Detection device
By acquiring thermal images of the tire surface through a camera assembly consisting of an infrared camera and a lifting component, and combining it with an abnormal temperature detection module and RFID identification, the problems of inaccurate tire surface temperature detection and high cost are solved, enabling comprehensive and accurate detection of tire surface temperature and timely alarm processing.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-24
- Publication Date
- 2026-03-03
AI Technical Summary
Existing tire temperature detection devices cannot achieve comprehensive and accurate detection of tire surface temperature, and the cost of installing sensors is high.
The imaging system uses an infrared camera and a lifting assembly to acquire thermal images of the tire surface. These images are then analyzed by an abnormal temperature detection module. Combined with RFID identification and wireless transmission technology, the system achieves comprehensive and accurate detection of the tire surface temperature.
It enables comprehensive and accurate detection of tire surface temperature, reduces detection costs, and improves tire safety and lifespan through timely alarm processing.
Smart Images

Figure CN223966158U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of tire temperature detection technology, and more specifically, to a detection device. Background Technology
[0002] Due to the high temperatures in mine environments and the prolonged transport operations of mining trucks, tires are prone to overheating, leading to tread chipping and aging. This not only affects tire lifespan but can also cause spontaneous combustion or blowouts, resulting in safety accidents. Therefore, real-time monitoring of mine tire temperatures is essential.
[0003] Currently, existing tire temperature detection devices are generally temperature sensors installed inside or outside the tire. However, these devices typically only perform point-based temperature measurements and cannot achieve comprehensive and accurate detection of the tire surface temperature. Furthermore, installing sensors and communication equipment on the tire is costly. In addition, how to properly process the obtained temperature information and use it for abnormal temperature detection is also crucial. Utility Model Content
[0004] The main objective of this invention is to provide a detection device that solves the problem that existing detection devices cannot achieve comprehensive and accurate detection of tire surface temperature.
[0005] To achieve the above objectives, the present invention provides a testing device, comprising: a worktable; a lifting assembly disposed on the worktable, at least a portion of which is movably disposed in the vertical direction; and a camera assembly for capturing images of the test piece to obtain a thermal image of the test piece; at least a portion of the lifting assembly is connected to the camera assembly to drive the camera assembly to move in the vertical direction.
[0006] Furthermore, the camera component includes an infrared camera for capturing images of the object under test to obtain thermal images of the object under test.
[0007] Furthermore, the detection device also includes: a control module, communicatively connected to an infrared camera, to control the infrared camera to take pictures and to acquire and store the thermal images acquired by the infrared camera; an abnormal temperature detection module, communicatively connected to the control module, to receive the thermal images sent by the control module and to determine the test piece with an abnormal temperature based on the thermal images; wherein, the detection device also includes a display module, communicatively connected to the abnormal temperature detection module, which controls the display module to display abnormal information after the abnormal temperature detection module determines the test piece with an abnormal temperature; and / or, the detection device also includes an alarm module, which communicates with the abnormal temperature detection module, and controls the alarm module to sound an alarm after the abnormal temperature detection module determines the test piece with an abnormal temperature.
[0008] Furthermore, the detection device also includes: an identification module for identifying and acquiring the RFID signal of the vehicle; wherein the part to be tested is the tire of the vehicle; a recording module, which is communicatively connected to the identification module to receive the RFID signal of the vehicle, and read and record the vehicle information based on the RFID signal of the vehicle; the recording module is communicatively connected to the control module so that the control module receives and stores the vehicle information sent by the recording module; wherein the control module is used to send the stored vehicle information to the abnormal temperature detection module so that the abnormal temperature detection module determines the vehicle corresponding to the part to be tested with an abnormal temperature.
[0009] Furthermore, the detection device also includes a transmission module, through which the control module communicates with the abnormal temperature detection module. The transmission module is used to transmit the thermal images and vehicle information stored in the control module to the abnormal temperature detection module.
