A kind of high transmittance glass integrating photovoltaic power generation and LED photoelectric display
Patent Information
- Application Number
- CN202521820778.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-25
- Publication Date
- 2026-09-18
- Estimated Expiration
- 2035-08-25
AI Technical Summary
[0007]鉴于上述现有技术的不足,本实用新型的目的在于提供一种集光伏发电及LED光电显示于一体的高透过率玻璃,旨在解决光伏发电层和LED发光层单独分开导致发电和发光效果不佳的问题
本实用新型通过在ITO导电玻璃层上的ITO导线,由于ITO导电玻璃是透明的,减少了传统LED显示玻璃导电铜带对光照的遮挡,从而提高了光伏发电层的发电效率;同时,LED显示玻璃在正常工作时所发出来的光线可被后方的光伏发电层所吸收转换为电能,进一步增加了光伏发电量,还减少了LED显示玻璃层对室内造成光污染。该结构设计合理,能同时实现LED显示、光伏发电、高通透性、减少透光型LED显示玻璃对室内的光污染及保温隔热等功能,还能提升光伏发电层的发电功率。
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Figure CN224775311U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the fields of photovoltaic power generation and LED optoelectronic display, specifically to a high transmittance glass that integrates photovoltaic power generation and LED optoelectronic display. Background Technology
[0002] With the development of modern industry and the increasing prominence of the energy crisis, solar energy, as a renewable and clean energy source, has received widespread attention. Photovoltaic power generation technology has gradually penetrated into various fields, and the organic integration of photovoltaic power generation with buildings has become an important application. LED optoelectronic glass, as a high-tech product that embeds LED light sources into glass to form various styles and patterns, organically combines light energy, electrical energy, and glass, breaking through the traditional concept of building decoration materials, and is widely used in display applications and other fields.
[0003] CN212129713U discloses a smart PV-LED luminous glass, comprising a front glass panel, a middle glass panel, a conductive glass panel, and a back glass panel arranged sequentially. A photovoltaic chip is sandwiched between the front glass panel and the middle glass panel, with a hollow layer between the middle glass panel and the conductive glass panel. An LED layer is sandwiched between the conductive glass panel and the back glass panel. This patent combines PV power generation with LED light emission, organically integrating light and electrical energy. Utilizing the power generation capability of PV, the generated electricity directly powers the LEDs, eliminating the need for an external power source. However, this patent may face waterproofing and dustproofing issues when used outdoors, affecting the product's reliability and lifespan.
[0004] CN218568848U discloses an anti-glare photovoltaic power generation building material, including a battery string and a photovoltaic glass substrate. An aging-resistant adhesive film is placed between the battery string and the photovoltaic glass substrate. A high-transmittance adhesive film is placed above the battery string, and an anti-glare glass substrate is placed above the high-transmittance adhesive film. Multiple glass lenses are arranged on the surface of the anti-glare glass substrate. This patent effectively avoids glare and improves the conversion efficiency of solar cells by setting hemispherical glass lenses on the anti-glare glass substrate. While meeting certain light transmittance requirements, it effectively reduces light reflectivity and intensity of reflected light, thus avoiding light pollution. However, the structure and number of hemispherical glass lenses in this patent still need optimization to further improve the absorption rate and conversion efficiency of sunlight.
[0005] In summary, existing photovoltaic glass still faces the following problems when combined with LED display technology: Traditional PV-LED simply combines traditional photovoltaic power generation technology with LED light-emitting technology without optimizing the relative positions of the PV power generation side and the LED light-emitting side. Specifically, the LED conductive copper strip partially blocks the light-receiving surface of the photovoltaic system, reducing power generation performance. Furthermore, it fails to consider the thermal insulation requirements of integrated PV-LED glass when used as a building material; it does not address the light pollution caused by LED display glass indoors; it fails to consider the reduced efficiency of the photovoltaic power generation layer due to heat generated by the LED display glass during operation and direct sunlight; and it does not address the transparency issue of integrated PV-LED glass.
[0006] Therefore, existing technologies still need to be improved and developed. Utility Model Content
[0007] In view of the shortcomings of the prior art, the purpose of this utility model is to provide a high transmittance glass that integrates photovoltaic power generation and LED optoelectronic display, aiming to solve the problem that the power generation and light emission effects are poor when the photovoltaic power generation layer and the LED light emission layer are separated.
