Modular photovoltaic energy cabin for multi-scene application
Through the modular design and adjustable photovoltaic energy hut, the existing devices cannot be adjusted, self-powered and stable installation are achieved, and lighting efficiency and installation efficiency are improved.
Patent Information
- Application Number
- CN202510448067.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-10
- Publication Date
- 2025-08-12
AI Technical Summary
The existing photovoltaic energy hut installations cannot be adjusted according to the actual use environment requirements, which reduces environmental adaptability.
The photovoltaic energy cabin design adopts a modular multi-scenario application, including full-color photovoltaic functional materials and adjustable photovoltaic module structure, and the self-powering and stable installation of photovoltaic modules is achieved through support columns, inclined brackets and lock-retaining threads.
It improves the support stability and lighting efficiency of photovoltaic modules, reduces dependence on external cables, and simplifies the installation process.
Smart Images

Figure CN120465737A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of energy cabins, and in particular to a modular photovoltaic energy cabin for multi-scenario applications. Background Art
[0002] With the growing global demand for renewable energy, solar photovoltaic technology, as a clean and sustainable energy solution, has become a key technology in the energy structure transformation of many countries and regions. In this context, the design and performance of full-color optoelectronic functional materials not only directly affect energy conversion efficiency but also play a significant role in improving architectural aesthetics and the urban environment. In particular, full-color optoelectronic functional materials, with their vibrant colors and flexible designs, are increasingly favored by consumers in areas such as engineering lighting and landmark architectural displays, becoming a major highlight of modern urban architecture.
[0003] A Chinese patent with the announcement number CN115182623B discloses a smart cabin for new energy power marketing, comprising an operating machine and a housing. The operating machine includes a touch screen, a camera, a speaker, a wireless communication device, and a microphone. A vertically extending partition is fixedly connected to the housing. The partition divides the space within the housing into a first chamber and a second chamber. The operating machine is arranged in the first chamber. A door opening is provided on the side of the first chamber away from the second chamber. A battery is provided in the second chamber. The battery is connected to the operating machine. A first skylight is provided on the upper side of the housing. The first skylight is connected to the battery. The first skylight is provided above the first chamber. A first base fixedly connected to the housing is provided on the lower side of the first skylight. The first base is fixedly connected to the first skylight via a column. The first skylight gradually tilts upward from the front to the back of the cabin. The first skylight of the present invention is used to generate electricity for the battery. When installing the cabin, there is no need for underground line construction.
[0004] However, the above disclosed solutions have the following shortcomings: the above device is installed in a chamber structure, and cannot be adjusted according to the actual use environment requirements during actual use, thereby reducing the adaptability to the environment. Summary of the Invention
[0005] The purpose of this section is to summarize some aspects of the embodiments of the present invention and briefly introduce some preferred embodiments. Some simplifications or omissions may be made in this section and in the abstract and title of the present invention to avoid obscuring the purpose of this section, the abstract and the title of the invention, and such simplifications or omissions should not be used to limit the scope of the present invention.
[0006] The purpose of the present invention is to address the technical problems existing in the background technology. The present invention proposes a modular photovoltaic energy cabin with multi-scenario applications. Through this device, the present invention can effectively improve the utilization rate and use efficiency of full-color photoelectric functional materials. By using full-color photoelectric functional materials, the lighting efficiency and use stability of the device can be improved, thereby improving the lighting efficiency per unit area in the photovoltaic collection of the device.
[0007] The present invention proposes a modular photovoltaic energy cabin for multi-scenario applications, including a cabin and a full-color photovoltaic functional material connected to the top thereof, and the cabin is rotatably connected to a revolving door. The cabin is characterized in that the bottom of the cabin is connected to a base, the top of the base is connected to a seat, the top of the cabin is connected to a photovoltaic module, and the inner wall of the cabin is connected to an installation component, the photovoltaic module includes full-color photovoltaic functional materials, and the surface of the full-color photovoltaic functional materials uses full-color photovoltaic functional materials.
[0008] By adopting the above technical solution, the present solution can achieve the effect of self-powering of the device through the photovoltaic module structure, thereby reducing the dependence of the device on external cables.
[0009] Preferably, the photovoltaic assembly includes a mounting docking piece connected to the top of the roof, the top of the mounting docking piece is connected to a mounting support base, the top of the mounting support base is connected to a support column, the outer arc surface of the support column is connected to a control box, the control box is rotatably connected to a cover plate, the top of the support column is connected to an anemometer, and the top of the support column is connected to a remote control antenna.
[0010] By adopting the above technical solution, the present solution can improve the supporting stability of the photovoltaic module through the support column, and the structure of the anemometer can facilitate the collection of environmental data by the present device.
