Remote control device demonstration platform

The remote control device demonstration platform, which integrates a platform, enclosure, display screen, and controller, solves the problem of the lack of a demonstration platform in the existing technology, realizes efficient and safe remote control device demonstration, and enhances the user's operating experience and interactivity.

CN223828123UActive Publication Date: 2026-01-23SHANXI PROVINCIAL INSPECTION & TESTING CENT (SHANXI PROVINCIAL INST OF STANDARDS & METROLOGY TECH)
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Patent Information

Application Number
CN202423308606.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-31
Publication Date
2026-01-23
Estimated Expiration
2034-12-31

AI Technical Summary

Technical Problem

The lack of effective testing and demonstration platforms for existing remote control devices leads to inconvenience in operation and insufficient safety.

Method used

Design an integrated system comprising a platform, enclosure, display screen, controller, and transceiver, providing clear boundaries and real-time status display, supporting control via handheld and computer terminals, and enhancing interactivity and security.

Benefits of technology

It improves the demonstration efficiency and security of remote control devices, enhances user operational flexibility and interactivity, and provides an intuitive demonstration method.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of demonstration platforms, in particular to a remote control device demonstration platform which is safe, efficient and easy to use. Comprising a platform which is independently and fixedly arranged; the coaming is arranged on the platform, is arranged around the edge of the platform, and provides a clear boundary for the movement of the remote control trolley; the display screen is fixed on the platform through a bracket; the controller is arranged on the platform, is in communication connection with the remote control trolley and the display screen, and comprises a handheld terminal and a computer terminal; the signal transceiver A is in communication connection with the controller and is used for receiving and sending a signal according to a control instruction of the controller; and the power supply is electrically connected with the display screen, the controller and the signal transceiver A.
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Description

Technical Field

[0001] This utility model relates to the technical field of demonstration platforms, and in particular to a remote control device demonstration platform. Background Technology

[0002] A remote control device is a system that allows a user to control equipment from a certain distance. It typically includes a transmitter (remote controller) and a receiver (controlled device). Through specific communication technologies, the remote controller can send signals to the receiver to trigger predetermined actions or functions. Currently, there is a lack of an effective testing and demonstration platform for remote control devices. Utility Model Content

[0003] To solve the above-mentioned technical problems, this utility model provides a safe, efficient, and easy-to-use remote control device demonstration platform.

[0004] This utility model provides a demonstration platform for a remote control device, comprising:

[0005] The platform is independently and fixedly configured.

[0006] Enclosures, set on the platform and arranged around the edge of the platform, provide clear boundaries for the movement of the remote-controlled car;

[0007] The display screen is fixed to the platform by a bracket;

[0008] The controller, set on the platform, communicates with the remote-controlled car and the display screen, including a handheld terminal and a computer terminal;

[0009] Signal transceiver A is connected in communication with the controller and is used to receive and send signals according to the controller's control commands.

[0010] The power supply is electrically connected to the display screen, controller, and transceiver A.

[0011] Furthermore, the remote-controlled car includes a housing, wheels located at the bottom of the housing, a drive motor for driving the wheels, a microcontroller for controlling the operation of the drive motor, a transceiver B for transmitting and receiving signals, and a battery for powering each electrical component. The transceiver B is equipped with a communication antenna that extends outward through the housing.

[0012] Furthermore, the remote-controlled vehicle is equipped with protective mechanisms around its perimeter to reduce the impact force.

[0013] Furthermore, the protective mechanism includes a mounting groove formed on the side wall of the housing, an elastic element disposed in the mounting groove, and a baffle connected to the housing via the elastic element.

[0014] Furthermore, the elastic element includes a slide bar spaced apart vertically, a slider that slides along the slide bar, and a spring sleeved on the outside of the slide bar. A connecting rod is provided between the two sliders, and a cylinder connected to a baffle is provided on the outside of the connecting rod.

[0015] Furthermore, the elastic elements are configured in multiple groups and arranged at intervals along the length of the mounting groove.

