A type of microsphere nano-insulating insulating glass

By designing a collection chamber in the double-glazed glass to collect raindrops and absorb heat using rainwater, and by using airbags to block heat when the sun is strong, the problem of insufficient heat insulation performance of double-glazed glass under sunlight is solved, achieving effective heat insulation and green and environmentally friendly heat management.

CN117552698BActive Publication Date: 2025-12-02JIANGSU DONGBO ENERGY SAVING TECH CO LTD
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Patent Information

Application Number
CN202311605365.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-11-29
Publication Date
2025-12-02
Estimated Expiration
2043-11-29

AI Technical Summary

Technical Problem

Existing double-glazed windows have insufficient heat insulation performance under intense sunlight, leading to increased indoor temperature and failing to effectively isolate the heat transferred by the glass panes.

Method used

A microsphere nano-insulating insulating glass was designed. It collects raindrops in the collection chamber and absorbs heat in the liquid accumulation chamber. It uses airbags to block heat when the sun is strong and uses rainwater to insulate on cloudy or rainy days, thus improving the heat insulation performance.

Benefits of technology

It effectively prevents indoor temperature from rising, improves the thermal insulation performance of double-glazed windows, and achieves green and environmentally friendly heat management.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention relates to the field of insulating glass components technology, and discloses a microsphere nano-insulating insulating glass, including a fixed base plate, a fixed top plate, an adjustment device, and a frame plate. Support columns are fixedly connected to both the left and right ends of the inner top side of the fixed top plate. A through hole is opened on the front surface of the support column, and a through groove extends into the interior of the support column. A telescopic rod adapted to the through hole is provided at the front end of the support column near the front end of the through hole. Several locking teeth are fixedly connected to the bottom of the telescopic rod. The telescopic rod is sleeved inside the support column through the through hole. A gear adapted to the locking teeth is provided at the bottom of the telescopic rod. A limiting seat is fixedly connected to the surface of the telescopic rod away from the support column. A collection chamber is fixedly connected to the front top side of the telescopic rod. A through groove adapted to the collection chamber is opened on the front surface of the fixed top plate, and the collection chamber is located inside the through groove. This device has advantages such as improving heat insulation performance, preventing heat transfer that leads to increased indoor temperature, and being environmentally friendly.
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Description

Technical Field

[0001] This invention relates to the field of insulating glass components technology, specifically to a microsphere nano-insulating insulating glass. Background Technology

[0002] With the continuous development of society and the continuous improvement of people's living standards, the use of insulated glass is becoming more and more widespread. Insulated glass has a certain gap between the two panes of glass. The two panes of glass are sealed with effective sealing materials and separated by spacer materials. A desiccant that absorbs moisture is placed between the two panes of glass, thus ensuring that the inside of the insulated glass is a dry air layer for a long time, free from moisture and dust, which greatly facilitates the lives of users.

[0003] Publication No. CN116291142A discloses a double-glazed glass structure, including two glass panels and an aluminum material disposed between the two glass panels. The aluminum material is arranged in a closed ring shape and is hollow inside. The internal space of the aluminum material is filled with a moisture-absorbing material, and the inner wall of the aluminum material has a plurality of micropores arranged along the circumferential direction of the inner wall of the aluminum material. The moisture-absorbing material continuously absorbs moisture between the two glass panels through the micropores. The outer wall of the aluminum material is coated with sealant, which is used to fix the aluminum material to the glass panels. This device can improve the waterproof and moisture-absorbing performance of the double-glazed glass and extend its service life. However, in actual use, under strong sunlight, the glass panels can still transfer some heat to the room where the device is installed, causing changes in the indoor temperature. The heat insulation performance of this device is relatively average and cannot meet the requirement of isolating the heat transferred by the glass panels under strong sunlight, which is not conducive to daily use by users. Summary of the Invention

[0004] In view of the shortcomings of existing technologies, where the glass pane can still transfer some heat to the room where the device is installed under strong sunlight, causing changes in indoor temperature, and the relatively poor heat insulation performance of the device, which cannot effectively isolate the heat transferred by the glass pane under strong sunlight, thus being unfavorable for daily use, this invention provides a microsphere nano-insulating insulating glass, which has the advantages of improving heat insulation performance, preventing heat transfer from causing an increase in indoor temperature, and being environmentally friendly.

[0005] To achieve the above objectives, the present invention provides the following technical solution: a microsphere nano-insulated insulating glass. It includes: a fixed base plate, a front mounting seat, a rear mounting seat, an air pump, an air supply pipe, an air bladder, a second slider, a fixed top plate, a through groove, a support column, a through hole, a telescopic rod, locking teeth, a limiting seat, a collection chamber, a first connecting piece, a gear, a connecting rod, a telescopic platform, a first rotating rod, a first slider, a rotating platform, a first sliding groove, a second rotating rod, a liquid collection chamber, a second connecting piece, an adjusting device, a shaft, a worm gear, a worm, an adjusting rod, a frame plate, a second sliding groove, a front glass plate, and a rear glass plate.