[0010] Furthermore, the camera assembly also includes a camera gimbal, on which an infrared camera is rotatably mounted.
[0011] Furthermore, the detection device also includes: a camera platform connected to at least a portion of the lifting assembly; and a camera gimbal mounted on the camera platform.
[0012] Furthermore, the workbench includes a storage box with a storage space, and the control module is located within the storage space.
[0013] Furthermore, the testing device also includes: a movable wheel, disposed at the bottom of the workbench, the movable wheel being rotatably disposed; a first support, disposed on the workbench, the first support being foldable to switch between an unfolded state and a folded state, when the first support is in the unfolded state, the first support is used to support the placement base, and the movable wheel is separated from the placement base; when the first support is in the folded state, the first support is separated from the placement base, and the movable wheel is movably disposed on the placement base.
[0014] Furthermore, the testing device also includes a power supply; the testing device also includes: a solar power generation component, including a second support and a solar panel, the second support being disposed on the top of the workbench, the solar panel being mounted on the second support and used to supply power; and / or, a wind power generation component, including blades, a hub and a support column, the support column being disposed on the workbench, the blades being disposed on the hub, the hub being rotatably disposed on the support column to drive the blades to rotate in order to supply power.
[0015] Applying the technical solution of this utility model, the detection device is used to detect the temperature of a component to be tested, wherein the component to be tested can be a tire. The detection device includes a camera component for capturing images of the component to be tested. The camera component captures a complete thermal image of the surface of the component to be tested, thereby obtaining all temperature information of the surface of the component to be tested, realizing comprehensive and accurate detection of the tire surface temperature. Furthermore, the detection device is also equipped with a lifting component, which can drive the camera component to move up and down in the vertical direction, enabling flexible control of the shooting range of the camera component, further improving the comprehensive and accurate detection of the tire surface temperature. In addition, this detection device does not require the installation of additional hardware on the vehicle's tire, reducing costs. Attached Figure Description
[0016] The accompanying drawings, which form part of this application, are used to provide a further understanding of the present invention. The illustrative embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an undue limitation of the present invention. In the drawings:
[0017] Figure 1 A schematic diagram of an embodiment of the detection device according to the present invention is shown;
[0018] Figure 2 A schematic diagram of the worktable, lifting assembly, moving wheels and first support of the detection device according to the present invention is shown;
[0019] Figure 3 A schematic diagram of the solar power generation component of the detection device according to the present invention is shown;
[0020] Figure 4 A schematic diagram of a wind power generation component of a detection device according to the present invention is shown;
[0021] Figure 5 A schematic diagram of the camera assembly of the detection device according to the present invention is shown;
[0022] Figure 6 A schematic diagram of the integrated board of the detection device according to the present invention is shown.
[0023] The above figures include the following reference numerals:
[0024] 100. Workbench; 110. First support frame; 120. Storage box; 121. Recording module; 122. Power supply; 123. Power strip; 124. Customer front-end equipment; 125. Control module; 126. Power controller; 127. Inverter; 128. Transformer; 129. Integrated board; 130. Casters; 140. Lifting assembly;
[0025] 200. Solar power generation module; 210. Second support frame; 220. Solar panel;
[0026] 300. Wind power generation components; 310. Blades; 320. Hubs; 330. Supports;
[0027] 400. Camera assembly; 410. Camera platform; 420. Infrared camera; 430. Camera gimbal; 440. Network antenna; 450. Identification module. Detailed Implementation
[0028] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.
[0029] It should be noted that the following detailed descriptions are exemplary and intended to provide further explanation of this application. Unless otherwise specified, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains.
[0030] It should be noted that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the exemplary embodiments according to this application. As used herein, the singular form is intended to include the plural form as well, unless the context clearly indicates otherwise. Furthermore, it should be understood that when the terms "comprising" and / or "including" are used in this specification, they indicate the presence of features, steps, operations, devices, components, and / or combinations thereof.