[0016] Furthermore, transceiver A and transceiver B are equipped with a 2.4G local area network signal channel and a 5G mobile signal channel, and are adapted to communicate with the controller via the 2.4G local area network signal or the 5G mobile signal.

[0017] Furthermore, the remote-controlled car is also equipped with a power detection device, which is electrically connected to the microcontroller and the battery.

[0018] Compared with the prior art, the beneficial effects of this utility model are as follows:

[0019] By integrating components such as the platform, enclosure, display screen, controller, and signal transceiver into a single unit, a complete demonstration environment is provided. This not only facilitates operation but also improves the efficiency and reliability of the demonstration, offering users a more intuitive and interactive way to understand the working principles and technical characteristics of the remote control device. The enclosure, arranged around the edge of the platform, clearly defines the movement range of the remote-controlled vehicle, preventing it from accidentally leaving the designated area during the demonstration and increasing the safety and controllability of the demonstration. With both handheld and computer terminals as controllers, users can choose the most suitable control method according to their actual needs, increasing the flexibility of use. The display screen communicates with the controller, displaying the status information or path of the remote-controlled vehicle in real time, allowing users to intuitively understand various data during the demonstration and enhancing interactivity and visual effects. Attached Figure Description

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

[0021] Figure 1 This is a schematic diagram of the structure of this utility model;

[0022] Figure 2 This is a structural schematic diagram of the remote-controlled car of this utility model;

[0023] Figure 3 This is a cross-sectional structural diagram of the remote-controlled car of this utility model;

[0024] The following are labels in the attached diagram: 1. Platform; 2. Enclosure; 3. Remote-controlled car; 31. Housing; 32. Casters; 33. Drive motor; 34. Battery; 35. Communication antenna; 4. Display screen; 5. Bracket; 6. Controller; 61. Handheld terminal; 62. Computer terminal; 7. Protective mechanism; 71. Mounting slot; 72. Elastic element; 722. Slider; 723. Spring; 725. Cylinder; 73. Baffle. Detailed Implementation

[0025] The specific embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are used to illustrate this utility model, but are not intended to limit its scope.

[0026] like Figure 1 As shown, a remote control device demonstration platform of this utility model includes: platform 1, which is independently and fixedly set;

[0027] Enclosure 2 is set on platform 1 and arranged around the edge of platform 1 to provide a clear boundary for the movement of remote control car 3;

[0028] Display screen 4 is fixed to platform 1 by bracket 5;

[0029] The controller 6 is set on the platform 1 and is connected to the remote control car 3 and the display screen 4. It includes a handheld terminal 61 and a computer terminal 62.

[0030] Signal transceiver A is connected in communication with controller 6 and is used to receive and send signals according to the control commands of controller 6.

[0031] The power supply is electrically connected to the display screen 4, the controller 6, and the signal transceiver A.

[0032] Platform 1 serves as the foundational structure of the entire demonstration platform, providing a stable working surface. Enclosure 2 provides boundaries to prevent the vehicle from accidentally leaving the demonstration area, enhancing safety and reliability. Display screen 4 displays operation-related images, videos, or data, enhancing the demonstration effect. During operation, the remote-controlled vehicle 3 is placed on platform 1 and issues commands via handheld terminal 61 or computer terminal 62. These commands are processed by the controller and transmitted to transceiver A. Transceiver A receives commands from the controller, converts them into appropriate radio signals, and sends them out. It also receives status information from the remote-controlled vehicle and feeds it back to the controller. Upon receiving the signal, the remote-controlled vehicle executes corresponding actions according to a preset program, such as moving forward, backward, or turning. Simultaneously, changes in the vehicle's position or other status parameters are monitored and fed back via the transceiver, displayed on the screen for user viewing. All components are powered by a power supply, ensuring a stable working environment between them.