[0006] The positions and connections of the above structures are as follows: A microsphere nano-insulated insulating glass includes a fixed base plate, a fixed top plate, an adjustment device, and a frame plate. Support columns are fixedly connected to both ends of the inner top side of the fixed top plate. A through hole is opened on the front surface of the support column, extending into the interior of the support column. A telescopic rod adapted to the through hole is provided at the front end of the support column near the through hole. Several locking teeth are fixedly connected to the bottom of the telescopic rod. The telescopic rod is sleeved inside the support column through the through hole. A gear adapted to the locking teeth is provided at the bottom of the telescopic rod. A limiting seat is fixedly connected to the surface of the telescopic rod away from the support column. A collection chamber is fixedly connected to the front top of the telescopic rod. The front surface of the fixed top plate... The top plate has a through groove adapted to the collection bin, which is located inside the through groove. Adjustment devices are fixedly connected to both the left and right ends of the fixed top plate. A horizontally rotating shaft is connected inside each adjustment device. A worm gear is fixedly connected to the end of the left shaft near the collection bin, and the shaft extends to the end of the worm gear near the gear and is fixedly connected to the end of the gear near the worm gear. A connecting rod is fixedly connected to the end of the gear away from the shaft. The left and right gears are fixedly connected to each other via the connecting rod. A worm adapted to the worm gear is located at the bottom of the end of the worm gear away from the gear, meshing with the worm gear. An adjustment rod is fixedly connected to the rear end of the worm, sleeved inside the fixed top plate and extending to the rear end surface of the fixed top plate. (User room) The device is installed internally. On rainy days, the user can manually turn the adjusting rod clockwise. The rotation of the adjusting rod rotates the worm gear, which in turn drives the worm wheel through the shaft inside the adjusting device. The worm wheel, in turn, drives the gear on the left end through the shaft, which in turn drives the gear on the right end through the connecting rod. This causes both gears to perform circular motion with the same angular velocity simultaneously. The rotation of the gears, through the locking teeth, drives the telescopic rod to extend from the support column through the through hole and move vertically forward. The movement of the telescopic rod causes the collection chamber to move vertically forward until it extends from the front end of the fixed top plate through the through slot to collect raindrops falling from the sky. The guardrails fixed to both sides of the top of the collection chamber reduce the impact of raindrops on the collection. After collection, the raindrops are transported to the sump via a telescopic and rotating platform. In strong sunlight, the raindrops collected in the sump absorb the heat transmitted through the air gap between the front and back glass panels on the rear surface of the glass back panel. This prevents heat from being directly transferred to the interior through the back glass panel, which would otherwise increase indoor temperature and weaken the insulation performance of the device. An external pipe can be connected to the rear of the sump to drain the heated water for collection on rainy days, or the water can be directly poured into the sump for heat absorption without waiting for rainy days. This improves the overall insulation performance of the device while simultaneously collecting and utilizing raindrops on rainy days, making it environmentally friendly.

[0007] Preferably, the rear ends of the collection chamber are fixedly connected to the first connecting members, and a telescopic platform is provided at the rear end of the collection chamber. The telescopic platform is fixedly connected to the first connecting members on both sides of the end near the first connecting members, and the collection chamber is rotatably connected to the telescopic platform through the first connecting members and the first rotating rods. When the collection chamber moves forward under the drive of the telescopic rods, the movement of the collection chamber drives the telescopic platform to move through the first connecting members and the first rotating rods. At the same time, during the movement of the telescopic platform, the angle of the telescopic platform continuously rotates until the collection chamber moves to the front end of the fixed top plate through the through groove. At this time, a flow channel for raindrop transportation is formed between the telescopic platform and the collection chamber, ensuring the normal operation of the device and facilitating user use.

[0008] Preferably, the telescopic platform has a first slider fixedly connected to both sides of the end away from the collection chamber. A rotating platform is provided at the end of the telescopic platform away from the collection chamber. The rotating platform has a first groove adapted to the first slider on both sides of its interior. The rotating platform is slidably connected to the telescopic platform through the first groove and the first slider. A second rotating rod is fixedly connected to both sides of the end of the rotating platform away from the telescopic platform. Guardrails are fixedly connected to the top left and right ends of the rotating platform and the telescopic platform. When the telescopic platform moves, it slides out of the interior of the rotating platform through the first groove and the first slider. While the telescopic platform moves and adjusts the angle between itself and the collection chamber, the rotating platform is tilted upward at the front end of the liquid collection chamber using the second rotating rod and the second connecting piece. At this time, both the telescopic platform and the rotating platform are tilted upward, so that when the raindrops flow from the collection chamber into the telescopic platform, they can flow into the inclined transport channel formed by the telescopic platform and the rotating platform under the action of gravity, and transport the raindrops into the liquid collection chamber for collection, ensuring the normal operation of the device.