[0008] This utility model is achieved through the following technical solution: A high-transmittance glass integrating photovoltaic power generation and LED optoelectronic display includes a photovoltaic power generation module, an LED optoelectronic display module, and a hollow layer disposed between the photovoltaic power generation module and the LED optoelectronic display module; The photovoltaic power generation module includes a power generation chip layer and a first transparent glass layer attached to both sides of the power generation chip layer; The LED optoelectronic display module includes an ITO conductive glass layer, multiple LED beads, a first adhesive layer, and a second transparent glass layer. The ITO conductive glass layer includes a glass substrate and ITO wires formed by etching a conductive film on one side of the glass substrate. The LED beads are spaced apart on the ITO wires and connected to the LED beads. The first adhesive layer covers the LED beads and connects between the ITO conductive glass layer and the second transparent glass layer.
[0009] Optionally, the thickness of the hollow layer is 5-20 mm, and the hollow layer is a vacuum or contains an inert gas or air with a pressure of 0.1-0.5 MPa. Preferably, the thickness of the hollow layer is 10-15 mm; Preferably, the thickness of the hollow layer is 12 mm.
[0010] Preferably, the inert gas is argon.
[0011] Optionally, the power generation chip layer is a light-transmitting cadmium telluride thin-film power generation chip; Preferably, the thickness of the power generation chip layer is 3.2 mm.
[0012] Optionally, the first transparent glass layer is ultra-clear tempered LOW-E glass; Preferably, the thickness of the first transparent glass layer is 3.2-15 mm; Preferably, the thickness of the first transparent glass layer is 6.00 mm.
[0013] Optionally, the power generation chip layer is connected to the first transparent glass layers on both sides by a second adhesive layer; Preferably, the thickness of the second adhesive layer is 0.76-2.28 mm; Preferably, the thickness of the second adhesive layer is 0.76 mm, 1.14 mm, 1.52 mm, 1.90 mm, or 2.28 mm. Preferably, the thickness of the second adhesive layer is 1.52 mm.
[0014] Optionally, the thickness of the ITO conductive glass layer is 3.2-15 mm; Preferably, the thickness of the ITO conductive glass layer is 6.00 mm.
[0015] Optionally, the thickness of the first adhesive layer is 0.76-2.28 mm; Preferably, the thickness of the first adhesive layer is 2.28 mm.
[0016] Optionally, the second transparent glass layer is ultra-clear tempered glass; Preferably, the thickness of the second transparent glass layer is 3.2-15 mm; Preferably, the thickness of the second transparent glass layer is 6.00 mm.
[0017] Optionally, both the first adhesive layer and the second adhesive layer are made of PVB adhesive.
[0018] Optionally, the high-transmittance glass integrating high-efficiency photovoltaic power generation and LED optoelectronic display also includes an edge-sealing module for sealing the hollow layer, which is wrapped around the four sides of the photovoltaic power generation module and the LED optoelectronic display module.
[0019] Beneficial effects: This invention utilizes ITO conductive wires on an ITO conductive glass layer. Because the ITO conductive glass is transparent, it reduces the light obstruction caused by the conductive copper strips in traditional LED display glass, thereby improving the power generation efficiency of the photovoltaic layer. Simultaneously, the light emitted by the LED display glass during normal operation can be absorbed by the photovoltaic layer behind it and converted into electrical energy, further increasing photovoltaic power generation and reducing light pollution caused by the LED display glass layer indoors. This structural design is reasonable and can simultaneously achieve LED display, photovoltaic power generation, high transparency, reduced light pollution from transparent LED display glass, and thermal insulation functions, while also increasing the power generation capacity of the photovoltaic layer.
[0020] The hollow layer placed between the photovoltaic power generation module and the LED optoelectronic display module effectively solves the problem of heat insulation between the optoelectronic display layer and the photovoltaic power generation layer, achieving better energy-saving effect. At the same time, through reasonable structural design, it avoids the complex process in the traditional double-sided solar cell manufacturing process, reducing production costs. In addition, the hollow layer can also isolate the heat generated by the LED light-emitting layer during operation and the temperature rise when exposed to direct sunlight, preventing the power generation efficiency of the photovoltaic power generation layer from decreasing due to temperature rise. Attached Figure Description
[0021] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0022] Figure 1 This is a three-dimensional schematic diagram of a high-transmittance glass that integrates high-efficiency photovoltaic power generation and LED optoelectronic display in Example 1.
