Integrated solar lamp body structure and yard lamp
By designing a detachable battery connected to the base in the integrated solar garden light, the problem of difficult disassembly at high locations is solved, enabling convenient battery replacement and protection of components.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZHONGSHAN XIUBEN LIGHTING CO LTD
- Filing Date
- 2025-05-29
- Publication Date
- 2026-05-08
AI Technical Summary
When replacing the battery of existing integrated solar garden lights, the lamp housing needs to be disassembled and operated at a height, which is difficult to support stably, making disassembly difficult and easily damaging other components.
Design an integrated solar lamp structure in which the battery is detachably connected to the base, the lamp housing is detachably connected to the base, the base is fixed to other components at the bottom of the garden lamp, and the battery remains fixed during disassembly to avoid being suspended in the air and simplify the disassembly process.
It simplifies the battery replacement process, reduces damage to other components, improves maintenance efficiency, and lowers operational difficulty and time costs.
Smart Images

Figure CN224215222U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of courtyard light production technology, and in particular to an integrated solar lamp body structure and courtyard light. Background Technology
[0002] Courtyard lights are a type of outdoor lighting fixture, mainly used in urban slow lanes, residential areas, parks, and squares. They combine functionality and decoration, providing illumination for pedestrians while also serving a decorative purpose. Some solar-powered courtyard lights utilize solar energy, achieving green energy saving and eliminating the need for cable laying materials and construction time, and are becoming increasingly popular. Solar courtyard lights are divided into split-type and integrated types. Integrated solar courtyard lights integrate the photovoltaic panel, light-emitting components, control components, and battery into a single unit, resulting in a compact structure, but maintenance is relatively difficult. Solar-powered batteries have a limited lifespan and require replacement after a certain number of years. Replacing the battery in existing integrated solar courtyard lights requires first disassembling the lamp housing, and then removing, repairing, or replacing the battery from within the housing. Since the lamp body of a courtyard light is usually installed at a high place, people usually need to use ladders to disassemble the lamp housing. After the lamp housing is disassembled, if the battery is replaced at a high place, the lamp housing is not stable enough to support it, making the removal and installation of the battery difficult and potentially damaging other components inside the lamp housing. If the lamp housing is taken to another platform or the ground to replace the battery, it is time-consuming and laborious. Utility Model Content
[0003] This invention aims to solve at least one of the technical problems existing in the prior art. To this end, this invention proposes an integrated solar lamp body structure that facilitates the disassembly and installation of the battery, thereby improving battery replacement efficiency.
[0004] In a first aspect, the integrated solar lamp body structure according to an embodiment of the present utility model includes:
[0005] An energy storage assembly includes a base and a battery, the battery being detachably connected to the base;
[0006] A light-emitting component is disposed above the energy storage component. The light-emitting component includes a lamp housing and multiple light-emitting modules, with the multiple light-emitting modules mounted on the lamp housing.
[0007] Photovoltaic modules are positioned above the light-emitting modules;
[0008] The lamp housing and the base are detachably connected, and the lamp housing and the base form a lamp cavity, with the battery located inside the lamp cavity.
[0009] The integrated solar lamp body structure according to the embodiments of this utility model has at least the following beneficial effects:
[0010] Because the battery is detachably mounted on the base, it remains fixedly connected even after the lamp housing is separated from the base. Simply remove the battery from the base to detach it from the garden light. Since the base is fixedly connected to other components at the bottom of the garden light, the base remains fixed to these components even after the lamp housing is separated. The battery, however, is connected to the relatively fixed base and is not suspended in mid-air. This allows for easier removal of the battery from the base, avoiding situations where maintenance personnel cannot reliably apply force to disassemble the lamp housing due to a lack of reliable support, the lamp housing may fall due to unstable grip, or other components may be damaged due to insufficient operating precision caused by the lamp housing being suspended in mid-air. After the lamp housing is separated from the base, the lamp cavity structure formed by the lamp housing and base is separated, exposing the battery. Maintenance personnel can easily remove the battery from the base, avoiding the problem of insufficient operating space and difficulty in removing the battery when it is installed inside the lamp housing. Because the lamp housing is separate from the base, it is relatively easy to install a new battery into the base when needed. The integrated structure, with the battery storage component, light-emitting component, and photovoltaic component matched and connected to form a single lamp body, results in a compact structure that is less prone to structural damage even from impacts. Furthermore, it facilitates easy disassembly and maintenance of the battery installed inside the lamp cavity, reducing the risk of accidental damage to other components during maintenance. It also eliminates the need to transfer the entire lamp housing to another platform before removing the battery, simplifying the work for maintenance personnel and improving battery replacement efficiency.