[0009] Preferably, a liquid collection chamber is provided at the end of the rotating platform away from the telescopic platform. A second connecting piece adapted to the second rotating rod is fixedly connected to the end of the liquid collection chamber near the second rotating rod. The rotating platform is rotatably connected to the liquid collection chamber through the second rotating rod and the second connecting piece. The liquid collection chamber is located at the bottom center of the two side support columns. The bottom of the liquid collection chamber is fixedly connected to the top of the fixed base plate. It is used to collect raindrops, so that when the sun is strong, the raindrops collected in the liquid collection chamber can absorb the heat transferred from the glass back panel to insulate the room. This improves the heat insulation performance of the device while utilizing rainwater, making it green, environmentally friendly, and convenient for users.

[0010] Preferably, a frame plate is fixedly connected to both the left and right ends of the top of the fixed base plate, and a fixed top plate is fixedly connected to the end surface of the frame plate away from the fixed base plate. A front mounting seat is provided on the front side of the top of the fixed base plate, and a rear mounting seat is provided on the rear side of the top of the fixed base plate to ensure the normal operation of the device.

[0011] Preferably, a front glass panel and a rear glass panel are respectively provided on the top front side and the top rear side of the fixed base plate. The front glass panel is fastened to the top front side of the fixed base plate by a mounting front seat, and the rear glass panel is fastened to the top rear side of the fixed base plate by a mounting rear seat. The end of the rear glass panel away from the front glass panel is fixedly connected to the front surface of the liquid collection tank. The liquid collection tank is made of transparent material. Inert gas can be transferred between the rear glass panel and the front glass panel to ensure the original heat insulation and noise reduction effects of the device and ensure the normal operation of the device.

[0012] Preferably, an air pump is fixedly connected inside the fixed base plate. An air supply pipe is fixedly connected to the top output end of the air pump. An air bladder is fixedly connected to the end of the air supply pipe away from the air pump. The bottom of the air bladder is located inside the fixed base plate, and the top of the air bladder is located on the top of the fixed base plate. When the sunlight is strong, the air pump is turned on, and the air pump delivers gas into the air bladder through the air supply pipe, causing the air pressure inside the air bladder to increase and expand. The air bladder expands and gradually expands upward at the center of the front and back glass panels through the second slider and the second slide groove until the first slider moves to the top of the first slide groove. At this time, the air bladder blocks the front end of the back glass panel. The heat insulation film fixedly connected to the front and rear surfaces of the air bladder isolates the heat transferred from the front glass panel. An exhaust switch can be provided at the bottom of the air bladder and the exhaust switch extends to the rear surface of the fixed base plate to facilitate the user to release the gas inside the air bladder to the outside of the device and reset the air bladder, thereby improving the heat insulation performance of the device and making it convenient for the user.

[0013] Preferably, the airbag is fixedly connected to the left and right ends of both sides, and a second sliding groove adapted to the second sliding block is opened on the inner side of the frame plate near the second sliding block. The airbag is slidably connected to the frame plate through the second sliding block and the second sliding groove. The front and rear surfaces of the airbag are fixedly connected to the heat insulation film to ensure the normal operation of the device.

[0014] Beneficial effects:

[0015] 1. This microsphere nano-insulating insulating glass comprises a fixed base plate, a fixed top plate, an adjusting device, and a frame plate. The user can manually rotate an adjusting rod clockwise. The rotation of the adjusting rod causes a worm gear to rotate, which in turn drives a worm wheel through a shaft inside the adjusting device. The worm wheel, in turn, drives a gear on the left end through the shaft, which in turn drives a gear on the right end through a connecting rod. This causes both gears to perform circular motions with the same angular velocity. The gear rotation, through a locking mechanism, causes a telescopic rod to extend through a through-hole from the support column and move vertically forward. The movement of the telescopic rod causes the collection chamber to move vertically forward until it extends through a slot from the front end of the fixed top plate to collect raindrops falling from the sky. The guardrails fixed to both sides of the top of the collection chamber reduce the loss of raindrops after collection. The collection chamber transports the collected raindrops to the liquid accumulation chamber for storage via a telescopic and rotating platform. In sunny weather, the raindrops collected in the liquid accumulation chamber can absorb the temperature transmitted from the front and back glass panels in the hollow environment on the rear surface of the glass back panel, preventing the temperature from being directly transferred to the room through the glass back panel, which would cause the indoor temperature to rise and the insulation performance of the device to weaken. The rear of the liquid accumulation chamber can be connected to an external pipe to drain the water that has risen in temperature so that it can be collected again on rainy days, or it can be directly filled into the liquid accumulation chamber to absorb the temperature without waiting for rainy days and connecting a water source, thereby improving the overall insulation performance of the device while collecting and utilizing raindrops on rainy days.

