Multi-angle adjustable solar energy storage lamp panel

The multi-angle adjustable bracket and protective mounting structure solve the problem of non-adjustable angle of solar storage lamp panels, realize angle adjustment and lamp panel protection, and improve practicality and service life.

CN223484026UActive Publication Date: 2025-10-28SHANDONG BLUE CARBON ENERGY STORAGE TECH CO LTD
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Patent Information

Application Number
CN202421938245.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-12
Publication Date
2025-10-28
Estimated Expiration
2034-08-12

AI Technical Summary

Technical Problem

Since the existing solar energy storage lamp panel has a fixed connection between the bracket and the solar energy storage lamp panel, the angle cannot be adjusted, resulting in reduced practicality.

Method used

The multi-angle adjustable bracket, the lower slide seat, the upper slide seat, the first mounting hole, the second mounting hole and the fixing nut are used to achieve the angle adjustment of the solar storage lamp panel, and the high-transmittance PC lens is installed through the cooperation of the first threaded hole and the second threaded hole to protect the series-parallel composite lamp panel.

Benefits of technology

The angle of the solar energy storage lamp panel can be adjusted, thereby improving its practicality, and the lamp panel can be protected from damage through the protective structure, thereby extending its service life.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a multi-angle adjustable solar energy storage lamp panel which comprises a zinc-aluminum-magnesium alloy upper shell, a solar panel is arranged below the zinc-aluminum-magnesium alloy upper shell, a lithium iron phosphate battery is arranged below the solar panel, a zinc-aluminum-magnesium alloy lower shell is arranged below the lithium iron phosphate battery, and the zinc-aluminum-magnesium alloy lower shell is arranged below the lithium iron phosphate battery. A series-parallel connection composite lamp panel is arranged at the bottom of the zinc-aluminum-magnesium alloy lower shell. The utility model relates to the technical field of solar energy storage lamp panels, and according to the multi-angle adjustable solar energy storage lamp panel, the multi-angle adjustable bracket, the lower sliding seat, the upper sliding seat, the first mounting hole, the second mounting hole and the fixing nut are matched, so that the angle of the solar energy storage lamp panel is adjusted; the solar energy storage lamp panel solves the problems that when an existing solar energy storage lamp panel is used, due to the fact that a support is fixedly connected with the solar energy storage lamp panel, the angle of the solar energy storage lamp panel cannot be adjusted, and the practicability of the existing solar energy storage lamp panel is reduced.
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Description

Technical Field

[0001] This utility model relates to the field of solar energy storage lamp panel technology, specifically a multi-angle adjustable solar energy storage lamp panel. Background Technology

[0002] A solar-powered light panel is an electric light that converts solar energy into electricity. During the day, even on cloudy days, this solar generator (solar panel) can collect and store solar energy.

[0003] Existing solar-powered energy storage lamp panels convert light energy into electrical energy through solar panels, store the electrical energy in the battery, and finally transfer the electrical energy to the lamp panel to make the lamp panel emit light;

[0004] However, existing solar-powered light panels are fixed in place by brackets for illumination. Since the brackets and solar-powered light panels are fixedly connected, the angle of the solar-powered light panels cannot be adjusted, thus reducing the practicality of existing solar-powered light panels. Utility Model Content

[0005] To address the shortcomings of existing technologies, this utility model provides a multi-angle adjustable solar energy storage lamp panel, which solves the problem that existing solar energy storage lamp panels, due to the fixed connection between the bracket and the solar energy storage lamp panel, cannot adjust the angle of the solar energy storage lamp panel, thus reducing the practicality of existing solar energy storage lamp panels.

[0006] To achieve the above objectives, this utility model provides the following technical solution: a multi-angle adjustable solar energy storage lamp panel, comprising a zinc-aluminum-magnesium alloy upper shell, a solar panel disposed below the upper shell, a lithium iron phosphate battery mounted below the solar panel, a zinc-aluminum-magnesium alloy lower shell disposed below the lithium iron phosphate battery, a series-parallel composite lamp panel disposed at the bottom of the lower shell, and an adjustment mechanism disposed at the bottom of the lower shell. The adjustment mechanism includes a multi-angle adjustable bracket, a sliding base, an upper sliding base, a first mounting hole, a second mounting hole, and a fixing nut. The multi-angle adjustable bracket is disposed at the bottom of the lower shell, a sliding base is fixedly connected to the top of the bracket, an upper sliding base is slidably engaged with the surface of the sliding base, the top of the upper sliding base is fixedly connected to the bottom of the lower shell, first mounting holes are provided on both sides of the sliding base, second mounting holes are provided at both ends of the upper sliding base, and a fixing nut is fixedly connected to the outer wall of the multi-angle adjustable bracket.

