Lighting device for building
By designing an automatically adjusted building lighting device, the problem of difficulty in adjusting high altitude operations is solved, convenient angle and height adjustment is achieved, safety risks and electricity costs are reduced, and the stability and reliability of the device are ensured.
Patent Information
- Application Number
- CN202422835666.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-20
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2034-11-20
AI Technical Summary
The existing adjustable angle lighting device is installed at a high place, making it difficult for users to adjust directly, and requires tools or high altitude work, which poses safety risks and is costly to manage.
A lighting device including a base, telescopic part, lighting lamp and adjustment mechanism is designed to automatically adjust the angle and height through the cylinder and electric push rod, and powered by solar panels, reducing dependence on traditional power.
It realizes convenient angle and height adjustment of the lighting device, improves operating efficiency, reduces safety risks and electricity costs, and ensures the stability and reliability of the device under different ground conditions.
Smart Images

Figure CN223271190U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of building construction, in particular to a lighting device for buildings. Background Art
[0002] With the advancement of architectural lighting design, lighting fixtures are increasingly used in modern architecture. Architectural lighting fixtures not only provide basic lighting but also enhance the aesthetics of the building and the ambiance of the space. Against this backdrop, an increasing number of architectural lighting systems are being designed with adjustable beam angle, illumination range, and brightness to meet diverse lighting needs and scenarios. These adjustable lighting fixtures typically rely on manual or motorized control to change the direction of the light source for optimal lighting.
[0003] However, existing adjustable-angle lighting devices face a common technical challenge: because most lighting devices are installed at high locations, it's difficult for ordinary users or workers to directly reach the device to adjust its angle. To address this issue, adjustments often require the use of tools such as ladders, lifting platforms, or other specialized mechanical equipment. This operation is not only cumbersome but also poses certain safety risks, especially when working at height, where operators are prone to falls and other accidents. Furthermore, frequent adjustments and maintenance operations increase the management costs of the lighting system. Utility Model Content
[0004] The purpose of the present utility model is to solve the above-mentioned technical problems and provide a building lighting device that can ensure the lighting angle adjustment function while avoiding the frequent use of high-altitude tools for operation.
[0005] In view of this, the present invention provides a lighting device for a building, comprising:
[0006] base;
[0007] A telescopic member is provided on the base, and the length of the telescopic member can be adjusted according to needs;
[0008] A lighting lamp is provided on the telescopic member, and the lighting lamp is used to illuminate the construction site;
[0009] The adjustment mechanism is provided on the telescopic member and cooperates with the lighting lamp to adjust the angle of the lighting lamp to meet different needs;
[0010] The regulating mechanism includes:
[0011] A support sleeve is provided on the telescopic member;
[0012] an ear plate, arranged on the supporting sleeve;
[0013] A rotating shaft is rotatably arranged on the ear plate;
[0014] A rotating plate is arranged on the rotating shaft and is connected to the lighting lamp;
[0015] A fixing sleeve is provided on the telescopic member, and the fixing sleeve is located above the supporting sleeve;
[0016] A connecting plate is arranged on the fixing sleeve;
[0017] A rotating rod is rotatably arranged on the connecting plate;
[0018] A rotating frame is arranged on the rotating rod;
[0019] A cylinder is provided on a rotating frame;
[0020] A fixing bracket is provided on the piston rod of the cylinder;
[0021] A support plate is arranged on the top of the lighting lamp;
[0022] The connecting rod is arranged on the supporting plate, and the connecting rod is rotatably connected to the fixing frame.
[0023] In the above technical solution, further, the telescopic member includes a sleeve and a column that slides with the sleeve, and a power mechanism for adjusting the relative position of the column and the sleeve.
[0024] In any of the above technical solutions, further, the power mechanism includes:
[0025] Mounting plates are arranged on both sides of the outer wall of the sleeve;
[0026] An electric push rod is arranged on the mounting plate;
[0027] The fixed plate is arranged on the outside of the column, and the piston rod of the electric push rod is connected to the fixed plate.