[0033] like Figure 2 and Figure 3 As shown, the remote-controlled car 3 includes a housing 31, wheels 32 located at the bottom of the housing 31, a drive motor 33 that drives the wheels 32, a microcontroller for controlling the operation of the drive motor 33, a transceiver B for transmitting and receiving signals, and a battery 34 that supplies power to the various electrical components. A communication antenna 35 is mounted on the transceiver B, extending outwards through the housing 31. The housing 31 serves as the outer shell of the entire car, protecting the internal components from external environmental influences and providing a mounting platform for other components. The drive motor 33 provides power to the wheels 32. The power supply enables the vehicle to operate according to instructions; the communication antenna 35 enhances the distance and quality of signal transmission, ensures stable data exchange, and extends to the outside to reduce signal attenuation and improve communication effect; when the user issues instructions through the controller 6, these instructions are sent out through the signal transceiver A, and after being received by the communication antenna 35 of the signal transceiver B, they are transmitted to the microcontroller. The microcontroller parses the received instructions and adjusts the working mode of the drive motor 33 accordingly, thereby controlling the movement of the moving wheel 32 so that the vehicle moves in the expected manner.

[0034] The remote-controlled car is preferably equipped with a protective mechanism 7 around its three sides to reduce the impact force. The protective mechanism 7 is designed to reduce the collisions or other forms of physical impact that the car may encounter during movement, thereby protecting the internal components from damage. This design not only improves the safety and durability of the car, but also ensures its stable operation in complex environments.

[0035] The preferred protective mechanism 7 includes a mounting groove 71 formed on the side wall of the housing 31, an elastic element 72 disposed in the mounting groove 71, and a baffle 73 connected to the housing 31 via the elastic element 72. The mounting groove 71 provides space for fixing and installing other protective components. When the remote-controlled vehicle 3 encounters an obstacle, the baffle 73 first contacts the obstacle. At this time, the baffle 73 moves inward along the direction of the mounting groove 71, while compressing the elastic element 72, starting the initial impact absorption process. As the baffle 73 moves further, the elastic element 72 continues to be compressed, storing the energy from the impact. At the same time, the deformation of the elastic element 72 also helps to disperse the impact force originally concentrated at one point, reducing the direct impact on the internal components of the vehicle. Once the external impact ends, the elastic element 72 begins to return to its original shape due to its own elastic properties, pushing the baffle 73 back to its original position. This process not only releases the stored energy but also prepares the protective mechanism 7 to deal with the next possible collision.

[0036] The preferred elastic element 72 includes a sliding rod spaced vertically, a slider 722 sliding along the sliding rod, and a spring 723 sleeved on the outside of the sliding rod. A connecting rod is provided between the two sliders 722, and a cylinder 725 connected to a baffle 73 is provided on the outside of the connecting rod. The sliding rod serves as a guide rail for the movement of the slider 722, ensuring that the slider 722 moves in a straight line, providing precise displacement control and improving shock absorption efficiency. When the baffle 73 moves and transmits force to the cylinder 725, the cylinder 725 then transmits this force to the slider 722, causing the slider 722 to slide along the sliding rod, and the spring 723 to extend and retract. At the same time, due to the presence of the connecting rod, the two sliders 722 can maintain synchronous movement, ensuring uniform force distribution.

[0037] The preferred elastic element 72 is set in multiple groups and arranged at intervals along the length of the mounting groove 71; this design allows the impact force to be more widely dispersed, reduces the burden on individual elastic elements 72, improves the overall shock absorption efficiency, and enables the protective mechanism 7 to better adapt to impact forces of different intensities and directions, providing a more flexible protection mechanism.

[0038] The preferred transceiver A and transceiver B are equipped with a 2.4G local area network signal channel and a 5G mobile signal channel, and are suitable for communicating with the controller 6 via the 2.4G local area network signal or the 5G mobile signal; the dual-channel design enhances the communication stability between the remote control car 3 and the controller 6, and improves the system's adaptability and user experience.

[0039] The preferred remote control car 3 is also equipped with a power detection device, which is electrically connected to the microcontroller and the battery 34. The sensor in the power detection device continuously monitors the parameters of the battery 34. This data is transmitted to the power detection chip for processing. The power detection chip calculates the remaining power percentage based on the collected data. The analyzed power information is sent to the microcontroller, which can make corresponding decisions based on this information. By monitoring the power in real time, it can provide early warnings of low power, better plan usage time and charging arrangements, and improve the overall operating experience.