[0007] Preferably, the inner wall of the zinc-aluminum-magnesium alloy lower shell is provided with a first fixing hole, and the inner wall of the zinc-aluminum-magnesium alloy upper shell is provided with a second fixing hole.

[0008] Preferably, the inner wall of the zinc-aluminum-magnesium alloy lower shell is provided with a placement groove, and the outer wall of the series-parallel composite lamp panel is attached to the inner wall of the placement groove.

[0009] Preferably, a high-transmittance PC lens is provided at the bottom of the series-parallel composite lamp panel.

[0010] Preferably, the inner wall of the zinc-aluminum-magnesium alloy lower shell is provided with a second threaded hole, and the inner wall of the high-transmittance PC lens is provided with a first threaded hole. Screws are threadedly connected to the inner walls of the first threaded hole and the second threaded hole, respectively.

[0011] Beneficial effects

[0012] This utility model provides a multi-angle adjustable solar energy storage lamp panel. It has the following advantages: This multi-angle adjustable solar energy storage lamp panel, through the cooperation of a multi-angle adjustable bracket, a sliding base, an upper sliding base, a first mounting hole, a second mounting hole, and a fixing nut, achieves angle adjustment of the solar energy storage lamp panel. This solves the problem that existing solar energy storage lamp panels, due to their fixed connection to the bracket, cannot adjust the angle of the solar energy storage lamp panel, thus reducing its practicality.

[0013] The high-transmittance PC lens is installed onto the zinc-aluminum-magnesium alloy lower shell through the cooperation of the first threaded hole, the second threaded hole and the screw, which protects the series-parallel composite lamp panel. This solves the problem that if the series-parallel composite lamp panel is damaged by external impact during the use of the solar energy storage lamp panel, the panel may be damaged and the service life of the solar energy storage lamp panel may be reduced. Attached Figure Description

[0014] Figure 1 It is a structural diagram of the utility model;

[0015] Figure 2 for Figure 1 A structural diagram of the multi-angle adjustable bracket, the lower slide, and the upper slide;

[0016] Figure 3 for Figure 1 A schematic diagram of the structure of the series-parallel composite lamp panel, the zinc-aluminum-magnesium alloy lower shell, and the high-transmittance PC lens;

[0017] Figure 4 for Figure 1 A schematic diagram of the structure of the zinc-aluminum-magnesium alloy upper shell, solar panel, and zinc-aluminum-magnesium alloy lower shell.

[0018] In the diagram: 1. Zinc-aluminum-magnesium alloy upper shell; 2. Solar panel; 3. Zinc-aluminum-magnesium alloy lower shell; 4. Series-parallel composite lamp panel; 5. High-transmittance PC lens; 6. Lithium iron phosphate battery; 7. Multi-angle adjustable bracket; 8. Sliding base; 9. Upper sliding base; 10. Screw; 11. First mounting hole; 12. Second mounting hole; 13. Fixing nut; 14. First fixing hole; 15. Second fixing hole; 16. Placement slot; 17. First threaded hole; 18. Second threaded hole. Detailed Implementation

[0019] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0020] The existing solar energy storage lamp panels are fixedly connected to the bracket, making it impossible to adjust the angle of the solar energy storage lamp panels, thus reducing their practicality.

[0021] In view of this, the present invention provides a multi-angle adjustable solar energy storage lamp panel. Through the cooperation between the multi-angle adjustable bracket, the sliding base, the upper sliding base, the first mounting hole, the second mounting hole, and the fixing nut, the angle of the solar energy storage lamp panel can be adjusted. This solves the problem that in the use of existing solar energy storage lamp panels, the angle of the solar energy storage lamp panel cannot be adjusted because the bracket and the solar energy storage lamp panel are fixedly connected, thus reducing the practicality of existing solar energy storage lamp panels.

[0022] Those skilled in the art can connect the components in this case sequentially. The specific connection and operation sequence should refer to the working principle below. The detailed connection methods are well-known technologies in the field. The working principle and process are mainly introduced below.

