Double-layer glass structure with shutters

By designing a double-glazed structure with louvers and utilizing components such as arc-shaped ventilation slots and drive motors, the problems of controlling the installation direction and adjusting the light transmittance of the double-glazed glass were solved, realizing automatic adjustment of light transmittance and sealing detection, thus improving installation and maintenance efficiency.

CN121760615APending Publication Date: 2026-03-31POWER CHINA KUNMING ENG CORP LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-01-22
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

Existing double-glazed windows suffer from misalignment issues in installation direction control, making light transmission adjustment inconvenient and lacking a sealing detection structure, which affects installation progress and maintenance efficiency.

Method used

A double-layer glass structure with louvers was designed, including a double-layer protection unit, an energy storage unit, a light adjustment unit, and a sealing detection unit. The installation direction is controlled, the light transmittance is automatically adjusted, and the sealing is detected through components such as an arc-shaped ventilation groove, a drive motor, and a sealing detection rod.

Benefits of technology

It effectively avoids misalignment during installation, enables automatic adjustment of light transmittance and detection of sealing, and improves installation and maintenance efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a double-layer glass structure with a shutter, and relates to the technical field of double-layer glass, the double-layer glass structure comprises a double-layer protection unit, an illumination adjusting unit and a sealing detection unit; the electric energy storage unit is installed in the double-layer protection unit and used for storing electric energy generated by the double-layer protection unit. The illumination adjusting unit is mounted in the double-layer protection unit and is used for adjusting the light transmission of the double-layer protection unit; the sealing detection unit is installed on the electric energy storage unit and the illumination adjustment unit, and the sealing detection unit is used for improving the maintenance efficiency of the double-layer protection unit; two rows of arc-shaped vent grooves are formed in the outer side of common tempered glass, so that a worker can only adsorb photovoltaic power generation glass through a suction cup, and the situation of installation dislocation is avoided; the problems that the installation direction of the double-layer glass cannot be controlled, so that the double-layer glass is prone to installation dislocation, and the installation progress is affected are solved.
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Description

Technical Field

[0001] This invention belongs to the field of double-glazed technology, and more specifically, relates to a double-glazed structure with louvers. Background Technology

[0002] The design of double-glazed windows aims to improve the thermal insulation, sound insulation, and energy-saving performance of buildings. Its core lies in the air or inert gas layer formed between the two panes of glass, which effectively blocks heat transfer, reduces heat loss in winter and heat intrusion in summer, and significantly reduces energy consumption. At the same time, the air layer can absorb and disperse sound waves, greatly reducing external noise and creating a quiet indoor environment. In addition, the double-glazed structure enhances the strength of the glass, improving safety and durability.

[0003] The following problems still exist with the currently used double-glazed windows: 1. The installation direction of the double-glazed windows cannot be controlled, which makes it easy for the double-glazed windows to be misaligned during installation, affecting the installation progress; 2. Double-glazed windows generally do not have a louvered structure inside, making it inconvenient for staff to adjust the light transmittance of the double-glazed windows appropriately, affecting the use effect; 3. There is a lack of a sealing detection structure, which cannot assist staff in detecting the sealing effect of the double-glazed windows, affecting the maintenance efficiency of double-glazed windows. Summary of the Invention

[0004] This disclosure relates to a double-layered glass structure with louvers, comprising a double-layered protection unit, an energy storage unit, a light adjustment unit, and a sealing detection unit. Two rows of arc-shaped ventilation slots are provided on the outer side of the ordinary tempered glass, allowing the photovoltaic glass to be adsorbed only by suction cups, thus preventing misalignment during installation. When the controller operates two drive motors, one row of light adjustment louvers rotates simultaneously under the action of two synchronous belts, achieving automatic adjustment of light transmittance. When the seal between the photovoltaic glass and the ordinary tempered glass is poor, the rectangular detection plate slides significantly when the circular detection rod is pressed. This solves the problems of being unable to control the installation direction of the double-layered glass, the inconvenience for workers to adjust the light transmittance of the double-layered glass appropriately, and the inability to assist workers in detecting the sealing effect of the double-layered glass.