[0028] In any of the above technical solutions, further, a power supply mechanism is included, and the power supply mechanism includes:
[0029] A support frame is arranged at the upper end of the column;
[0030] Fixed columns are rotatably arranged on both sides of the support frame;
[0031] The solar panel is arranged on a fixed column.
[0032] In any of the above technical solutions, further, the base is provided with positioning holes, there are multiple positioning holes, and they are evenly spaced along the circumferential direction of the base, and the positioning holes are fixed at designated positions by bolt connection.
[0033] In any of the above technical solutions, further, a spiral ground pile is provided at the bottom of the base.
[0034] The beneficial effects of the utility model are:
[0035] 1. The operator only needs to press a button or use remote control to control the operation of the cylinder, so that the lighting lamp rotates on the ear plate through the rotating plate and the rotating shaft, thereby adjusting the angle of the lighting lamp to meet the lighting needs of different angles. This device can flexibly adjust the angle of the lighting lamp to adapt to different working environments and lighting needs, avoiding the tedious manual adjustment or repositioning required by traditional lighting equipment, improving the convenience and efficiency of on-site operations, and ensuring a wide range of lighting coverage;
[0036] 2. The reciprocating motion of the piston rod of the electric push rod drives the relative position change between the fixed plate and the column, thereby realizing the lifting and lowering of the column. The lighting can be adjusted to a suitable height to meet different work requirements, especially in environments such as construction sites where frequent adjustments to the lighting height are required, greatly improving operational efficiency;
[0037] 3. During the day, solar panels convert sunlight into electricity through the photovoltaic effect. By adjusting the rotation of the fixed column, the angle of the solar panels can be adjusted at different time periods to maximize the amount of sunlight received. The electricity is transmitted through wires to the battery of the lighting device or directly supplied to the lighting system to maintain the normal operation of the lighting device. The excess electricity is also stored in the battery to provide power for the lighting device at night or on cloudy days. This not only reduces dependence on traditional electricity but also reduces electricity costs.
[0038] 4. Insert the ground stakes into the soil by rotating until they reach the predetermined depth, forming a firm connection between the base and the ground. Install the base to the ground by bolting through the positioning holes. The combination of positioning holes and spiral ground stakes allows the lighting device to not only work stably under different ground conditions, but also ensure reliability and safety during long-term use. BRIEF DESCRIPTION OF THE DRAWINGS
[0039] Figure 1 This is a schematic diagram of the first three-dimensional structure of the utility model;
[0040] Figure 2 This is a schematic diagram of the three-dimensional structure of the adjustment mechanism of the utility model;
[0041] Figure 3 This is a schematic diagram of the second three-dimensional structure of the utility model;
[0042] The reference numerals in the figure are: 1. base; 2. telescopic part; 21. sleeve; 22. column; 3. lighting lamp; 4. adjustment mechanism; 41. support sleeve; 42. ear plate; 43. rotating shaft; 44. rotating plate; 45. fixing sleeve; 46. connecting plate; 47. rotating rod; 48. rotating frame; 49. cylinder; 410. fixing frame; 411. support plate; 412. connecting rod; 5. power mechanism; 51. mounting plate; 52. electric push rod; 53. fixing plate; 6. power supply mechanism; 61. support frame; 62. fixing column; 63. solar panel; 7. positioning hole; 8. spiral pile. DETAILED DESCRIPTION
[0043] The following will be combined with the accompanying drawings in the embodiments of the present application to clearly describe the technical solutions in the embodiments of the present application. Obviously, the described embodiments are part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field are within the scope of protection of this application.
