Green energy-saving curtain wall
By integrating solar panels and LED panels into the curtain wall, the problem of existing energy-saving curtain walls being unable to efficiently utilize solar energy has been solved, achieving efficient green energy saving and auxiliary lighting, and improving the overall performance and energy-saving effect of the curtain wall.
Patent Information
- Application Number
- CN202520253594.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-17
- Publication Date
- 2026-01-13
- Estimated Expiration
- 2035-02-17
AI Technical Summary
Existing energy-saving curtain walls cannot efficiently convert solar energy into indoor lighting electricity, and cannot provide sufficient auxiliary light sources at night or when there is insufficient light, resulting in low energy efficiency and failure to meet green energy-saving requirements.
Design a green and energy-saving curtain wall that integrates solar panels and LED panels. The solar panels store energy and drive the LED panels to provide auxiliary indoor lighting. Combined with supporting wall assemblies and glass channels, it enhances structural stability and aesthetics.
It improves the efficiency of solar energy utilization, provides auxiliary lighting at night or when there is insufficient light, reduces dependence on traditional electricity, creates a comfortable and energy-saving office environment, and enhances the overall performance of the curtain wall.
Smart Images

Figure CN223793747U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of curtain walls, and in particular to green and energy-saving curtain walls. Background Technology
[0002] In the current construction industry, energy-saving curtain walls, as an important component of modern architectural design, are receiving increasing attention for their design and application. Traditional energy-saving curtain walls primarily achieve energy savings by employing high-performance insulation materials, double or triple-glazed windows, and excellent airtightness and watertightness designs to reduce heat exchange and energy loss between indoors and outdoors. However, while these measures improve the thermal insulation performance of curtain walls to some extent, traditional energy-saving curtain walls still have significant limitations in energy utilization and conversion, failing to fully utilize renewable energy sources such as solar energy to achieve more efficient green energy conservation.
[0003] To promote the development of green and energy-efficient curtain walls, existing technologies have attempted to incorporate renewable energy utilization into curtain wall design. For example, some existing curtain wall structures are beginning to use solar collectors or solar water heating systems to convert solar energy into heat energy for building hot water supply or heating. In addition, some curtain wall designs have incorporated wind power generation devices to provide electricity for the building. However, these existing technologies primarily focus on the thermal conversion of energy or electricity production, and do not directly convert solar energy into electricity that can be used for indoor lighting. Furthermore, there is still room for improvement in energy conversion efficiency and system integration.
[0004] While existing technologies have made some progress in the field of green and energy-saving curtain walls, significant shortcomings remain. First, current curtain wall structures generally lack efficient energy conversion mechanisms, failing to directly convert solar energy into electricity usable for indoor lighting, resulting in low solar energy utilization efficiency. Second, at night or in low-light conditions, existing curtain wall structures often cannot provide sufficient auxiliary light sources, while traditional lighting methods lead to energy waste. Particularly in nighttime office settings, using auxiliary light sources instead of main light sources aligns better with green and energy-saving principles, but existing curtain wall structures lack sufficient support in this regard. Therefore, developing a green and energy-saving curtain wall that can efficiently utilize solar energy, achieve green energy conservation, and provide auxiliary light sources at night is particularly important. Utility Model Content
[0005] In view of this, it is necessary to provide a green and energy-saving curtain wall to solve the above problems.
[0006] Embodiments of this application provide green and energy-saving curtain walls, including:
[0007] The wall structure, placed vertically and viewed horizontally, has an exterior facade facing the outside and an interior facade facing away from the exterior facade, and the exterior facade is equipped with solar panels;
[0008] An LED panel assembly is installed perpendicular to the indoor surface, and the LED panel assembly is electrically connected to the solar panel.
[0009] The LED panel is used as an indoor auxiliary light source. When the solar panel completes energy storage, it can drive the LED panel to achieve indoor auxiliary lighting.
[0010] In at least one embodiment of this application, the wall structure has a glass groove extending along the horizontal direction, the glass groove being used to place glass;
[0011] Viewed along the horizontal direction, the glass trough is arranged adjacent to the solar panel.
[0012] In at least one embodiment of this application, the wall structure further includes a supporting wall assembly. The direction perpendicular to the vertical direction and toward the interior surface is referred to as the first direction. The supporting wall assembly is arranged along the first direction and fixedly connected to the interior surface. The supporting wall assembly is used to form an interior space with the interior surface.