[0005] This invention provides a double-layer glass structure with louvers, comprising: a double-layer protection unit, an energy storage unit, a light adjustment unit, and a sealing detection unit; the energy storage unit is installed inside the double-layer protection unit and is used to store the electrical energy generated by the double-layer protection unit; the light adjustment unit is installed inside the double-layer protection unit and is used to adjust the light transmittance of the double-layer protection unit; the sealing detection unit is installed on the energy storage unit and the light adjustment unit and is used to improve the maintenance efficiency of the double-layer protection unit; the double-layer protection unit comprises: photovoltaic power generation glass, ordinary tempered glass, and a rectangular support frame; the ordinary tempered glass is located behind the photovoltaic power generation glass, and the photovoltaic power generation glass and the ordinary tempered glass are the same size; two rectangular support frames are provided, and the two rectangular support frames are installed between the photovoltaic power generation glass and the ordinary tempered glass.

[0006] In at least some embodiments, the photovoltaic glass has a circular storage hole; the ordinary tempered glass has two rows of arc-shaped ventilation grooves on its outer side, and the two rows of arc-shaped ventilation grooves are arranged vertically; and each of the two rectangular support frames has a row of circular drying holes.

[0007] In at least some embodiments, the double-layer protection unit further includes: a desiccant and a structural sealant; the desiccant is provided in two portions, and the two portions of desiccant are disposed inside the rectangular support frame; the structural sealant is disposed between the photovoltaic glass and the ordinary tempered glass, and the structural sealant is also connected to the two rectangular support frames.

[0008] In at least some embodiments, the energy storage unit includes: a positioning bracket, an energy storage module, and a controller; the positioning bracket is arranged in a row, and the row of positioning brackets is fixedly installed on the upper rectangular support frame; the energy storage module is fixedly installed on the row of positioning brackets, and the energy storage module is electrically connected to the photovoltaic power generation glass; the controller is fixedly installed on the left side of the energy storage module, and the controller is electrically connected to the energy storage module.

[0009] In at least some embodiments, the illumination adjustment unit includes: a rectangular mounting frame and a circular mounting shaft; there are two rectangular mounting frames, and the two rectangular mounting frames are installed between the photovoltaic glass and the ordinary tempered glass; the upper and lower ends of the two rectangular mounting frames are in contact with two rectangular support frames, and the two rectangular mounting frames are also connected to structural sealant; there is a row of circular mounting shafts, and the row of circular mounting shafts is rotatably mounted on the two rectangular mounting frames.

[0010] In at least some embodiments, the illumination adjustment unit further includes: illumination adjustment blades and drive motors; the illumination adjustment blades are arranged in a row, and the row of illumination adjustment blades is fixedly installed on the outside of a row of circular mounting shafts, and the two ends of the row of illumination adjustment blades are in contact with two rectangular mounting frames; the drive motors are arranged in two, and the two drive motors are fixedly installed on the rectangular mounting frame on the left side; the output shafts of the two drive motors are fixedly connected to the circular mounting shafts on the upper and lower sides, and the two drive motors are electrically connected to the controller.

[0011] In at least some embodiments, the illumination adjustment unit further includes: a synchronous pulley and a synchronous belt; the synchronous pulleys are arranged in two rows, and the two rows of synchronous pulleys are fixedly installed at the left and right ends of a row of circular mounting shafts; the synchronous belts are arranged in two rows, and the two rows of synchronous belts are installed on the two rows of synchronous pulleys.

[0012] In at least some embodiments, the sealing detection unit includes: a rectangular detection cover and a rectangular detection plate; the rectangular detection cover is fixedly installed on the energy storage module and the rectangular mounting frame on the right side, and a circular detection hole is provided on the rectangular detection cover; the rectangular detection plate is slidably installed inside the rectangular detection cover.

