Heat insulation detection device for nano heat insulation tempered side window glass and detection method thereof
By designing a nano-insulated tempered side window glass detection device with a rotating shaft and a blower mechanism, efficient heat insulation detection and rapid cooling are achieved, solving the problems of low efficiency and temperature difference damage in existing technologies, and improving detection efficiency and safety.
Patent Information
- Application Number
- CN202510893534.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-30
- Publication Date
- 2025-09-12
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing nano-insulated tempered side window glass is inefficient during the insulation testing process. It needs to wait for heating, which affects the test results. In addition, the glass is easily damaged due to the large temperature difference after the test is completed.
A detection device consisting of a rotating shaft, a support frame, a limit plate, a heating element, a suction cup and a blower mechanism was designed. The rotating shaft drives the glass to rotate for multiple inspections, and the blower mechanism is combined with rapid cooling to avoid waiting for heating and damage due to temperature differences.
Improves the detection efficiency of nano-insulated tempered side window glass, reduces the impact of external factors, avoids glass damage, and ensures safe operation.
Smart Images

Figure CN120629252A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of nano glass, and in particular to a heat insulation detection device and a detection method for nano heat insulation tempered side window glass. Background Art
[0002] Nano-insulated tempered side window glass utilizes nano-coating technology. This glass is uniformly coated with a nanomaterial, imparting efficient thermal insulation while maintaining high light transmittance. Its core advantage lies in its ability to effectively block infrared and ultraviolet rays without compromising daylight, thereby lowering indoor temperatures and improving comfort.
[0003] When conducting thermal insulation testing on existing nano-insulated tempered side window glass, the glass is generally placed manually on top of the testing device, heated from one side by a heating device, and tested on the other side with a temperature detector. During this process, a certain amount of waiting time is required, which affects the efficiency of nano-glass testing. Summary of the Invention
[0004] The purpose of the present invention is to solve the shortcomings of the background technology and to propose a heat insulation detection device and a detection method for nano-insulated tempered side window glass.
[0005] In order to achieve the above purpose, the technical solution adopted by the present invention is: a heat insulation detection device for nano-insulated tempered side window glass, comprising a base, an appearance detection part and a temperature detector are detachably installed at the upper edge of the base, a rotatable rotating shaft is provided at the upper center of the base, a support frame is fixedly installed on the outer surface of the rotating shaft, the number of the support frames is at least one group, two groups of limit plates are provided on the side of the support frame away from the rotating shaft, the two groups of limit plates are fixedly connected to the support frame through an adjustment mechanism, a frame is fixedly installed on the side of the support frame away from the rotating shaft, a heating element is fixedly installed inside the frame, a suction cup is fixedly installed on the end of the frame away from the support frame, and a blowing mechanism is provided on the side of the base away from the temperature detector.
[0006] Preferably, the adjustment mechanism includes two groups of support plates, which are connected by a moving assembly and a limit plate. A connecting rod is fixedly installed on one side of the support plate close to the support frame. A groove is provided inside the support frame, and the connecting rod slides through the groove. A limit assembly is provided inside the connecting rod.
[0007] Preferably, the moving component includes a slide groove, which is opened inside the support plate, and a slider is slidably installed inside the slide groove. The slider is connected to the support plate through an elastic structure, and the slider is fixedly connected to the limit plate. A plate is rotatably installed on the side of the slider away from the limit plate, and the end of the plate away from the slider is rotatably connected to the support frame, and the plate is inclined.
[0008] Preferably, the elastic structure includes a sliding rod, which is fixedly installed inside the sliding groove. The sliding rod is arranged in a vertical shape, and the sliding rod and the slider are slidably connected. A spring No. 1 is movably sleeved on the outer surface of the sliding rod, and the spring No. 1 is fixedly connected to the slider.
[0009] Preferably, the limiting assembly includes a mounting groove, which is opened at the lower interior of the connecting rod, and a No. 2 spring is movably installed inside the mounting groove. A mounting block is fixedly installed at one end of the No. 2 spring away from the mounting groove, and the mounting block and the mounting groove are slidably connected, and the lower end surface of the mounting block on the side away from the support plate is designed in an arc shape.