[0013] In at least one embodiment of this application, the support wall assembly includes a first support wall and a second support wall respectively disposed along the first direction;
[0014] Viewed horizontally, the first supporting wall is located at the upper end of the second supporting wall, and the first supporting wall is fixed to the interior surface to form a ceiling. The second supporting wall is spaced apart from the first supporting wall and fixed to the interior surface to form a floor.
[0015] In at least one embodiment of this application, the LED board assembly includes a first lamp board and a second lamp board;
[0016] Viewed horizontally, the first light panel is located on the end face of the ceiling facing the floor, and the second light panel is located on the end face of the floor facing the ceiling.
[0017] In at least one embodiment of this application, the first light panel includes a connecting structure, one end of which is fixedly connected to the first light panel and the other end is fixed to the indoor surface.
[0018] In at least one embodiment of this application, a glass layer is covered on the end face of the second lamp panel facing the first lamp panel, and the glass layer is used to protect the second lamp panel.
[0019] In at least one embodiment of this application, the wall structure further includes a fastener for fixing the supporting wall assembly.
[0020] In at least one embodiment of this application, the solar panel is covered with a waterproof layer.
[0021] In at least one embodiment of this application, the connection structure is made of stainless steel.
[0022] The aforementioned green and energy-saving curtain wall achieves efficient solar energy conversion and indoor auxiliary lighting by integrating solar panels and LED panels, significantly improving the green and energy-saving performance of the curtain wall. Attached Figure Description
[0023] Figure 1 This is a front view of a green and energy-saving curtain wall.
[0024] Figure 2 AA is a cross-sectional view of a green and energy-saving curtain wall.
[0025] Figure 3 This is an axial view of a green and energy-saving curtain wall.
[0026] Explanation of main component symbols
[0027] 1. Wall structure; 2. Exterior facade; 3. Interior facade; 4. Solar panel; 5. LED panel assembly; 6. Glass channel; 7. Supporting wall assembly; 8. First supporting wall; 9. Second supporting wall; 10. First light panel; 11. Second light panel; 12. Connecting structure; 14. Fasteners; 100. A green energy-saving curtain wall. Detailed Implementation
[0028] The embodiments of this application will now be described with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments.
[0029] It should be noted that when a component is considered to be "connected" to another component, it can be directly connected to the other component or may also have an intervening component. When a component is considered to be "placed" on another component, it can be directly placed on the other component or may also have an intervening component. The terms "top," "bottom," "upper," "lower," "left," "right," "front," "back," and similar expressions used in this article are for illustrative purposes only.
[0030] Embodiments of this application provide green and energy-saving curtain walls, including:
[0031] The wall structure, placed vertically and viewed horizontally, has an exterior facade facing the outside and an interior facade facing away from the exterior facade, and the exterior facade is equipped with solar panels;
[0032] An LED panel assembly is installed perpendicular to the indoor surface, and the LED panel assembly is electrically connected to the solar panel.
[0033] The LED panel is used as an indoor auxiliary light source. When the solar panel completes energy storage, it can drive the LED panel to achieve indoor auxiliary lighting.
[0034] The following detailed description of some embodiments of this application is provided in conjunction with the accompanying drawings. Unless otherwise specified, the following embodiments and features can be combined with each other.
[0035] Please see Figure 1 - Figure 3 Embodiments of this application provide a green and energy-saving curtain wall, comprising:
[0036] The wall structure 1 is placed vertically and viewed horizontally. The wall structure 1 has an exterior facade 2 facing the outside and an interior facade 3 facing away from the exterior facade 2. The exterior facade 2 is provided with a solar panel 4.
[0037] LED panel 5 is installed perpendicular to the indoor surface 3, and the LED panel 5 is electrically connected to the solar panel 4;
[0038] The LED panel group 5 is used as an indoor auxiliary light source. When the solar panel 4 completes energy storage, the solar panel 4 can drive the LED panel group 5 to achieve indoor auxiliary lighting.