[0013] In at least some embodiments, the sealing detection unit further includes: a circular detection rod and a helical spring; the circular detection rod is fixedly mounted on the rectangular detection plate, and the outer end of the circular detection rod is inserted into the circular receiving hole; the helical spring is sleeved on the outside of the circular detection rod, and the helical spring is located on the inside of the rectangular detection plate.

[0014] In at least some embodiments, the sealing detection unit further includes: an auxiliary sealing ring and a rubber sealing ring; the auxiliary sealing ring is fixedly installed on the outside of the circular detection rod, and the front side of the auxiliary sealing ring is in contact with the photovoltaic glass; the rubber sealing ring is installed on the auxiliary sealing ring.

[0015] Compared with the prior art, the present invention has the following beneficial effects: 1. In this invention, because ordinary tempered glass is located behind photovoltaic glass, and two rectangular support frames are installed between the photovoltaic glass and the ordinary tempered glass, and structural sealant is placed between the photovoltaic glass and the ordinary tempered glass, a sealed state is formed between the photovoltaic glass and the ordinary tempered glass. This facilitates the filling of the space between the photovoltaic glass and the ordinary tempered glass by workers, resulting in a better heat insulation effect. Furthermore, because the energy storage module is fixedly installed on a row of positioning brackets and is electrically connected to the photovoltaic glass, the electrical energy generated by the photovoltaic glass can be automatically stored in the energy storage module. In addition, because ordinary tempered glass has two rows of arc-shaped ventilation grooves on the outside, when the suction cup comes into contact with the ordinary tempered glass, outside air can enter the suction cup through the two rows of arc-shaped ventilation grooves, and the air in the suction cup can also be discharged through the two rows of arc-shaped ventilation grooves. This allows the staff to only use the suction cup to adsorb the photovoltaic glass, avoiding misalignment during installation.

[0016] 2. In this invention, a row of circular mounting shafts is rotatably mounted on two rectangular mounting frames, and a row of light-adjusting blades is fixedly mounted on the outside of the row of circular mounting shafts. The two ends of the light-adjusting blades contact the two rectangular mounting frames, giving the light-adjusting blades a rotating effect. Furthermore, the output shafts of two drive motors are fixedly connected to the circular mounting shafts on the upper and lower sides, and two rows of synchronous pulleys are fixedly mounted on the left and right ends of the row of circular mounting shafts. Two rows of synchronous belts are mounted on the two rows of synchronous pulleys. When the controller controls the two drive motors to work, the light-adjusting blades rotate simultaneously under the action of the two rows of synchronous belts, achieving automatic adjustment of light transmittance.

[0017] 3. In this invention, because a circular detection hole is provided on the rectangular detection cover, and the rectangular detection plate is slidably installed inside the rectangular detection cover, and the circular detection rod is fixedly installed on the rectangular detection plate, when the sealing between the photovoltaic glass and the ordinary tempered glass is good, the rectangular detection plate will not slide or will slide slightly when the operator presses the circular detection rod; when the sealing between the photovoltaic glass and the ordinary tempered glass is poor, the rectangular detection plate will slide significantly when the operator presses the circular detection rod; and because the helical spring is sleeved on the outside of the circular detection rod and is located on the inside of the rectangular detection plate, when the operator's hand is separated from the circular detection rod, the helical spring will drive the rectangular detection plate to automatically reset. In addition, because the auxiliary sealing ring is fixedly installed on the outside of the circular detection rod, and the front side of the auxiliary sealing ring is in contact with the photovoltaic glass, it plays a limiting role for the circular detection rod, making the outer end of the circular detection rod flush with the outer side of the photovoltaic glass; and because the rubber sealing ring is installed on the auxiliary sealing ring, it achieves a good sealing effect, preventing gas from escaping between the photovoltaic glass and ordinary tempered glass, and also preventing external air from entering between the photovoltaic glass and ordinary tempered glass. Attached Figure Description

[0018] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings of the embodiments will be briefly described below.