[0016] 2. This microsphere nano-insulating hollow glass features a telescopic platform with first sliders fixedly connected to both sides of the end furthest from the collection chamber. A rotating platform is located at the same end of the telescopic platform. The rotating platform has first grooves on both sides of its interior that mate with the first sliders. The rotating platform is slidably connected to the telescopic platform via the first grooves and the first sliders. Second rotating rods are fixedly connected to both sides of the rotating platform at the end furthest from the telescopic platform. Guardrails are fixedly connected to the top left and right ends of both the rotating platform and the telescopic platform. When the telescopic platform moves, it slides out of the rotating platform via the first grooves and the first sliders. Simultaneously, as the telescopic platform moves and adjusts its angle relative to the collection chamber, the rotating platform uses the second rotating rod and the second connecting piece to adjust its angle at the front end of the liquid collection chamber, tilting it upwards. At this point, both the telescopic platform and the rotating platform are tilted upwards, allowing raindrops flowing from the collection chamber into the telescopic platform to be transported by gravity into the inclined transport channel formed by the telescopic platform and the rotating platform, thus transporting the raindrops to the liquid collection chamber for collection. This ensures the normal operation of the device, improves its heat insulation performance, and utilizes rainwater, making it environmentally friendly and convenient for users.

[0017] 3. This microsphere nano-insulated insulating glass has an air pump fixedly connected inside a fixed base plate. An air supply pipe is fixedly connected to the top output end of the air pump, and an airbag is fixedly connected to the end of the air supply pipe furthest from the air pump. The bottom of the airbag is located inside the fixed base plate, and the top of the airbag is located on top of the fixed base plate. When the sunlight is intense, the air pump is turned on, and the air pump delivers gas into the airbag through the air supply pipe, increasing the internal air pressure and causing the airbag to expand. The airbag expands and gradually expands upwards at the center of the front and back glass panels via a second slider and a second sliding groove until the first slider moves to the top of the first sliding groove. At this point, the airbag blocks the front end of the back glass panel. The heat insulation film fixedly connected to the front and rear surfaces of the airbag isolates the heat transferred from the front glass panel. An exhaust switch can be installed at the bottom of the airbag, extending to the rear surface of the fixed base plate, allowing the user to release the gas inside the airbag to the outside of the device and reset the airbag, improving the heat insulation performance of the device and facilitating user operation. Attached Figure Description

[0018] Figure 1 This is a side view diagram of the appearance structure of a microsphere nano-insulating insulating glass according to the present invention;

[0019] Figure 2 This is a schematic diagram of the internal structure of a microsphere nano-insulating insulating glass according to the present invention;

[0020] Figure 3 This is a schematic diagram of a microbead nano-insulating hollow glass worm gear and worm structure according to the present invention;

[0021] Figure 4 This is a schematic diagram of a microsphere nano-insulated hollow glass collection chamber structure according to the present invention;

[0022] Figure 5 This is a schematic diagram of a telescopic platform structure for microbead nano-insulation hollow glass according to the present invention;

[0023] Figure 6 This is a schematic diagram of a rotating platform structure for microbead nano-insulation hollow glass according to the present invention;

[0024] Figure 7 This is a schematic diagram of a liquid collection chamber structure for a microsphere nano-insulated hollow glass according to the present invention;

[0025] Figure 8 This is a schematic diagram of the internal structure of a microsphere nano-insulated insulating glass fixing base plate according to the present invention.

[0026] In the diagram: 1. Fixed base plate; 10. Front seat installation; 100. Rear seat installation; 11. Air pump; 12. Air supply pipe; 13. Airbag; 14. Second slider; 2. Fixed top plate; 20. Through groove; 21. Support column; 210. Through hole; 22. Telescopic rod; 220. Clamping tooth; 221. Limiting seat; 23. Collection chamber; 230. First connecting piece; 24. Gear; 25. Connecting rod; 26. Telescopic platform; 260. First rotating rod; 261. First slider; 27. Rotating platform; 270. First slide groove; 271. Second rotating rod; 28. Liquid collection chamber; 280. Second connecting piece; 3. Adjusting device; 30. Shaft; 31. Worm gear; 32. Worm; 320. Adjusting rod; 4. Frame plate; 40. Second slide groove; 5. Glass front plate; 50. Glass rear plate. Detailed Implementation