[0010] Preferably, the limiting assembly also includes a rotating rod, which is rotatably installed above the base, and a push plate is provided on the sliding sleeve of the outer surface of the rotating rod. A slide is slidably installed on the side of the support frame away from the support plate, and the slide is in contact with the mounting block. The bottom of the slide is in contact with the top of the push plate, and the push plate is connected to the hair dryer structure.
[0011] Preferably, the hair drying mechanism includes an air outlet, which is opened inside the base, and the air outlet is located on the side of the rotating rod away from the rotating shaft. A motor is rotatably installed inside the air outlet, and a shaft is fixedly installed on the output end of the motor. The shaft is rotatably connected to the base, and fan blades are fixedly installed on the outer surface of the shaft, and a through hole is opened inside the limiting plate.
[0012] Preferably, the outer surfaces of the shaft and the rotating rod are fixedly sleeved with a No. 1 gear, the outsides of the two groups of the No. 1 gear are jointly sleeved with a toothed belt, the outer surface of the rotating rod is fixedly sleeved with a No. 2 gear, and the outer surface of the rotating shaft is slidably sleeved with a No. 2 gear through a lifting structure, the two groups of the No. 2 gears are meshed with each other, and one group of the No. 2 gears is in contact with the push plate.
[0013] Preferably, the lifting structure includes a guide groove, which is opened on the outer surface of the rotating shaft, and a guide block is slidably installed inside the guide groove, and the guide block is fixedly connected to one group of No. 2 gears, and a push block is rotatably installed below one group of No. 2 gears, and an electric push rod is fixedly installed below the base, and the output end of the electric push rod passes through the base and extends to the top of the base, and the output end of the electric push rod is fixedly connected to the push block.
[0014] A method for detecting thermal insulation of nano-insulated tempered side window glass is performed using the aforementioned thermal insulation detection device for nano-insulated tempered side window glass, and includes the following steps: S1. Place the glass to be inspected between two sets of limit plates. The adjustment mechanism drives the two sets of limit plates closer to each other. The two sets of limit plates limit the glass from the top and bottom ends. S2. At the same time, the suction cup connects the glass to the frame, and the shaft drives the glass to rotate. At this time, the heating element heats one side of the glass. The shaft drives the glass to rotate to the appearance inspection component and pauses to inspect the appearance and transmittance. The shaft drives the glass to continue rotating to the temperature detector and pauses to inspect the thermal insulation of the glass. S3. The rotating shaft drives the glass to rotate to the position of the blower mechanism and rests temporarily. At this time, the heating element stops working and the blower mechanism cools the glass.
[0015] Compared with the prior art, the present invention has the following beneficial effects: The invention provides a rotating shaft and four sets of support frames, which can sequentially perform thermal insulation testing on the glass. During this process, there is no need to wait for the heating element to heat up, which is conducive to improving the efficiency of glass thermal insulation testing. The invention provides an air outlet, and with the cooperation of the shaft and the fan blades, it can blow air from the bottom to the top. In the initial state, blowing air on the glass can reduce the influence of external factors on the insulation test results. After the test is completed, blowing air on the glass can quickly cool the glass, so that manual handling will not cause harm to workers. After the insulation test is completed, the invention can cool the glass naturally for a period of time, and then accelerate the cooling of the glass through the hair dryer mechanism, which can avoid damage to the glass caused by excessive temperature difference and improve the cooling efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 This is a schematic structural diagram of a heat insulation detection device for nano-heat insulation tempered side window glass according to the present invention; Figure 2 This is a structural cross-sectional view of a heat insulation detection device for nano-heat insulation tempered side window glass according to the present invention; Figure 3 A schematic diagram of a portion of the structure of a heat insulation detection device for nano-heat insulation tempered side window glass according to the present invention; Figure 4 A partial structural cross-sectional view of a heat insulation detection device for nano-heat insulation tempered side window glass according to the present invention; Figure 5 The present invention is a heat insulation detection device for nano heat insulation tempered side window glass Figure 4 A magnified view of point A; Figure 6A partial structural cross-sectional view of a heat insulation detection device for nano-heat insulation tempered side window glass according to the present invention; Figure 7 The present invention is a heat insulation detection device for nano heat insulation tempered side window glass Figure 6 Another perspective structural cross-sectional view; Figure 8 The present invention is a heat insulation detection device for nano heat insulation tempered side window glass Figure 7 Enlarged view of point B.
