A detection device and method of a self-adjustable heat conduction capacity decorative wallboard
The decorative wall panel testing device with self-adjusting thermal conductivity uses a combination of wedge blocks and elastic water bladders to record the relationship between thermal conductivity and height, solving the problem of adjusting the decorative wall panel when the temperature changes, and realizing adaptive adjustment of the wall panel performance and convenient parameter setting.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-04-28
- Publication Date
- 2026-04-10
AI Technical Summary
Existing decorative wall panels lack the ability to adjust their thermal conductivity when the external temperature changes, and therefore cannot effectively meet the needs of different environments.
A self-adjustable thermal conductivity testing device for decorative wall panels was designed, comprising a wall panel body, a testing component, and a lifting component. Through the cooperation of wedge blocks and elastic water bladders, different height levels can be adjusted, the correspondence between thermal conductivity and height is recorded, and the data is generated and entered into the controller to achieve wireless control and parameter adjustment.
It achieves adaptive adjustment of decorative wall panels, which can adjust the thermal conductivity as needed in different environments to meet the needs of various regional environmental changes, and the performance testing and initialization settings are convenient.
Smart Images

Figure CN116359280B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of decorative wallboard detection, more particularly to a self-adjustable heat conduction capacity decorative wallboard detection device and method. BACKGROUND
[0002] Decorative wallboard is a commonly used building board in modern buildings. In house building, decorative wallboard can play a good beautifying role. The surface of decorative wallboard is provided with various patterns, which can be selected and matched with the decoration style, and has good use effect.
[0003] The currently used decorative wallboard and mounting structure are generally fixed in actual heat insulation or heat conduction capacity of the wall after assembly, and do not have adjustment function. When the external temperature changes, there is a lack of corresponding adjustment function, and a self-adjustable heat conduction capacity decorative wallboard and a corresponding decorative wallboard detection device are needed. SUMMARY
[0004] The technical problem to be solved by the present application is to provide a self-adjustable heat conduction capacity decorative wallboard detection device and method to solve the above defects in the prior art.
[0005] The technical solution adopted by the present application to solve the technical problem is:
[0006] A self-adjustable heat conduction capacity decorative wallboard detection device is constructed, which comprises a wallboard body and a detection assembly.
[0007] The interior of the wallboard body is provided with a cavity, the cavity is provided with a first wedge-shaped block and a second wedge-shaped block made of heat-conducting material in the longitudinal direction, the inclined surface of the first wedge-shaped block is fitted with the inclined surface of the second wedge-shaped block and is connected by a sliding assembly; in the initial state, the first wedge-shaped block and the second wedge-shaped block are not in contact with the inner wall of the cavity; the inner top of the cavity is provided with a lifting assembly, the movable end of the lifting assembly is connected with the upper end of the first wedge-shaped block through a first elastic rod, the top of the cavity is provided with a second elastic rod connecting the upper end of the second wedge-shaped block, and the bottom of the cavity is provided with a third elastic rod connecting the lower end of the second wedge-shaped block; the wallboard body is provided with a temperature sensor for detecting surface temperature, a controller for controlling the lifting assembly, a wireless communication module and a solar cell for power supply; the bottom of the cavity is fixedly provided with an elastic water bag; when the lifting assembly drives the first wedge-shaped block to descend and extrude the elastic water bag, the elastic water bag deforms and partially enters the gap between the first wedge-shaped block and the inner wall of the cavity and the gap between the second wedge-shaped block and the inner wall of the cavity; when the lifting assembly drives the first wedge-shaped block to ascend and separate from the elastic water bag, the elastic water bag restores deformation;
[0008] The detection assembly comprises a clamping assembly and a control host, two clamping arms of the clamping assembly correspond to front and back surfaces of the wallboard body respectively, and a heating assembly for gradually heating the front surface of the wallboard body and an infrared monitor for detecting the temperature of the back surface of the wallboard body are arranged on the two clamping arms respectively; the control host communicates with the controller and controls the lifting assembly to drive the first wedge-shaped block to be at multiple different height gears, records the temperature conduction efficiency at different height gears, generates a corresponding relationship between the height gears and the heat conduction capacity, and enters the data into the controller.
