Heat insulation type (warm edge) electric photovoltaic built-in sunshade hollow glass
By using composite materials and intelligent design in the heat-insulating spacer frame, the shortcomings of existing built-in shading insulated glass in terms of heat insulation, structure, power supply and intelligence are solved, achieving high efficiency and energy saving, stable power supply and convenient operation, and meeting the needs of modern buildings.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- ANHUI ZHENXING ENERGY SAVING TECH CO LTD
- Filing Date
- 2026-02-05
- Publication Date
- 2026-04-10
AI Technical Summary
Existing insulated glass units with built-in sunshades are inadequate in terms of heat insulation, structural stability, ease of use, power supply reliability, and level of intelligence, and cannot meet the energy-saving and intelligent requirements of modern buildings.
The system employs a composite material structure with a heat-insulated partition frame, and combines flexible switching between photovoltaic power supply, mains power, and external power supply. The motor is connected to a smart home control system, and the installation and wiring design of transmission components are standardized to achieve remote control and smooth lifting of the louvers.
It improves thermal insulation performance and structural stability, solves sealing and moisture-proof problems, ensures power supply reliability and convenient intelligent operation, extends product lifespan, and adapts to different usage environments.
Smart Images

Figure CN121827672A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of sunshade insulating glass, in particular to a heat insulation type (warm edge) electric photovoltaic built-in sunshade insulating glass. BACKGROUND
[0002] At present, insulating glass is widely used in the fields of building doors and windows, curtain walls and the like due to its good heat insulation and sound insulation performance. With the increasing requirements of people on building energy saving and use convenience, insulating glass with built-in sunshade function gradually becomes the mainstream in the market. However, the existing insulating glass with built-in sunshade still has many deficiencies in actual use, and it is difficult to meet the use requirements of people.
[0003] The heat insulation type spacer frame of the existing insulating glass is mostly made of a single material, and either the heat insulation effect is not good or the structural strength is insufficient, so that the heat insulation performance and structural stability cannot be considered, affecting the overall energy saving effect and service life. At the same time, the internal sealing and moisture-proof measures of the heat insulation type spacer frame are not perfect, which easily leads to the entry of external water vapor into the frame body, causing the internal components to be damaged by moisture, and further shortening the product use cycle.
[0004] At the same time, the transmission components of the existing products are installed in disorder, and the pull rope wiring has no standard channel, which easily causes problems such as winding and wear, and the related components are mostly fixedly connected, which is not convenient for later maintenance and replacement. In terms of power supply mode, most of them adopt a single power supply mode, either relying on mains power, or relying on rechargeable batteries, or only being able to be powered by photovoltaic power. Once the single power supply mode fails, there is no choice for power supply mode, and the blinds cannot be normally lifted, so the practicality and reliability are poor.
[0005] In addition, the existing insulating glass with built-in sunshade has low intelligence, cannot be connected to the intelligent home control system, and the user needs to manually operate to control the blinds to lift, which is complicated and does not meet the development trend of modern building intelligence.
[0006] In summary, the existing insulating glass with built-in sunshade has defects in heat insulation effect, structural stability, use convenience, power supply reliability and intelligence level, and there is an urgent need for a new insulating glass with built-in sunshade that can solve the above problems. SUMMARY
[0007] The heat insulation type (warm edge) electric photovoltaic built-in sunshade insulating glass provided by the present application adopts the following technical scheme:
[0008] The heat insulation type (warm edge) electric photovoltaic built-in sunshade hollow glass comprises a heat insulation type spacing frame, the heat insulation type spacing frame is a closed loop enclosed frame structure, both sides of the heat insulation type spacing frame are provided with the heat insulation type spacing frame and are integrally arranged in a rectangular frame, are used for constituting a frame base of the hollow glass, and limit the overall support base frame of the hollow glass, an upper outer side of the heat insulation type spacing frame is fixedly provided with a photovoltaic panel, the photovoltaic panel is electrically connected with a motor, is used for power supply of the motor, the motor can also be externally connected with a commercial power supply, and the three power supply modes of photovoltaic, commercial power supply and external power supply can be switched, the motor can be connected with an intelligent home control system, and signal connection with an intelligent home terminal is realized, the start and stop and forward and reverse rotation of the motor can be controlled through the intelligent home terminal, and then the lifting of the louver is controlled.