[0017] In the accompanying drawings, the list of components represented by each number is as follows: 1. Base; 2. Appearance inspection part; 3. Temperature detector; 4. Rotating shaft; 5. Heating element; 6. Frame; 7. Suction cup; 8. Support frame; 9. Support plate; 10. Limiting plate; 11. Slide groove; 12. Slide rod; 13. Slider; 14. Spring No. 1; 15. Plate; 16. Connecting rod; 17. Slot body; 18. Mounting groove; 19. Mounting block; 20. Spring No. 2; 21. Air outlet; 22. Shaft; 23. Fan blade; 24. Through hole; 25. Motor; 26. Rotating rod; 27. Gear No. 1; 28. Toothed belt; 29. Gear No. 2; 30. Guide groove; 31. Guide block; 32. Push block; 33. Electric push rod; 34. Push plate; 35. Slide plate. DETAILED DESCRIPTION
[0018] The following description is intended to disclose the present invention so that those skilled in the art can implement the present invention. The preferred embodiments described below are merely examples, and those skilled in the art may conceive of other obvious variations.
[0019] like Figures 1-8 The thermal insulation detection device for nano-insulated tempered side window glass shown in the figure includes a base 1, an appearance detection part 2 and a temperature detector 3 are detachably installed at the upper edge of the base 1, a rotatable rotating shaft 4 is provided at the upper center of the base 1, and a support frame 8 is fixedly installed on the outer surface of the rotating shaft 4. The number of the support frames 8 is at least one group, and two groups of limit plates 10 are provided on the side of the support frame 8 away from the rotating shaft 4. The two groups of limit plates 10 are fixedly connected to the support frame 8 through an adjusting mechanism, a frame 6 is fixedly installed on the side of the support frame 8 away from the rotating shaft 4, a heating element 5 is fixedly installed inside the frame 6, a suction cup 7 is fixedly installed on the end of the frame 6 away from the support frame 8, and a blower mechanism is provided on the side of the base 1 away from the temperature detector 3.
[0020] Specifically, the glass is placed between the two sets of limit plates 10, and the adjustment mechanism clamps the glass so that the glass can be fixed to the support frame 8. At this time, under the action of the frame 6, the suction cup 7 can adsorb the glass to further increase the stability of the glass. The shaft 4 drives the glass to rotate above the base 1, and the glass rotates to the appearance detection component 2 for a rest. The appearance detection component 2 can detect the transmittance of the glass. During this process, the heating component 5 heats one side of the glass. After the detection is completed, the shaft 4 drives the glass to rotate to the temperature detector 3 for a rest. The temperature detector 3 can directly detect the thermal insulation effect of the glass without waiting. After the detection is completed, the heating component 5 stops heating, and the shaft 4 drives the glass to rotate above the blowing mechanism. The blowing mechanism cools the glass. In this embodiment, four sets of support frames 8 are provided, and the glass can be inspected in sequence, which is beneficial to improving the efficiency of the inspection. After the inspection is completed, the glass can be naturally cooled for a period of time, and then cooled by the blowing mechanism to avoid damage to the glass. In addition, it is not easy for humans to be injured when taking the glass.
[0021] The adjustment mechanism includes two groups of support plates 9, which are connected to the limit plates 10 through a moving assembly. A connecting rod 16 is fixedly installed on the side of the support plate 9 close to the support frame 8. A groove 17 is provided inside the support frame 8. The connecting rod 16 slides through the groove 17, and a limit assembly is provided inside the connecting rod 16.
