Temperature detection device for ultrathin heat-conducting patch

By introducing anti-bending and automatic delivery functions into the ultra-thin thermal conduction patch temperature detection device, the screw and telescopic rod driven by the PLC controller and motor are solved, and the problem of close fit between the probe and the patch and high-temperature scalding is improved, and the detection accuracy and delivery safety are improved.

CN222938629UActive Publication Date: 2025-06-03W M M UNIQUE (SHENZHEN) CO LTD
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Patent Information

Application Number
CN202421739783.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-22
Publication Date
2025-06-03
Estimated Expiration
2034-07-22

AI Technical Summary

Technical Problem

The existing ultra-thin thermal conduction patch temperature detection devices lack the anti-ultra-thin thermal conduction patch bending and automatic discharge functions, and cannot ensure that the probe and the ultra-thin thermal conduction patch are closely fitted, and high temperatures may burn people, affecting the detection accuracy and safety of discharge.

Method used

A temperature detection device including a workbench, a PLC controller, a heating assembly and a detection assembly are designed. By setting up anti-thin thermal conduction patch bending and automatic delivery functions, the screw and telescopic rod are driven by the PLC controller and motor to achieve a close fit between the probe and the ultra-thin thermal conduction patch and automatic delivery.

Benefits of technology

It effectively prevents bending of ultra-thin thermally conductive patches when the probe is fitted, ensures that the probe and the patch are in close contact, and improves detection accuracy. At the same time, through the automatic delivery function, people are avoided from being scalded by high temperature when picking up the goods, improving the safety of delivery.

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Abstract

The utility model relates to a temperature detection device of an ultrathin heat-conducting patch. Comprising a workbench, a PLC is arranged on the side edge of the top of the workbench, a heating assembly is arranged beside the workbench and composed of a water tank, a drainage pipe and a heating plate, the water tank is welded to the side face of the workbench, and a storage box is welded to the position, corresponding to the water tank, of the other side face of the workbench; two supporting rods are symmetrically welded to the other side edge of the top of the workbench corresponding to the water tank, a top plate is welded to the top ends of the supporting rods, and a detection assembly is arranged in the middle of the top of the workbench. According to the utility model, by setting the functions of preventing the ultrathin heat-conducting patch from being bent and automatically unloading, the probe and the ultrathin heat-conducting patch are ensured to be tightly attached, and personnel cannot be scalded by high temperature.
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Description

Technical Field

[0001] The utility model relates to the technical field of temperature measurement of ultra-thin heat-conducting patches, in particular to a temperature detection device for ultra-thin heat-conducting patches. Background Art

[0002] With the rapid development of power electronic devices and components towards miniaturization, integration, and high efficiency, the performance and heat dissipation of devices are constantly increasing, bringing many problems such as uneven distribution of heat flux density, extremely large local heat flux density, heat accumulation in local areas, and excessively high local temperature. The industry has been continuously researching and developing various heat dissipation devices to solve the heat dissipation problems of electronic components.

[0003] Common temperature detection devices for ultra-thin heat-conducting patches only include the temperature measurement function and can measure the temperature of ultra-thin heat-conducting patches. However, they lack the functions of preventing the ultra-thin heat-conducting patches from being bent and automatically discharging goods, cannot ensure the close fit between the probe and the ultra-thin heat-conducting patch, and high temperatures will not scald people. It is easy to occur that when the probe is in contact with the ultra-thin heat-conducting patch, the ultra-thin heat-conducting patch is bent under force and cannot be in close contact with the temperature measurement probe, and people are scalded by high temperatures when picking up goods, affecting the detection accuracy and the safety of discharging goods.