[0031] This utility model provides a detection device; please refer to it. Figures 1 to 6 The device includes: a worktable 100; a lifting assembly 140 disposed on the worktable 100, at least a portion of the lifting assembly 140 being movably disposed in the vertical direction; and a camera assembly 400 for capturing images of the workpiece to be inspected to obtain thermal images of the workpiece; at least a portion of the lifting assembly 140 is connected to the camera assembly 400 to drive the camera assembly 400 to move in the vertical direction.
[0032] The detection device of this invention is used to detect the temperature of a workpiece, which may be a tire. The detection device includes a camera assembly 400 for capturing images of the workpiece. The camera assembly 400 captures a complete thermal image of the surface of the workpiece, thereby obtaining all temperature information of the surface of the workpiece, achieving comprehensive and accurate detection of the tire surface temperature. Furthermore, the detection device is equipped with a lifting assembly 140, which can move the camera assembly 400 up and down in the vertical direction, allowing flexible control of the shooting range of the camera assembly 400, further improving the comprehensive and accurate detection of the tire surface temperature. In addition, this detection device eliminates the need to install additional hardware on the vehicle's tire, reducing costs.
[0033] It should be noted that the part to be tested can be not only tires, but also other products.
[0034] Specifically, the lifting assembly 140 includes a lifting rod, which comprises a fixed rod and a movable rod. The fixed rod is mounted on the top of the worktable 100, and the movable rod is movably connected to the fixed rod. The movable rod is vertically movable relative to the fixed rod, and the camera assembly 400 is connected to the movable rod. Optionally, the lifting rod is positioned at the center of the worktable 100.
[0035] Specifically, the camera assembly 400 includes an infrared camera 420 for capturing images of the part to be inspected to obtain thermal images of the part. In a specific implementation, the infrared camera 420 is used to acquire infrared thermal images of vehicle tires, enabling comprehensive and accurate detection of tire surface temperature.
[0036] Specifically, the detection device further includes: a control module 125, communicatively connected to an infrared camera 420, to control the infrared camera 420 to capture and acquire / store thermal images acquired by the infrared camera 420; an abnormal temperature detection module, communicatively connected to the control module 125, to receive thermal images sent by the control module 125 and determine the component to be tested with an abnormal temperature based on the thermal images; the detection device also includes a display module, communicatively connected to the abnormal temperature detection module, which displays abnormal information after the abnormal temperature detection module determines the component to be tested with an abnormal temperature; and / or, the detection device also includes an alarm module, communicatively connected to the abnormal temperature detection module, which alarms after the abnormal temperature detection module determines the component to be tested with an abnormal temperature. In practical implementation, the control module 125 and the abnormal temperature detection module can further perform abnormal temperature detection, and the alarm module and display module can provide timely repair and maintenance for abnormal tires, thereby ensuring tire lifespan and reducing tire usage costs.
[0037] Specifically, the detection device further includes: an identification module 450 for identifying and acquiring the RFID signal of a vehicle; wherein the part to be detected is the tire of the vehicle; a recording module 121, communicatively connected to the identification module 450, for receiving the RFID signal of the vehicle, and reading and recording the vehicle information based on the RFID signal; the recording module 121 is communicatively connected to the control module 125, so that the control module 125 receives and stores the vehicle information sent by the recording module 121; wherein the control module 125 is used to send the stored vehicle information to the abnormal temperature detection module, so that the abnormal temperature detection module can determine the vehicle corresponding to the part to be detected with an abnormal temperature. In specific implementation, the identification module 450 is used to identify and acquire the RFID signal of the vehicle, and the recording module 121 is responsible for acquiring the RFID of passing vehicles to distinguish different vehicles.
[0038] Optionally, the identification module 450 is an RFID antenna, and the recording module 121 is an RFID reader / writer. Radio Frequency Identification (RFID) is an abbreviation for Radio Frequency Identification.