[0022] The moving component includes a slide groove 11, which is opened inside the support plate 9. A slider 13 is slidably installed inside the slide groove 11. The slider 13 is connected to the support plate 9 through an elastic structure. The slider 13 is fixedly connected to the limit plate 10. A plate 15 is rotatably installed on the side of the slider 13 away from the limit plate 10. The end of the plate 15 away from the slider 13 is rotatably connected to the support frame 8, and the plate 15 is inclined.
[0023] The elastic structure includes a slide rod 12, which is fixedly installed inside the slide groove 11. The slide rod 12 is arranged vertically, and the slide rod 12 and the slider 13 are slidably connected. The outer surface of the slide rod 12 is movably sleeved with a spring 14, and the spring 14 and the slider 13 are fixedly connected.
[0024] Specifically, the glass is placed between the two groups of limit plates 10, the glass contacts the support plate 9, and the glass is pushed toward the support frame 8. The glass drives the support plate 9 to move synchronously, and the support plate 9 drives the connecting rod 16 to slide inside the groove body 17. At this time, the plate 15 pushes the slider 13 to slide inside the slide groove 11. The two groups of sliders 13 can drive the two groups of limit plates 10 to approach each other. The slider 13 slides on the outer surface of the slide rod 12, and the No. 1 spring 14 is deformed under the force.
[0025] The limiting assembly includes a mounting groove 18, which is opened at the lower interior of the connecting rod 16. A No. 2 spring 20 is movably installed inside the mounting groove 18. A mounting block 19 is fixedly installed at the end of the No. 2 spring 20 away from the mounting groove 18. The mounting block 19 is slidably connected to the mounting groove 18, and the lower end surface of the mounting block 19 away from the support plate 9 is designed in an arc shape.
[0026] The limiting assembly also includes a rotating rod 26, which is rotatably installed above the base 1. A push plate 34 is provided on the sliding sleeve of the outer surface of the rotating rod 26. A slide plate 35 is slidably installed on the side of the support frame 8 away from the support plate 9. The slide plate 35 is in contact with the mounting block 19, and the bottom of the slide plate 35 is in contact with the top of the push plate 34. The push plate 34 is connected to the hair dryer structure.
[0027] Specifically, when the support plate 9 drives the connecting rod 16 to slide, the mounting block 19 contacts the support frame 8. Since the lower end surface of the side where the mounting block 19 contacts the support frame 8 is designed in an arc shape, the support frame 8 can push the mounting block 19 into the inside of the mounting groove 18. At this time, the No. 2 spring 20 is deformed under the force. When the mounting block 19 moves out from the inside of the groove body 17, under the action of the elastic force of the No. 2 spring 20, the mounting block 19 moves out from the inside of the mounting groove 18. At this time, the support plate 9 and the support frame 8 are fixed.
[0028] Under the action of the rotating rod 26, the push plate 34 moves upward, the push plate 34 contacts the slide plate 35 and drives the slide plate 35 to continue to move upward. At this time, the slide plate 35 contacts the mounting block 19 and pushes the mounting block 19 into the inside of the mounting groove 18, making it easier to separate the support plate 9 and the support frame 8.
[0029] The hair dryer mechanism includes an air outlet 21, which is opened inside the base 1. The air outlet 21 is located on the side of the rotating rod 26 away from the rotating shaft 4. A motor 25 is rotatably installed inside the air outlet 21, and a shaft 22 is fixedly installed on the output end of the motor 25. The shaft 22 is rotatably connected to the base 1, and a fan blade 23 is fixedly installed on the outer surface of the shaft 22. A through hole 24 is opened inside the limiting plate 10.
[0030] Specifically, the motor 25 is connected to an external power source, and the motor 25 drives the shaft 22 to rotate, thereby driving the fan blades 23 to rotate, so that air can flow upward through the air outlet 21, thereby facilitating cooling of the glass.
[0031] The outer surfaces of the shaft 22 and the rotating rod 26 are both fixedly sleeved with a number one gear 27, and the outsides of the two groups of number one gears 27 are jointly sleeved with a toothed belt 28. The outer surface of the rotating rod 26 is fixedly sleeved with a number two gear 29, and the outer surface of the rotating shaft 4 is slidably sleeved with a number two gear 29 through a lifting structure. The two groups of number two gears 29 are meshed with each other, and one group of number two gears 29 is in contact with the push plate 34.