[0009] Preferably, the heat insulation type spacing frame is a non-metal material, the outer layer adopts a heat insulation type plastic material, the inner layer adopts an aluminum alloy material, the frame body of the heat insulation type spacing frame is embedded with an electrically driven sunshade driving structure, is a basic frame of the electrically driven sunshade driving mechanism, a heat insulation type cover plate and the heat insulation type spacing frame are combined to form a complete heat insulation type spacing frame structure, and the heat insulation type spacing frame is provided with a drying strip and a butyl rubber strip outside.
[0010] Preferably, the heat insulation type spacing frame encloses a closed hollow cavity, and the hollow cavity is provided with a louver.
[0011] Preferably, the upper part of the heat insulation type spacing frame is fixedly connected with a mounting frame, the mounting frame is a hollow frame structure, a base and at least two mounting supports are fixedly arranged in the mounting frame, the mounting supports are fixedly arranged on the base and are symmetrically distributed on both sides of the mounting frame, a take-up port is formed in the mounting supports, a limit stopper is fixedly arranged at the end of the mounting frame, a motor is fixedly arranged on one of the mounting supports, a transmission shaft is fixedly connected with the output end of the motor, a transmission shaft is connected with the end of the transmission shaft away from the motor, a connecting shaft is connected with the end of the transmission shaft away from the transmission shaft, the transmission shaft, the transmission shaft and the connecting shaft are coaxially arranged as an integrated shaft body, a first rope winding wheel is fixedly arranged on the transmission shaft, a gear groove is formed in the outer wall of the first rope winding wheel, a transmission wheel is engagedly connected with the gear groove, a lead screw is fixedly connected with the end of the transmission wheel away from the first rope winding wheel, a movable block is movably arranged on the lead screw, and the movable block is arranged in a limit movable seat and is in sliding fit with the limit movable seat.
[0012] Preferably, the mounting bracket is also detachably connected with a wiring block, the wiring block is provided with a first wiring port, the mounting bracket is provided with a second wiring port corresponding to the position of the first wiring port, the positions of the first wiring port and the second wiring port correspond to each other and are in communication with each other, the inside of the mounting frame is also provided with a pull rope, the pull rope passes through the first wiring port and the second wiring port in sequence and is wound around the first rope winding wheel, and the two mounting brackets are both provided with a motor and a first rope winding wheel correspondingly.
[0013] Preferably, the inner walls of the first wiring port and the second wiring port are both provided with wear-resistant rubber pads for protecting the pull rope.
[0014] Preferably, the surface of the blade of the louver is provided with a matte coating for reducing reflection.
[0015] In summary, the present application has the following beneficial technical effects:
[0016] 1. By setting the heat insulation type spacing frame as a composite layer structure of outer layer plastic and inner layer aluminum alloy, and embedding dry strips and external butyl rubber strips which are mutually adhered and uniformly arranged inside the warm edge spacing frame, the heat insulation performance and structural strength are considered, the defects of single material of the existing heat insulation type spacing frame are solved, the sealing and moisture-proof effects are effectively improved, the external moisture is prevented from entering the frame body to damage the internal components, the service life of the product is prolonged, and the building energy saving demand is met.
[0017] 2. By setting the regular transmission component installation of the internally hollow mounting frame, matching the detachable wiring block and the first wiring port and the second wiring port which are in communication with each other, the wiring of the pull rope is standardized, the winding and wear of the pull rope are avoided, the later maintenance and replacement are facilitated, the three power supply modes of photovoltaic, mains and external power supply supported by the motor are switched, and the problems of disordered transmission, inconvenient maintenance and poor single power supply reliability of the existing product are solved.
[0018] 3. By connecting the motor into the smart home control system, the user can remotely control the louver lifting through the terminal, and the motor, transmission wheel and other components are symmetrically arranged on the two mounting brackets, so that the louver lifting is stable and accurate, the problems of low intelligentization degree and complicated operation of the existing built-in sunshade hollow glass are solved, and the intelligentization development trend of modern buildings is matched. BRIEF DESCRIPTION OF DRAWINGS
[0019] Figure 1 It is a whole structure schematic view of the present application.