[0019] The accompanying drawings described below are only related to some embodiments of the invention and are not intended to limit the invention.

[0020] In the attached diagram: Figure 1 A three-dimensional structural schematic diagram of the present invention is shown; Figure 2 The present invention is shown. Figure 1 A schematic diagram of the rear structure; Figure 3 The present invention is shown. Figure 1 A schematic diagram of the longitudinal center section structure; Figure 4 The present invention is shown. Figure 3 A magnified schematic diagram of a portion of region A in the middle; Figure 5 The present invention is shown. Figure 2 A magnified schematic diagram of a portion of region B in the middle; Figure 6 The present invention is shown. Figure 1 A schematic diagram of the transverse center section structure; Figure 7 The present invention is shown. Figure 6 A magnified schematic diagram of a portion of region C in the middle; Figure 8 A schematic diagram of the structure of the illumination adjustment unit of the present invention is shown; Figure 9 The present invention is shown. Figure 8 A magnified schematic diagram of a portion of region D in the middle; Figure 10 A schematic diagram of the sealing detection unit of the present invention is shown; Figure 11 The present invention is shown. Figure 6 Schematic diagram of the cross-sectional structure in the EE direction; Figure 12 The present invention is shown. Figure 11 A magnified schematic diagram of the local structure of region F in the middle.

[0021] List of reference numerals in the attached diagram: 100. Double-layer protective unit; 101. Photovoltaic power generation glass; 1011. Circular storage hole; 102. Ordinary tempered glass; 1021. Arc-shaped ventilation groove; 103. Rectangular support frame; 1031. Circular drying hole; 104. Desiccant; 105. Structural sealant; 200. Energy storage unit; 201. Positioning bracket; 202. Energy storage module; 203. Controller; 300. Lighting adjustment unit; 301. Rectangular mounting frame; 302. Circular mounting shaft; 303. Lighting adjustment blade; 304. Drive motor; 305. Synchronous pulley; 306. Synchronous belt; 400. Sealing detection unit; 401. Rectangular detection cover; 4011. Circular detection hole; 402. Rectangular detection plate; 403. Circular detection rod; 404. Helical spring; 405. Auxiliary sealing ring; 406. Rubber sealing ring. Detailed Implementation

[0022] To make the objectives, solutions, and advantages of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Unless otherwise stated, the terms used herein have their ordinary meanings in the art. The same reference numerals in the drawings represent the same parts.

[0023] Example: Please refer to Figures 1 to 12 As shown: This invention provides a double-layer glass structure with louvers, comprising: a double-layer protection unit 100, an energy storage unit 200, a light adjustment unit 300, and a sealing detection unit 400; the energy storage unit 200 is installed inside the double-layer protection unit 100 and is used to store the electrical energy generated by the double-layer protection unit 100; the light adjustment unit 300 is installed inside the double-layer protection unit 100 and is used to adjust the light transmittance of the double-layer protection unit 100; the sealing detection unit 400 is installed on the energy storage unit 200 and the light adjustment unit 300 and is used to improve the maintenance efficiency of the double-layer protection unit 100.