[0027] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0028] Example 1

[0029] Please see Figure 1-8A type of microsphere nano-insulated insulating glass includes a fixed base plate 1, a fixed top plate 2, an adjusting device 3, and a frame plate 4. Support columns 21 are fixedly connected to both the left and right ends of the inner top side of the fixed top plate 2. A through hole 210 is formed on the front surface of the support column 21, extending into the interior of the support column 21. A telescopic rod 22, adapted to the through hole 210, is provided at the front end of the support column 21 near the through hole 210. Several locking teeth 220 are fixedly connected to the bottom of the telescopic rod 22. The telescopic rod 22 is sleeved inside the support column 21 through the through hole 210. A gear 24, adapted to the locking teeth 220, is provided at the bottom of the telescopic rod 22. A limiting seat 221 is fixedly connected to the surface of the end of the telescopic rod 22 away from the support column 21. A collection chamber 23 is fixedly connected to the front of the top plate 2. A through groove 20 adapted to the collection chamber 23 is opened on the front surface of the fixed top plate 2. The collection chamber 23 is located inside the through groove 20. Adjustment devices 3 are fixedly connected to the left and right ends of the fixed top plate 2. A horizontally rotating shaft 30 is connected inside the adjustment device 3. A worm gear 31 is fixedly connected to the end of the left shaft 30 near the collection chamber 23. The shaft 30 extends to the end of the worm gear 31 near the gear 24 and is fixedly connected to the end of the gear 24 near the worm gear 31. A connecting rod 25 is fixedly connected to the end of the gear 24 away from the shaft 30. The left and right gears 24 are fixedly connected to each other through the connecting rod 25. A worm 32 adapted to the worm gear 31 is provided at the bottom of the end of the worm gear 31 away from the gear 24. The worm 32 is meshed with the worm gear 31. An adjusting rod 320 is fixedly connected to the rear end of the worm 32. The adjusting rod 320 is sleeved inside the fixed top plate 2 and extends to the rear end surface of the fixed top plate 2. When the user installs this device indoors, on rainy days, the user can manually rotate the adjusting rod 320 clockwise. The rotation of the adjusting rod 320 causes the worm 32 to rotate. The rotation of the worm 32 drives the worm gear 31 to rotate via the shaft 30 inside the adjusting device 3. The rotation of the worm gear 31 drives the left-end gear 24 to rotate via the shaft 30. The rotation of the left-end gear 24 drives the right-end gear 24 to rotate via the connecting rod 25, causing both gears 24 to perform circular motion with the same angular velocity simultaneously. The rotation of the gears 24 drives the telescopic rod 22 through the through hole 210 via the locking teeth 220. Extending from the support column 21 and moving vertically forward, the telescopic rod 22 moves, causing the collection chamber 23 to move vertically forward until it extends from the front end of the fixed top plate 2 through the through slot 20 to collect raindrops falling from the sky. Guardrails fixedly connected to both sides of the top of the collection chamber 23 reduce the loss of raindrops after collection. The collection chamber 23 transports the collected raindrops to the liquid accumulation chamber 28 for storage via the telescopic platform 26 and the rotating platform 27. In strong sunlight, the raindrops collected in the liquid accumulation chamber 28 can absorb the temperature transmitted through the hollow environment between the front glass panel 5 and the back glass panel 50 on the rear surface of the back glass panel 50, preventing the temperature from being directly transferred to the room through the back glass panel 50, thus avoiding an increase in indoor temperature and a weakening of the device's insulation performance.The rear end of the liquid collection tank 28 can be connected to an external pipe to drain the water that has heated up inside, allowing for collection again on rainy days. Alternatively, water can be directly poured into the liquid collection tank 28 after connecting to a water source on rainy days to absorb the heat, improving the overall heat insulation performance of the device while collecting and utilizing raindrops on rainy days, making it environmentally friendly.

[0030] Example 2

[0031] Please see Figure 1-7 Furthermore, based on Embodiment 1, the collection chamber 23 has two fixedly connected first connecting members 230 at both ends of its internal rear side. A telescopic platform 26 is provided at the rear end of the collection chamber 23. Two first rotating rods 260 adapted to the first connecting members 230 are fixedly connected to both sides of the telescopic platform 26 near the first connecting members 230. The collection chamber 23 is rotatably connected to the telescopic platform 26 through the first connecting members 230 and the first rotating rods 260. When the collection chamber 23 moves forward under the drive of the telescopic rods 22, the movement of the collection chamber 23 drives the telescopic platform 26 to move through the first connecting members 230 and the first rotating rods 260. At the same time, during the movement of the telescopic platform 26, the angle of the telescopic platform 26 continuously rotates until the collection chamber 23 moves to the front end of the fixed top plate 2 through the through groove 20. At this time, a raindrop transportation channel is formed between the telescopic platform 26 and the collection chamber 23, ensuring the normal operation of the device and facilitating user use.