[0023] Figure 2 This is a cross-sectional schematic diagram of the high-transmittance glass that integrates high-efficiency photovoltaic power generation and LED optoelectronic display in Example 1.
[0024] Figure 3 This is a schematic diagram of the structure of the ITO conductive glass layer in Example 1.
[0025] The following are the labeling elements in the figure: 1. Photovoltaic power generation module; 2. LED optoelectronic display module; 3. Hollow layer; 4. Edge-sealing module; 1-1, Power generation chip layer; 1-2, First transparent glass layer; 1-3, Second adhesive layer; 2-1, ITO conductive glass layer; 2-2, LED beads; 2-3, first adhesive layer; 2-4, second transparent glass layer; 2-11, Glass substrate; 2-12, ITO conductor. Detailed Implementation
[0026] To make the technical problems, technical solutions, and beneficial effects of this application clearer, the following detailed description is provided in conjunction with embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the scope of this application.
[0027] In this application, the term "and / or" describes the relationship between related objects, indicating that three relationships can exist. For example, A and / or B can represent: A existing alone, A and B existing simultaneously, or B existing alone. A and B can be singular or plural. The character " / " generally indicates that the preceding and following related objects have an "or" relationship.
[0028] In this application, "at least one" means one or more, and "more than one" means two or more. "At least one of the following" or similar expressions refer to any combination of these items, including any combination of single or multiple items. For example, "at least one of a, b or c", or "at least one of a, b and c", can both mean: a, b, c, ab (i.e., a and b), ac, bc, or abc, where a, b, and c can be single or multiple.
[0029] It should be understood that in the various embodiments of this application, the order of the above processes does not imply the order of execution. Some or all steps may be executed in parallel or sequentially. The execution order of each process should be determined by its function and internal logic, and should not constitute any limitation on the implementation process of the embodiments of this application.
[0030] The terminology used in the embodiments of this application is for the purpose of describing particular embodiments only and is not intended to be limiting of this application. The singular forms "a" and "the" as used in the embodiments of this application and the appended claims are also intended to include the plural forms, unless the context clearly indicates otherwise.
[0031] like Figure 1 , Figure 2 This embodiment provides a high transmittance glass that integrates photovoltaic power generation and LED optoelectronic display, including a photovoltaic power generation module 1, an LED optoelectronic display module 2, and a hollow layer 3 disposed between the photovoltaic power generation module 1 and the LED optoelectronic display module 2; The photovoltaic power generation module 1 includes a power generation chip layer 1-1 and a first transparent glass layer 1-2 attached to both sides of the power generation chip layer 1-1; The LED optoelectronic display module 2 includes an ITO conductive glass layer 2-1, multiple LED beads 2-2, a first adhesive layer 2-3, and a second transparent glass layer 2-4; like Figure 3 As shown, the ITO conductive glass layer 2-1 includes a glass substrate 2-11 and an ITO wire 2-12 formed by etching a conductive film on one side of the glass substrate 2-11. The LED beads 2-2 are spaced apart on the ITO wire 2-12 and connected to the LED beads 2-2. The first adhesive layer 2-3 covers the LED beads 2-2 and is connected between the ITO conductive glass layer 2-1 and the second transparent glass layer 2-4.
[0032] It should be noted that the ITO conductive glass layer 2-1's ITO wires 2-12 are obtained by automated laser etching on the conductive film. ITO wires 2-12 of a certain shape and distribution can be set as needed, thereby further controlling the final LED bead arrangement effect. Specifically, RGB LED beads are preferred. Multiple LED beads form an LED bead layer, which in turn forms an LED display layer. This is not the focus of this utility model, so it will not be elaborated upon here.
[0033] It should be noted that the output of the power generation chip layer 1-1 is connected to the energy storage battery through a photovoltaic converter, which has voltage stabilization and rectification functions; the energy storage battery is connected to the LED lamp bead driver power supply through a transformer and current stabilization module, which is used to regulate voltage and current; alternatively, the DC power generated by the photovoltaic power generation can be inverted to AC power by an inverter and then supplied to the LED optoelectronic display system through an AC power supply box. This is not the focus of this utility model protection, so it will not be elaborated here.