[0044] In the description of this application, it should be noted that the terms used herein are only for the purpose of describing specific embodiments and are not intended to limit the exemplary embodiments according to this application. For ease of description, the dimensions of the various parts shown in the drawings are not drawn according to the actual proportional relationship. Technologies, methods and equipment known to ordinary technicians in the relevant fields may not be discussed in detail, but where appropriate, technologies, methods and equipment should be considered as part of the authorization specification. In all examples shown and discussed here, any specific values should be interpreted as merely exemplary and not as limitations. Therefore, other examples of the exemplary embodiments may have different values. It should be noted that similar numbers and letters represent similar items in the following figures, so once an item is defined in one figure, it does not need to be further discussed in subsequent figures.
[0045] Example 1:
[0046] like Figure 1-Figure 3 As shown, this embodiment provides a lighting device for a building, comprising:
[0047] Base 1;
[0048] The telescopic member 2 is provided on the base 1 and the length of the telescopic member 2 can be adjusted as needed;
[0049] A lighting lamp 3 is provided on the telescopic member 2 and is used to illuminate the construction site;
[0050] The adjustment mechanism 4 is provided on the telescopic member 2 and cooperates with the lighting lamp 3 to adjust the angle of the lighting lamp 3 to meet different needs;
[0051] The regulating mechanism 4 comprises:
[0052] A support sleeve 41 is provided on the telescopic member 2;
[0053] The ear plate 42 is provided on the support sleeve 41;
[0054] The rotating shaft 43 is rotatably mounted on the ear plate 42;
[0055] The rotating plate 44 is provided on the rotating shaft 43 and is connected to the lighting lamp 3;
[0056] The fixing sleeve 45 is provided on the telescopic member 2 and is located above the supporting sleeve 41;
[0057] The connecting plate 46 is provided on the fixing sleeve 45;
[0058] A rotating rod 47 is rotatably mounted on the connecting plate 46;
[0059] A rotating frame 48 is provided on the rotating rod 47;
[0060] Cylinder 49, mounted on the rotating frame 48;
[0061] The fixing frame 410 is provided on the piston rod of the cylinder 49;
[0062] A support plate 411 is provided on the top of the lighting lamp 3;
[0063] The connecting rod 412 is disposed on the supporting plate 411 , and the connecting rod 412 is rotatably connected to the fixing frame 410 .
[0064] In this technical solution, at the beginning of operation, the base 1 is first fixed in the desired position. The telescopic member 2 is connected to the base 1 to adjust the height of the lighting device 3. The telescopic member 2 extends or shortens as needed, thereby changing the illumination height of the lighting device 3. In the normal state, the lighting device 3 is facing downward, achieving the lighting requirements. When the angle of the lighting device 3 needs to be adjusted, the cylinder 49 is activated (the operator simply presses a button or controls the operation of the power mechanism 5 through remote control). The piston rod of the cylinder 49 is extended and retracted, driving the fixed frame 410 to move. The trajectory of the fixed frame 410 causes the fixed frame 410 to rotate the lighting device 3 through the connecting rod 412 and the support plate 411. The lighting device 3 rotates on the ear plate 42 via the rotating plate 44 and the rotating shaft 43, thereby adjusting the angle of the lighting device 3. The extension and retraction of the piston rod of the cylinder 49 causes the lighting device 3 to rotate to the corresponding angle. The cylinder 49 is adaptively rotated by the rotating frame 48 and the rotating rod 47. If a specific area of a construction site needs to be illuminated, the user can achieve directional lighting by adjusting the angle, thereby ensuring that the lamp can adapt to the lighting needs at different angles, allowing the lighting lamp 3 to adjust the lighting direction in a more precise and flexible manner. In this way, the angle and height of the lighting lamp 3 can be automatically adjusted, avoiding the trouble of tedious manual adjustment or repositioning of traditional lighting equipment, improving the convenience and efficiency of on-site operations, and also having flexibility, stability and convenience, ensuring that in complex work scenes, the lighting can always meet specific needs, thereby meeting the diverse lighting needs of different work points and different types of work, improving work efficiency, and ensuring a wide range of lighting coverage.