[0004] Therefore, aiming at the problems that the above-mentioned temperature detection device for ultra-thin heat-conducting patches lacks the functions of preventing the ultra-thin heat-conducting patches from being bent and automatically discharging goods, cannot ensure the close fit between the probe and the ultra-thin heat-conducting patch, and high temperatures will not scald people, it is urgently needed to be solved to improve the usage scenario of the temperature detection device for ultra-thin heat-conducting patches. Summary of the Utility Model

[0005] In order to overcome the problems of the common temperature detection device for ultra-thin heat-conducting patches, which lacks the functions of preventing the ultra-thin heat-conducting patches from being bent and automatically discharging goods, cannot ensure the close fit between the probe and the ultra-thin heat-conducting patch, and high temperatures will not scald people, it is easy to occur that when the probe is in contact with the ultra-thin heat-conducting patch, the ultra-thin heat-conducting patch is bent under force and cannot be in close contact with the temperature measurement probe, and people are scalded by high temperatures when picking up goods, affecting the detection accuracy and the safety of discharging goods.

[0006] The technical solution of the utility model is: a temperature detection device for ultra-thin heat-conducting patches, which includes a workbench. A PLC controller is arranged on the top side of the workbench. A heating component is arranged beside the workbench. The heating component is composed of a water tank, a drain pipe, and a heating plate. The water tank is welded on the side of the workbench. A storage box is welded on the other side of the workbench corresponding to the position of the water tank. Two support rods are symmetrically welded on the top of the workbench at the position corresponding to the water tank. The top of the support rods is welded with a top plate. A detection component is arranged in the middle of the top of the workbench. The detection component is composed of a first mounting plate, a first driving block, a first lead screw, a first motor, a fixing plate, and a temperature measurement probe. A clamping component is arranged below the top plate.

[0007] Preferably, by setting the ultra-thin thermal conductive patch anti-bending and automatic unloading functions, it is ensured that the probe and the ultra-thin thermal conductive patch are closely fitted and the high temperature will not scald people, so as to solve the problem that the temperature detection device of the common ultra-thin thermal conductive patch only includes the temperature measurement function, can measure the temperature of the ultra-thin thermal conductive patch, but lacks the ultra-thin thermal conductive patch anti-bending and automatic unloading functions, and cannot ensure that the probe and the ultra-thin thermal conductive patch are closely fitted and the high temperature will not scald people, and it is easy for the probe to bend under the force when fitting with the ultra-thin thermal conductive patch and cannot be closely fitted with the temperature measuring probe, and people are scalded by the high temperature when picking up the goods, affecting the detection accuracy and unloading safety.

[0008] Preferably, a drain pipe is welded to the bottom of the side of the water tank, and a heating plate is provided on the other side of the water tank. The heating plate is electrically connected to the PLC controller. Clean water is injected into the water tank, and the PLC controller controls the heating plate to start. The heat generated by the heating plate is transferred to the clean water through the water tank to heat it.

[0009] Preferably, two first mounting plates are symmetrically welded on both sides in the middle of the workbench top, a first driving block is arranged in the middle of the two first mounting plates, a first screw rod is arranged in the middle of the two first mounting plates corresponding to the position of the first driving block, and a first motor is arranged on the side of the first mounting plate corresponding to the position of the first screw rod, the first motor is electrically connected to the PLC controller, the PLC controller controls the start of the first motor, and the first motor drives the first screw rod to rotate.

[0010] Preferably, one end of the first screw rod passes through the first drive block and the first mounting plate and is connected to the output end of the first motor; a fixed plate is welded on the top of the first drive block; a temperature measuring probe is arranged on the side of the fixed plate; the temperature measuring probe is electrically connected to the PLC controller; the rotating first screw rod drives the temperature measuring probe to move toward the ultra-thin thermal conductive patch through the first drive block until the temperature measuring probe and the ultra-thin thermal conductive patch are tightly fitted for detection; after the temperature measuring probe contacts the surface of the ultra-thin thermal conductive patch, the ultra-thin thermal conductive patch will be supported by the probe limit plate, and the temperature measuring probe transmits the detected temperature data to the display screen on the PLC controller for display, thereby realizing the function of preventing the ultra-thin thermal conductive patch from bending, and preventing the problem that the ultra-thin thermal conductive patch is bent due to force when the probe is fitted with the ultra-thin thermal conductive patch and cannot be tightly fitted with the temperature measuring probe, thereby affecting the detection accuracy.