[0024] In this embodiment of the disclosure, such as Figure 1 , Figure 4 , Figure 5 and Figure 12 As shown, the double-layer protective unit 100 includes: photovoltaic power generation glass 101, ordinary tempered glass 102, and rectangular support frame 103; the ordinary tempered glass 102 is located behind the photovoltaic power generation glass 101, and the photovoltaic power generation glass 101 and the ordinary tempered glass 102 have the same size; there are two rectangular support frames 103, and the two rectangular support frames 103 are installed between the photovoltaic power generation glass 101 and the ordinary tempered glass 102; a circular storage hole 1011 is opened on the photovoltaic power generation glass 101; a circular storage hole 1011 is opened on the outer side of the ordinary tempered glass 102. Two rows of arc-shaped ventilation slots 1021 are arranged vertically; a row of circular drying holes 1031 are respectively opened on the two rectangular support frames 103; the double-layer protection unit 100 also includes: desiccant 104 and structural sealant 105; two portions of desiccant 104 are provided, and the two portions of desiccant 104 are arranged inside the rectangular support frames 103; the structural sealant 105 is arranged between the photovoltaic power generation glass 101 and the ordinary tempered glass 102, and the structural sealant 105 is also connected to the two rectangular support frames 103; The energy storage unit 200 includes: a positioning bracket 201, an energy storage module 202, and a controller 203; the positioning bracket 201 is arranged in a row, and the row of positioning brackets 201 is fixedly installed on the upper rectangular support frame 103; the energy storage module 202 is fixedly installed on the row of positioning brackets 201, and the energy storage module 202 is electrically connected to the photovoltaic power generation glass 101; the controller 203 is fixedly installed on the left side of the energy storage module 202, and the controller 203 is electrically connected to the energy storage module 202. Its specific functions are as follows: Because the ordinary tempered glass 102 is located behind the photovoltaic power generation glass 101, and two rectangular support frames 103 are installed between the photovoltaic power generation glass 101 and the ordinary tempered glass 102, and structural sealant 105 is placed between the photovoltaic power generation glass 101 and the ordinary tempered glass 102, a sealed state is formed between the photovoltaic power generation glass 101 and the ordinary tempered glass 102, which makes it easy for workers to fill the space between the photovoltaic power generation glass 101 and the ordinary tempered glass 102, thus achieving a good heat preservation effect; and because the energy storage module 202 is fixedly installed on a row of positioning brackets 201, and the energy storage module 202 is electrically connected to the photovoltaic power generation glass 101, the electrical energy generated by the photovoltaic power generation glass 101 can be automatically stored in the energy storage module 202. In addition, because the outer side of the ordinary tempered glass 102 has two rows of arc-shaped ventilation grooves 1021, when the suction cup comes into contact with the ordinary tempered glass 102, external air can enter the suction cup through the two rows of arc-shaped ventilation grooves 1021, and the air in the suction cup can also be discharged through the two rows of arc-shaped ventilation grooves 1021, so that the staff can only use the suction cup to adsorb the photovoltaic glass 101, avoiding the situation of misalignment during installation.

[0025] In this embodiment of the disclosure, such as Figure 6 , Figure 8 and Figure 9As shown, the illumination adjustment unit 300 includes: a rectangular mounting frame 301 and a circular mounting shaft 302; two rectangular mounting frames 301 are provided, and the two rectangular mounting frames 301 are installed between the photovoltaic power generation glass 101 and the ordinary tempered glass 102; the upper and lower ends of the two rectangular mounting frames 301 are in contact with two rectangular support frames 103, and the two rectangular mounting frames 301 are also connected to the structural sealant 105; a row of circular mounting shafts 302 is provided, and a row of circular mounting shafts 302 is rotatably mounted on the two rectangular mounting frames 301; the illumination adjustment unit 300 also includes: illumination adjustment blades 303 and a drive motor 304; a row of illumination adjustment blades 303 is provided, and a row of illumination adjustment blades 303 is fixedly mounted on a row of circular mounting shafts. The exterior of 302, and the two ends of a row of light-adjusting blades 303 contact two rectangular mounting frames 301; there are two drive motors 304, and the two drive motors 304 are fixedly mounted on the rectangular mounting frame 301 on the left side; the output shafts of the two drive motors 304 are fixedly connected to the circular mounting shafts 302 on the upper and lower sides, and the two drive motors 304 are electrically connected to the controller 203; the light-adjusting unit 300 also includes: synchronous pulleys 305 and synchronous belts 306; there are two rows of synchronous pulleys 305, and the two rows of synchronous pulleys 305 are fixedly mounted on the left and right ends of a row of circular mounting shafts 302; there are two rows of synchronous belts 306, and the two rows of synchronous belts 306 are mounted on the two rows of synchronous pulleys 305; Its specific function is as follows: A row of circular mounting shafts 302 are rotatably mounted on two rectangular mounting frames 301, and a row of light-adjusting blades 303 are fixedly mounted on the outside of a row of circular mounting shafts 302. The two ends of the row of light-adjusting blades 303 are in contact with the two rectangular mounting frames 301, so that the row of light-adjusting blades 303 has a rotation effect. Furthermore, the output shafts of the two drive motors 304 are fixedly connected to the circular mounting shafts 302 on the upper and lower sides, and two rows of synchronous pulleys 305 are fixedly mounted on the left and right ends of a row of circular mounting shafts 302. Two rows of synchronous belts 306 are mounted on the two rows of synchronous pulleys 305. When the controller 203 controls the two drive motors 304 to work, the row of light-adjusting blades 303 rotates simultaneously under the action of the two rows of synchronous belts 306, realizing the automatic adjustment of light transmittance.