[0032] The telescopic platform 26, at the end away from the collection chamber 23, has two sides of fixedly connected first sliders 261. A rotating platform 27 is located at the end of the telescopic platform 26 away from the collection chamber 23. The interior of the rotating platform 27 has two sides with first sliding grooves 270 that fit the first sliders 261. The rotating platform 27 is slidably connected to the telescopic platform 26 via the first sliding grooves 270 and the first sliders 261. Second rotating rods 271 are fixedly connected to both sides of the end of the rotating platform 27 away from the telescopic platform 26. Guardrails are fixedly connected to the top left and right ends of both the rotating platform 27 and the telescopic platform 26. The telescopic platform 26 moves via the first sliding grooves 270 and 271. 0. The first slider 261 slides out from the inside of the rotating platform 27. While the telescopic platform 26 moves and adjusts the angle between itself and the collection chamber 23, the rotating platform 27 uses the second rotating rod 271 and the second connecting piece 280 to adjust the angle at the front end of the liquid collection chamber 28 so that it tilts upward. At this time, both the telescopic platform 26 and the rotating platform 27 are tilted upward, so that when the raindrops flow from the collection chamber 23 into the telescopic platform 26, the raindrops can flow under the action of gravity into the inclined transport channel formed by the telescopic platform 26 and the rotating platform 27, and transport the raindrops into the liquid collection chamber 28 for collection, ensuring the normal operation of the device.

[0033] A liquid collection tank 28 is provided at the end of the rotating platform 27 away from the telescopic platform 26. A second connecting piece 280 adapted to the second rotating rod 271 is fixedly connected to the end of the liquid collection tank 28 near the second rotating rod 271. The rotating platform 27 is rotatably connected to the liquid collection tank 28 through the second rotating rod 271 and the second connecting piece 280. The liquid collection tank 28 is located at the bottom center of the two side support columns 21. The bottom of the liquid collection tank 28 is fixedly connected to the top of the fixed base plate 1. It is used to collect raindrops. When the sun is strong, the raindrops collected in the liquid collection tank 28 absorb the heat transferred by the glass back plate 50 to insulate the room. This improves the heat insulation performance of the device and utilizes rainwater, making it green, environmentally friendly, and convenient for users.

[0034] Example 3

[0035] Please see Figure 1-8 Furthermore, based on Embodiment 2, a frame plate 4 is fixedly connected to both the left and right ends of the top of the fixed base plate 1. A fixed top plate 2 is fixedly connected to the end surface of the frame plate 4 away from the fixed base plate 1. A front mounting seat 10 is provided on the front side of the top of the fixed base plate 1, and a rear mounting seat 100 is provided on the rear side of the top of the fixed base plate 1 to ensure the normal operation of the device.

[0036] A glass front panel 5 and a glass rear panel 50 are respectively provided on the top front side and the top rear side of the fixed base plate 1. The glass front panel 5 is snapped onto the top front side of the fixed base plate 1 by a mounting front seat 10, and the glass rear panel 50 is snapped onto the top rear side of the fixed base plate 1 by a mounting rear seat 100. The end of the glass rear panel 50 away from the glass front panel 5 is fixedly connected to the front surface of the liquid collection tank 28. The liquid collection tank 28 is made of transparent material. Inert gas can be transferred between the glass rear panel 50 and the glass front panel 5 to ensure the original heat insulation and noise reduction effects of the device and ensure the normal operation of the device.

[0037] An air pump 11 is fixedly connected inside the fixed base plate 1. An air supply pipe 12 is fixedly connected to the top output end of the air pump 11. An air bladder 13 is fixedly connected to the end of the air supply pipe 12 away from the air pump 11. The bottom of the air bladder 13 is located inside the fixed base plate 1, and the top of the air bladder 13 is located on the top of the fixed base plate 1. When the sunlight is strong, the air pump 11 is turned on, and the air pump 11 supplies gas into the air bladder 13 through the air supply pipe 12, causing the air pressure inside the air bladder 13 to increase and expand. The air bladder 13 expands and passes through the second slider 14 and the second sliding groove 40 against the glass. The front glass panel 5 and the rear glass panel 50 gradually expand upwards from their centers until the first slider 261 moves to the top of the first groove 270. At this time, the airbag 13 blocks the front end of the rear glass panel 50. The heat insulation film fixedly connected to the front and rear surfaces of the airbag 13 isolates the heat transferred from the front glass panel 5. An exhaust switch can be provided at the bottom of the airbag 13 and the exhaust switch extends to the rear surface of the fixed base plate 1 to facilitate the user to release the gas inside the airbag 13 to the outside of the device to reset the airbag 13, improve the heat insulation performance of the device, and facilitate user use.

[0038] The airbag 13 is fixedly connected to the left and right ends of the second slider 14. The inner side of the frame plate 4 near the second slider 14 is provided with a second sliding groove 40 that matches the second slider 14. The airbag 13 is slidably connected to the frame plate 4 through the second slider 14 and the second sliding groove 40. The front and rear surfaces of the airbag 13 are fixedly connected with heat insulation film to ensure the normal operation of the device.