[0039] Specifically, the detection device also includes a transmission module. The control module 125 is communicatively connected to the abnormal temperature detection module through the transmission module. The transmission module is used to transmit the thermal images and vehicle information stored in the control module 125 to the abnormal temperature detection module. In specific implementation, the transmission module uploads the data to the server. After the server obtains the infrared thermal image, it obtains the detection result through the abnormal temperature detection module and simultaneously determines the specific vehicle with the abnormal temperature based on the uploaded vehicle information.
[0040] Optionally, the transmission module includes a customer front-end device 124 and a network antenna 440. The customer front-end device 124 is a CPE (Customer Premise Equipment) used for wireless communication, directly connecting to a 4G or 5G mobile network by inserting a SIM card. Infrared thermal images and vehicle information are uploaded to the server through the coordinated operation of the customer front-end device 124 and the network antenna 440.
[0041] Specifically, the camera assembly 400 also includes a camera pan-tilt unit 430, on which an infrared camera 420 is rotatably mounted. In practice, the infrared camera 420 is fixed on the camera pan-tilt unit 430, which can maintain the stability of the infrared camera 420 and adjust the shooting angle of the infrared camera 420, thereby improving the applicability of the detection device.
[0042] Specifically, the detection device also includes: a camera platform 410, at least partially connected to the lifting assembly 140; and a camera gimbal 430 mounted on the camera platform 410. The camera platform 410 enables the installation and fixation of the camera assembly 400.
[0043] Specifically, the workbench 100 includes a storage box 120 with a receiving space, within which the control module 125 is housed. Furthermore, the recording module 121, power supply 122, power strip 123, customer front-end equipment 124, power controller 126, inverter 127, and transformer 128 are all housed within the receiving space. This arrangement facilitates the management and protection of the aforementioned structures.
[0044] Specifically, the testing device further includes: a movable wheel 130, disposed at the bottom of the workbench 100, the movable wheel 130 being rotatably disposed; and a first support 110, disposed on the workbench 100, the first support 110 being foldable to switch between an unfolded state and a folded state. When the first support 110 is in the unfolded state, the first support 110 is used to support the placement base, and the movable wheel 130 is separated from the placement base; when the first support 110 is in the folded state, the first support 110 is separated from the placement base, and the movable wheel 130 is movably disposed on the placement base. Optionally, the placement base is the ground.
[0045] In practice, the first support 110 is placed on the ground to fix the workbench 100. When the workbench 100 needs to be moved, the first support 110 is retracted. This arrangement facilitates the movement of the detection device and provides high flexibility.
[0046] Optionally, three casters 130 are provided, located on both sides and the rear end of the storage box 120, for moving the worktable 100. This arrangement ensures stable movement of the detection device.
[0047] Specifically, the testing device also includes a power supply 122, which is responsible for providing a stable power supply to other equipment; the testing device also includes: a solar power generation component 200, including a second support 210 and a solar panel 220, the second support 210 being disposed on the top of the workbench 100, the solar panel 220 being mounted on the second support 210 and used to supply power to the power supply 122; and / or, a wind power generation component 300, including blades 310, a hub 320 and a support column 330, the support column 330 being disposed on the workbench 100, the blades 310 being disposed on the hub 320, the hub 320 being rotatably disposed on the support column 330 to drive the blades 310 to rotate, so as to supply power to the power supply 122.
[0048] In practice, the solar panel 220 is connected to the workbench 100 via the second support 210, responsible for converting solar energy into electrical energy to supply the power source 122. The blades 310 are located on the hub 320, used to capture wind energy and convert it into electrical energy. The hub 320 is responsible for maintaining the stability of the blades 310 during rotation. Both are connected to the workbench 100 via a support column 330. This arrangement ensures that the detection device has sufficient power.
[0049] Specifically, the workbench 100 has a head and a tail arranged sequentially along the walking direction of the detection device, wherein the solar power generation component 200 is arranged at the head of the workbench 100 and the wind power generation component 300 is arranged at the tail of the workbench 100.