[0011] According to the integrated solar lamp body structure of this utility model embodiment, the base is trumpet-shaped, the lamp shell is also trumpet-shaped, the upper circular edge of the base is matched and connected with the lower circular edge of the lamp shell, and the inner side of the lamp shell and the inner side of the base surround to form a lamp cavity.
[0012] According to the integrated solar lamp body structure of this utility model embodiment, the battery is connected to the top center of the base.
[0013] According to the integrated solar lamp body structure of this utility model embodiment, the base includes multiple reinforcing ribs, which are disposed on the inner side of the base, and the battery is connected to the top of the reinforcing ribs.
[0014] According to the integrated solar lamp body structure of this utility model embodiment, the outer side of the lamp housing is arranged obliquely downward, and the axes of multiple light-emitting modules are perpendicular to the outer side of the lamp housing.
[0015] According to the integrated solar lamp body structure of this utility model embodiment, multiple light-emitting modules are arranged in a ring at intervals.
[0016] According to the integrated solar lamp body structure of this utility model embodiment, the light-emitting component includes a controller and a switch button, both of which are disposed on the lamp housing.
[0017] According to the integrated solar lamp body structure of this utility model embodiment, the controller includes a sensing module, which is disposed on the outer side of the lamp housing.
[0018] According to the integrated solar lamp body structure of this utility model embodiment, the photovoltaic module includes a mounting plate and a photovoltaic panel. The mounting plate is connected to the upper circular edge of the lamp housing, and the photovoltaic panel is disposed on the top surface of the mounting plate.
[0019] Secondly, the courtyard light according to the embodiment of this utility model uses the above-mentioned integrated solar lamp body structure.
[0020] The courtyard light according to the embodiment of this utility model has at least the following beneficial effects:
[0021] During transportation, multiple poles can be separated into shorter poles for easy packaging and transport. During installation, these poles are joined together to form a longer pole, meeting the required installation height for the garden light and achieving the desired lighting effect. Since the battery is detachably mounted on the base, it remains fixed even after the light housing is separated from the base. Simply remove the battery from the base to detach it from the garden light. Because the base is fixedly connected to other components at the bottom of the garden light, the base remains fixed to these components even after the light housing is separated. The battery, connected to the relatively fixed base, is not suspended in mid-air, making it easier to remove. This avoids situations where maintenance personnel cannot reliably apply force to disassemble the light housing due to a lack of reliable support, the light housing may fall due to unstable grip, or other components may be damaged due to low precision caused by the light housing being suspended in mid-air. Once the lamp housing is detached from the base, the lamp cavity structure formed by the lamp housing and base is separated, exposing the battery. Maintenance personnel can easily remove the battery from the base, avoiding the problem of insufficient operating space and difficulty in battery removal caused by the battery being installed inside the lamp housing. The integrated structure, with the energy storage component, light-emitting component, and photovoltaic component matched and connected to form a single lamp body, results in a compact structure that is less prone to structural damage even from impacts. It also facilitates the removal and maintenance of the battery installed inside the lamp cavity, reducing the risk of accidental damage to other components during maintenance. Furthermore, it eliminates the need to transfer the entire lamp housing to another platform before removing the battery, simplifying the work for maintenance personnel and improving battery replacement efficiency.