[0032] The lifting structure includes a guide groove 30, which is opened on the outer surface of the rotating shaft 4. A guide block 31 is slidably installed inside the guide groove 30. The guide block 31 is fixedly connected to one group of No. 2 gears 29. A push block 32 is rotatably installed below one group of No. 2 gears 29. An electric push rod 33 is fixedly installed below the base 1. The output end of the electric push rod 33 passes through the base 1 and extends to the top of the base 1. The output end of the electric push rod 33 is fixedly connected to the push block 32.
[0033] Specifically, the shaft 22 drives the No. 1 gear 27 to rotate. Under the action of the toothed belt 28, the two groups of No. 1 gears 27 rotate synchronously, thereby providing power for the rotation of the rotating rod 26. The rotating rod 26 drives the No. 2 gear 29 to rotate. The two groups of No. 2 gears 29 are engaged, so that the rotating shaft 4 can rotate. When the rotating shaft 4 needs to rest, the electric push rod 33 is connected to the external power supply. The electric push rod 33 drives the push block 32 to move upward, thereby driving one group of No. 2 gears 29 to move upward. At this time, the guide block 31 slides inside the guide groove 30, so that the two groups of No. 2 gears 29 are separated, and the rotating shaft 4 stops rotating. At the same time, one group of No. 2 gears 29 can drive the push plate 34 to move synchronously when moving upward, which is convenient for separating the glass and the heating element 5, making the cooling of the glass more uniform and facilitating the unloading of the glass.
[0034] A method for detecting thermal insulation of nano-insulated tempered side window glass is performed using the above-mentioned thermal insulation detection device for nano-insulated tempered side window glass, comprising the following steps: S1. Place the glass to be inspected between the two sets of limit plates 10. The adjustment mechanism drives the two sets of limit plates 10 to move closer to each other. The two sets of limit plates 10 limit the glass from the upper and lower ends. S2. At the same time, the suction cup 7 connects the glass to the frame 6, and the shaft 4 drives the glass to rotate. At this time, the heating element 5 heats one side of the glass. The shaft 4 drives the glass to rotate to the appearance inspection element 2 and temporarily rest. The appearance and light transmittance are tested. The shaft 4 drives the glass to continue rotating to the temperature detector 3 and temporarily rest. The temperature detector 3 performs a thermal insulation test on the glass. S3, the rotating shaft 4 drives the glass to rotate to the position of the blower mechanism and rests temporarily. At this time, the heating element 5 stops working and the blower mechanism cools the glass.
[0035] Working principle: Place the glass between the two sets of limit plates 10, the glass and the support plate 9 are in contact, push the glass toward the support frame 8, the glass drives the support plate 9 to move synchronously, the support plate 9 drives the connecting rod 16 to slide inside the groove 17, at this time the plate 15 pushes the slider 13 to slide inside the slide groove 11, the two sets of sliders 13 can drive the two sets of limit plates 10 to approach each other, the slider 13 slides on the outer surface of the slide rod 12, and the No. 1 spring 14 is deformed under the force.
[0036] When the support plate 9 drives the connecting rod 16 to slide, the mounting block 19 contacts the support frame 8. Since the lower end surface of the side where the mounting block 19 contacts the support frame 8 is designed in an arc shape, the support frame 8 can push the mounting block 19 into the inside of the mounting groove 18. At this time, the No. 2 spring 20 is deformed by the force. When the mounting block 19 moves out from the inside of the groove body 17, under the elastic force of the No. 2 spring 20, the mounting block 19 moves out from the inside of the mounting groove 18. At this time, the support plate 9 and the support frame 8 are fixed. At this time, under the action of the frame 6, the suction cup 7 can adsorb the glass, further increasing the stability of the glass.
