Solar projection lamp controlled based on Internet of Things
By introducing an electric push rod to drive the extension and angle adjustment of the lamp into the solar floodlight, and combining it with a heat dissipation component, the problem that existing solar floodlights cannot be flexibly adjusted is solved, and flexible lighting adjustment and stable lighting effects are achieved.
Patent Information
- Application Number
- CN202422697570.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-06
- Publication Date
- 2025-09-23
- Estimated Expiration
- 2034-11-06
AI Technical Summary
Existing IoT-based solar floodlights cannot be flexibly adjusted according to the usage environment, resulting in a fixed lighting state and significant usage limitations.
A structure including a shell, a lamp, a photovoltaic module, a heat dissipation component and an electric push rod was designed. The electric push rod is controlled by the Internet of Things to drive the extension and angle adjustment of the lamp. Combined with the heat dissipation component for rapid heat dissipation, flexible adjustment of the lamp and stable lighting are achieved.
It realizes flexible adjustment according to different lighting needs, expands or reduces the lighting range, improves the flexibility and stability of lighting, and effectively dissipates heat to reduce the temperature of the lamp.
Smart Images

Figure CN223375695U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of lighting equipment, and in particular to a solar floodlight controlled based on the Internet of Things. Background Art
[0002] Floodlights are lamps that provide a higher illuminance on a designated illuminated surface than the surrounding environment. They can typically be aimed in any direction and are unaffected by climatic conditions. With the increasing use of the Internet of Things (IoT), the communications industry is leveraging it to monitor and debug floodlights. The integration of IoT and floodlights can improve lighting flexibility and solar energy conversion efficiency.
[0003] After searching, the Chinese public utility model patent application number: 202320911565.X disclosed a solar floodlight controlled by the Internet of Things, which effectively expanded the lighting range and facilitated the installation and positioning of the floodlight fixture. The annular fixation of the floodlight mounting bracket one and the floodlight mounting bracket two is relatively stable, which improves the working stability of the floodlight. However, the floodlight is fixedly installed and cannot be flexibly adjusted to change the lighting state according to the use environment, and has certain usage limitations. Utility Model Content
[0004] In order to make up for the above deficiencies, the present invention provides a solar floodlight based on Internet of Things control that overcomes the above technical problems or at least partially solves the above problems.
[0005] The utility model provides a solar floodlight controlled by the Internet of Things, including
[0006] A housing for fixing parts; four long slots are evenly spaced inside the housing, and four limiting plates are installed inside the housing above the four long slots;
[0007] A lamp, the lamp being used for lighting, the number of the lamps being four, the tops of the four lamps being each provided with a slider matching the long slot, and the four sliders each extending through the long slot into the interior of the housing, the slider being a U-shaped component with an open top, the top opening position of the slider being each provided with three limiting posts, and each group of three limiting posts respectively extending through a corresponding limiting plate, the tops of the four sliders being each hingedly mounted with an adjustment frame near the middle position of the housing;
[0008] Photovoltaic assembly; the photovoltaic assembly extends into the interior of the housing through electrical wires;
[0009] There are four heat dissipation components, and the four heat dissipation components are equidistantly arranged in a ring inside the housing;
[0010] An electric push rod, the top end of which is fixedly mounted on the top inner wall of the shell.
[0011] In a preferred embodiment, four air holes are opened through the bottom of the bottom shell of the four heat dissipation components. When the heat dissipation components are blown, the high-speed flowing gas will move toward the lamp through the air holes, accelerating the air flow rate around the lamp to take away the heat generated when the lamp is illuminated.
[0012] In a preferred solution, both ends of the four limit plates are provided with fixing frames, and the bottom ends of the eight fixing frames are commonly connected to the inside of the shell. The fixing frames fix the limit plates inside the shell so that the limit plates can be used in conjunction with the slider to limit the lamp.
[0013] In a preferred solution, a plurality of mounting brackets are provided at the edge of the circumferential surface of the shell, and the shell can be fixedly mounted on the wall surface through the brackets, so that the solar floodlight can achieve a lighting effect.
[0014] In a preferred solution, the heat dissipation component is a cylindrical component with an open bottom end. A fan is provided inside the heat dissipation component. The fan is electrically connected to the photovoltaic component. When the fan rotates, airflow is generated to cool the photovoltaic component.
[0015] In a preferred solution, a disc is provided at the output end of the electric push rod, and four extension racks are evenly spaced on the circumferential surface of the disc. The disc can be driven by the electric push rod to perform up and down linear motion.