[0039] It should be noted that: Embodiment 1 and Embodiment 3 are independent embodiments but with different implementation methods. Both can improve the heat insulation performance of the front glass panel 5 and the back glass panel 50, and prevent the indoor ambient temperature from changing due to heat transfer from the back glass panel 50, which is convenient for users. The two can be substituted for each other.

[0040] Working principle: On rainy days, the user can manually rotate the adjusting rod 320 clockwise. The rotation of the adjusting rod 320 causes the worm gear 32 to rotate, which in turn rotates the worm wheel 31 inside the adjusting device 3. The rotation of the worm wheel 31 drives the left-end gear 24 through the shaft 30. The rotation of the left-end gear 24, in turn, drives the right-end gear 24 through the connecting rod 25, causing both gears 24 to perform circular motions with the same angular velocity simultaneously. The rotation of the gears 24, through the locking teeth 220, drives the telescopic rod 22 to extend from the support column 21 through the through hole 210 and move vertically forward. The movement of the telescopic rod 22 drives the collection chamber 23. The system moves vertically forward until the collection chamber 23 extends from the front end of the fixed top plate 2 through the channel 20 to collect raindrops falling from the sky. Guardrails fixed to both sides of the top of the collection chamber 23 reduce the loss of raindrops after collection. As the collection chamber 23 moves forward driven by the telescopic rod 22, its movement, via the first connecting piece 230 and the first rotating rod 260, drives the telescopic platform 26 to move. Simultaneously, the telescopic platform 26 rotates continuously during its movement until the collection chamber 23 moves through the channel 20 to the front end of the fixed top plate 2. At this point, a flow channel for raindrop transport is formed between the telescopic platform 26 and the collection chamber 23. When the telescopic platform 26 moves, it slides out of the interior of the rotating platform 27 via the first slide groove 270 and the first slider 261. Simultaneously, as the telescopic platform 26 moves and adjusts its angle with the collection chamber 23, the rotating platform 27 uses the second rotating rod 271 and the second connecting piece 280 to adjust its angle at the front end of the liquid collection chamber 28, tilting it upwards. At this time, both the telescopic platform 26 and the rotating platform 27 are tilted upwards, allowing raindrops flowing from the collection chamber 23 into the telescopic platform 26 to flow under the influence of gravity into the tilted transport channel formed by the telescopic platform 26 and the rotating platform 27, thus transporting the raindrops into the liquid collection chamber 28. The raindrops collected in the collection tank 28 under strong sunlight can absorb the temperature transmitted between the front glass panel 5 and the hollow environment of the glass back panel 50 on the rear surface of the glass back panel 50. This prevents the temperature from being directly transferred to the room through the glass back panel 50, which would cause the indoor temperature to rise and the insulation performance of the device to weaken. The rear end of the collection tank 28 can be connected to an external pipe to drain the water that has risen in temperature in the collection tank 28 so that it can be collected again on rainy days. Alternatively, it can be directly filled into the collection tank 28 to absorb the temperature without waiting for a rainy day and connecting a water source. This improves the overall insulation performance of the device while collecting and utilizing raindrops on rainy days, which is green and environmentally friendly.

[0041] When the sun is strong, the air pump 11 is turned on. The air pump 11 delivers gas into the airbag 13 through the air supply pipe 12, which increases the air pressure inside the airbag 13 and causes it to expand. The airbag 13 expands and gradually expands upward at the center of the front glass panel 5 and the back glass panel 50 through the second slider 14 and the second slide groove 40 until the first slider 261 moves to the top of the first slide groove 270. At this time, the airbag 13 blocks the front end of the back glass panel 50. The heat insulation film fixedly connected to the front and rear surfaces of the airbag 13 isolates the heat transferred from the front glass panel 5. An exhaust switch can be set at the bottom of the airbag 13 and the exhaust switch extends to the rear surface of the fixed base plate 1, so that the user can release the gas inside the airbag 13 to the outside of the device to reset the airbag 13, improve the heat insulation performance of the device, and facilitate user use.