[0020] Figure 2 It is a front structure schematic view of the present application.
[0021] Figure 3 It is a structure schematic view of the heat insulation type spacing frame of the present application.
[0022] Figure 4The schematic diagram of the rope pulling structure of the present application.
[0023] Figure 5 The schematic diagram of the mounting frame structure of the present application.
[0024] Figure 6 The schematic diagram of the first rope winding wheel structure of the present application.
[0025] Figure 7 The schematic diagram of the first wire outlet structure of the present application.
[0026] The figure mark explanation: 1, heat insulation type spacing frame; 2, drying strip; 3, external butyl rubber strip; 4, louver; 5, pulling rope; 6, mounting frame; 7, motor; 8, transmission shaft; 9, mounting support; 91, take-up port; 10, wire block; 101, first wire outlet; 11, transmission shaft; 12, first rope winding wheel; 13, gear slot; 14, transmission wheel; 15, screw rod; 16, movable block; 17, limit movable seat; 18, second wire outlet; 19, base; 20, connecting shaft; 22, limiter; 23, photovoltaic panel. DETAILED DESCRIPTION
[0027] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0028] Reference Figures 1-7 , the present application provides a heat insulation type (warm edge) electric photovoltaic built-in sunshade hollow glass, including heat insulation type spacing frame 1, heat insulation type spacing frame 1 is closed loop enclosure type frame structure, its two sides are provided with heat insulation type spacing frame 1 and the whole is rectangular frame setting, for constituting the frame basis of hollow glass, limiting the overall support basis frame of hollow glass, the upper outer side of heat insulation type spacing frame 1 is fixedly provided with photovoltaic panel 23, photovoltaic panel 23 is electrically connected with motor 7, for power supply for motor 7, motor 7 can also be externally connected to the power supply, simultaneously can connect external power supply, realize the switching of three power supply modes of photovoltaic, commercial power, external power supply, motor 7 can be connected to the smart home control system, realize signal connection with smart home terminal, through smart home terminal can control the start-stop, forward-reverse rotation of motor 7, and then control the lifting of louver 4.
[0029] The closed loop rectangular structure of heat insulation type spacing frame 1 can ensure the stability and regularity of the overall structure, provide a firm installation basis for all subsequent components, avoid loosening and displacement of components due to unstable installation basis, and at the same time clearly limit the product shape to ensure product specification uniformity
[0030] The photovoltaic panel 23 is fixed on the upper outer side of the heat insulation type spacing frame 1, can receive external light and convert light energy into electric energy, and the converted electric energy directly powers the motor 7 to provide clean energy for the operation of the motor 7; at the same time, the motor 7 can be powered by the photovoltaic panel 23, can also be powered by external power supply, and can also be connected to external power supply for power supply. During use, the three power supply modes of photovoltaic, power supply and external power supply can be flexibly switched according to the actual scene and demand, so as to ensure that the motor 7 can continuously and stably operate. If the product does not adopt the photovoltaic power supply mode, the photovoltaic panel 23 can be removed and replaced with a decorative panel.
[0031] The photovoltaic panel 23 belongs to clean energy, is energy-saving and environment-friendly, and can reduce the use cost; the three power supply modes can be flexibly switched, so that when a single power supply mode fails (such as photovoltaic power supply affected by weather, power interruption), the motor 7 cannot operate, resulting in that the louver 4 cannot be used, thereby effectively improving the practicability and reliability of the product, and adapting to different use environments.
[0032] The motor 7 can be connected to the smart home control system and establish a signal connection with the smart home terminal. The user sends a control instruction through the smart home terminal, and after the instruction is transmitted to the motor 7, the motor 7 can be controlled to start and stop and forward and reverse. The start and stop control of the motor 7 controls the operation and stop of the transmission structure, and the forward and reverse rotation of the motor 7 drives the components such as the transmission shaft 8 and the transmission shaft 11 to rotate forward or reverse, thereby driving the extension and retraction of the pull rope 5, and finally realizing the lifting control of the louver 4. The motor 7, the first winding wheel 12 and the transmission wheel 14 are correspondingly arranged on the two mounting brackets 9, and the two transmission wheels 14 are symmetrically distributed at the two ends of the lead screw 15. The two motors 7 operate synchronously to drive the two transmission wheels 14 to rotate synchronously, thereby stably driving the lead screw 15 to rotate, and ensuring that the sliding block 16 slides uniformly.