[0016] In a preferred solution, one end of each of the four extension frames is hingedly mounted with a connecting rod, and one end of the adjustment frame is provided with a through column, the outer surface of the through column is hingedly connected to one end of the connecting rod, and the connecting rod connects the through column and the extension frame together. When the disc is driven to perform linear movement up and down, the connecting rod will pull or push the through column, causing the flipping angle of the adjustment frame and the slider to change, thereby achieving the effect of pushing or pulling the slider.
[0017] 1. Through the four lamps that can be stored or extended from the shell, when the four lamps are extended from the four corners of the bottom of the shell, the distance between the four lamps is larger and the illumination range is wider. The four lamps are retracted into the bottom of the shell. At this time, the four lamps fit together, so that the light source is in a clustered state, the lighting range is small, and the lighting distance is longer. It can be adjusted according to different lighting needs, so that the solar floodlight based on the Internet of Things can be adjusted according to different lighting needs through remote control of the Internet of Things.
[0018] 2. Through the heat dissipation component, the fan inside the heat dissipation component blows air, and the high-speed flowing gas will move toward the lamp through the air holes, speeding up the air flow around the lamp to take away the heat generated when the lamp is lighting. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1This is a three-dimensional diagram of the overall structure provided by the embodiment of the utility model;
[0020] Figure 2 A schematic diagram of the lamp structure in an expanded state provided by an embodiment of the present utility model;
[0021] Figure 3 A schematic cross-sectional view of a housing structure provided in an embodiment of the present invention;
[0022] Figure 4 A schematic diagram of the heat dissipation assembly structure provided by an embodiment of the present utility model;
[0023] Figure 5 A schematic diagram of the structure of a lamp provided in an embodiment of the present utility model;
[0024] Figure 6 The embodiment of the present invention provides Figure 5 A magnified schematic diagram of the structure in the middle.
[0025] In the figure: 1. Shell; 101. Bracket; 102. Air hole; 103. Long slot; 104. Limit plate; 105. Fixing frame; 2. Lamp; 201. Slider; 202. Limit column; 203. Adjustment frame; 204. Through column; 3. Photovoltaic module; 4. Heat dissipation module; 401. Fan; 5. Electric push rod; 501. Disc; 502. Extension frame; 6. Connecting rod. DETAILED DESCRIPTION
[0026] To make the purpose, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0027] Reference Figures 1-6The utility model provides a technical solution: a solar floodlight controlled based on the Internet of Things, comprising a shell 1, a lamp 2, a photovoltaic component 3, a heat dissipation component 4, and an electric push rod 5, wherein the shell 1 is used to fix parts; four long slots 103 are equidistantly arranged inside the shell 1, and four limit plates 104 are installed inside the shell 1 above the four long slots 103; the lamp 2 is used for lighting, and there are four lamps 2; a slider 201 matching the long slot 103 is provided on the top of each of the four lamps 2, and the four sliders 201 all penetrate the long slot 103 and extend into the interior of the shell 1; the slider 201 is a U-shaped component with an opening at the top; three limit columns 202 are provided at the top opening position of the slider 201, and each group of three limit columns 202 respectively penetrates the corresponding limit plates 104; the slider 201 is used in conjunction with the limit columns 202 and the limit plates 104, so that the slider 201 can be pre-installed in the long slot 103 The four lamps 2 are powered by the photovoltaic components 3. There are four heat dissipation components 4, which are equidistantly arranged in a circular arrangement inside the shell 1. The four heat dissipation components 4 can be blown to take away the heat generated by the lamp 2 when it is illuminated. The top of the electric push rod 5 is fixedly mounted on the top inner wall of the shell 1, and the electric push rod 5 is fixedly mounted inside the shell 1 to ensure the stability of the device.
[0028] Four air holes 102 are opened through the bottom of the bottom shell 1 of the four heat dissipation components 4. When the heat dissipation components 4 are blowing air, the high-speed flowing gas will move toward the lamp 2 through the air holes 102, accelerating the air flow rate around the lamp 2 to take away the heat generated by the lamp 2 when it is lighting.
[0029] Both ends of the four limit plates 104 are provided with fixing frames 105, and the bottom ends of the eight fixing frames 105 are connected together inside the shell 1. The fixing frames 105 fix the limit plates 104 inside the shell 1 so that the limit plates 104 can be used in conjunction with the slider 201 to limit the lamp 2.
[0030] Several brackets 101 are provided at the edge of the circumferential surface of the shell 1. The shell 1 can be fixedly mounted on the wall surface through the brackets 101, so that the solar floodlight can achieve lighting effect.
[0031] The heat dissipation component 4 is a cylindrical component with an open bottom. A fan 401 is provided inside the heat dissipation component 4. The fan 401 is electrically connected to the photovoltaic component 3. When the fan 401 rotates, airflow is generated to cool the photovoltaic component 3.