[0011] Preferably, the cover plate is connected to a display screen, the cover plate is connected to several control buttons, the top of the support column is provided with several equally spaced mounting grooves, the mounting grooves are rotatably connected to a rotating connector, the other end of the rotating connector is connected to a support rod, the top of the support rod is connected to a support member, and the top of the support member is connected to an inclined bracket.
[0012] By adopting the above technical solution, this solution can achieve the tilt adjustment effect of the full-color optoelectronic functional material through the structure of the tilt bracket and the tilt connector.
[0013] Preferably, the tilt bracket is rotatably connected to a tilt connector, the tilt connector is connected to a full-color optoelectronic functional material, and a locking thread is passed through the side of the tilt bracket, and the locking thread is threadedly connected to the tilt connector.
[0014] By adopting the above technical solution, this solution can improve the fixing effect of the tilt angle of the full-color optoelectronic functional material through the locking screw structure.
[0015] Preferably, the mounting component includes a mounting base connected to the cabin, a docking groove is provided at the center of the mounting base, a limiting groove is provided on the inner arc side of the docking groove, and an unlocking hole is provided on the mounting base, and the bottom of the unlocking hole is connected with the end of the limiting groove.
[0016] By adopting the above technical solution, this solution can achieve the rotational docking effect of the docking parts through the combination of the mounting base and the limiting groove, and the rotational docking method can facilitate the rapid docking of the device.
[0017] Preferably, the docking groove is slidably connected to a docking piece, a limiting protrusion is provided on the outer arc surface of the docking piece, an elastic conductive limiting piece is provided on the side surface of the limiting protrusion, and the elastic conductive limiting piece contacts the inner wall of the unlocking hole.
[0018] By adopting the above-mentioned technical solution, this solution can achieve the effect of rotation limitation through the combination of the docking piece and the limiting protrusion. At the same time, the structure of the elastic conductive limiting piece can automatically shrink during the rotation process and automatically bounce up after rotating to the end unlocking hole position, thereby achieving the automatic locking effect of the device.
[0019] Preferably, a rotatable docking piece is connected to a side of the docking piece away from the docking groove, the rotatable docking piece is rotatably connected to a module component, and the mounting bases are distributed on the inner wall of the cabin at equal intervals.
[0020] By adopting the above technical solution, the present solution can facilitate adjustment of the tilt angle of the module component by rotating the docking piece, thereby preventing the orientation of the module component from being restricted by the rotation of the docking piece.
[0021] Preferably, a conductive contact is provided on the inner arc surface of the unlocking hole, the conductive contact is in contact with the elastic conduction limiter, a power supply cable is provided inside the mounting base, the power supply cable is electrically connected to the conductive contact, and the other end of the power supply cable is arranged inside the cabin.
[0022] By adopting the above technical solution, this solution can automatically form a stable power supply connection after the docking parts are stably docked through the combination of the conductive contacts and the elastic conduction limiter.
[0023] In summary, the present invention has at least one of the following beneficial effects:
[0024] This device can effectively improve the installation stability and efficiency of the energy hut. Compared with traditional devices, this device can achieve self-generating effect through the structure of photovoltaic components on the top, thereby avoiding the need for external cables for power supply, thereby reducing the difficulty of installation of the device. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.
[0026] Figure 1 This is a front view of an embodiment of a modular photovoltaic energy cabin for multi-scenario applications according to the present invention;
[0027] Figure 2 Schematic diagram of the structure of the full-color optoelectronic functional material in an embodiment of the present invention;
[0028] Figure 3 This is a structural diagram of a cabin in an embodiment of the present invention;
[0029] Figure 4 Schematic diagram of the support column structure in an embodiment of the present invention;
[0030] Figure 5 Schematic diagram of the structure of the anemometer in an embodiment of the present invention;
[0031] Figure 6 for Figure 2 A magnified view of the structure at center A;
[0032] Figure 7 Schematic diagram of the structure of the docking piece in an embodiment of the present invention;
[0033] : 1. base; 2. full-color optoelectronic function; full-color optoelectronic functional material; 3. revolving door; 4. seat; 5. cabin; 6. photovoltaic module; 601. installation support base; 602. installation docking part; 603. support column; 604. control box; 605. cover plate; 606. display screen; 607. control button; 608. installation groove; 609. rotating connector; 610. support rod; 611. support member; 612. tilt bracket; 613. tilt connector; 614. locking thread; 615. full-color optoelectronic functional material; 616. remote control antenna; 617. anemometer; 7. installation component; 701. installation base; 702. docking groove; 703. limiting groove; 704. unlocking hole; 705. docking member; 706. limiting protrusion; 707. elastic conductive limiting member; 708. rotating docking member; 709. module component. DETAILED DESCRIPTION
[0034] The following is combined with Figure 1-7 The present invention is described in further detail.