[0009] The detection device for the decorative wallboard with self-adjustable heat conduction capacity, wherein the narrower end of the first wedge-shaped block faces upward, and the wider end of the second wedge-shaped block faces upward.
[0010] The detection device for the decorative wallboard with self-adjustable heat conduction capacity, wherein the bottom surface of the elastic water bag is fixedly connected with the bottom of the cavity, and the bottom of the cavity is provided with a liquid leakage sensor for detecting liquid leakage.
[0011] The detection device for the decorative wallboard with self-adjustable heat conduction capacity, wherein the wallboard body is composed of a front side plate and a rear side plate connected together, and the connection between the front side plate and the rear side plate is sealed.
[0012] The detection device for the decorative wallboard with self-adjustable heat conduction capacity, wherein the lifting assembly is an electric push rod.
[0013] A detection method for a decorative wallboard with self-adjustable heat conduction capacity, applied to the detection device for the decorative wallboard with self-adjustable heat conduction capacity as described above, and the implementation method is as follows:
[0014] After the clamping assembly clamps the decorative wallboard to be detected, the control host establishes a wireless communication connection with the controller;
[0015] The control host sends a control instruction to control the lifting assembly to drive the first wedge-shaped block to be at multiple different height gears, record the temperature conduction efficiency at different height gears, and generate a corresponding relationship between the height gears and the heat conduction capacity;
[0016] The control host enters the generated corresponding relationship between the height gears and the heat conduction capacity into the controller.
[0017] The detection method for the decorative wallboard with self-adjustable heat conduction capacity, wherein the multiple height gears at least include a first gear, a second gear and a third gear;
[0018] The first gear is in a state that the first wedge-shaped block extrudes the elastic water bag, so that the elastic water bag is deformed and partially enters the gap between the first wedge-shaped block and the inner wall of the cavity and the gap between the second wedge-shaped block and the inner wall of the cavity.
[0019] The second gear state is that the first wedge block and the second wedge block are not in contact with the inner wall of the cavity.
[0020] The third gear state is that the first wedge block and the second wedge block are in contact with the inner wall of the cavity.
[0021] The detection method of the decorative wallboard with self-adjustable heat conduction capacity provided by the application, wherein the control host generates a corresponding relationship between the temperature detected by the temperature sensor and the heat conduction capacity, and inputs the corresponding relationship into the controller.
[0022] In application, the controller receives the temperature data of the temperature sensor, automatically adjusts the parameters of the current heat conduction capacity according to the corresponding relationship between the temperature and the heat conduction capacity, and automatically adjusts the height gear according to the corresponding relationship between the height gear and the heat conduction capacity.
[0023] The beneficial effects of the application are as follows: after the clamping assembly clamps the decorative wallboard to be detected, the control host establishes a wireless communication connection with the controller, the control host sends a control instruction to control the lifting assembly, drives the first wedge block to be in multiple different height gears, records the temperature conduction efficiency at different height gears, generates a corresponding relationship between the height gear and the heat conduction capacity, and the control host inputs the generated corresponding relationship between the height gear and the heat conduction capacity into the controller, so that the detection and initialization setting of the decorative wallboard can be completed, and in use, the decorative wallboard can be wirelessly controlled, the parameters of the required heat conduction capacity can be input for parameter setting or adjustment, and the performance detection, initialization setting and adjustment use of the decorative wallboard are extremely convenient, and the decorative wallboard can meet the needs of changes in different regional environments. BRIEF DESCRIPTION OF DRAWINGS
[0024] In order to more clearly illustrate the technical solutions in the embodiments of the application or the prior art, the following will further describe the application with reference to the drawings and embodiments, and the drawings in the following description are only some embodiments of the application, and for those skilled in the art, other drawings can be obtained without creative labor on the basis of these drawings:
[0025] Figure 1 is a detection device structure sectional view of the decorative wallboard with self-adjustable heat conduction capacity according to the preferred embodiment of the application;
[0026] Figure 2 is a flow chart of the detection method of the decorative wallboard with self-adjustable heat conduction capacity according to the preferred embodiment of the application. DETAILED DESCRIPTION
[0027] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, a clear and complete description will be provided below in conjunction with the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only some, not all, of the embodiments of the present invention. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative effort are within the protection scope of the present invention.