[0040] This utility model discloses a remote control device demonstration platform. During operation, the operating parameters of the remote-controlled vehicle 3, such as speed limits and steering angles, are first configured via a handheld terminal 61 or a computer terminal 62. These instructions are transmitted to a signal transceiver A and then wirelessly to a signal transceiver B on the remote-controlled vehicle 3. Upon receiving the instructions, the microcontroller on the remote-controlled vehicle 3 analyzes and executes the corresponding actions, such as moving forward, backward, or turning. Simultaneously, a protective mechanism consisting of a baffle 73 and an elastic element 72 prepares to handle potential collisions. The display screen 4 shows the real-time status information of the remote-controlled vehicle, such as its position, speed, and direction, helping the user understand the vehicle's current status. A power detection device continuously monitors the voltage, current, and temperature of the battery 34, calculates the remaining power, and feeds the information back to the microcontroller. When the power level falls below a preset threshold, the microcontroller triggers a warning mechanism to remind the user to charge the battery promptly and can take energy-saving measures to extend the operating time.

[0041] The demonstration platform for a remote control device of this utility model can be installed, connected or set up in a way that is common mechanical. Any method that can achieve its beneficial effect can be implemented.

[0042] The above description is only a preferred embodiment of the present utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of the present utility model, and these improvements and modifications should also be considered within the protection scope of the present utility model.

Claims

1. A remote control device demonstration platform, characterized in that, include: Platform (1), independently and fixedly configured; Enclosure (2) is set on the platform (1) and arranged around the edge of the platform (1) to provide a clear boundary for the movement of the remote control vehicle (3); The display screen (4) is fixed to the platform (1) by a bracket (5); The controller (6) is set on the platform (1) and is communicatively connected to the remote control vehicle (3) and the display screen (4), including a handheld terminal (61) and a computer terminal (62); Signal transceiver A is communicatively connected to the controller (6) and is used to receive and send signals according to the control instructions of the controller (6); The power supply is electrically connected to the display screen (4), the controller (6), and the transceiver A.

2. The remote control device demonstration platform as described in claim 1, characterized in that, The remote-controlled vehicle (3) includes a housing (31), a moving wheel (32) disposed at the bottom of the housing (31), a drive motor (33) for driving the moving wheel (32) to move, a microcontroller for controlling the operation of the drive motor (33), a signal transceiver B for sending and receiving signals, and a battery (34) for supplying power to each electrical component. The signal transceiver B is provided with a communication antenna (35), which extends outward through the housing (31).

3. The remote control device demonstration platform as described in claim 2, characterized in that, The remote-controlled vehicle (3) is equipped with a protective mechanism (7) around its perimeter to reduce the impact force.

4. The remote control device demonstration platform as described in claim 3, characterized in that, The protective mechanism (7) includes a mounting groove (71) opened on the side wall of the housing (31), an elastic element (72) disposed in the mounting groove (71), and a baffle (73) connected to the housing (31) through the elastic element (72).

5. The remote control device demonstration platform as described in claim 4, characterized in that, The elastic element (72) includes a slide bar spaced apart vertically, a slider (722) that slides along the slide bar, and a spring (723) sleeved on the outside of the slide bar. A connecting rod is provided between the two sliders (722), and a cylinder (725) connected to the baffle (73) is provided on the outside of the connecting rod.

6. The remote control device demonstration platform as described in claim 4, characterized in that, The elastic element (72) is configured in multiple groups and is arranged at intervals along the length direction of the mounting groove (71).

7. The remote control device demonstration platform as described in claim 2, characterized in that, The transceiver A and the transceiver B are provided with a 2.4G local area network signal channel and a 5G mobile signal channel, and are adapted to communicate with the controller (6) via the 2.4G local area network signal or the 5G mobile signal.

8. The remote control device demonstration platform as described in claim 2, characterized in that, The remote-controlled vehicle (3) is also equipped with a power detection device, which is electrically connected to the microcontroller and the battery (34).