[0026] In this embodiment of the disclosure, such as Figure 10 and Figure 12As shown, the sealing detection unit 400 includes: a rectangular detection cover 401 and a rectangular detection plate 402; the rectangular detection cover 401 is fixedly installed on the energy storage module 202 and the rectangular mounting frame 301 on the right side, and a circular detection hole 4011 is provided on the rectangular detection cover 401; the rectangular detection plate 402 is slidably installed inside the rectangular detection cover 401; the sealing detection unit 400 also includes: a circular detection rod 403 and a helical spring 404; the circular detection rod 403 is fixedly installed on the rectangular detection plate 402, and a circular detection hole 4011 is provided on the rectangular detection plate 401. The outer end of the circular detection rod 403 is inserted into the circular receiving hole 1011; the helical spring 404 is sleeved on the outside of the circular detection rod 403, and the helical spring 404 is located on the inner side of the rectangular detection plate 402; the sealing detection unit 400 also includes: an auxiliary sealing ring 405 and a rubber sealing ring 406; the auxiliary sealing ring 405 is fixedly installed on the outside of the circular detection rod 403, and the front side of the auxiliary sealing ring 405 contacts the photovoltaic power generation glass 101; the rubber sealing ring 406 is installed on the auxiliary sealing ring 405; Its specific function is as follows: Because a circular detection hole 4011 is provided on the rectangular detection cover 401, and the rectangular detection plate 402 is slidably installed inside the rectangular detection cover 401, and the circular detection rod 403 is fixedly installed on the rectangular detection plate 402, when the sealing between the photovoltaic power generation glass 101 and the ordinary tempered glass 102 is good, when the operator presses the circular detection rod 403, the rectangular detection plate 402 basically does not slide or slides slightly; when the sealing between the photovoltaic power generation glass 101 and the ordinary tempered glass 102 is poor, when the operator presses the circular detection rod 403, the rectangular detection plate 402 slides significantly; and because the helical spring 404 is sleeved on the outside of the circular detection rod 403 and is located on the inside of the rectangular detection plate 402, when the operator's hand is separated from the circular detection rod 403, the helical spring 404 drives the rectangular detection plate 402 to automatically reset. Furthermore, since the auxiliary sealing ring 405 is fixedly installed on the outside of the circular detection rod 403, and the front side of the auxiliary sealing ring 405 contacts the photovoltaic glass 101, it plays a limiting role in the circular detection rod 403, making the outer end of the circular detection rod 403 flush with the outer side of the photovoltaic glass 101; and since the rubber sealing ring 406 is installed on the auxiliary sealing ring 405, it achieves a good sealing effect, preventing gas from escaping between the photovoltaic glass 101 and the ordinary tempered glass 102, and also preventing external air from entering between the photovoltaic glass 101 and the ordinary tempered glass 102.