[0065] like Figure 1-Figure 3 As shown, in this embodiment, the telescopic member 2 is optimized to include a sleeve 21 and a column 22 that slides with the sleeve 21 , and a power mechanism 5 that adjusts the relative position of the column 22 and the sleeve 21 .
[0066] In this technical solution, the telescopic member 2 comprises a sleeve 21 and a column 22. The column 22 and sleeve 21 are adjusted relative to each other through a sliding fit. This structural design allows the column 22 to freely rise and fall within the sleeve 21, thereby adjusting the height of the lamp 3. To adjust the height of the lamp 3, the operator activates the power mechanism 5. This mechanism propels the column 22 up and down within the sleeve 21. The operator simply presses a button or controls the mechanism 5 remotely. The power mechanism 5 drives the column 22 to move up and down within the sleeve 21, adjusting the height of the lamp 3 accordingly. The power mechanism 5 provides a smooth raising and lowering process, ensuring that the lamp 3 operates stably within the set height range. Through its precise control system, the power mechanism 5 ensures that the lamp 3 can be precisely adjusted to the desired height. The operator can adjust the height of the lamp 3 to meet specific site requirements to meet lighting needs. For example, if the lamp 3 needs to be raised to cover a wider area or lowered to provide focused illumination, the power mechanism 5 can respond quickly. Once the lamp 3 is adjusted to the desired height, the power mechanism 5 stops operating, and the relative position between the column 22 and the sleeve 21 is fixed, ensuring that the lamp 3 remains in a stable position. During this process, the sliding fit between the sleeve 21 and the column 22 effectively prevents unnecessary shaking or positional shifting, ensuring that the lighting device remains stable during extended use. This allows for precise and convenient adjustment of the height of the lamp 3, adapting to a wide range of height variations and significantly improving work efficiency, especially in situations where frequent adjustments to the position of the lamp 3 are required.
[0067] like Figure 1 and Figure 3 As shown, in this embodiment, the optimized power mechanism 5 includes:
[0068] The mounting plates 51 are provided on both sides of the outer wall of the sleeve 21;
[0069] The electric push rod 52 is provided on the mounting plate 51;
[0070] A fixed plate 53 is located outside the column 22, and the piston rod of the electric push rod 52 is connected to the fixed plate 53. In this technical solution, when the height of the light 3 needs to be adjusted, the operator activates the electric push rod 52, and the piston rod of the electric push rod 52 reciprocates, thereby driving the relative position between the fixed plate 53 and the column 22 to change, thereby raising or lowering the column 22. When the electric push rod 52 extends, the fixed plate 53 pushes the column 22 upward, raising the light 3 accordingly; when the electric push rod 52 retracts, the fixed plate 53 pushes the column 22 downward, lowering the light 3 to the desired position. Due to the high precision and controllability of the electric push rod 52, the operator can precisely adjust the height of the light 3 using a control system (such as a button, remote control, or automatic control panel). Each adjustment process is smooth and fluid, and the control of the electric push rod 52 allows for real-time precision adjustment, ensuring that the light 3 provides optimal lighting at different heights. Once adjusted to the desired height, the electric push rod 52 stops working, and the relative position between the fixing plate 53 and the column 22 is kept stable, ensuring that the lighting device operates stably for a long time at the set height. In this way, the height adjustment becomes more efficient, accurate and convenient, and the lifting and lowering of the lighting lamp 3 can be easily adjusted to adapt to different work needs, especially in environments such as construction sites where frequent adjustments to the lighting height are required, greatly improving operational efficiency.
[0071] Example 2:
[0072] This embodiment provides a lighting device for a building, which, in addition to the technical solutions of the above embodiments, also has the following technical features.
[0073] like Figure 1-Figure 3 As shown, in this embodiment, the optimization further includes a power supply mechanism 6, which includes:
[0074] The support frame 61 is provided at the upper end of the column 22;
[0075] Fixed columns 62 are rotatably arranged on both sides of the support frame 61;
[0076] The solar panel 63 is mounted on the fixing column 62 .