[0028] A preferred embodiment of the present invention provides a detection device for a self-adjustable thermal conductivity decorative wall panel, such as... Figure 1 As shown, it includes a wall panel body 1 and a detection component 2;
[0029] The wall panel body 1 has an internal cavity 10. Within the cavity 10 are longitudinally arranged first wedge-shaped blocks 11 and second wedge-shaped blocks 12, both made of thermally conductive material (preferably, the narrower end of the first wedge-shaped block 11 faces upwards, and the wider end of the second wedge-shaped block 12 faces upwards). The inclined surfaces of the first wedge-shaped block 11 and the second wedge-shaped block 12 are in contact and slidably connected by a sliding assembly 3 (slide rail slider). Initially, neither the first wedge-shaped block 11 nor the second wedge-shaped block 12 is in contact with the inner wall of the cavity 10. A lifting assembly 4 (preferably an electric push rod) is located at the top inner part of the cavity 10. The movable end of the lifting assembly 4 is connected to the upper end of the first wedge-shaped block 11 via a first elastic rod 13. The top of the cavity 10 is provided with a connection to the upper end of the second wedge-shaped block 12. The second elastic rod 14, and the bottom of the cavity 10 are provided with a third elastic rod 15 connected to the lower end of the second wedge block 12; the wall panel body 1 is provided with a temperature sensor 100 for detecting surface temperature, a controller 101 for controlling the lifting assembly, a wireless communication module 102, and a solar cell 103 for power supply; an elastic water bladder 16 is fixedly provided at the bottom of the cavity 10; when the lifting assembly 4 drives the first wedge block 11 downward to squeeze the elastic water bladder 16, the elastic water bladder 16 deforms and partially enters the gap between the first wedge block 11 and the inner wall of the cavity 10 and the gap between the second wedge block 12 and the inner wall of the cavity 10; when the lifting assembly 4 drives the first wedge block 11 upward to disengage from the elastic water bladder 16, the elastic water bladder 16 restores its deformation;
[0030] The detection component 2 includes a clamping component 20 and a control host 21. The two clamping arms of the clamping component 20 correspond to the front and rear surfaces of the wall panel body 1, respectively. The two clamping arms are respectively equipped with a heating component 22 (heating wire) for gradually heating the front surface of the wall panel body 1 and an infrared monitor 23 for detecting the temperature of the rear surface of the wall panel body. The control host 21 communicates with the controller 101 and controls the lifting component, driving the first wedge block 11 to multiple different height positions, recording the temperature conduction efficiency at different height positions, generating the correspondence between the height position and the heat conduction capacity, and inputting the data into the controller.
[0031] After the clamping assembly 20 completes clamping on the decorative wall panel 1 to be detected, the control host 21 establishes a wireless communication connection with the controller 101, the control host 21 sends a control instruction to control the lifting assembly 4, drives the first wedge-shaped block 11 to be at a plurality of different height gears, records the temperature conduction efficiency at different height gears, generates a corresponding relationship between the height gears and the heat conduction capacity, and the control host 21 inputs the generated corresponding relationship between the height gears and the heat conduction capacity into the controller 101, so that the detection and initialization setting of the decorative wall panel can be completed, and the performance detection, initialization setting and adjustment of the decorative wall panel are extremely convenient, and a variety of different regional environmental change requirements can be met.
[0032] For example, when it is in the state of being exposed to the sun in summer, it can be adjusted to the first gear, so that the wall panel can be heat-insulated, and when it is in the state of being exposed to the sun at night in summer, it can be adjusted to the third gear, so that the wall panel can be heat-dissipated.
[0033] When it is in the state of being exposed to the sun in summer, it can be adjusted to the first gear, so that the wall panel can be heat-insulated, and when it is in the state of being exposed to the sun at night in summer, it can be adjusted to the third gear, so that the wall panel can be heat-dissipated.
[0034] Preferably, the plurality of height gears at least includes a first gear, a second gear and a third gear.