[0037] The rotating shaft 4 drives the glass to rotate above the base 1, and the glass rotates to the appearance detection part 2 to rest. The appearance detection part 2 can detect the transmittance of the glass. During this process, the heating part 5 heats one side of the glass. After the detection is completed, the rotating shaft 4 drives the glass to rotate to the temperature detector 3 to rest. The temperature detector 3 can directly detect the thermal insulation effect of the glass without waiting. After the detection is completed, the heating part 5 stops heating.
[0038] The rotating shaft 4 drives the glass to rotate above the air outlet 21, and the motor 25 is connected to an external power supply. The motor 25 drives the shaft 22 to rotate, thereby driving the fan blades 23 to rotate, so that air can flow upward through the air outlet 21, and the shaft 22 drives the No. 1 gear 27 to rotate. Under the action of the toothed belt 28, the two groups of No. 1 gears 27 rotate synchronously, thereby providing power for the rotation of the rotating rod 26. The rotating rod 26 drives the No. 2 gear 29 to rotate, and the two groups of No. 2 gears 29 are engaged, so that the rotating shaft 4 can rotate. When the rotating shaft 4 needs to rest temporarily, the electric push rod 33 is connected to an external power supply. The electric push rod 33 drives the push block 32 to move upward, thereby driving one group of No. 2 gears 29 to move upward. At this time, the guide block 31 slides inside the guide groove 30, causing the two groups of No. 2 gears 29 to separate, and the rotating shaft 4 stops rotating.
[0039] At the same time, one of the second gears 29 can drive the push plate 34 to move synchronously when moving upward. The push plate 34 contacts the slide plate 35 and drives the slide plate 35 to continue moving upward. At this time, the slide plate 35 contacts the mounting block 19 and pushes the mounting block 19 into the inside of the mounting groove 18, which is convenient for separating the support plate 9 and the support frame 8, thereby facilitating the separation of the glass and the heating element 5, making the cooling of the glass more uniform and facilitating the unloading of the glass.
[0040] The above shows and describes the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions merely illustrate the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.
Claims
1. A heat insulation detection device for nano-insulated tempered side window glass, comprising a base (1), characterized in that: An appearance detection component (2) and a temperature detector (3) are detachably mounted on the upper edge of the base (1); a rotatable shaft (4) is provided at the upper center of the base (1); a support frame (8) is fixedly mounted on the outer surface of the shaft (4); the number of the support frames (8) is at least one group; two groups of limit plates (10) are provided on the side of the support frame (8) away from the shaft (4); the two groups of limit plates (10) are fixedly connected to the support frame (8) through an adjustment mechanism; a frame (6) is fixedly mounted on the side of the support frame (8) away from the shaft (4); a heating component (5) is fixedly mounted inside the frame (6); a suction cup (7) is fixedly mounted on one end of the frame (6) away from the support frame (8); and a blower mechanism is provided on the side of the base (1) away from the temperature detector (3).
2. The heat insulation detection device for nano-insulated tempered side window glass according to claim 1, characterized in that: The adjustment mechanism comprises two groups of support plates (9), the support plates (9) being connected via a moving assembly and a limiting plate (10), a connecting rod (16) being fixedly mounted on one side of the support plate (9) close to the support frame (8), a slot (17) being provided inside the support frame (8), the connecting rod (16) slidingly passing through the slot (17), and a limiting assembly being provided inside the connecting rod (16).
3. The heat insulation detection device for nano-insulated tempered side window glass according to claim 2, characterized in that: The movable component includes a slide groove (11), the slide groove (11) is opened inside the support plate (9), a slider (13) is slidably installed inside the slide groove (11), the slider (13) is connected to the support plate (9) through an elastic structure, the slider (13) and the limit plate (10) are fixedly connected, and a plate (15) is rotatably installed on the side of the slider (13) away from the limit plate (10), and the end of the plate (15) away from the slider (13) is rotatably connected to the support frame (8), and the plate (15) is inclined.
4. The heat insulation detection device for nano-insulated tempered side window glass according to claim 3, characterized in that: The elastic structure includes a slide rod (12), the slide rod (12) is fixedly installed inside the slide groove (11), the slide rod (12) is arranged in a vertical shape, the slide rod (12) and the slider (13) are slidably connected, and a spring (14) is movably sleeved on the outer surface of the slide rod (12), and the spring (14) and the slider (13) are fixedly connected.