[0033] The motor 7 is connected to the smart home control system, and the user can remotely control the lifting of the louver 4 through the terminal, which is convenient to operate and improves the intelligent level and use experience of the product. The transmission components on the two mounting brackets 9 are symmetrically arranged and synchronously operated, which can ensure that the lead screw 15 is uniformly stressed and stably rotated, avoid the inclination or jamming of the lead screw 15, and thereby ensure that the sliding block 16 slides smoothly and the pull rope 5 extends and retracts uniformly, so that the louver 4 rises and falls more stably and accurately.
[0034] In a preferred embodiment, the heat insulation type spacing frame 1 is made of non-metallic material, the outer layer is made of heat insulation type (warm edge) plastic material, and the inner layer is made of aluminum alloy material. The heat insulation type spacing frame 1 is embedded with an electrically driven sunshade driving structure, which is a basic frame for limiting the electrically driven sunshade driving mechanism. The heat insulation type cover plate and the heat insulation type spacing frame 1 form a complete heat insulation type spacing frame 1 structure, and the inside of the heat insulation type spacing frame 1 is provided with a drying strip 2 and an external butyl rubber strip 3.
[0035] The heat insulation type spacer frame 1 with the outer layer of heat insulation type (warm edge) plastic and the inner layer of aluminum alloy composite structure can achieve good heat insulation effect through the outer layer of warm edge plastic to reduce heat transfer to meet the energy saving demand, and can rely on the inner layer of aluminum alloy to ensure the structural strength and stability of the frame to prevent deformation and damage of the frame, and can balance the heat insulation performance and structural reliability. At the same time, the heat insulation type spacer frame 1 as the basic frame can precisely limit the electric drive sunshade drive structure embedded therein, fix the installation position, ensure the stable operation of the drive mechanism, and the heat insulation type cover plate and the frame form a complete structure, which makes the entire frame structure more complete and better sealed.
[0036] In a preferred embodiment, the heat insulation type spacer frame 1 encloses a closed hollow cavity, and the louver 4 is arranged in the hollow cavity.
[0037] The heat insulation type spacer frame 1 encloses a closed hollow cavity, and the louver 4 is arranged in the hollow cavity.
[0038] In a preferred embodiment, the heat insulation type spacer frame 1 is fixedly connected with the mounting frame 6 at the upper portion, the mounting frame 6 is a hollow frame structure, the mounting frame 6 is fixedly provided with the base 19 and at least two mounting brackets 9, the mounting brackets 9 are fixedly arranged on the base 19, and the two mounting brackets 9 are symmetrically arranged on the two sides of the mounting frame 6, the mounting bracket 9 is provided with the winding port 91, the end portion of the mounting frame 6 is fixedly provided with the limit stop 22, one of the mounting brackets 9 is fixedly provided with the motor 7, the output end of the motor 7 is fixedly connected with the transmission shaft 8, the end of the transmission shaft 8 away from the motor 7 is connected with the transmission shaft 11, the end of the transmission shaft 11 away from the transmission shaft 8 is connected with the connecting shaft 20, the transmission shaft 8, the transmission shaft 11 and the connecting shaft 20 are coaxially arranged as an integrated shaft body, the first rope winding wheel 12 is fixedly sleeved on the transmission shaft 11, the gear groove 13 is arranged on the outer side wall of the first rope winding wheel 12, the transmission wheel 14 is connected with the gear groove 13 in meshing mode, the end of the transmission wheel 14 away from the first rope winding wheel 12 is fixedly connected with the lead screw 15, the movable block 16 is movably sleeved on the lead screw 15, the movable block 16 is arranged in the limit movable seat 17, and the movable block 16 and the limit movable seat 17 are in sliding fit.