[0011] Preferably, the clamping assembly is composed of a first electric telescopic rod, a connecting plate, a second mounting plate, a second driving block, a second lead screw, a second motor, a side plate, a second electric telescopic rod, a clamping plate and a probe limiting plate. Two first electric telescopic rods are symmetrically arranged on both sides of the bottom of the top plate. The bottom end of the first electric telescopic rod is welded with a connecting plate. Two second mounting plates are symmetrically welded on both sides of the bottom of the connecting plate. The first electric telescopic rod is electrically connected to the PLC controller. The PLC controller controls the first electric telescopic rod to drive the ultra-thin heat-conducting patch downward until the bottom end of the ultra-thin heat-conducting patch is immersed in hot water, and the ultra-thin heat-conducting patch is heated by the temperature of the hot water.

[0012] Preferably, a second driving block is arranged in the middle of the two second mounting plates. A second lead screw is arranged at the position corresponding to the second driving block in the middle of the two second mounting plates. A second motor is arranged on the side surface of the second mounting plate corresponding to the second lead screw. One end of the second lead screw passes through the second driving block and the second mounting plate and is connected to the output end of the second motor. The second motor is electrically connected to the PLC controller. After measuring the temperature, the PLC controller controls the second motor to start. The second motor drives the second lead screw to rotate. The rotating second lead screw drives the ultra-thin heat-conducting patch to move above the storage box through the second driving block. Then the second electric telescopic rod drives the clamping plate to reset, so that the ultra-thin heat-conducting patch falls into the storage box for storage, realizing the function of automatic unloading, and preventing the problem that personnel are scalded by high temperature when picking up goods, which affects the safety of unloading.

[0013] Preferably, two side plates are symmetrically welded on both sides of the bottom of the second driving block. Second electric telescopic rods are symmetrically welded on the side surfaces of the two side plates. One end of the second electric telescopic rod is welded with a clamping plate. A probe limiting plate is welded to the bottom of one clamping plate. The second electric telescopic rod is electrically connected to the PLC controller. Before detection, the operator places the ultra-thin heat-conducting patch between the two clamping plates. Then the PLC controller controls the second electric telescopic rod to start. The second electric telescopic rod drives the two clamping plates to clamp the ultra-thin heat-conducting patch.

[0014] The beneficial effects of the present utility model are as follows:

[0015] 1. By setting the functions of preventing the ultra-thin heat-conducting patch from bending and automatic unloading, it is ensured that the probe is in close contact with the ultra-thin heat-conducting patch and high temperature will not scald personnel, so as to solve the problems of the common temperature detection device for ultra-thin heat-conducting patches, which only includes the temperature measurement function, can measure the temperature of the ultra-thin heat-conducting patch, but lacks the functions of preventing the ultra-thin heat-conducting patch from bending and automatic unloading, and cannot ensure that the probe is in close contact with the ultra-thin heat-conducting patch and high temperature will not scald personnel, and it is easy to cause the ultra-thin heat-conducting patch to be bent under force when the probe is in contact with the ultra-thin heat-conducting patch and cannot be in close contact with the temperature measurement probe, and personnel are scalded by high temperature when picking up goods, affecting the detection accuracy and the safety of unloading.

[0016] 2. After measuring the temperature, the PLC controller controls the second motor to start, and the second motor drives the second screw to rotate. The rotating second screw drives the ultra-thin thermal conductive patch to move to the top of the storage box through the second drive block, and then the second electric telescopic rod drives the splint to reset, so that the ultra-thin thermal conductive patch falls into the storage box for storage, realizing the function of automatic unloading;

