product through wired or wireless means. The second control module controls the motor, sound emitter, and heater of the controlled product to make feedback.

[0069] The first signal sensing module, the first feedback module and the first control module are connected, the first control module is connected with the signal sending module, the signal sending module is connected with the signal receiving module, the signal receiving module is connected with the second control module, and the second control module is connected with the second signal sensing module and the feedback module.

[0070] Further, the signal sending module and the signal receiving module can adopt one of wired communication or wireless communication, and the wireless signal transmission is realized by being connected with the first control module and the second control module.

[0071] Further, the wireless communication mode includes one of Bluetooth transmission, WIFI, infrared transmission, radio frequency, Zigbee, LoRa and mobile communication network.

[0072] Further, the first feedback module and the second feedback module are one of a vibrator, a sound generator and a heater.

[0073] Further, the remote control end and the controlled end further include a battery, and the battery is electrically connected with the first control module.

[0074] Further, the remote control end and the controlled end each include a shell, the signal sensing module is one of a pressure sensor, a photoelectric sensor, an electromagnetic sensor and an air pressure sensor, and the signal sensor is installed on or in the shell. For a specific installation mode, see Embodiment 1.

[0075] In the embodiment, when the user controls the remote control end, the user only needs to apply pressure by holding the shell, and the pressure sensor on the shell can sense the size of the pressure applied by the user, and then different electric signals can be fed back to the first control module according to the size of the holding force applied by the user. The first control module can output different control signals according to the electric signals, and the signals are transmitted to the second control module through the signal sending module and the signal receiving module. The second control module controls the first feedback module to make feedback of different degrees, such as the vibrator emitting vibration of different vibration frequencies, the sound generator emitting sound of different decibels, and the heater adjusting different heating temperatures. Similarly, the controlled end can also sense the size of the pressure applied by the user through the pressure sensor, so as to control the feedback of the second feedback module of the remote control end, thereby realizing bidirectional interactive remote control feedback.

[0076] Compared with the prior art, the embodiment can facilitate the user to obtain different degrees of control feedback according to the user's needs. At the same time, the feedback intensity is adjusted by the applied force, which is more timely and convenient, has better matching degree, and is more convenient to use, so as to improve the user's experience.

[0077] The above merely describes the preferred embodiments of the present application, and is not intended to limit the present application, and any modification, equivalent replacement, and improvement within the spirit and principle of the present application shall be included in the protection scope of the present application.

Claims

1. An inductively controlled feedback remote control system, characterized by The utility model relates to a remote control system, including: Remote control end, controlled end; The remote control end includes first control module, signal induction module, signal sending module, the controlled end includes signal receiving module, second control module, feedback module; The signal induction module is connected with the first control module, the first control module is connected with the signal sending module, the signal sending module is connected with the signal receiving module, the signal receiving module is connected with the second control module, and the second control module is connected with the feedback module.

2. The inductive control feedback remote control system as described in claim 1, characterized in that, The signal sending module and the signal receiving module can adopt one of wired communication or wireless communication.

3. An inductively controlled feedback remote control system as claimed in claim 2, characterized in that The wireless communication mode includes one of Bluetooth transmission, WIFI, infrared transmission, radio frequency, Zigbee, LoRa and mobile communication network.

4. A system as claimed in claim 1, wherein the control unit is adapted to transmit the control signal to the remote control unit in response to a user input to the control unit. The feedback module is one of vibrator, sounder and heater.

5. An inductively controlled feedback remote control system as defined in claim 1, wherein, The remote control end further includes a battery, and the battery is electrically connected with the first control module.

6. An inductively controlled feedback remote control system as defined in claim 1, wherein, The signal induction module is one of pressure sensor, photoelectric sensor, electromagnetic sensor and air pressure sensor.

7. An inductively controlled feedback remote control system as claimed in claim 6, characterized in that The remote control end has a shell, the signal induction module adopts a pressure sensor capable of sensing deformation of a pressed part of the shell, the pressure sensor is installed on the shell, an installation groove is formed in an inner wall of the shell, the signal induction module is arranged in the installation groove and is attached to a bottom wall of the installation groove; Or, the signal induction module adopts a pressure sensor capable of sensing deformation of a pressed part of the shell, the pressure sensor is installed in the shell, a force transmission rod is further arranged in the shell, one end of the force transmission rod is connected with the inner wall of the shell, and the other end is connected with the signal induction module.

8. The inductive control feedback remote control system as described in claim 6, characterized in that, The remote control end has a shell, the shell is provided with a movable key, and the signal induction module can detect displacement of the key.

9. An inductively controlled feedback remote control system as claimed in claim 8, characterized in that The signal induction module adopts a pressure sensor, the pressure sensor is arranged on the key and connected with the control module; Or, the signal induction module adopts a photoelectric sensor, the photoelectric sensor is installed on and connected with the control module; Or, the signal induction module adopts an electromagnetic sensor, the key is provided with a magnetic part matched with the electromagnetic sensor, the electromagnetic sensor is installed on and connected with the control module and is arranged opposite to the magnetic part; Or, the signal induction module adopts an air pressure sensor, the inside of the key is provided with an air pressure body with a sealed cavity, the air pressure sensor is arranged in the sealed cavity to detect air pressure of the sealed cavity, and the air pressure sensor is connected with the control module.

10. The inductive control feedback remote control system as described in claim 8, characterized in that, The shell is provided with an elastic cantilever, one end of the elastic cantilever is fixedly connected with the shell, and the other end is connected with the key; Or, a spring is connected with the key, one end of the spring is abutted or connected with the key; Or, a rubber sleeve is sleeved on the shell, and the key is installed on the rubber sleeve.