[0039] Specifically, a green energy-saving curtain wall 100 is characterized by a wall structure 1 placed vertically, an exterior facade 2 facing the outside, and an interior facade 3 facing away from the exterior facade 2. A solar panel 4 is installed on the exterior facade 2 to collect solar energy. An LED panel assembly 5 is installed perpendicular to the interior facade 3 and electrically connected to the solar panel 4 as an auxiliary indoor light source. When the solar panel 4 completes energy storage, it can drive the LED panel assembly 5 to achieve auxiliary indoor lighting. This design not only improves the utilization efficiency of solar energy and reduces dependence on traditional electricity, but also creates a comfortable and energy-saving office environment through the soft light provided by the LED panel assembly 5. It is especially suitable for office spaces requiring long-term lighting. Its operation is simple and efficient; the solar panel 4 collects energy during the day, stores it, and supplies it to the LED panel assembly 5 through a circuit when needed, realizing a green and energy-saving application scenario.
[0040] In one specific embodiment, the wall structure 1 has a glass groove 6 extending along the horizontal direction, the glass groove 6 being used to place glass;
[0041] Viewed along the horizontal direction, the glass trough 6 is arranged adjacent to the solar panel 4.
[0042] Specifically, the wall structure 1 has a horizontally penetrating glass groove 6 for placing glass, and the glass groove 6 is set adjacent to the solar panel 4. This design not only ensures the transparency and aesthetics of the curtain wall, but also provides a certain degree of protection for the solar panel 4 through the glass in the glass groove 6. At the same time, the setting of the glass groove 6 also increases the overall structural strength of the curtain wall, and improves the safety and durability of the curtain wall.
[0043] In one specific embodiment, the wall structure 1 further includes a supporting wall assembly 7. The direction perpendicular to the vertical direction and toward the interior surface 3 is referred to as the first direction. The supporting wall assembly 7 is arranged along the first direction and fixedly connected to the interior surface 3. The supporting wall assembly 7 is used to form an interior space with the interior surface 3.
[0044] Specifically, the wall structure 1 also includes a supporting wall assembly 7, which is set along a first direction perpendicular to the vertical direction and fixedly connected to the interior surface 3 to form an interior space with the interior surface 3. The addition of the supporting wall assembly 7 not only enhances the load-bearing capacity of the curtain wall, but also provides the possibility for the division of the interior space, so that the curtain wall can achieve green energy saving while also having better practicality and functionality.
[0045] In one specific embodiment, the support wall group 7 includes a first support wall 8 and a second support wall 9 respectively arranged along the first direction;
[0046] Viewed horizontally, the first supporting wall 8 is located above the second supporting wall 9, and the first supporting wall 8 is fixed to the interior surface 3 to form a ceiling. The second supporting wall 9 is spaced apart from the first supporting wall 8 and fixed to the interior surface 3 to form a floor.
[0047] Specifically, the support wall assembly 7 includes a first support wall 8 and a second support wall 9 respectively arranged along the first direction. The first support wall 8 is located above the second support wall 9 to form a ceiling, and the second support wall 9 is spaced apart from the first support wall 8 to form a floor. This layered support structure not only optimizes the interior space layout and improves space utilization, but also enhances the overall stability and safety of the curtain wall through the synergistic effect of the first support wall 8 and the second support wall 9.
[0048] In one specific embodiment, the LED board group 5 includes a first lamp board 10 and a second lamp board 11;
[0049] Viewed horizontally, the first light panel 10 is located on the end face of the ceiling facing the floor, and the second light panel 11 is located on the end face of the floor facing the ceiling.
[0050] Specifically, the LED panel group 5 includes a first lamp panel 10 and a second lamp panel 11, which are respectively located on the opposite end faces of the ceiling and the floor. This design achieves all-round, multi-angle lighting effects, which not only improves the uniformity and comfort of indoor light, but also enhances the indoor lighting intensity and energy-saving effect through the complementary lighting of the upper and lower lamp panels.
[0051] In one specific embodiment, the first light panel 10 includes a connecting structure 12, one end of which is fixedly connected to the first light panel 10, and the other end is fixed to the indoor surface 3.
[0052] Specifically, the first light panel 10 includes a connecting structure 12, one end of which is fixedly connected to the first light panel 10 and the other end is fixed to the interior surface 3. This design not only ensures the stability and safety of the first light panel 10, but also enables flexible installation and adjustment of the first light panel 10 on the ceiling through the adjustment function of the connecting structure 12, thereby improving the flexibility and adaptability of the curtain wall.