[0022] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description
[0023] The above and / or additional aspects and advantages of this utility model will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which:
[0024] Figure 1 This is a schematic diagram of the integrated solar lamp body structure according to an embodiment of the present utility model;
[0025] Figure 2 This is an exploded view of the integrated solar lamp body structure according to an embodiment of the present utility model;
[0026] Figure 3 This is an exploded view of the integrated solar lamp body structure from another angle according to an embodiment of the present utility model;
[0027] Figure 4 This is another exploded view of the integrated solar lamp body structure according to an embodiment of the present utility model;
[0028] Figure 5 This is a schematic diagram of the structure of a courtyard lamp according to an embodiment of the present utility model.
[0029] Explanation of reference numerals in the attached figures:
[0030] Energy storage component 100; base 110; reinforcing rib 120; battery 130;
[0031] Light-emitting component 200; lamp housing 210; light-emitting module 220; controller 230; sensing module 240; switch button 250;
[0032] Photovoltaic module 300; mounting plate 310; photovoltaic panel 320;
[0033] Lamp cavity 400;
[0034] Light pole assembly 500; pole body 510. Detailed Implementation
[0035] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model.
[0036] In the description of this utility model, it should be understood that the directional descriptions, such as up, down, front, back, left, right, etc., indicate the directional or positional relationships based on the directional or positional relationships shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0037] In the description of a utility model, "several" means one or more, "multiple" means two or more, "greater than," "less than," and "exceeding" are understood to exclude the stated number, while "above," "below," and "within" are understood to include the stated number. If the terms "first" and "second" are used, they are merely for distinguishing technical features and should not be construed as indicating or implying relative importance, or implicitly specifying the number of indicated technical features or the order of the indicated technical features.
[0038] In the description of this utility model, unless otherwise explicitly defined, terms such as "setting," "installation," and "connection" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this utility model in conjunction with the specific content of the technical solution.
[0039] In existing technologies, the battery, control module, and light-emitting module of an integrated solar garden light are all housed within the lamp housing. This design allows for a more compact structure and reduces structural damage caused by bumps during transportation. The battery within the integrated solar garden light has charging and discharging capabilities; however, each charge and discharge cycle inevitably leads to some wear and tear on the battery. When this wear reaches a certain level, the battery may become damaged or its energy capacity may be significantly reduced, requiring maintenance of the garden light. To improve the battery's weather resistance in outdoor environments, it is typically installed inside the integrated solar garden light's lamp housing. When replacing the battery, the lamp housing must first be separated from other light components to expose the internal structure before the battery can be disassembled or installed. In existing integrated solar garden lights, the battery is installed on the lamp housing. When maintenance personnel use ladders or other tools to climb to a high place and remove the lamp housing, the housing is suspended in mid-air. Moreover, it is difficult for maintenance personnel to find a stable support for the lamp housing at a high position. If the battery is removed from the suspended lamp housing at this time, it will be very difficult and may damage other components. If maintenance personnel bring the lamp housing to the ground, remove the battery, install a new battery, and then climb back up to a high place with the lamp housing, it will take a lot of time and effort, and may also damage the lamp housing or the components inside the lamp housing.
[0040] Reference Figures 1 to 4This utility model embodiment provides an integrated solar lamp structure, including a power storage component 100, a light-emitting component 200, and a photovoltaic component 300. The power storage component 100 includes a base 110 and a battery 130, with the battery 130 detachably connected to the base 110. The light-emitting component 200 is disposed above the power storage component 100 and includes a lamp housing 210 and multiple light-emitting modules 220, which are mounted on the lamp housing 210. The photovoltaic component 300 is disposed above the light-emitting component 200. The lamp housing 210 and the base 110 are detachably connected, forming a lamp cavity 400. The battery 130 is located in the lamp housing. Inside cavity 400; specifically, lamp housing 210 is detachably connected to the base 110. After lamp housing 210 is removed, battery 130 remains connected to base 110; specifically, photovoltaic module 300 can enclose the lamp cavity 400 formed by lamp housing 210 and base 110 to form a closed lamp cavity 400; specifically, battery 130 is electrically connected to light-emitting module 220 and photovoltaic module 300 through terminals and connecting wires. Photovoltaic module 300 absorbs solar energy and converts it into electrical energy, which is then transmitted to battery 130 for storage. Battery 130 provides the stored electrical energy to light-emitting module 220 so that light-emitting module 220 can emit light.