[0034] This embodiment utilizes ITO conductive wires on an ITO conductive glass layer. Because the ITO conductive glass is transparent, it reduces the light obstruction caused by the conductive copper strips in traditional LED display glass, thereby improving the power generation efficiency of the photovoltaic layer. Simultaneously, the light emitted by the LED display glass during normal operation can be absorbed by the photovoltaic layer behind it and converted into electrical energy, further increasing photovoltaic power generation and reducing light pollution caused by the LED display glass layer indoors. This structural design is reasonable and can simultaneously achieve LED display, photovoltaic power generation, high transparency, reduced light pollution from transparent LED display glass, and thermal insulation functions, while also increasing the power generation capacity of the photovoltaic layer.
[0035] In some embodiments, the thickness of the hollow layer 3 is 5-20 mm, such as 5 mm, 6 mm, 7 mm, 8 mm, 9 mm, 10 mm, 11 mm, 12 mm, 13 mm, 14 mm, 15 mm, 16 mm, 17 mm, 18 mm, 19 mm, or 20 mm; the hollow layer 3 is a vacuum or contains an inert gas or air with a pressure of 0.1-0.5 MPa, where the pressure can be 0.1 MPa, 0.2 MPa, 0.3 MPa, 0.4 MPa, or 0.5 MPa.
[0036] Preferably, the thickness of the hollow layer 3 is 5-20mm, such as 5mm, 10mm, 11mm, 12mm, 13mm, 14mm, 15mm, 16mm, 17mm, 18mm, 19mm, or 20mm. Preferably, the thickness of the hollow layer 3 is 12 mm.
[0037] In some embodiments, the power generation chip layer 1-1 is a light-transmitting cadmium telluride thin-film power generation chip; Preferably, the thickness of the power generation chip layer 1-1 is 3.2 mm.
[0038] It should be noted that, because the cadmium telluride (CdT) solar cell is a light-transmitting CdT thin-film solar cell, it effectively solves the problem of mutual interference caused by the unreasonable positional relationship between the photovoltaic power generation layer and the LED light-emitting layer in existing technologies. The light-transmitting CdT thin-film solar cell... In some embodiments, the first transparent glass layer 1-2 is ultra-clear tempered LOW-E glass; Preferably, the thickness of the first transparent glass layer 1-2 is 3.2-15mm, such as 3.2mm, 5mm, 6mm, 7mm, 8mm, 9mm, 10mm, 11mm, 12mm, 13mm, 14mm, or 15mm; the thickness of the first transparent glass layer 1-2 should not be more than 5mm greater than the thickness of the chip. Preferably, the thickness of the first transparent glass layer 1-2 is 6.00 mm.
[0039] Ultra-clear tempered low-E glass not only provides structural support but also further reflects mid- and far-infrared rays, improving thermal insulation performance while maintaining high visible light transmittance. The insulating layer and ultra-clear tempered low-E glass layer reduce outdoor heat radiation, ensuring energy-saving, heat-insulating, and thermal-resistant effects.
[0040] In some embodiments, the power generation chip layer 1-1 is connected to the first transparent glass layers 1-2 on both sides by a second adhesive layer 1-3; Preferably, the thickness of the second adhesive layer 1-3 is 0.76-2.28 mm; Preferably, the thickness of the second adhesive layer 1-3 is 0.76 mm, 1.14 mm, 1.52 mm, 1.90 mm, and 2.28 mm; Preferably, the thickness of the second adhesive layer 1-3 is 1.52 mm.
[0041] In some embodiments, the thickness of the ITO conductive glass layer 2-1 is 3.2-15 mm; Preferably, the thickness of the ITO conductive glass layer 2-1 is 6.00 mm.
[0042] In some embodiments, the thickness of the first adhesive layer 2-3 is 0.76-2.28 mm; Preferably, the thickness of the first adhesive layer 2-3 is 0.76 mm, 1.14 mm, 1.52 mm, or 2.28 mm; Preferably, the thickness of the first adhesive layer 2-3 is 2.28 mm.
[0043] In some embodiments, the second transparent glass layer 2-4 is ultra-clear tempered glass; Preferably, the second transparent glass layer 2-4 is 3.2-15mm thick; Preferably, the second transparent glass layer 2-4 is 6.00 mm thick.