[0017] 3. Before the test, the personnel will place the ultra-thin thermal conductive patch in the middle of the two clamping plates, and then the PLC controller controls the second electric telescopic rod to start, and the second electric telescopic rod drives the two clamping plates to clamp the ultra-thin thermal conductive patch, and then the PLC controller controls the first electric telescopic rod to drive the ultra-thin thermal conductive patch to move downward until the bottom end of the ultra-thin thermal conductive patch is immersed in hot water, and the ultra-thin thermal conductive patch is heated by the temperature of the hot water. During the heating process, the PLC controller controls the first motor to start, and the first motor drives the first screw rod to rotate. The rotating first screw rod drives the temperature measuring probe to move toward the ultra-thin thermal conductive patch through the first driving block until the temperature measuring probe and the ultra-thin thermal conductive patch are closely fitted for testing. After the temperature measuring probe contacts the surface of the ultra-thin thermal conductive patch, the ultra-thin thermal conductive patch will be supported by the probe limit plate, and the temperature measuring probe transmits the detected temperature data to the display screen on the PLC controller for display, thereby realizing the function of preventing the ultra-thin thermal conductive patch from bending. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 What is shown is a three-dimensional structural schematic diagram of a temperature detection device of an ultra-thin thermal conductive patch of the utility model;

[0019] Figure 2 Shown is a three-dimensional structural diagram of a heating component of a temperature detection device of an ultra-thin thermal conductive patch of the utility model;

[0020] Figure 3 Shown is a three-dimensional structural schematic diagram of a temperature detection device detection component of an ultra-thin thermal conductive patch of the utility model;

[0021] Figure 4 Shown is a three-dimensional structural schematic diagram of a clamping component of a temperature detection device for an ultra-thin thermal conductive patch of the utility model.

[0022] In the figure: 1. workbench; 2. PLC controller; 3. heating component; 31. water tank; 32. drain pipe; 33. heating plate; 4. storage box; 5. support rod; 6. top plate; 7. detection component; 71. first mounting plate; 72. first drive block; 73. first screw rod; 74. first motor; 75. fixing plate; 76. temperature measuring probe; 8. clamping component; 81. first electric telescopic rod; 82. connecting plate; 821. second mounting plate; 83. second drive block; 84. second screw rod; 85. second motor; 86. side plate; 87. second electric telescopic rod; 88. clamping plate; 89. probe limit plate. DETAILED DESCRIPTION

[0023] The utility model is further described below in conjunction with the accompanying drawings and embodiments.

[0024] See also Figures 1-4 A temperature detection device for an ultra-thin thermal conductive patch includes a workbench 1, a PLC controller 2 is arranged on the top side of the workbench 1, a heating component 3 is arranged on the side of the workbench 1, and the heating component 3 is composed of a water tank 31, a drain pipe 32 and a heating plate 33. The water tank 31 is welded on the side of the workbench 1, and a storage box 4 is welded on the other side of the workbench 1 corresponding to the position of the water tank 31. Two support rods 5 are symmetrically welded on the other side of the top of the workbench 1 corresponding to the position of the water tank 31, and a top plate 6 is welded on the top of the support rod 5. A detection component 7 is arranged in the middle of the top of the workbench 1, and the detection component 7 is composed of a first mounting plate 71, a first driving block 72, a first screw rod 73, a first motor 74, a fixing plate 75 and a temperature measuring probe 76. A clamping component 8 is arranged below the top plate 6.