[0023] Example 1, by Figure 1-4As can be seen, the multi-angle adjustable solar energy storage panel in this case includes a zinc-aluminum-magnesium alloy upper shell 1, a solar panel 2 disposed below the zinc-aluminum-magnesium alloy upper shell 1, the model of the solar panel 2 being selected according to actual needs, as long as it meets the working requirements, and a lithium iron phosphate battery 6 installed below the solar panel 2. The solar panel 2 is installed onto the lithium iron phosphate battery 6 and electrically connected to the lithium iron phosphate battery 6. Finally, the zinc-aluminum-magnesium alloy upper shell 1 is installed onto the zinc-aluminum-magnesium alloy lower shell 3, the model of the lithium iron phosphate battery 6 being selected according to actual needs, as long as it meets the working requirements, the lithium iron phosphate battery 6 is installed. Below the lithium iron phosphate battery 6 is a zinc-aluminum-magnesium alloy lower shell 3. The lithium iron phosphate battery 6 is installed inside the zinc-aluminum-magnesium alloy lower shell 3. A series-parallel composite lamp panel 4 is installed at the bottom of the zinc-aluminum-magnesium alloy lower shell 3. The series-parallel composite lamp panel 4 is electrically connected to the lithium iron phosphate battery 6. At this time, solar energy converts sunlight into electrical energy and stores the electrical energy inside the lithium iron phosphate battery 6. When lighting is needed, the lithium iron phosphate battery 6 transfers electrical energy to the series-parallel composite lamp panel 4. The solar panel 4 emits light for illumination. The bottom of the zinc-aluminum-magnesium alloy lower shell 3 is equipped with an adjustment mechanism, which includes a multi-angle adjustable bracket 7, a sliding base 8, an upper sliding base 9, a first mounting hole 11, a second mounting hole 12, and a fixing nut 13. The multi-angle adjustable bracket 7 is located at the bottom of the zinc-aluminum-magnesium alloy lower shell 3. The top of the multi-angle adjustable bracket 7 is fixedly connected to the sliding base 8. The surface of the sliding base 8 is slidably engaged with the upper sliding base 9. The upper sliding base 9 slides on the sliding base 8 to adjust the angle of the solar panel. The top of the upper sliding base 9 is fixedly connected to the zinc-aluminum-magnesium alloy lower shell 3. At the bottom of the alloy lower shell 3, the operator uses external tools to rotate the bolts on the first mounting hole 11 and the second mounting hole 12, rotating the bolts out of the second mounting hole 12. Then the operator moves the zinc-aluminum-magnesium alloy lower shell 3, which drives the upper slide 9 to rotate. The lower slide 8 has first mounting holes 11 on both sides and second mounting holes 12 on both ends of the upper slide 9. The outer wall of the multi-angle adjustable bracket 7 is fixedly connected with a fixing nut 13, which fixes the multi-angle adjustable bracket 7 to the external equipment.

[0024] In the specific implementation process, it is worth noting that the model of solar panel 2 should be selected according to actual needs, as long as it meets the operational requirements. The model of lithium iron phosphate battery 6 should also be selected according to actual needs, as long as it meets the operational requirements. The lithium iron phosphate battery 6 is installed inside the zinc-aluminum-magnesium alloy lower shell 3. The solar panel 2 is then installed onto the lithium iron phosphate battery 6 and electrically connected to it. Finally, the zinc-aluminum-magnesium alloy upper shell 1 is installed onto the zinc-aluminum-magnesium alloy lower shell 3. The series-parallel composite lamp panel 4 is installed at the bottom of the zinc-aluminum-magnesium alloy lower shell 3 and electrically connected to the lithium iron phosphate battery 6. At this point, the solar energy converts sunlight into electrical energy, which is stored inside the lithium iron phosphate battery 6. When lighting is needed, the lithium iron phosphate battery 6 transfers electrical energy to the series-parallel composite lamp panel 4, which then emits light for illumination. The multi-angle adjustable bracket 7 is then fixed to the external equipment using the fixing nut 13.

[0025] The operator uses external tools to rotate the bolts on the first mounting hole 11 and the second mounting hole 12, rotating the bolts out of the second mounting hole 12. Then, the operator moves the zinc-aluminum-magnesium alloy lower shell 3, which drives the upper sliding seat 9 to rotate. The upper sliding seat 9 slides on the lower sliding seat 8 to adjust the angle of the solar energy storage lamp panel. After the angle is adjusted, the operator rotates the bolts in the opposite direction to rotate them back into the second mounting hole 12, fixing the adjusted solar energy storage lamp panel in place, thus achieving the adjustment of the angle of the solar energy storage lamp panel.