[0050] Specifically, the solar power generation module 200 also includes a power controller 126 and an inverter 127. The power controller 126 is located in the storage box 120 and is used to monitor the output voltage and current of the solar panel 220 in real time, while optimizing the output of the solar panel 220. The inverter 127 is located in the storage box 120 and is used to convert the DC power generated by the solar panel 220 into AC power for use by other devices.
[0051] Specifically, the wind power generation component 300 also includes a transformer 128, which is located in the storage box 120 and is used to step up the low voltage generated by the wind power generation to a voltage that can be used by other equipment.
[0052] In practice, the power controller 126 can monitor the output voltage and current of the solar panel in real time, automatically adjust the operating point to keep it in the maximum power output state, and optimize the output of the solar panel and control the charging process of the battery; the inverter 127 is used to convert DC power to AC power to provide power to the power source; the transformer 128 is used to convert low voltage to high voltage to provide power to the power source.
[0053] In practice, the camera gimbal 430 is placed at one end of the camera platform 410 near the solar power generation component 200; the network antenna 440 is placed at one end of the camera platform 410 near the wind power generation component 300; and the identification module 450 is located on the unobstructed front of the camera platform 410 near the solar power generation component 200, and is used to acquire RFID signals and transmit them to the recording module 121.
[0054] Specifically, the detection device also includes a power strip 123, which is connected to other devices that require power to extend the power access point.
[0055] Specifically, the testing device also includes an integrated board 129, which is installed inside the storage box 120. The recording module 121, power supply 122, power strip 123, customer front-end equipment 124, control module 125, power controller 126, inverter 127, and transformer 128 are all installed on the integrated board 129.
[0056] like Figures 1 to 6 As shown, the working process of the detection device is as follows: The first support 110 of the workbench 100 is fixed to one side of the road where the mining truck travels. The lifting assembly 140 is raised to a suitable height, and the infrared camera 420 faces the road. The solar power generation assembly 200 and the wind power generation assembly 300 ensure that the detection device has sufficient power support. In specific implementation, the control module 125 is an industrial control computer. It activates the infrared camera 420 to record when a vehicle passes by through the built-in trigger module and is responsible for uploading the acquired thermal image data to the server. When a mining truck passes the detection device, if the trigger condition of the internal program of the control module 125 is met, the control module 125 controls the infrared camera 420 to start recording, acquires the infrared thermal image of the mining truck's tires, and at the same time, the identification module 450 acquires the RFID signal of the recorded mining truck and transmits this RFID signal to the recording module 121 to read and record the vehicle information. The infrared thermal image acquired by the infrared camera 420... The image is essentially a temperature matrix. It captures the temperature distribution on the tire surface using an infrared camera and converts this temperature data into an image. The acquired temperature matrix is temporarily stored by the control module 125 for subsequent upload operations. The vehicle information recorded by the recording module 121 is also stored. After the mining truck leaves the recording range of the infrared camera 420, the control module 125 stops recording. Then, the acquired infrared thermal image and vehicle information are uploaded to the server through the collaborative work of the customer front-end device 124 and the network antenna 440. Afterward, the successfully uploaded data is deleted in the control module 125. After the server obtains the infrared thermal image of the mining tire, it obtains the abnormal temperature detection result of the surface of the giant mining tire (engineering tire) through the abnormal temperature detection module. At the same time, based on the vehicle information uploaded together, it determines the specific vehicle with abnormal temperature and displays the abnormal information to relevant personnel through the front-end page and performs alarm processing.