[0042] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A microsphere nano-insulating insulating glass, comprising a fixed base plate (1), a fixed top plate (2), an adjustment device (3), and a frame plate (4), characterized in that: The fixed top plate (2) has support columns (21) fixedly connected to both the left and right ends of its inner top side. The front end surface of the support column (21) has a through hole (210) extending into the interior of the support column (21). The front end of the support column (21) near the through hole (210) is provided with a telescopic rod (22) that matches the through hole (210). The bottom of the telescopic rod (22) is fixedly connected with several teeth (220). The telescopic rod (22) passes through the through hole (210) and the telescopic rod (22) is connected to several teeth (220). The hole (210) is fitted inside the support column (21). The bottom of the telescopic rod (22) is provided with a gear (24) that matches the locking tooth (220). The end surface of the telescopic rod (22) away from the support column (21) is fixedly connected to a limiting seat (221). The front top of the telescopic rod (22) is fixedly connected to a collection chamber (23). The front end surface of the fixed top plate (2) is provided with a through groove (20) that matches the collection chamber (23). The collection chamber (23) is located in the through groove. Inside (20), adjustment devices (3) are fixedly connected to both the left and right ends of the fixed top plate (2). The internal horizontal rotating shaft (30) of the adjustment device (3) is fixedly connected to the end of the left shaft (30) near the collection bin (23). The shaft (30) extends to the end of the worm wheel (31) near the gear (24) and is fixedly connected to the end of the gear (24) near the worm wheel (31). The end of the gear (24) away from the shaft (30) is fixedly connected to the end of the gear (24) near the worm wheel (31). A connecting rod (25) is fixedly connected, and the gears (24) at the left and right ends are fixedly connected to each other through the connecting rod (25). The bottom of the end of the worm wheel (31) away from the gear (24) is provided with a worm (32) that is compatible with the worm wheel (31). The worm (32) meshes with the worm wheel (31). An adjusting rod (320) is fixedly connected to the rear end of the worm (32). The adjusting rod (320) is sleeved inside the fixed top plate (2) and extends to the rear end surface of the fixed top plate (2). The collection chamber (23) is fixedly connected to both ends of the rear side of the interior. The collection chamber (23) is provided with a telescopic platform (26) at the rear end. The telescopic platform (26) is fixedly connected to both sides of the end of the telescopic platform (26) near the first connector (230) with a first rotating rod (260) that is compatible with the first connector (230). The collection chamber (23) is rotatably connected to the telescopic platform (26) through the first connector (230) and the first rotating rod (260). The telescopic platform (26) is fixedly connected to the two sides of the end away from the collection bin (23) with a first slider (261). The telescopic platform (26) is provided with a rotating platform (27) at the end away from the collection bin (23). The rotating platform (27) is provided with a first sliding groove (270) on both sides of the interior of the rotating platform (27) that is compatible with the first slider (261). The rotating platform (27) is slidably connected to the telescopic platform (26) through the first sliding groove (270) and the first slider (261). The rotating platform (27) is fixedly connected to the two sides of the end away from the telescopic platform (26) with a second rotating rod (271). The rotating platform (27) and the top left and right ends of the telescopic platform (26) are fixedly connected with guardrails. A liquid collection tank (28) is provided at one end of the rotating platform (27) away from the telescopic platform (26). A second connecting piece (280) that is compatible with the second rotating rod (271) is fixedly connected to one end of the liquid collection tank (28) near the second rotating rod (271). The rotating platform (27) is rotatably connected to the liquid collection tank (28) through the second rotating rod (271) and the second connecting piece (280). The liquid collection tank (28) is located at the bottom of the center of the two side support columns (21). The bottom of the liquid collection tank (28) is fixedly connected to the top of the fixed base plate (1).

2. The microsphere nano-insulating insulating glass according to claim 1, characterized in that: The top left and right ends of the fixed base plate (1) are fixedly connected to the frame plate (4), and the surface of the frame plate (4) away from the fixed base plate (1) is fixedly connected to the fixed top plate (2). The front side of the top of the fixed base plate (1) is provided with a front mounting seat (10), and the rear side of the top of the fixed base plate (1) is provided with a rear mounting seat (100).

3. The microsphere nano-insulating insulating glass according to claim 2, characterized in that: The top front side and the rear side of the fixed base plate (1) are respectively provided with a glass front plate (5) and a glass rear plate (50). The glass front plate (5) is snapped onto the top front side of the fixed base plate (1) by a mounting front seat (10), and the glass rear plate (50) is snapped onto the top rear side of the fixed base plate (1) by a mounting rear seat (100). The end of the glass rear plate (50) away from the glass front plate (5) is fixedly connected to the front surface of the liquid collection tank (28). The liquid collection tank (28) is made of transparent material.

4. The microsphere nano-insulating insulating glass according to claim 3, characterized in that: An air pump (11) is fixedly connected inside the fixed base plate (1). An air supply pipe (12) is fixedly connected to the top output end of the air pump (11). An air bag (13) is fixedly connected to the end of the air supply pipe (12) away from the air pump (11). The bottom of the air bag (13) is located inside the fixed base plate (1), and the top of the air bag (13) is located on the top of the fixed base plate (1).

5. The microsphere nano-insulating insulating glass according to claim 4, characterized in that: The airbag (13) is fixedly connected to the left and right ends of the airbag (14). The inner side of the frame plate (4) near the second slider (14) is provided with a second sliding groove (40) that is compatible with the second slider (14). The airbag (13) is slidably connected to the frame plate (4) through the second slider (14) and the second sliding groove (40). The front and rear surfaces of the airbag (13) are fixedly connected with heat insulation film.

Citation Information

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