[0026] Furthermore, the inner wall of the zinc-aluminum-magnesium alloy lower shell 3 is provided with a first fixing hole 14. The workers can install the zinc-aluminum-magnesium alloy upper shell 1 onto the zinc-aluminum-magnesium alloy lower shell 3 through the first fixing hole 14 and the second fixing hole 15, which facilitates the installation of the zinc-aluminum-magnesium alloy upper shell 1. The inner wall of the zinc-aluminum-magnesium alloy upper shell 1 is provided with a second fixing hole 15.

[0027] In the specific implementation process, it is worth noting that when the staff installs the zinc-aluminum-magnesium alloy upper shell 1 onto the zinc-aluminum-magnesium alloy lower shell 3, the staff installs the zinc-aluminum-magnesium alloy upper shell 1 onto the zinc-aluminum-magnesium alloy lower shell 3 through the first fixing hole 14 and the second fixing hole 15, which facilitates the installation of the zinc-aluminum-magnesium alloy upper shell 1.

[0028] Furthermore, the inner wall of the zinc-aluminum-magnesium alloy lower shell 3 is provided with a placement groove 16, which fixes the series-parallel composite lamp board 4 to the inside of the zinc-aluminum-magnesium alloy lower shell 3. The outer wall of the series-parallel composite lamp board 4 is attached to the inner wall of the placement groove 16, and the staff places the series-parallel composite lamp board 4 inside the placement groove 16.

[0029] In the specific implementation process, it is worth noting that the staff placed the series-parallel composite lamp board 4 inside the placement slot 16 and fixed the series-parallel composite lamp board 4 inside the zinc-aluminum-magnesium alloy lower shell 3.

[0030] Specifically, firstly, the lithium iron phosphate battery 6 is installed inside the zinc-aluminum-magnesium alloy lower shell 3. The solar panel 2 is then installed onto the lithium iron phosphate battery 6 and electrically connected to it. Finally, the worker installs the zinc-aluminum-magnesium alloy upper shell 1 onto the zinc-aluminum-magnesium alloy lower shell 3 through the first fixing hole 14 and the second fixing hole 15 for easy installation. Next, the worker places the series-parallel composite lamp panel 4 inside the placement slot 16 and fixes it inside the zinc-aluminum-magnesium alloy lower shell 3. The series-parallel composite lamp panel 4 is then electrically connected to the lithium iron phosphate battery 6. At this point, the solar energy converts sunlight into electrical energy, which is stored inside the lithium iron phosphate battery 6. When lighting is needed, the lithium iron phosphate battery 6 transfers electrical energy to the series-parallel composite lamp panel 4, which then emits light for illumination. When the angle of the solar-powered lamp panel needs adjustment, the multi-angle adjustable bracket 7 is fixed to the external equipment using the fixing nut 13.

[0031] The operator uses external tools to rotate the bolts on the first mounting hole 11 and the second mounting hole 12, rotating the bolts out of the second mounting hole 12. Then, the operator moves the zinc-aluminum-magnesium alloy lower shell 3, which drives the upper sliding seat 9 to rotate. The upper sliding seat 9 slides on the lower sliding seat 8 to adjust the angle of the solar energy storage lamp panel. After the angle is adjusted, the operator rotates the bolts in the opposite direction to rotate them back into the second mounting hole 12, fixing the adjusted solar energy storage lamp panel in place, thus achieving the adjustment of the angle of the solar energy storage lamp panel.

[0032] Example 2, by Figure 1-3 It can be seen that a high-transmittance PC lens 5 is provided at the bottom of the series-parallel composite lamp panel 4. The high-transmittance PC lens 5 covers the series-parallel composite lamp panel 4 and protects it.

[0033] In the specific implementation process, it is worth noting that the high-transmittance PC lens 5 covers the series-parallel composite lamp panel 4 to protect it and prevent it from being damaged by external impact.

[0034] Furthermore, a second threaded hole 18 is provided on the inner wall of the zinc-aluminum-magnesium alloy lower shell 3, and a first threaded hole 17 is provided on the inner wall of the high-transmittance PC lens 5. The operator places the high-transmittance PC lens 5 at the bottom of the zinc-aluminum-magnesium alloy lower shell 3, aligning the first threaded hole 17 and the second threaded hole 18. Screws 10 are threadedly connected to the inner walls of the first threaded hole 17 and the second threaded hole 18 respectively. The operator rotates the screws 10, rotating them into the first threaded hole 17 and the second threaded hole 18 in sequence to fix the high-transmittance PC lens 5 and install the high-transmittance PC lens 5 onto the zinc-aluminum-magnesium alloy lower shell 3.