[0035] The first gear is in a state that the first wedge-shaped block extrudes the elastic water bag, so that the elastic water bag is deformed and partially enters the gap between the first wedge-shaped block and the inner wall of the cavity and the gap between the second wedge-shaped block and the inner wall of the cavity; in this state, the deformed elastic water bag forms a heat-insulating water layer at the two gaps, which can greatly reduce the overall heat conduction performance, and it can be understood that this state can be used for heat insulation and heat preservation.
[0036] The second gear is in a state that the first wedge-shaped block and the second wedge-shaped block are not in contact with the inner wall of the cavity; in this state, the heat conduction performance is moderate.
[0037] The third gear is in a state that the first wedge-shaped block and the second wedge-shaped block are in contact with the inner wall of the cavity; when the first wedge-shaped block rises, the overall width of the first wedge-shaped block and the second wedge-shaped block is increased to be in contact with the inner wall of the cavity under the action of the two inclined surfaces, in this state, the first wedge-shaped block and the second wedge-shaped block form a good heat conduction part, quickly transferring the heat of the side with higher temperature of the wall panel to the side with lower temperature, and this state can be used for heat dissipation and cooling.
[0038] Preferably, the bottom surface of the elastic water bag 16 is fixedly connected with the bottom of the cavity 10 to avoid displacement of the elastic water bag, and a liquid leakage sensor 17 for detecting liquid leakage is arranged at the bottom of the cavity 10 to detect the liquid leakage condition. When accidental liquid leakage occurs, the sensor sends a signal to the controller, which is transmitted to the outside through wireless signals to remind maintenance.
[0039] Preferably, the wallboard body 1 is composed of a front side plate and a rear side plate connected together, and the connection between the front side plate and the rear side plate is sealed; convenient assembly, it should be noted that the wallboard body needs other functions such as sound insulation can be set on the front side plate and / or rear side plate.
[0040] A detection method of a decorative wallboard with self-adjustable heat conduction capacity, applied to a detection device of a decorative wallboard with self-adjustable heat conduction capacity as described above, as shown in Figure 2 The implementation method is as follows:
[0041] S01: After the clamping assembly clamps the decorative wallboard to be detected, the control host establishes a wireless communication connection (such as Bluetooth) with the controller;
[0042] S02: The control host sends a control instruction to control the lifting assembly to drive the first wedge-shaped block to be at multiple different height positions, records the temperature conduction efficiency at different height positions, and generates a corresponding relationship between the height position and the heat conduction capacity;
[0043] S03: The control host inputs the generated corresponding relationship between the height position and the heat conduction capacity into the controller;
[0044] When in use, the decorative wallboard can be wirelessly controlled, and the required heat conduction capacity parameters can be input for parameter setting or adjustment. The performance detection, initialization setting and adjustment of the decorative wallboard are very convenient, and can meet the needs of changes in different regional environments.
[0045] The multiple height positions at least include a first position, a second position and a third position;
[0046] The first position is in a state that the first wedge-shaped block extrudes the elastic water bag, so that the elastic water bag deforms and partially enters the gap between the first wedge-shaped block and the inner wall of the cavity and the gap between the second wedge-shaped block and the inner wall of the cavity;
[0047] The second position is in a state that the first wedge-shaped block and the second wedge-shaped block are not in contact with the inner wall of the cavity;
[0048] The third position is in a state that the first wedge-shaped block and the second wedge-shaped block are in contact with the inner wall of the cavity;
[0049] It should be noted that each position can be further subdivided into multiple smaller positions to refine the heat conduction capacity.
[0050] Preferably, the control host can generate a corresponding relationship between the temperature detected by the temperature sensor and the heat conduction capacity, and input the corresponding relationship into the controller.
[0051] In use, the controller receives the temperature data from the temperature sensor, automatically adjusts the parameters of the current heat conduction capacity according to the corresponding relationship between the temperature and the heat conduction capacity, and automatically adjusts the height level according to the corresponding relationship between the height level and the heat conduction capacity, so as to complete the self-adaptive adjustment of the wallboard.
[0052] It should be understood that those skilled in the art can make improvements or changes according to the above description, and all these improvements and changes shall fall within the protection scope of the appended claims of the present application.