[0025] See also Figures 1-4 In this embodiment, a drain pipe 32 is welded to the bottom of the side of the water tank 31, and a heating plate 33 is provided on the other side of the water tank 31. The heating plate 33 is electrically connected to the PLC controller 2. Before the test, the personnel place the ultra-thin thermal conductive patch between the two clamping plates 88, and then the PLC controller 2 controls the second electric telescopic rod 87 to start, and the second electric telescopic rod 87 drives the two clamping plates 88 to clamp the ultra-thin thermal conductive patch, and then the PLC controller 2 controls the first electric telescopic rod 81 to drive the ultra-thin thermal conductive patch to move downward until the bottom end of the ultra-thin thermal conductive patch is immersed in hot water, and the ultra-thin thermal conductive patch is heated by the temperature of the hot water. During the heating process, the PLC controller 2 controls the first motor 74 to start, and the first motor 74 drives the first screw rod 73 to rotate. The rotating first screw rod 73 passes through the first driving block 72 drives the temperature measuring probe 76 to move toward the ultra-thin thermal conductive patch until the temperature measuring probe 76 is tightly fitted with the ultra-thin thermal conductive patch for detection. After the temperature measuring probe 76 contacts the surface of the ultra-thin thermal conductive patch, the ultra-thin thermal conductive patch will be supported by the probe limit plate 89, and the temperature measuring probe 76 transmits the detected temperature data to the display screen on the PLC controller 2 for display. After measuring the temperature, the PLC controller 2 controls the second motor 85 to start, and the second motor 85 drives the second screw rod 84 to rotate. The rotating second screw rod 84 drives the ultra-thin thermal conductive patch to move to the top of the storage box 4 through the second driving block 83, and then the second electric telescopic rod 87 drives the splint 88 to reset, so that the ultra-thin thermal conductive patch falls into the storage box 4 for storage, completing the work of preventing the ultra-thin thermal conductive patch from bending and automatically unloading.

[0026] See also Figures 1-4, a drain pipe 32 is welded to the bottom of the side of the water tank 31. A heating plate 33 is provided on the other side of the water tank 31. The heating plate 33 is electrically connected to the PLC controller 2. On both sides of the middle of the top of the workbench 1, two first mounting plates 71 are symmetrically welded. A first driving block 72 is arranged in the middle of the two first mounting plates 71. A first lead screw 73 is arranged at the position corresponding to the first driving block 72 in the middle of the two first mounting plates 71. A first motor 74 is arranged on the side of the first mounting plate 71 corresponding to the first lead screw 73. The first motor 74 is electrically connected to the PLC controller 2. One end of the first lead screw 73 passes through the first driving block 72 and the first mounting plate 71 and is connected to the output end of the first motor 74. A fixing plate 75 is welded to the top of the first driving block 72. A temperature measuring probe 76 is arranged on the side of the fixing plate 75. The temperature measuring probe 76 is electrically connected to the PLC controller 2. The clamping assembly 8 is composed of a first electric telescopic rod 81, a connecting plate 82, a second mounting plate 821, a second driving block 83, a second lead screw 84, a second motor 85, a side plate 86, a second electric telescopic rod 87, a clamping plate 88 and a probe limiting plate 89. Two first electric telescopic rods 81 are symmetrically arranged on both sides of the bottom of the top plate 6. The bottom end of the first electric telescopic rod 81 is welded with a connecting plate 82. Two second mounting plates 821 are symmetrically welded on both sides of the bottom of the connecting plate 82. The first electric telescopic rod 81 is electrically connected to the PLC controller 2. A second driving block 83 is arranged in the middle of the two second mounting plates 821. A second lead screw 84 is arranged at the position corresponding to the second driving block 83 in the middle of the two second mounting plates 821. A second motor 85 is arranged on the side of the second mounting plate 821 corresponding to the second lead screw 84. One end of the second lead screw 84 passes through the second driving block 83 and the second mounting plate 821 and is connected to the output end of the second motor 85. The second motor 85 is electrically connected to the PLC controller 2. Two side plates 86 are symmetrically welded on both sides of the bottom of the second driving block 83. Second electric telescopic rods 87 are symmetrically welded on the sides of the two side plates 86. One end of the second electric telescopic rod 87 is welded with a clamping plate 88. A probe limiting plate 89 is welded to the bottom of one clamping plate 88. The second electric telescopic rod 87 is electrically connected to the PLC controller 2. Clean water is injected into the water tank 31. The PLC controller 2 controls the heating plate 33 to start. The heat generated by the heating plate 33 is transferred to the clean water through the water tank 31 to heat it. Before detection, the operator places the ultra-thin heat-conducting patch between the two clamping plates 88. Then the PLC controller 2 controls the second electric telescopic rod 87 to start. The second electric telescopic rod 87 drives the two clamping plates 88 to clamp the ultra-thin heat-conducting patch. Then the PLC controller 2 controls the first electric telescopic rod 81 to drive the ultra-thin heat-conducting patch to move downward until the bottom end of the ultra-thin heat-conducting patch is immersed in the hot water. The ultra-thin heat-conducting patch is heated by the temperature of the hot water. During the heating process, the PLC controller 2 controls the first motor 74 to start. The first motor 74 drives the first lead screw 73 to rotate. The rotating first lead screw 73 drives the temperature measuring probe 76 to move towards the ultra-thin heat-conducting patch through the first driving block 72.Until the temperature measurement probe 76 is in close contact with the ultra-thin heat-conducting patch for detection. After the surface of the temperature measurement probe 76 contacts the ultra-thin heat-conducting patch, the ultra-thin heat-conducting patch will be blocked by the probe limiting plate 89. The temperature measurement probe 76 transmits the detected temperature data to the display screen on the PLC controller 2 for display. After measuring the temperature, the PLC controller 2 controls the second motor 85 to start. The second motor 85 drives the second lead screw 84 to rotate. The rotating second lead screw 84 drives the ultra-thin heat-conducting patch to move above the storage box 4 through the second driving block 83. Then the second electric telescopic rod 87 drives the clamping plate 88 to reset, so that the ultra-thin heat-conducting patch falls into the storage box 4 for storage, realizing the functions of preventing the ultra-thin heat-conducting patch from being bent and automatic unloading, preventing problems such as the ultra-thin heat-conducting patch being bent under force when the probe is in contact with it and unable to be in close contact with the temperature measurement probe 76, and preventing personnel from being scalded by high temperature when picking up goods, which affect the detection accuracy and unloading safety.