[0044] In some embodiments, both the first adhesive layer 2-3 and the second adhesive layer 1-3 are made of PVB adhesive. PVB film has excellent optical properties and aging resistance.
[0045] In some embodiments, the high-transmittance glass integrating high-efficiency photovoltaic power generation and LED optoelectronic display also includes an edge-sealing module 4 that surrounds the photovoltaic power generation module 1 and the LED optoelectronic display module 2 to seal the hollow layer 3.
[0046] It should be noted that the entire high-transmittance glass integrating high-efficiency photovoltaic power generation and LED optoelectronic display is prepared through a lamination process, using a vacuum bonding process. The lamination temperature is controlled at 60-80℃ and the pressure is controlled at 0.5-1.0MPa to ensure tight adhesion between the layers.
[0047] It should be noted that an external energy storage battery and a transformer and current stabilization module can be connected, thereby realizing the coordinated operation of photovoltaic power generation and LED optoelectronic display, effectively solving the power supply and distribution coordination problem when combining photovoltaic power generation and LED light-emitting technology in the existing technology.
[0048] It should be noted that the LED optoelectronic display module 2 also includes a control system. The LED beads can be set using AMOLED or PMOLED technology, with a resolution of not less than 1080P and a brightness of not less than 1000 cd / m². The control system includes a signal processor, a data transmission module, and a power management module, used to control the normal display of the LEDs and monitor the photovoltaic power generation and energy storage battery status in real time.
[0049] Example 1 like Figure 1 , 2 As shown, the high transmittance glass integrating high-efficiency photovoltaic power generation and LED optoelectronic display in this embodiment includes a photovoltaic power generation module 1, an LED optoelectronic display module 2, and a hollow layer 3 disposed between the photovoltaic power generation module 1 and the LED optoelectronic display module 2; The photovoltaic power generation module 1 includes a power generation chip layer 1-1 and a first transparent glass layer 1-2 attached to both sides of the power generation chip layer 1-1; The LED optoelectronic display module 2 includes an ITO conductive glass layer 2-1, multiple LED beads 2-2, a first adhesive layer 2-3, and a second transparent glass layer 2-4; like Figure 3 As shown, the ITO conductive glass layer 2-1 includes a glass substrate 2-11 and an ITO wire 2-12 disposed on one side of the glass substrate 2-11. The LED beads 2-2 are spaced apart on the ITO wire 2-12 and connected to the LED beads 2-2. The first adhesive layer 2-3 covers the LED beads 2-2 and is connected between the ITO conductive glass layer 2-1 and the second transparent glass layer 2-4.
[0050] The hollow layer 3 described in this embodiment has a thickness of 10 mm, and argon gas with a pressure of 0.3 MPa is installed inside the hollow layer 3.
[0051] In this embodiment, the power generation chip layer 1-1 is a light-transmitting cadmium telluride thin-film power generation chip; the thickness of the power generation chip layer 1-1 is 3.2 mm.
[0052] In this embodiment, the first transparent glass layer 1-2 is ultra-white tempered LOW-E glass; the thickness of the first transparent glass layer 1-2 is 6.00mm.
[0053] In this embodiment, the power generation chip layer 1-1 and the first transparent glass layers 1-2 on both sides are connected by a second adhesive layer 1-3; the thickness of the second adhesive layer 1-3 is 1.52mm.
[0054] In this embodiment, the glass substrate 2-11 is ultra-clear tempered glass; the thickness of the ITO conductive glass layer 2-1 is 6.00 mm.
[0055] In this embodiment, the thickness of the first adhesive layer 2-3 is 2.28 mm.
[0056] In this embodiment, the second transparent glass layer 2-4 is ultra-clear tempered glass; the thickness of the second transparent glass layer 2-4 is 6.00mm.
[0057] In this embodiment, both the first adhesive layer 2-3 and the second adhesive layer 1-3 are made of PVB adhesive.
[0058] The high transmittance glass that integrates high-efficiency photovoltaic power generation and LED optoelectronic display in this embodiment also includes an edge-sealing module 4 that wraps around the four sides of the photovoltaic power generation module 1 and the LED optoelectronic display module 2 to seal the hollow layer 3.
[0059] It should be noted that the entire high-transmittance glass integrating high-efficiency photovoltaic power generation and LED optoelectronic display is prepared through a lamination process, using a vacuum bonding process. The lamination temperature is controlled at 70℃ and the pressure is controlled at 0.8MPa to ensure tight adhesion between each layer.