5. The heat insulation detection device for nano-insulated tempered side window glass according to claim 2, characterized in that: The limiting assembly includes a mounting groove (18), the mounting groove (18) is opened at the lower part of the connecting rod (16), a second spring (20) is movably installed inside the mounting groove (18), a mounting block (19) is fixedly installed at one end of the second spring (20) away from the mounting groove (18), the mounting block (19) and the mounting groove (18) are slidably connected, and the lower end surface of the mounting block (19) away from the support plate (9) is designed to be arc-shaped.
6. The heat insulation detection device for nano-insulated tempered side window glass according to claim 5, characterized in that: The limiting assembly also includes a rotating rod (26), which is rotatably mounted above the base (1), and a push plate (34) is provided on the sliding sleeve of the outer surface of the rotating rod (26). A slide plate (35) is slidably mounted on the side of the support frame (8) away from the support plate (9), and the slide plate (35) is in contact with the mounting block (19). The bottom of the slide plate (35) is in contact with the top of the push plate (34), and the push plate (34) is connected to the hair dryer structure.
7. The heat insulation detection device for nano-insulated tempered side window glass according to claim 6, characterized in that: The hair dryer mechanism comprises an air outlet (21), the air outlet (21) being provided inside the base (1), the air outlet (21) being located on a side of the rotating rod (26) away from the rotating shaft (4), a motor (25) being rotatably mounted inside the air outlet (21), a shaft (22) being fixedly mounted on an output end of the motor (25), the shaft (22) being rotatably connected to the base (1), a fan blade (23) being fixedly mounted on an outer surface of the shaft (22), and a through hole (24) being provided inside the limiting plate (10).
8. The heat insulation detection device for nano-insulated tempered side window glass according to claim 7, characterized in that: The outer surfaces of the shaft (22) and the rotating rod (26) are both fixedly sleeved with a No. 1 gear (27), and the outer surfaces of the two groups of the No. 1 gears (27) are commonly sleeved with a toothed belt (28). The outer surface of the rotating rod (26) is fixedly sleeved with a No. 2 gear (29), and the outer surface of the rotating shaft (4) is slidably sleeved with a No. 2 gear (29) through a lifting structure. The two groups of the No. 2 gears (29) are meshed with each other, and one group of the No. 2 gears (29) is in contact with the push plate (34).
9. The heat insulation detection device for nano-insulated tempered side window glass according to claim 8, characterized in that: The lifting structure includes a guide groove (30), the guide groove (30) is opened on the outer surface of the rotating shaft (4), a guide block (31) is slidably installed inside the guide groove (30), the guide block (31) is fixedly connected to one group of second gears (29), a push block (32) is rotatably installed below one group of second gears (29), an electric push rod (33) is fixedly installed below the base (1), the output end of the electric push rod (33) passes through the base (1) and extends to the top of the base (1), and the output end of the electric push rod (33) is fixedly connected to the push block (32).
10. A method for detecting thermal insulation of nano-insulated tempered side window glass, using the thermal insulation detection device for nano-insulated tempered side window glass according to any one of claims 1 to 9, characterized in that: These include: S1. The glass to be inspected is placed between two sets of limiting plates (10). The adjusting mechanism drives the two sets of limiting plates (10) to move closer to each other. The two sets of limiting plates (10) limit the glass from the upper and lower ends. S2. At the same time, the suction cup (7) connects the glass and the frame (6), and the rotating shaft (4) drives the glass to rotate. At this time, the heating element (5) heats one side of the glass. The rotating shaft (4) drives the glass to rotate to the appearance detection element (2) for a short rest, and the appearance and transmittance are detected. The rotating shaft (4) drives the glass to continue rotating to the temperature detector (3) for a short rest, and the temperature detector (3) performs a heat insulation test on the glass. S3, the rotating shaft (4) drives the glass to rotate to the position of the blower mechanism and rests temporarily. At this time, the heating element (5) stops working and the blower mechanism cools the glass.