[0041] Since the lamp housing 210 is detachably connected to the base 110, and the battery 130 is detachably installed on the base 110, when the lamp housing 210 is detached from the base 110, the battery 130 will still be fixedly connected to the base 110. At this time, you can simply remove the battery 130 from the base 110 to separate the battery 130 from the garden light. Since the base 110 is fixedly connected to other components at the bottom of the garden light, when the lamp housing 210 is disassembled from the base 110, the base 110 will still be fixedly connected to the other components at the bottom of the garden light. At this time, the battery 130 is connected to the relatively fixed base 110 and will not be in a suspended state. At this time, the battery 130 can be easily removed from the base 110, avoiding situations such as the lamp housing 210 having no reliable support point, which prevents maintenance personnel from being able to reliably apply force to disassemble it, the lamp housing 210 falling due to the maintenance personnel's unstable grip, and the lamp housing 210 being in a suspended state, which leads to low operating precision and accidental damage to other components. After the lamp housing 210 is detached from the base 110, the lamp cavity 400 structure formed by the lamp housing 210 and the base 110 is separated, and the battery 130 is exposed. Maintenance personnel can easily remove the battery 130 from the base 110, avoiding the problem of insufficient operating space and difficulty in removing the battery 130 when it is installed inside the lamp housing 210. Since the lamp housing 210 is separated from the base 110, it is also easier to install a new battery 130 into the base 110 when needed. The integrated structure, with the energy storage component 100, the light-emitting component 200 and the photovoltaic component 300 matched and connected to form a lamp body, is compact and not easily disassembled even by impact. It also makes it easy to disassemble and maintain the battery 130 installed in the lamp cavity 400, reducing the risk of accidental damage to other components during maintenance. It also eliminates the need to transfer the entire lamp housing 210 to another platform before disassembling the battery 130 or installing a new battery 130, improving the maintenance efficiency of the battery 130 and simplifying the work of maintenance personnel.
[0042] According to some embodiments of this application, refer to Figures 2 to 4 The base 110 is horn-shaped, and the lamp housing 210 is also horn-shaped. The upper circular edge of the base 110 matches and connects with the lower circular edge of the lamp housing 210. The inner side of the lamp housing 210 and the inner side of the base 110 together form a lamp cavity 400. After the base 110 and the lamp housing 210 are matched and connected, they together form a larger horn-shaped lamp body. The overall structure is flat, occupies less space, and the electrical connection line between the battery 130 and the photovoltaic module 300 is shorter, improving reliability. The battery 130 is located in the center of the assembled horn-shaped lamp body, and the electrical connection line between it and other components such as the light-emitting module 200 is shorter.
[0043] Furthermore, referring to Figure 2The battery 130 is connected to the top center of the base 110. The center of gravity of the battery 130 is vertically positioned at the top center of the base 110, and the center of gravity line of the battery 130 roughly coincides with the center of gravity line of the base 110, so as to avoid the overall center of gravity of the lamp body structure shifting due to the shift of the center of gravity of the relatively heavy battery 130.
[0044] Furthermore, the base 110 includes multiple reinforcing ribs 120, which are disposed on the inner side of the base 110, and the battery 130 is connected to the top of the reinforcing ribs 120. The reinforcing ribs 120 enhance the structural strength of the base 110 without excessively increasing its weight. The space formed between the multiple reinforcing ribs 120 provides a heat dissipation channel for the battery 130, improving its heat dissipation performance and extending its service life.
[0045] According to some embodiments of this application, refer to Figure 1 The outer surface of the lamp housing 210 is angled downwards, and the axes of multiple light-emitting modules 220 are perpendicular to the outer surface of the lamp housing 210. This allows the light-emitting modules 220 to emit light downwards at an angle, better illuminating the ground around the courtyard light area and improving the lighting effect. Specifically, the light-emitting module 220 is an LED light-emitting module, which includes LED light-emitting beads and a light-emitting lens, making it energy-efficient and highly effective.