[0039] The mounting frame 6 is fixed at the upper part of the heat insulation type spacing frame 1 as a mounting carrier of the part, the inside of the mounting frame 6 is hollow, and various transmission and supporting parts can be accommodated; the base 19 is fixedly arranged in the inside of the mounting frame 6, and the two mounting supports 9 are vertically fixed on the base 19 and symmetrically distributed on the two sides of the inside of the mounting frame 6, so that the subsequent transmission parts can be symmetrically and stably supported; the wire collecting opening 91 is arranged on the mounting support 9 and used for passing the pull rope 5, and the limiting piece 22 is fixed on the end of the mounting frame 6 and abuts against the end of the mounting support 9, so as to limit the mounting support 9 and prevent the mounting support 9 from being displaced during use; the motor 7 fixed on one of the mounting supports 9 is a power source of the whole transmission structure, and the output end of the motor 7 drives the transmission shaft 8 to rotate; since the transmission shaft 8, the transmission shaft 11 and the connecting shaft 20 are coaxially arranged as an integrated shaft body, the transmission shaft 8 drives the transmission shaft 11 and the connecting shaft 20 to rotate synchronously; when the transmission shaft 11 rotates, the first rope winding wheel 12 fixedly sleeved on the transmission shaft 11 also rotates synchronously; the gear groove 13 arranged on the outer side wall of the first rope winding wheel 12 is meshed with the transmission wheel 14, so that the first rope winding wheel 12 drives the transmission wheel 14 to rotate, and the transmission wheel 14 drives the screw rod 15 fixedly connected with the transmission wheel 14 to rotate; when the screw rod 15 rotates, the movable block 16 movably sleeved on the screw rod 15 slides in the limiting movable seat 17, the limiting movable seat 17 guides and limits the movable block 16, so that the movable block 16 can only stably slide along the length direction of the screw rod 15, and the uniform winding and unwinding of the pull rope 5 are realized.
[0040] The hollow structure of the mounting frame 6 can accommodate various parts, the base 19 and the symmetrically distributed mounting supports 9 can stably and symmetrically support the transmission parts, and the stability of the transmission process is ensured; the limiting piece 22 can effectively fix the position of the mounting support 9, so as to avoid the displacement of the mounting support 9 and affect the transmission accuracy; the motor 7 provides stable power, the coaxially arranged transmission shaft 8, transmission shaft 11 and connecting shaft 20 can ensure smooth and deviation-free power transmission, and power loss is avoided; the meshing transmission mode of the gear groove 13 and the transmission wheel 14 can realize accurate power transmission, and the rotation synchronization of the first rope winding wheel 12 and the screw rod 15 is ensured; the guiding and limiting effect of the limiting movable seat 17 on the movable block 16 can avoid the deviation of the movable block 16 during sliding, ensure the uniform winding and unwinding of the pull rope 5, and further ensure the stable lifting of the louver 4.
[0041] In a preferred embodiment, the wiring block 10 can be detachably connected to the mounting support 9, the first wiring opening 101 is arranged on the wiring block 10, the second wiring opening 18 is arranged on the mounting support 9 and corresponds to the position of the first wiring opening 101, the positions of the first wiring opening 101 and the second wiring opening 18 correspond to each other and are in communication with each other, and the pull rope 5 is arranged in the inside of the mounting frame 6 and sequentially passes through the first wiring opening 101 and the second wiring opening 18 and is wound on the first rope winding wheel 12.
[0042] The wiring block 10 is detachably connected to the mounting bracket 9, facilitating later installation, maintenance and replacement; the first wiring port 101 formed on the wiring block 10 corresponds in position to the second wiring port 18 formed on the mounting bracket 9 and communicates with each other, forming a complete wiring channel; the pull rope 5 is arranged inside the mounting frame 6 and sequentially passes through the first wiring port 101 and the second wiring port 18, and when the first rope winding wheel 12 rotates to perform a rope winding or unwinding action, the pull rope 5 will move along the channel formed by the first wiring port 101 and the second wiring port 18.
[0043] The detachable design of the wiring block 10 facilitates later maintenance and replacement of the pull rope 5, reducing maintenance difficulty; the corresponding communication of the first wiring port 101 and the second wiring port 18 can provide a regular wiring channel for the pull rope 5, avoiding entanglement and wear of the pull rope 5 during movement, prolonging the service life of the pull rope 5; the pull rope 5 passes through the wiring channel and the first rope winding wheel 12, ensuring smooth winding and unwinding of the pull rope 5, thereby stably driving the shutter 4 to rise and fall, avoiding jamming and tilting.