[0057] Specifically, the collaborative operation of the customer front-end device 124 and the network antenna 440 involves the combined use of a CPE with an inserted SIM card and the network antenna, providing a solution for stable data transmission in mining environments. The collaborative operation works as follows: after the SIM card is inserted into the device, it allows the device to access the internet via a cellular network. In a mining environment, the SIM card enables the CPE to connect to the nearest mobile base station and begin data transmission. The CPE is a terminal device located on the user side; it can be a router, modem, or other type of network interface device. For use in mining environments, the CPE receives wireless signals and converts them into Wi-Fi signals for use by other devices. This device's CPE is equipped with a suitable SIM card, which can utilize 4G / 5G networks to create a local area network (LAN) or directly provide internet access. The network antenna enhances the wireless signal strength between the CPE and the mobile base station. Especially in remote areas with poor signal coverage, such as mines, the network antenna configuration helps capture weak signals emitted by base stations at greater distances, thereby improving overall network performance.
[0058] This invention's detection device distinguishes different vehicles by acquiring signals from an RFID antenna, then uses an infrared camera to capture infrared thermal images of the mining tires. The acquired data is transmitted back to a local server via a CPE and antenna device. The server performs abnormal temperature detection, and the system displays the abnormal conditions of different vehicle tires on the front end, triggering alarms for relevant personnel. The device's power requirements are provided by a combination of solar and wind power generation components.
[0059] This invention relates to a detection device for monitoring tire surface temperature, particularly for detecting the surface temperature of mining giant tires (engineering tires). It solves the problem of high costs associated with traditional tire temperature detection methods that require additional sensor equipment to be installed on the tire. It also addresses the limitation of traditional tire temperature detection methods, which can only measure temperature at specific points and cannot obtain information about the entire tire tread temperature.
[0060] The technical problem this invention aims to solve is the high cost of installing sensors on the tire in traditional tire temperature detection methods, and the difficulty in detecting abnormal temperatures due to the inability of traditional methods to capture the temperature of the entire tire tread. This invention replaces the hardware devices such as sensors installed on the tire with machine vision, reducing costs. Furthermore, a deep learning-based abnormal temperature detection module can detect abnormal temperatures across the entire tire surface. By promptly reporting abnormalities to relevant personnel, the safety and lifespan of mining giant tires are improved.
[0061] The beneficial effects of this invention include: compared to traditional vehicle temperature detection methods, it eliminates the need to install additional detection equipment on each vehicle's tires, reducing detection costs. By acquiring all temperature information of the tire surface through an infrared camera, the detection range and effectiveness are improved. The acquired tire surface temperature information allows for further abnormal temperature detection, and through front-end alarm processing, abnormal tires can be repaired promptly, thereby ensuring tire lifespan and reducing tire usage costs.
[0062] As can be seen from the above description, the embodiments of this utility model achieve the following technical effects:
[0063] The detection device of this invention is used to detect the temperature of a workpiece, which may be a tire. The detection device includes a camera assembly 400 for capturing images of the workpiece. The camera assembly 400 captures a complete thermal image of the surface of the workpiece, thereby obtaining all temperature information of the surface of the workpiece, achieving comprehensive and accurate detection of the tire surface temperature. Furthermore, the detection device is equipped with a lifting assembly 140, which can move the camera assembly 400 up and down in the vertical direction, allowing flexible control of the shooting range of the camera assembly 400, further improving the comprehensive and accurate detection of the tire surface temperature. In addition, this detection device eliminates the need to install additional hardware on the vehicle's tire, reducing costs.
[0064] It should be noted that the terms "first," "second," etc., in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of this application described herein can be implemented, for example, in orders other than those illustrated or described herein. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus.
[0065] For ease of description, spatial relative terms such as "above," "on top of," "on the upper surface of," "above," etc., are used herein to describe the spatial positional relationship of a device or feature as shown in the figures to other devices or features. It should be understood that spatial relative terms are intended to encompass different orientations in use or operation beyond the orientation of the device as described in the figures. For example, if the device in the figures were inverted, a device described as "above" or "on top of" other devices or structures would subsequently be positioned as "below" or "under" other devices or structures. Thus, the exemplary term "above" can include both "above" and "below." The device may also be positioned in other different ways (rotated 90 degrees or in other orientations), and the spatial relative descriptions used herein will be interpreted accordingly.