[0060] It should be noted that an external energy storage battery and a transformer and current stabilization module can be connected, thereby realizing the coordinated operation of photovoltaic power generation and LED optoelectronic display, effectively solving the power supply and distribution coordination problem when combining photovoltaic power generation and LED light-emitting technology in the existing technology.
[0061] It should be noted that the LED optoelectronic display module 2 also includes a control system. The LED display layer formed by the LED beads adopts AMOLED technology with a resolution of 1080P and a brightness of 1200 cd / m². 2 The control system includes a signal processor, a data transmission module, and a power management module, which are used to control the normal display of the LEDs and monitor the photovoltaic power generation and energy storage battery status in real time.
[0062] Example 2 Unlike Example 1, the hollow layer 3 in this example has a thickness of 12 mm, and the hollow layer 3 contains helium gas with a pressure of 0.4 MPa.
[0063] It should be noted that the LED optoelectronic display module 2 also includes a control system. The LED display layer formed by the LED beads adopts PMOLED technology with a resolution of 4K and a brightness of 1500 cd / m². The control system includes a signal processor, a data transmission module, and a power management module, used to control the normal display of the LEDs and monitor the photovoltaic power generation and energy storage battery status in real time.
[0064] The above description is merely a preferred embodiment of this application and is not intended to limit this application. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this application should be included within the protection scope of this application.
Claims
1. A high-transmittance glass integrating photovoltaic power generation and LED optoelectronic display, characterized in that: Includes a photovoltaic power generation module, an LED optoelectronic display module, and a hollow layer disposed between the photovoltaic power generation module and the LED optoelectronic display module; The photovoltaic power generation module includes a power generation chip layer and a first transparent glass layer attached to both sides of the power generation chip layer; The LED optoelectronic display module includes an ITO conductive glass layer, multiple LED beads, a first adhesive layer, and a second transparent glass layer. The ITO conductive glass layer includes a glass substrate and ITO wires formed by etching a conductive film on one side of the glass substrate. The LED beads are spaced apart on the ITO wires and connected to the LED beads. The first adhesive layer covers the LED beads and connects between the ITO conductive glass layer and the second transparent glass layer.
2. The high-transmittance glass integrating photovoltaic power generation and LED photoelectric display according to claim 1, characterized in that: The thickness of the hollow layer is 5-20mm, and the hollow layer is either a vacuum or contains an inert gas or air with a pressure of 0.1-0.5MPa.
3. The high-transmittance glass integrating photovoltaic power generation and LED photoelectric display according to claim 1, characterized in that: The power generation chip layer is a light-transmitting cadmium telluride thin-film power generation chip; The thickness of the power generation chip layer is 3.2 mm.
4. The high-transmittance glass integrating photovoltaic power generation and LED photoelectric display according to claim 1, characterized in that: The first transparent glass layer is ultra-clear tempered LOW-E glass; The thickness of the first transparent glass layer is 3.2-15mm.
5. The high-transmittance glass integrating photovoltaic power generation and LED photoelectric display according to claim 1, characterized in that: The power generation chip layer is connected to the first transparent glass layers on both sides by a second adhesive layer; The thickness of the second adhesive layer is 0.76-2.28 mm.
6. The high-transmittance glass integrating photovoltaic power generation and LED photoelectric display according to claim 1, characterized in that: The thickness of the ITO conductive glass layer is 3.2-15 mm.
7. The high transmittance glass integrating photovoltaic power generation and LED optoelectronic display according to claim 1, characterized in that: The thickness of the first adhesive layer is 0.76-2.28 mm.
8. The high-transmittance glass integrating photovoltaic power generation and LED photoelectric display according to claim 1, characterized in that: The second transparent glass layer is ultra-clear tempered glass; The thickness of the second transparent glass layer is 3.2-15mm.
9. The high-transmittance glass integrating photovoltaic power generation and LED photoelectric display according to claim 1, characterized in that: The high-transmittance glass that integrates photovoltaic power generation and LED optoelectronic display also includes an edge-sealing module for sealing the hollow layer, which is wrapped around the four sides of the photovoltaic power generation module and the LED optoelectronic display module.
Citation Information
Patent Citations
Intelligent PV-LED luminescent glass
CN212129713U