[0053] In one specific embodiment, the end face of the second lamp panel 11 facing the first lamp panel 10 is covered with a glass layer, which is used to protect the second lamp panel 11.
[0054] Specifically, the end face of the second lamp panel 11 facing the first lamp panel 10 is covered with a glass layer to protect the second lamp panel 11 from external factors such as dust and moisture. At the same time, the transparency of the glass layer ensures the normal transmission of light and the lighting effect, achieving a perfect combination of aesthetics and practicality.
[0055] In one specific embodiment, the wall structure 1 further includes a fastener 14, which is used to fix the supporting wall assembly 7.
[0056] Specifically, the wall structure 1 also includes fasteners 14. The fasteners 14 ensure a tight connection and overall stability between the various components of the curtain wall, thereby improving the safety and service life of the curtain wall.
[0057] In one specific embodiment, the solar panel 4 is covered with a waterproof layer.
[0058] Specifically, the solar panel 4 is covered with a waterproof layer. This design effectively prevents rainwater, snow water and other moisture from eroding and damaging the solar panel 4, ensuring the normal operation and service life of the solar panel 4. At the same time, the waterproof layer also improves the waterproof performance and durability of the curtain wall.
[0059] In one specific embodiment, the connecting structure 12 is made of stainless steel.
[0060] Specifically, the connecting structure 12 is made of stainless steel. This material selection not only ensures the strength and stability of the connecting structure 12, but also improves its service life and durability through the corrosion resistance and oxidation resistance of stainless steel, providing a strong guarantee for the long-term stable operation of the curtain wall.
[0061] The above description is merely an embodiment of this application. It should be noted that those skilled in the art can make improvements without departing from the inventive concept of this application, but these improvements all fall within the protection scope of this application.
Claims
1. A green energy saving curtain wall, characterized in that, The application relates to a wall structure, which is arranged along a vertical direction and has an outdoor facade and an indoor face away from the outdoor facade, and a solar panel is arranged on the outdoor facade; an LED panel group is arranged perpendicularly to the indoor face and is electrically connected with the solar panel; the LED panel group is used as an indoor auxiliary light source, and when the solar panel completes energy storage, the solar panel can drive the LED panel group to realize indoor auxiliary lighting. The wall structure is provided with a glass groove which penetrates through the wall structure along the horizontal direction, and the glass groove is used for placing glass. The glass groove is arranged adjacent to the solar panel along the horizontal direction. The wall structure further comprises a support wall group, a direction perpendicular to the vertical direction and towards the indoor face is defined as a first direction, the support wall group is arranged along the first direction and is fixedly connected with the indoor face, and the support wall group is used for forming an indoor space with the indoor face.
2. The green energy saving curtain wall according to claim 1, characterized in that, The support wall group comprises a first support wall and a second support wall which are arranged along the first direction respectively. The first support wall is arranged on the upper end of the second support wall along the horizontal direction, and the first support wall is fixed to the indoor face to form a ceiling, and the second support wall is arranged in a spaced mode with the first support wall and is fixed to the indoor face to form a floor.
3. The green energy saving curtain wall according to claim 1, characterized in that, The LED panel group comprises a first lamp panel and a second lamp panel.
4. The green energy saving curtain wall according to claim 3, characterized in that, The first lamp panel is arranged on the end face of the ceiling towards the floor along the horizontal direction, and the second lamp panel is arranged on the end face of the floor towards the ceiling. The first lamp panel comprises a connecting structure, one end of the connecting structure is fixedly connected with the first lamp panel, and the other end is fixed to the indoor face.
5. The green energy saving curtain wall according to claim 4, characterized in that, The end face of the second lamp panel towards the first lamp panel is covered with a glass layer, and the glass layer is used for protecting the second lamp panel. The wall structure further comprises a fixing member which is used for fixing the support wall group.
6. The green energy saving curtain wall according to claim 5, characterized in that, The solar panel is covered with a waterproof layer.
7. The green energy saving curtain wall according to claim 5, characterized in that, The connecting structure is made of stainless steel.
8. The green energy saving curtain wall according to claim 4, characterized in that, 9. The green energy saving curtain wall of claim 1, wherein, 10. The green energy saving curtain wall of claim 6, wherein,