[0035] Example 1
[0036] like Figure 1-Figure 7 As shown, in order to solve the existing problems in this embodiment, the present invention discloses a modular photovoltaic energy cabin for multi-scenario applications, including a cabin 5 and a full-color photovoltaic functional material 2 connected to the top thereof, and the cabin 5 is rotatably connected to a revolving door 3. It is characterized in that the bottom of the cabin 5 is connected to a base 1, the top of the base 1 is connected to a seat 4, the top of the cabin 5 is connected to a photovoltaic component 6, the inner wall of the cabin 5 is connected to an installation component 7, the photovoltaic component 6 includes a full-color photovoltaic functional material 615, and the surface of the full-color photovoltaic functional material 615 uses a full-color photovoltaic functional material.
[0037] The photovoltaic assembly 6 includes a mounting docking piece 602 connected to the top of the roof 4, the top of the mounting docking piece 602 is connected to a mounting support base 601, the top of the mounting support base 601 is connected to a support column 603, the outer arc surface of the support column 603 is connected to a control box 604, the control box 604 is rotatably connected to a cover plate 605, the top of the support column 603 is connected to an anemometer 617, and the top of the support column 603 is connected to a remote control antenna 616.
[0038] The cover plate 605 is connected to a display screen 606, and the cover plate 605 is connected to several control buttons 607. The top of the support column 603 is provided with several equally spaced mounting grooves 608, and the mounting grooves 608 are rotatably connected to a rotating connector 609. The other end of the rotating connector 609 is connected to a support rod 610, and the top of the support rod 610 is connected to a support member 611, and the top of the support member 611 is connected to an inclined bracket 612.
[0039] The tilt bracket 612 is rotatably connected to a tilt connector 613 , the tilt connector 613 is connected to a full-color optoelectronic functional material 615 , and a locking screw 614 is passed through the side of the tilt bracket 612 , and the locking screw 614 is threadedly connected to the tilt connector 613 .
[0040] The mounting component 7 includes a mounting base 701 connected to the cabin 5, a docking groove 702 is provided at the center of the mounting base 701, a limiting groove 703 is provided on the inner arc side of the docking groove 702, and an unlocking hole 704 is provided on the mounting base 701, and the bottom of the unlocking hole 704 is connected with the end of the limiting groove 703.
[0041] The specific working principle is: the structure of the mounting component 7 can realize the modular installation and docking effect of the device, so that different module components 709 can be switched according to the actual use requirements of the device to realize different use functions of the device. In actual use, by inserting the docking component 705 into the docking groove 702 and rotating it, the limiting protrusion 706 can rotate inside the limiting groove 703. The L-shaped limiting groove 703 can play a locking effect on the docking component 705 during the rotation process. At this time, when the docking component 705 rotates to the end of the limiting groove 703, the elastic conductive limiting component 707 rotates to the unlocking hole 704 position and automatically pops up, thereby realizing the effect of automatic rotation locking. After the elastic conductive limiting component 707 pops up, the elastic conductive limiting component 707 contacts the conductive contact inside the unlocking hole 704 to form a power supply path. When it is necessary to unlock the docking component 705, the elastic conductive limiting component 707 is pressed through the unlocking hole 704 to achieve the unlocking effect of the docking component 705.
[0042] Example 2
[0043] like Figure 1-Figure 7 As shown, in order to solve the existing problems in this embodiment, based on the same concept as the above-mentioned embodiment 1, this modular multi-scenario photovoltaic energy cabin also includes: the docking groove 702 is slidably connected to a docking piece 705, and the outer arc surface of the docking piece 705 is provided with a limiting protrusion 706, and the side of the limiting protrusion 706 is provided with an elastic conductive limiting piece 707, and the elastic conductive limiting piece 707 is in contact with the inner wall of the unlocking hole 704.
[0044] The docking member 705 is connected to a rotatable docking member 708 on one side away from the docking groove 702 , and the rotatable docking member 708 is rotatably connected to a module component 709 . The mounting bases 701 are evenly spaced on the inner wall of the cabin 5 .
[0045] A conductive contact is provided on the inner arc surface of the unlocking hole 704, and the conductive contact is in contact with the elastic conduction limiter 707. A power supply cable is provided inside the mounting base 701, and the power supply cable is electrically connected to the conductive contact. The other end of the power supply cable is arranged inside the cabin 5.
[0046] The specific working principle is: this device can effectively improve the stability of the use of the energy hut. Compared with traditional devices, this device adopts self-powered power supply, which can avoid the use of external power supply cables, thereby improving the installation efficiency of the device. Through the elastic conductive limiter 707 and the conductive contact combination on the inner arc surface of the unlocking hole 704, a stable power supply connection can be established after the docking connection of the docking member 705 is stable, thereby reducing the difficulty of the installation combination of the device and avoiding additional cable layout.