[0046] Furthermore, multiple light-emitting modules 220 are arranged in a ring at intervals and evenly distributed on the outer side of the lamp housing 210, making the light output of the courtyard light more uniform.
[0047] Furthermore, referring to Figure 4 The light-emitting component 200 includes a controller 230 and a switch button 250, both of which are mounted on the lamp housing 210. Specifically, the switch button 250 penetrates the lamp housing 210 and is mounted thereon, allowing maintenance personnel to control the switch button 250 from outside the lamp housing 210. The electrical connection wires of the switch button 250 are located inside the lamp housing 210, enhancing its weather resistance. Specifically, the controller 230 is electrically connected to the switch button 250, and the controller 230 is also electrically connected to the battery 130. The switch button 250 allows for the control of powering on and off the controller 230, facilitating installation, commissioning, maintenance, and management.
[0048] Furthermore, referring to Figure 1The controller 230 includes a sensing module 240, which is disposed on the outer side of the lamp housing 210. Specifically, the sensing module 240 includes a human body sensor, which can be an infrared sensor, a microwave sensor, or other devices capable of sensing people approaching or moving away. Specifically, the sensing module 240 penetrates the lamp housing 210 and is disposed on the lamp housing 210, with its outer side located outside the lamp housing 210 for better sensing of people approaching or moving away. Specifically, the controller 230 also includes a logic operation module. When the switch button 250 is turned on, and a person approaches, the sensing module 240 sends information to the logic operation module, which connects the power lines of the battery 130 and the light-emitting module 220, at which point the light-emitting module 220 emits light. When the person leaves, the sensing module 240 sends information to the logic operation module, which disconnects the power lines of the battery 130 and the light-emitting module 220 to turn off the light-emitting module 220. Optionally, the sensing module 240 also includes a light sensor that can sense the illuminance of the outdoor environment, determine whether the outdoor environment is day or night, and transmit the relevant information to the logic operation module to realize automatic start of the controller 230 at night and automatic shutdown of the controller 230 during the day.
[0049] According to some embodiments of this application, refer to Figure 2 and Figure 4 The photovoltaic module 300 includes a mounting plate 310 and a photovoltaic panel 320. The mounting plate 310 is connected to the upper circular edge of the lamp housing 210, and the photovoltaic panel 320 is disposed on the top surface of the mounting plate 310. The photovoltaic panel 320 is disposed on the top surface of the mounting plate 310, meaning it is positioned on the top surface of the garden light. This provides a better solar energy reception environment for the photovoltaic panel 320, and it is not easily visible to the public, thus not affecting the aesthetics of the garden light.
[0050] It is understood that in some other embodiments, the photovoltaic panel 320 is embedded in the top of the mounting plate 310, and the top surface of the photovoltaic panel 320 is lower than the top surface of the mounting plate 310. That is, the photovoltaic panel 320 does not protrude from the top surface of the mounting plate 310, so as to reduce the photovoltaic panel 320 being bumped during transportation and also reduce the possibility of the photovoltaic panel 320 detaching from the mounting plate 310 due to wind and sun exposure.
[0051] Reference Figure 5 This application also provides a garden light using the integrated solar lamp body structure of this application, and further includes a lamp post assembly 500; the lamp post assembly 500 includes multiple poles 510, which are spliced together to form a long pole. Specifically, a base 110 is fixedly installed at the top of the spliced long pole, and the bottom of the long pole is fixedly installed on the ground by a mounting assembly.