[0035] In the specific implementation process, it is worth noting that when installing the high-transmittance PC lens 5, the staff places the high-transmittance PC lens 5 at the bottom of the zinc-aluminum-magnesium alloy lower shell 3, aligns the first threaded hole 17 and the second threaded hole 18, and rotates the screw 10 to rotate the screw 10 into the first threaded hole 17 and the second threaded hole 18 in sequence, thereby fixing the high-transmittance PC lens 5 and installing the high-transmittance PC lens 5 onto the zinc-aluminum-magnesium alloy lower shell 3, thus realizing the installation of the high-transmittance PC lens 5.

[0036] Specifically, when installing the high-transmittance PC lens 5, the operator places the high-transmittance PC lens 5 at the bottom of the zinc-aluminum-magnesium alloy lower shell 3, aligning the first threaded hole 17 and the second threaded hole 18. The operator then rotates the screw 10, sequentially rotating the screw 10 into the first threaded hole 17 and the second threaded hole 18 to fix the high-transmittance PC lens 5 in place. The high-transmittance PC lens 5 is then installed onto the zinc-aluminum-magnesium alloy lower shell 3, thus completing the installation of the high-transmittance PC lens 5. The high-transmittance PC lens 5 covers the series-parallel composite lamp panel 4, protecting it and preventing damage from external impacts.

[0037] It should be noted that, in this document, relational terms such as "first" and "second" are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, the phrase "comprising an element defined as..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.

[0038] In this utility model, unless otherwise explicitly specified and limited, the terms "installation", "setting", "connection", "fixing", "screw connection", etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal connection of two components or the interaction between two components. Unless otherwise explicitly limited, those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0039] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A multi-angle adjustable solar energy storage panel, comprising a zinc-aluminum-magnesium alloy upper shell (1), characterized in that: A solar panel (2) is provided below the zinc-aluminum-magnesium alloy upper shell (1), a lithium iron phosphate battery (6) is installed below the solar panel (2), a zinc-aluminum-magnesium alloy lower shell (3) is provided below the lithium iron phosphate battery (6), a series-parallel composite lamp plate (4) is provided at the bottom of the zinc-aluminum-magnesium alloy lower shell (3), and an adjustment mechanism is provided at the bottom of the zinc-aluminum-magnesium alloy lower shell (3). The adjustment mechanism includes a multi-angle adjustable bracket (7), a lower slide (8), an upper slide (9), a first mounting hole (11), a second mounting hole (12), and a fixing nut (13); The multi-angle adjustable bracket (7) is located at the bottom of the zinc-aluminum-magnesium alloy lower shell (3). A sliding seat (8) is fixedly connected to the top of the multi-angle adjustable bracket (7). An upper sliding seat (9) is slidably engaged on the surface of the sliding seat (8). The top of the upper sliding seat (9) is fixedly connected to the bottom of the zinc-aluminum-magnesium alloy lower shell (3). A first mounting hole (11) is provided on both sides of the sliding seat (8). A second mounting hole (12) is provided at both ends of the upper sliding seat (9). A fixing nut (13) is fixedly connected to the outer wall of the multi-angle adjustable bracket (7).

2. The multi-angle adjustable solar energy storage lamp panel according to claim 1, characterized in that: The lower zinc-aluminum-magnesium alloy shell (3) has a first fixing hole (14) on its inner wall, and the upper zinc-aluminum-magnesium alloy shell (1) has a second fixing hole (15) on its inner wall.

3. The multi-angle adjustable solar energy storage lamp panel according to claim 1, characterized in that: The inner wall of the zinc-aluminum-magnesium alloy lower shell (3) is provided with a placement groove (16), and the outer wall of the series-parallel composite lamp plate (4) is attached to the inner wall of the placement groove (16).

4. The multi-angle adjustable solar energy storage lamp panel according to claim 1, characterized in that: The bottom of the series-parallel composite lamp panel (4) is provided with a high-transmittance PC lens (5).

5. A multi-angle adjustable solar energy storage lamp panel according to claim 4, characterized in that: The inner wall of the zinc-aluminum-magnesium alloy lower shell (3) is provided with a second threaded hole (18), and the inner wall of the high-transmittance PC lens (5) is provided with a first threaded hole (17). The inner walls of the first threaded hole (17) and the inner walls of the second threaded hole (18) are respectively threaded with screws (10).