[0032] A disc 501 is provided at the output end of the electric push rod 5 , and four extension frames 502 are evenly spaced on the circumferential surface of the disc 501 . The disc 501 can be driven by the electric push rod 5 to perform linear motion up and down.
[0033] One end of each of the four extension frames 502 is hingedly mounted with a connecting rod 6, and one end of the adjustment frame 203 is provided with a through column 204. The outer surface of the through column 204 is hingedly connected to one end of the connecting rod 6. The connecting rod 6 connects the through column 204 and the extension frame 502 together. When the disc 501 is driven to perform linear movement up and down, the connecting rod 6 will pull or push the through column 204, causing the flipping angle of the adjustment frame 203 and the slider 201 to change, thereby achieving the effect of pushing or pulling the slider 201.
[0034] Specifically, the working process or working principle of the solar floodlight controlled based on the Internet of Things is as follows: when using the solar floodlight, the electric push rod 5 can be controlled to move through the Internet of Things. When the disc 501 is pushed downward by the output end of the electric push rod 5 to perform linear motion, the connecting rod 6 will push the through column 204, so that the flip angle of the adjustment frame 203 and the slider 201 changes, so as to push the slider 201 to perform linear motion toward the four corners of the shell 1, so that the four lamps 2 extend out of the four corners of the bottom end of the shell 1. The distance between the four lamps 2 is larger, and the illumination range is wider. When the disc 501 is pulled upward by the output end of the electric push rod 5 to perform linear motion When moving, the connecting rod 6 will pull the through column 204, causing the flip angle of the adjustment frame 203 and the slider 201 to change, so as to pull the slider 201 to move linearly toward the middle position of the shell 1, so that the four lamps 2 are retracted to the bottom end of the shell 1. At this time, the four lamps 2 are fitted together, so that the light source is in a clustered state, the lighting range is small, and the lighting distance is longer. It can be adjusted according to different lighting needs. When the lamp 2 is illuminated, heat will be generated. The heat dissipation component 4 can be turned on to allow the fan 401 to blow air. The high-speed flowing gas will move toward the lamp 2 through the air hole 102, accelerating the air flow rate around the lamp 2 to take away the heat generated when the lamp 2 is illuminated.
Claims
1. Based on the Internet of Things to control solar floodlights, the characteristics are: include A shell (1), the shell (1) is used to fix parts; four long slots (103) are evenly spaced inside the shell (1), and four limiting plates (104) are installed inside the shell (1) above the four long slots (103); A lamp (2), the lamp (2) being used for lighting, the lamps (2) being four in number, the tops of the four lamps (2) being all provided with sliders (201) matching the long slot (103), and the four sliders (201) all passing through the long slot (103) and extending into the interior of the housing (1), the sliders (201) being U-shaped components with an opening at the top, three limiting columns (202) being provided at the top opening position of the sliders (201), and each group of three limiting columns (202) passing through corresponding limiting plates (104), and an adjustment frame (203) being hingedly mounted at the tops of the four sliders (201) near the middle position of the housing (1); Photovoltaic assembly (3); the photovoltaic assembly (3) extends into the interior of the housing (1) through electric wires; Heat dissipation components (4), the number of the heat dissipation components (4) is four, and the four heat dissipation components (4) are equidistantly arranged in a circular shape inside the housing (1); An electric push rod (5), the top end of which is fixedly mounted on the top inner wall of the housing (1).
2. The solar floodlight controlled based on Internet of Things according to claim 1, characterized in that: Four air holes (102) are provided through the bottom of the bottom shells (1) of the four heat dissipation components (4).
3. The solar floodlight controlled based on Internet of Things according to claim 1, characterized in that: Both ends of the four limiting plates (104) are provided with fixing frames (105), and the bottom ends of the eight fixing frames (105) are commonly connected to the inside of the shell (1).
4. The solar floodlight controlled based on Internet of Things according to claim 1, characterized in that: A plurality of mounting brackets (101) are provided at the edge of the circumferential surface of the shell (1).
5. The solar floodlight controlled based on Internet of Things according to claim 1, characterized in that: The heat dissipation component (4) is a cylindrical component with an open bottom end, and a fan (401) is provided inside the heat dissipation component (4).
6. The solar floodlight controlled based on Internet of Things according to claim 1, characterized in that: The output end of the electric push rod (5) is provided with a disc (501), and four extension frames (502) are evenly spaced on the circumferential surface of the disc (501).
7. The solar floodlight controlled based on Internet of Things according to claim 6, characterized in that: One end of each of the four extension frames (502) is hingedly mounted with a connecting rod (6), and one end of the adjustment frame (203) is provided with a through column (204), the outer surface of the through column (204) is hingedly connected to one end of the connecting rod (6).
Citation Information
Patent Citations
Solar projection lamp controlled based on Internet of Things
CN219674093U