[0027] The specific usage and function of this embodiment are as follows: In use, the suction cup is connected to the photovoltaic glass 101, and then the photovoltaic glass 101 is installed in a suitable position using the suction cup. When the suction cup contacts the ordinary tempered glass 102, external air can enter the suction cup through the two rows of arc-shaped ventilation grooves 1021, and the air in the suction cup can also be discharged through the two rows of arc-shaped ventilation grooves 1021. This ensures that the operator can only use the suction cup to adhere the photovoltaic glass 101, avoiding misalignment during installation. A sealed state is formed between the photovoltaic glass 101 and the ordinary tempered glass 102, facilitating the operator to fill the space between the photovoltaic glass 101 and the ordinary tempered glass 102 with highly stable gas, resulting in good heat preservation. The electrical energy generated by the photovoltaic glass 101 can be automatically stored in the energy storage module 202. When the controller 203 controls the two drive motors 304 to work, a row of light-adjusting blades 303 rotates simultaneously under the action of two rows of synchronous belts 306, achieving light transmission. The system features automatic adjustment. When the seal between the photovoltaic glass 101 and the ordinary tempered glass 102 is good, the rectangular detection plate 402 will not slide or will slide slightly when the operator presses the circular detection rod 403. When the seal between the photovoltaic glass 101 and the ordinary tempered glass 102 is poor, the rectangular detection plate 402 will slide significantly when the operator presses the circular detection rod 403. When the operator's hand is separated from the circular detection rod 403, the helical spring 404 will automatically reset the rectangular detection plate 402. The auxiliary sealing ring 405 limits the circular detection rod 403, making its outer end flush with the outer side of the photovoltaic glass 101. The rubber sealing ring 406 provides a good sealing effect, preventing gas from escaping between the photovoltaic glass 101 and the ordinary tempered glass 102, and also preventing external air from entering between them.

[0028] The following points should be noted in this article: 1. The accompanying drawings of the embodiments disclosed herein only relate to the structures involved in the embodiments disclosed herein; other structures can be referred to in a general design.

[0029] 2. Where there is no conflict, the embodiments of this disclosure and the features in the embodiments can be combined with each other to obtain new embodiments.

[0030] The above are merely specific embodiments of this disclosure, but the scope of protection of this disclosure is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this disclosure should be included within the scope of protection of this disclosure. Therefore, the scope of protection of this disclosure should be determined by the scope of the claims.

Claims

1. A double glazing structure having louvres, comprising: The utility model provides a double -deck protection unit (100), electric energy storage unit (200), illumination adjustment unit (300) and sealed detection unit (400), it is characterized in be that electric energy storage unit (200) installs in the inside of double -deck protection unit (100), and electric energy storage unit (200) is used to store the electric energy that double -deck protection unit (100) generates, illumination adjustment unit (300) installs in the inside of double -deck protection unit (100), and illumination adjustment unit (300) is used to adjust the light -transmitting of double -deck protection unit (100), sealed detection unit (400) installs on electric energy storage unit (200) and illumination adjustment unit (300), and sealed detection unit (400) is used to improve the overhauling efficiency of double -deck protection unit (100), and double -deck protection unit (100) includes: photovoltaic power generation glass (101), ordinary toughened glass (102) and rectangular support frame (103), ordinary toughened glass (102) is located behind photovoltaic power generation glass (101), and photovoltaic power generation glass (101) and ordinary toughened glass (102) are same in size, rectangular support frame (103) is equipped with two, and two rectangular support frames (103) are installed between photovoltaic power generation glass (101) and ordinary toughened glass (102).

2. A double glazing structure with louvres according to claim 1, wherein, Photovoltaic power generation glass (101) is provided with a circular receiving hole (1011), and ordinary toughened glass (102) is provided with two rows of arc-shaped air grooves (1021) on the outer side, and the two rows of arc-shaped air grooves (1021) are arranged vertically, and two rectangular support frames (103) are provided with a row of circular drying holes (1031) respectively.