Claims
1. A detection device for a decorative wall panel with self-adjustable thermal conductivity, characterized in that, Includes the wall panel body and the testing components; The wall panel body has an internal cavity containing a first wedge-shaped block and a second wedge-shaped block, both made of thermally conductive material, arranged longitudinally within the cavity. The inclined surfaces of the first and second wedge-shaped blocks are abutted against each other and slidably connected by a sliding assembly. Initially, neither the first nor the second wedge-shaped block is in contact with the inner wall of the cavity. A lifting assembly is located at the top of the cavity, with its movable end connected to the upper end of the first wedge-shaped block via a first elastic rod. A second elastic rod is located at the top of the cavity, connecting to the upper end of the second wedge-shaped block. A connecting rod is located at the bottom of the cavity. The third elastic rod is located at the lower end of the second wedge block; the wall panel body is equipped with a temperature sensor for detecting surface temperature, a controller for controlling the lifting assembly, a wireless communication module, and a solar cell for power supply; an elastic water bladder is fixedly installed at the bottom of the cavity; when the lifting assembly drives the first wedge block downward to squeeze the elastic water bladder, the elastic water bladder deforms and partially enters the gap between the first wedge block and the inner wall of the cavity and the gap between the second wedge block and the inner wall of the cavity; when the lifting assembly drives the first wedge block upward to disengage from the elastic water bladder, the elastic water bladder returns to its original shape. The detection component includes a clamping component and a control host. The two clamping arms of the clamping component correspond to the front and rear surfaces of the wall panel body, respectively. Each of the two clamping arms is equipped with a heating component that gradually heats the front surface of the wall panel body and an infrared monitor that detects the temperature of the rear surface of the wall panel body. The control host communicates with the controller and controls the lifting component to move the first wedge block to multiple different height positions. It records the temperature conduction efficiency at different height positions, generates a correspondence between the height position and the heat conduction capacity, and inputs the data into the controller.
2. The detection device for self-adjustable thermal conductivity decorative wall panels according to claim 1, characterized in that, The narrower end of the first wedge faces upward, and the wider end of the second wedge faces upward.
3. The detection device for self-adjustable thermal conductivity decorative wall panels according to claim 2, characterized in that, The bottom surface of the elastic water bladder is fixedly connected to the bottom of the cavity, and a leakage sensor for detecting leakage is provided at the bottom of the cavity.
4. The detection device for self-adjustable thermal conductivity decorative wall panels according to claim 3, characterized in that, The wall panel body is composed of a front panel and a rear panel connected together, and the connection between the front panel and the rear panel is sealed.
5. The detection device for self-adjustable thermal conductivity decorative wall panels according to any one of claims 1-4, characterized in that, The lifting assembly is an electric push rod.
6. A method for testing self-adjustable thermal conductivity decorative wall panels, applied to the testing device for self-adjustable thermal conductivity decorative wall panels as described in any one of claims 1-5, characterized in that, The implementation method is as follows: After the clamping component clamps the decorative wall panel to be tested, the control host establishes a wireless communication connection with the controller. The control host sends control commands to control the lifting component, causing the first wedge block to be in multiple different height positions, recording the temperature conduction efficiency at different height positions, and generating the correspondence between the height position and the heat conduction capacity. The control host inputs the correspondence between the generated height level and the heat conduction capacity into the controller.
7. The method for testing self-adjustable thermal conductivity decorative wall panels according to claim 6, characterized in that, Multiple height settings include at least a first gear, a second gear, and a third gear; The state of the first gear position is as follows: the first wedge block squeezes the elastic water bladder, causing the elastic water bladder to deform and partially enter the gap between the first wedge block and the inner wall of the cavity and the gap between the second wedge block and the inner wall of the cavity. The second gear position is such that neither the first wedge block nor the second wedge block is in contact with the inner wall of the cavity; The third gear position is such that both the first wedge block and the second wedge block are in contact with the inner wall of the cavity.
8. The method for testing the self-adjustable thermal conductivity decorative wall panel according to claim 6, characterized in that, The control host generates the correspondence between the temperature detected by the temperature sensor and the thermal conductivity, and records it into the controller; In application, the controller receives temperature data from the temperature sensor, automatically adjusts the current thermal conductivity parameter based on the correspondence between temperature and thermal conductivity, and automatically adjusts the height level based on the correspondence between height level and thermal conductivity.
Citation Information
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