[0066] The above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. A detection device, characterized in that, include: Workbench (100); A lifting assembly (140) is disposed on the worktable (100), at least a portion of which is movably disposed in the vertical direction; A camera assembly (400) is used to capture images of the test piece to obtain a thermal image of the test piece; at least a portion of the lifting assembly (140) is connected to the camera assembly (400) to drive the camera assembly (400) to move in a vertical direction.
2. The detection device according to claim 1, characterized in that, The camera assembly (400) includes: An infrared camera (420) is used to photograph the object to be tested in order to obtain a thermal image of the object to be tested.
3. The detection device according to claim 2, characterized in that, The detection device further includes: The control module (125) is communicatively connected to the infrared camera (420) to control the infrared camera (420) to take pictures and to acquire and store the thermal images acquired by the infrared camera (420); An abnormal temperature detection module is communicatively connected to the control module (125) to receive the thermal image sent by the control module (125) and determine the test piece with an abnormal temperature based on the thermal image; The detection device further includes a display module, which is communicatively connected to the abnormal temperature detection module. When the abnormal temperature detection module determines that the test piece has an abnormal temperature, it controls the display module to display the abnormal information; and / or The detection device also includes an alarm module, which is communicatively connected to the abnormal temperature detection module. When the abnormal temperature detection module determines that the test piece has an abnormal temperature, it controls the alarm module to sound an alarm.
4. The detection device according to claim 3, characterized in that, The detection device further includes: An identification module (450) is used to identify and acquire the RFID signal of a vehicle; wherein the component to be detected is the tire of the vehicle; The recording module (121) is communicatively connected to the identification module (450) to receive the RFID signal of the vehicle, and read and record the information of the vehicle according to the RFID signal of the vehicle; the recording module (121) is communicatively connected to the control module (125) so that the control module (125) receives and stores the information of the vehicle sent by the recording module (121); The control module (125) is used to send the stored information of the vehicle to the abnormal temperature detection module so that the abnormal temperature detection module can determine the vehicle corresponding to the test piece with an abnormal temperature.
5. The detection device according to claim 4, characterized in that, The detection device further includes: The control module (125) is connected to the abnormal temperature detection module through the transmission module. The transmission module is used to transmit the thermal image and vehicle information stored in the control module (125) to the abnormal temperature detection module.
6. The detection device according to claim 2, characterized in that, The camera assembly (400) also includes: A camera gimbal (430) is provided, on which the infrared camera (420) is rotatably mounted.
7. The detection device according to claim 6, characterized in that, The detection device further includes: A camera platform (410) is at least partially connected to the lifting assembly (140); the camera gimbal (430) is mounted on the camera platform (410).
8. The detection device according to claim 3, characterized in that, The workbench (100) includes a storage box (120) with a receiving space, and the control module (125) is disposed within the receiving space.
9. The detection device according to claim 1, characterized in that, The detection device further includes: A movable wheel (130) is provided at the bottom of the worktable (100), and the movable wheel (130) is rotatably provided; A first support (110) is disposed on the workbench (100). The first support (110) is foldable to switch between an unfolded state and a folded state. When the first support (110) is in the unfolded state, the first support (110) is used to support the placement base, and the moving wheel (130) is separated from the placement base. When the first support (110) is in the folded state, the first support (110) is separated from the placement base, and the moving wheel (130) is movably disposed on the placement base.
10. The detection device according to claim 1, characterized in that, The detection device further includes a power supply (122); the detection device also includes: A solar power generation module (200) includes a second support (210) and a solar panel (220). The second support (210) is disposed on the top of the workbench (100), and the solar panel (220) is mounted on the second support (210) and used to supply power to the power source (122); and / or A wind power generation component (300) includes blades (310), a hub (320), and a support column (330). The support column (330) is disposed on the workbench (100), and the blades (310) are disposed on the hub (320). The hub (320) is rotatably disposed on the support column (330) to drive the blades (310) to rotate, thereby supplying power to the power source (122).