3. A double glazing structure with louvres according to claim 2, wherein, The double -deck protection unit (100) further includes: drying agent (104) and structural sealant (105), two drying agents (104) are arranged in the inside of rectangular support frame (103), and structural sealant (105) is arranged between photovoltaic power generation glass (101) and ordinary toughened glass (102), and structural sealant (105) is further connected with two rectangular support frames (103).

4. A double glazing structure with louvres according to claim 3, wherein, The electric energy storage unit (200) includes: positioning bracket (201), energy storage module (202) and controller (203), one row of positioning brackets (201) is fixedly installed on the upper rectangular support frame (103), the energy storage module (202) is fixedly installed on the row of positioning brackets (201), and the energy storage module (202) is electrically connected with the photovoltaic power generation glass (101), and the controller (203) is fixedly installed on the left side of the energy storage module (202), and the controller (203) is electrically connected with the energy storage module (202).

5. A double glazing structure with louvres according to claim 4, wherein, The light adjustment unit (300) comprises: a rectangular mounting frame (301) and a circular mounting shaft (302); the rectangular mounting frame (301) is provided in two, and the two rectangular mounting frames (301) are mounted between the photovoltaic power generation glass (101) and the ordinary tempered glass (102); the upper and lower ends of the two rectangular mounting frames (301) are in contact with the two rectangular support frames (103), and the two rectangular mounting frames (301) are also connected with the structural sealant (105); the circular mounting shaft (302) is provided in one row, and the circular mounting shaft (302) is rotatably mounted on the two rectangular mounting frames (301).

6. A double glazing structure with louvres according to claim 5, wherein, The light adjustment unit (300) further comprises: a light adjustment leaf (303) and a drive motor (304); the light adjustment leaf (303) is provided in one row, and the light adjustment leaf (303) is fixedly installed outside the one row of circular mounting shafts (302), and the two ends of the light adjustment leaf (303) are in contact with the two rectangular mounting frames (301); the drive motor (304) is provided in two, and the drive motor (304) is fixedly installed on the left rectangular mounting frame (301); the output shafts of the two drive motors (304) are fixedly connected with the upper and lower circular mounting shafts (302), and the two drive motors (304) are electrically connected with the controller (203).

7. A double glazing structure with louvres according to claim 6, wherein, The light adjustment unit (300) further comprises: a synchronous pulley (305) and a synchronous belt (306); the synchronous pulley (305) is provided in two rows, and the two rows of synchronous pulleys (305) are fixedly installed at the left and right ends of the one row of circular mounting shafts (302); the synchronous belt (306) is provided in two rows, and the two rows of synchronous belts (306) are installed on the two rows of synchronous pulleys (305).

8. The double glazing structure with louvers according to claim 4, wherein The sealing detection unit (400) comprises: a rectangular detection cover (401) and a rectangular detection plate (402); the rectangular detection cover (401) is fixedly installed on the energy storage module (202) and the right rectangular mounting frame (301), and a circular detection hole (4011) is formed in the rectangular detection cover (401); the rectangular detection plate (402) is slidably installed in the rectangular detection cover (401).

9. A double glazing structure with louvres according to claim 8, wherein, The sealing detection unit (400) further comprises: a circular detection rod (403) and a spiral spring (404); the circular detection rod (403) is fixedly installed on the rectangular detection plate (402), and the outer end of the circular detection rod (403) is inserted into the circular receiving hole (1011); the spiral spring (404) is sleeved outside the circular detection rod (403), and the spiral spring (404) is located on the inner side of the rectangular detection plate (402).

10. A double glazing structure with louvres according to claim 9, wherein, The sealing detection unit (400) further comprises: an auxiliary sealing ring (405) and a rubber sealing ring (406); the auxiliary sealing ring (405) is fixedly installed outside the circular detection rod (403), and the front side of the auxiliary sealing ring (405) is in contact with the photovoltaic power generation glass (101); the rubber sealing ring (406) is installed on the auxiliary sealing ring (405).