[0047] In the current context of technological development, printing technology is experiencing unprecedented advancements, particularly in the field of full-color optoelectronic functional materials, where the demand for high-precision and high-efficiency printing is growing. Full-color optoelectronic functional material printing not only requires printing equipment capable of handling materials of various sizes and types, but also requires that the materials remain stable during the printing process to ensure both quality and efficiency.
[0048] Full-color optoelectronic functional materials are colored and can be customized to produce color images according to user needs.
[0049] Full-color optoelectronic functional materials are composed of photovoltaic modules and a composite colored optoelectronic material coating on their surface. This allows traditional photovoltaic modules to have color and pattern on their exterior, achieving an external visual effect that blends in with the environment. These full-color optoelectronic functional materials can be customized to meet diverse needs and application scenarios with different colors, patterns, and functions.
[0050] The above are all preferred embodiments of the present invention, and are not intended to limit the scope of protection of the present invention. Therefore, any equivalent changes made based on the structure, shape, and principle of the present invention should be included in the scope of protection of the present invention.
Claims
1. A modular photovoltaic energy cabin for multiple scenarios, comprising a cabin (5) and a top thereof connected with a full-color photovoltaic functional material (615), wherein the cabin (5) is rotatably connected with a rotating door (3), characterized in that: The bottom of the cabin (5) is connected to a base (1), the top of the base (1) is connected to a seat (4), the top of the cabin (5) is connected to a photovoltaic module (6), the inner wall of the cabin (5) is connected to a mounting component (7), the photovoltaic module (6) includes a full-color photoelectric functional material (615), and the full-color photoelectric functional material (615) is composed of the photovoltaic module (6) and a composite photoelectric material coating on its surface. The side walls of the cabin (5) are also provided with full-color photoelectric functional materials.
2. A modular multi-scenario photovoltaic energy cabin according to claim 1, characterized in that: The photovoltaic assembly (6) includes a mounting docking piece (602) connected to the top of the cabin (5); the top of the mounting docking piece (602) is connected to a mounting support base (601); the top of the mounting support base (601) is connected to a support column (603); the outer arc surface of the support column (603) is connected to a control box (604); the control box (604) is rotatably connected to a cover plate (605); the top of the support column (603) is connected to an anemometer (617); and the top of the support column (603) is connected to a remote control antenna (616).
3. The modular multi-scenario photovoltaic energy cabin according to claim 2 is characterized in that: The cover plate (605) is connected to a display screen (606), and the cover plate (605) is connected to a plurality of control buttons (607). The top of the support column (603) is provided with a plurality of equally spaced mounting grooves (608), the mounting grooves (608) are rotatably connected to a rotating connector (609), the other end of the rotating connector (609) is connected to a support rod (610), the top of the support rod (610) is connected to a support member (611), and the top of the support member (611) is connected to an inclined bracket (612).
4. The modular multi-scenario photovoltaic energy cabin according to claim 3 is characterized in that: The tilting bracket (612) is rotatably connected to a tilting connection piece (613), the tilting connection piece (613) is connected to a full-color photoelectric functional material (615), and a locking screw piece (614) is passed through the side of the tilting bracket (612), and the locking screw piece (614) is threadedly connected to the tilting connection piece (613).
5. The modular multi-scenario photovoltaic energy cabin according to claim 4 is characterized in that: The mounting component (7) includes a mounting base (701) connected to the cabin (5), a docking groove (702) is provided at the center of the mounting base (701), a limiting groove (703) is provided on the inner arc side of the docking groove (702), and an unlocking hole (704) is provided on the mounting base (701), and the bottom of the unlocking hole (704) is connected to the end of the limiting groove (703).
6. The modular multi-scenario photovoltaic energy cabin according to claim 5, characterized in that: The docking groove (702) is slidably connected to a docking piece (705), an outer arc surface of the docking piece (705) is provided with a limiting protrusion (706), a side surface of the limiting protrusion (706) is provided with an elastic conductive limiting piece (707), and the elastic conductive limiting piece (707) contacts the inner wall of the unlocking hole (704).
7. The modular multi-scenario photovoltaic energy cabin according to claim 6, characterized in that: The docking member (705) is connected to a rotating docking member (708) on a side away from the docking groove (702), and the rotating docking member (708) is rotatably connected to a module component (709). The mounting bases (701) are distributed at equal intervals on the inner wall of the cabin (5).
8. The modular multi-scenario photovoltaic energy cabin according to claim 7, characterized in that: A conductive contact is provided on the inner arc surface of the unlocking hole (704), and the conductive contact is in contact with the elastic conduction limiter (707). A power supply cable is provided inside the mounting base (701), and the power supply cable is electrically connected to the conductive contact. The other end of the power supply cable is arranged inside the cabin (5).
Citation Information
Patent Citations
A smart marketing cabin for new energy power
CN115182623B