[0027] When working, clean water is injected into the water tank 31. The PLC controller 2 controls the heating plate 33 to start. The heat generated by the heating plate 33 is transferred to the clean water through the water tank 31 to heat it. Before detection, the operator places the ultra-thin heat-conducting patch between the two clamping plates 88. Then the PLC controller 2 controls the second electric telescopic rod 87 to start. The second electric telescopic rod 87 drives the two clamping plates 88 to clamp the ultra-thin heat-conducting patch. Then the PLC controller 2 controls the first electric telescopic rod 81 to drive the ultra-thin heat-conducting patch to move downward until the bottom end of the ultra-thin heat-conducting patch is immersed in the hot water, and the ultra-thin heat-conducting patch is heated by the temperature of the hot water. During the heating process, the PLC controller 2 controls the first motor 74 to start. The first motor 74 drives the first lead screw 73 to rotate. The rotating first lead screw 73 drives the temperature measurement probe 76 to move towards the ultra-thin heat-conducting patch through the first driving block 72 until the temperature measurement probe 76 is in close contact with the ultra-thin heat-conducting patch for detection. After the surface of the temperature measurement probe 76 contacts the ultra-thin heat-conducting patch, the ultra-thin heat-conducting patch will be blocked by the probe limiting plate 89. The temperature measurement probe 76 transmits the detected temperature data to the display screen on the PLC controller 2 for display. After measuring the temperature, the PLC controller 2 controls the second motor 85 to start. The second motor 85 drives the second lead screw 84 to rotate. The rotating second lead screw 84 drives the ultra-thin heat-conducting patch to move above the storage box 4 through the second driving block 83. Then the second electric telescopic rod 87 drives the clamping plate 88 to reset, so that the ultra-thin heat-conducting patch falls into the storage box 4 for storage, realizing the functions of preventing the ultra-thin heat-conducting patch from being bent and automatic unloading.

[0028] Through the above steps, by setting the functions of preventing the ultra-thin heat-conducting patch from bending and automatically unloading goods, it is ensured that the probe is closely attached to the ultra-thin heat-conducting patch and high temperature will not scald people, so as to solve the problem of the common temperature detection device for ultra-thin heat-conducting patches, which only includes the temperature measurement function, can measure the temperature of the ultra-thin heat-conducting patch, but lacks the functions of preventing the ultra-thin heat-conducting patch from bending and automatically unloading goods, and cannot ensure that the probe is closely attached to the ultra-thin heat-conducting patch and high temperature will not scald people. It is easy to cause the ultra-thin heat-conducting patch to be bent under force when the probe is attached to the ultra-thin heat-conducting patch and cannot be closely attached to the temperature measurement probe 76, and people will be scalded by high temperature when picking up goods, affecting the detection accuracy and the safety of unloading goods.