[0044] In a preferred embodiment, the inner walls of the first wiring port 101 and the second wiring port 18 are each provided with a wear-resistant rubber pad for protecting the pull rope 5.
[0045] Providing a wear-resistant rubber pad on the inner walls of the first wiring port 101 and the second wiring port 18 can greatly reduce the rigid friction loss of the pull rope 5 during reciprocating winding and unwinding, effectively avoiding faults such as fuzzing and breaking of the pull rope 5, and prolonging the service life of the pull rope 5; at the same time, the flexible contact of the rubber pad can reduce the running jamming and abnormal noise of the pull rope 5, ensuring smooth and stable transmission of the sunshade driving mechanism, improving the overall operation reliability of the built-in sunshade system, and reducing the frequency and cost of later maintenance.
[0046] In a preferred embodiment, the surface of the blade of the shutter 4 is provided with a matte coating for reducing reflection.
[0047] Providing a matte coating on the surface of the blade of the shutter 4 can effectively weaken the mirror reflection of the blade to natural light and outdoor strong light, reduce indoor glare interference, and significantly improve the visual comfort of the indoor space; at the same time, it can avoid light pollution caused by strong light reflection to the surrounding environment, adapt to the use requirements of multiple scenes such as residences and offices, and optimize the lighting experience on the premise of ensuring the sunshade and heat insulation functions of the shutter 4.
[0048] The exemplary embodiments of the heat-insulated (warm-edge) electric photovoltaic built-in sunshade hollow glass provided by the present disclosure are described above with reference to preferred embodiments, however, those skilled in the art can understand that various modifications and changes can be made to the above specific embodiments, and various technical features and structures proposed by the present disclosure can be combined, without departing from the concept of the present disclosure, and without exceeding the protection scope of the present disclosure, which is determined by the appended claims.
Claims
1. A heat-insulating (warm-edge) electric photovoltaic built-in sunshade hollow glass, comprising a heat-insulating spacer frame (1), characterized in that: The heat insulation type spacing frame (1) is a closed loop enclosure type frame structure, both sides of which are provided with heat insulation type spacing frames (1) and the whole is arranged in a rectangular frame, used to form the frame base of the hollow glass, limit the overall support base frame of the hollow glass, the upper outer side of the heat insulation type spacing frame (1) is fixedly provided with a photovoltaic panel (23), the photovoltaic panel (23) is electrically connected with a motor (7), used to power the motor (7), the motor (7) can also be externally connected to the power supply, at the same time, an external power supply can be connected, realizing the switching of the three power supply modes of photovoltaic, power supply and external power supply, the motor (7) can be connected to the smart home control 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The electrically-operated photovoltaic built-in solar control heat mirror (warm-edge) hollow glass according to claim 1, characterized in that: 3. The electrically-operated photovoltaic built-in solar control heat mirror (warm-edge) hollow glass according to claim 1, characterized in that: 4. The electrically-operated photovoltaic built-in solar-shading heat- insulating (warm-edge) hollow glass according to claim 3, characterized in that: 5. The electrically-operated photovoltaic built-in solar control heat mirror (warm-edge) hollow glass according to claim 4, characterized in that: The mounting bracket (9) can also be detachably connected to a cable routing block (10). The cable routing block (10) has a first cable routing port (101). The mounting bracket (9) has a second cable routing port (18) corresponding to the first cable routing port (101). The positions of the first cable routing port (101) and the second cable routing port (18) are corresponding and connected to each other. The mounting frame (6) is also provided with a pull rope (5). The pull rope (5) passes through the first cable routing port (101) and the second cable routing port (18) in sequence and is wound around the first rope reel (12). The two mounting brackets (9) are each provided with a motor (7) and a first rope reel (12).
6. The electrically-operated photovoltaic built-in solar control heat mirror (warm-edge) hollow glass according to claim 5, characterized in that: The inner walls of the first cable routing port (101) and the second cable routing port (18) are provided with wear-resistant rubber pads to protect the pull rope (5).
7. The electrically-operated photovoltaic built-in solar control heat mirror (warm-edge) hollow glass according to claim 3, characterized in that: The blade surface of the louver (4) is provided with a matte coating to reduce reflection.