[0052] The lamp post assembly 500 of the courtyard light includes multiple poles 510. During transportation, the multiple poles 510 can be separated into shorter poles 510 for easy packaging and transport. During installation, the multiple poles 510 are spliced together to form a longer pole, which meets the installation height requirements of the courtyard light body and achieves the expected lighting effect. Since the lamp housing 210 is detachably connected to the base 110, and the battery 130 is detachably installed on the base 110, when the lamp housing 210 is separated from the base 110, the battery 130 will still be fixedly connected to the base 110. At this time, the battery 130 can be separated from the courtyard light simply by removing it from the base 110. Since the base 110 is fixedly connected to other components at the bottom of the garden light, when the lamp housing 210 is disassembled from the base 110, the base 110 will still be fixedly connected to the other components at the bottom of the garden light. At this time, the battery 130 is connected to the relatively fixed base 110 and will not be in a suspended state. At this time, the battery 130 can be easily removed from the base 110, avoiding situations such as the lamp housing 210 having no reliable support point, which prevents maintenance personnel from being able to reliably apply force to disassemble it, the lamp housing 210 falling due to the maintenance personnel's unstable grip, and the lamp housing 210 being in a suspended state, which leads to low operating precision and accidental damage to other components. After the lamp housing 210 is detached from the base 110, the lamp cavity 400 structure formed by the lamp housing 210 and the base 110 is separated, and the battery 130 is exposed. Maintenance personnel can easily remove the battery 130 from the base 110, avoiding the problem of insufficient operating space and difficulty in removing the battery 130 when it is installed inside the lamp housing 210. The integrated structure, with the energy storage component 100, light-emitting component 200, and photovoltaic component 300 matched and connected to form a single lamp body, is compact and not easily disassembled even by impact. It also facilitates the disassembly and maintenance of the battery 130 installed inside the lamp cavity 400, reducing accidental damage to other components during maintenance. Furthermore, it eliminates the need to transfer the entire lamp housing 210 to another platform before removing the battery 130, improving the maintenance efficiency of the battery 130 and simplifying the work of maintenance personnel.
[0053] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0054] Although embodiments of the present invention have been shown and described, those skilled in the art will understand 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 claims and their equivalents.
Claims
1. An integrated solar lamp body structure, characterized in that, include: An energy storage assembly (100) includes a base (110) and a battery (130), wherein the battery (130) is detachably connected to the base (110); A light-emitting component (200) is disposed above the energy storage component (100). The light-emitting component (200) includes a lamp housing (210) and a plurality of light-emitting modules (220), and the plurality of light-emitting modules (220) are mounted on the lamp housing (210). A photovoltaic module (300) is disposed above the light-emitting module (200); The lamp housing (210) is detachably connected to the base (110), and the lamp housing (210) and the base (110) surround each other to form a lamp cavity (400), and the battery (130) is located inside the lamp cavity (400).
2. The integrated solar lamp body structure according to claim 1, characterized in that, The base (110) is horn-shaped, and the lamp housing (210) is also horn-shaped. The upper circular edge of the base (110) is matched and connected with the lower circular edge of the lamp housing (210). The inner side of the lamp housing (210) and the inner side of the base (110) surround each other to form the lamp cavity (400).
3. The integrated solar lamp body structure according to claim 2, characterized in that, The battery (130) is connected to the top center of the base (110).
4. The integrated solar lamp body structure according to claim 3, characterized in that, The base (110) includes a plurality of reinforcing ribs (120), which are disposed on the inner side of the base (110), and the battery (130) is connected to the top of the reinforcing ribs (120).
5. The integrated solar lamp body structure according to claim 1, characterized in that, The outer side of the lamp housing (210) is obliquely downward, and the axes of the plurality of light-emitting modules (220) are perpendicular to the outer side of the lamp housing (210).
6. The integrated solar lamp body structure according to claim 5, characterized in that, The plurality of light-emitting modules (220) are spaced apart and arranged in a ring.
7. The integrated solar lamp body structure according to claim 6, characterized in that, The light-emitting component (200) includes a controller (230) and a switch button (250), both of which are mounted on the lamp housing (210).
8. The integrated solar lamp body structure according to claim 7, characterized in that, The controller (230) includes a sensing module (240) disposed on the outer side of the lamp housing (210).
9. The integrated solar lamp body structure according to claim 1, characterized in that, The photovoltaic module (300) includes a mounting plate (310) and a photovoltaic panel (320). The mounting plate (310) is connected to the upper circular edge of the lamp housing (210), and the photovoltaic panel (320) is disposed on the top surface of the mounting plate (310).
10. A courtyard light, characterized in that, Includes the integrated solar lamp body structure as described in any one of claims 1 to 9.