[0029] The embodiments of the present invention have been described in detail above in conjunction with the accompanying drawings. However, the present invention is not limited to the above embodiments, and various changes can be made without departing from the purpose of the present invention within the scope of knowledge possessed by those skilled in the art.

Claims

1. A temperature detection device for an ultra-thin thermally conductive patch, comprising a workbench, characterized in that: A PLC controller is arranged on the top side of the workbench, a heating assembly is arranged on the side of the workbench, the heating assembly consists of a water tank, a drain pipe and a heating plate, a water tank is welded to the side of the workbench, a storage box is welded to the other side of the workbench corresponding to the position of the water tank, two support rods are symmetrically welded to the other side of the top of the workbench corresponding to the position of the water tank, a top plate is welded to the top of the support rods, a detection assembly is arranged in the middle of the top of the workbench, the detection assembly consists of a first mounting plate, a first driving block, a first screw rod, a first motor, a fixing plate and a temperature measuring probe, and a clamping assembly is arranged under the top plate.

2. The temperature detection device of the ultra-thin thermal conductive patch according to claim 1, characterized in that: A drain pipe is welded to the bottom of the side of the water tank, and a heating plate is arranged on the other side of the water tank, and the heating plate is electrically connected to the PLC controller.

3. The temperature detection device of the ultra-thin thermal conductive patch according to claim 1, characterized in that: Two first mounting plates are symmetrically welded on both sides in the middle of the workbench top, a first driving block is arranged in the middle of the two first mounting plates, a first screw rod is arranged in the position corresponding to the first driving block in the middle of the two first mounting plates, a first motor is arranged on the side of the first mounting plate corresponding to the position of the first screw rod, and the first motor is electrically connected to the PLC controller.

4. The temperature detection device of the ultra-thin thermal conductive patch according to claim 3, characterized in that: One end of the first screw rod passes through the first drive block and the first mounting plate and is connected to the output end of the first motor. A fixing plate is welded on the top of the first drive block. A temperature measuring probe is arranged on the side of the fixing plate. The temperature measuring probe is electrically connected to the PLC controller.

5. The temperature detection device of the ultra-thin thermal conductive patch according to claim 1, characterized in that: The clamping assembly consists of a first electric telescopic rod, a connecting plate, a second mounting plate, a second drive block, a second screw rod, a second motor, a side plate, a second electric telescopic rod, a clamping plate and a probe limit plate. Two first electric telescopic rods are symmetrically arranged on both sides of the bottom of the top plate, a connecting plate is welded to the bottom end of the first electric telescopic rod, and two second mounting plates are symmetrically welded on both sides of the bottom of the connecting plate. The first electric telescopic rod is electrically connected to the PLC controller.

6. The temperature detection device of the ultra-thin thermal conductive patch according to claim 5, characterized in that: A second driving block is arranged in the middle of the two second mounting plates, a second screw rod is arranged in the position corresponding to the second driving block in the middle of the two second mounting plates, a second motor is arranged on the side of the second mounting plate corresponding to the position of the second screw rod, one end of the second screw rod passes through the second driving block and the second mounting plate and is connected to the output end of the second motor, and the second motor is electrically connected to the PLC controller.

7. The temperature detection device of the ultra-thin thermal conductive patch according to claim 6, characterized in that: Two side panels are symmetrically welded on both sides of the bottom of the second driving block, and second electric telescopic rods are symmetrically welded on the sides of the two side panels. A clamping plate is welded at one end of the second electric telescopic rod, and a probe limit plate is welded at the bottom of one clamping plate. The second electric telescopic rod is electrically connected to the PLC controller.