[0077] In this technical solution, during the day, the solar panels 63 convert sunlight into electrical energy through the photovoltaic effect. By adjusting the rotation of the fixed column 62, the angle of the solar panels 63 can be adjusted at different time periods to maximize the amount of sunlight they receive. Electricity is transmitted through wires to the battery of the lighting device or directly supplied to the lighting system to maintain the normal operation of the lighting device. During the day, the solar panels 63 not only provide electricity for the lighting device, but also store excess electricity in the battery. The battery is charged during the day and provides electricity to the lighting device at night or on cloudy days. In this way, even in the absence of sunlight, the lighting device can still continue to operate relying on the stored electricity. At night, the lighting device automatically activates the stored electricity and continues to provide lighting functions. Because the battery stores the solar energy converted during the day, the nighttime lighting device does not rely on external electricity, ensuring energy independence and continuity. Since the lighting device is powered entirely by solar energy, this not only reduces dependence on traditional electricity but also lowers electricity costs.
[0078] Example 3:
[0079] This embodiment provides a lighting device for a building, which, in addition to the technical solutions of the above embodiments, also has the following technical features.
[0080] like Figure 1 and Figure 3 As shown, in this embodiment, the base 1 is optimized to have a plurality of positioning holes 7, which are evenly spaced along the circumferential direction of the base 1, and the positioning holes 7 are fixed at designated positions by bolt connections.
[0081] In the present technical solution, when installing the lighting device, it is first necessary to confirm the correct position of the base 1. According to the ground conditions and the needs of the lighting device, select the appropriate positioning hole 7 for installation. After selecting the appropriate positioning hole 7, align the base 1 with the ground or installation foundation. Drill holes or pre-install bolt holes where the positioning hole 7 contacts the ground. Then, fix the base 1 to the ground or installation foundation with bolts to ensure that the base 1 does not move. After tightening the bolts, the operator can check the levelness and stability of the base 1 to ensure that the supporting part of the lighting device is not loose. If necessary, the bolts can be adjusted again for precise correction.
[0082] like Figure 1 and Figure 3 As shown, in this embodiment, it is optimized that a screw pile 8 is provided at the bottom of the base 1 .
[0083] In the present technical solution, the spiral ground pile 8 enhances the fixing ability of the lighting device base 1, especially on soft or unstable ground. The spiral ground pile 8 can penetrate deep into the ground and tightly combine with the soil through a screw-like structure, providing stronger support force to ensure the stability of the lighting device. The spiral ground pile 8 is usually located at the bottom of the base 1, can penetrate deep into the soil and form a strong friction force with the underground soil layer through the spiral structure, thereby firmly fixing the base 1. It is particularly suitable for soft or uneven ground to avoid tilting or collapse of the device due to wind, external force or other factors. The installation method of the spiral ground pile 8 is similar to the screw-in method. The installation process is simple and quick, and does not require digging or other complicated construction work. For lighting devices that need to be relocated or changed, the spiral ground pile 8 can also be easily disassembled and moved.
[0084] Workflow: Insert the ground pile into the soil by rotating it. The screwing-in process can be done manually, or with the help of power tools to speed up the installation. The spiral ground pile 8 will penetrate deeper into the ground as it rotates until it reaches a predetermined depth. After the spiral ground pile 8 penetrates deep into the ground, it forms a strong friction force with the soil, forming a firm connection between the base 1 and the ground. At this point, the base 1 has been firmly fixed on the ground, and is ready to continue the installation of other components. The positioning holes 7 and the spiral ground piles 8 ensure that the lighting device can be firmly fixed under various ground conditions to prevent the device from being unstable due to uneven or soft ground. The spiral ground piles 8 provide strong support on soft or unstable ground by penetrating deep into the ground and combining with the soil, thereby ensuring the stability of the base 1. Through the combination of the two fixing methods of the positioning holes 7 and the spiral ground piles 8, the lighting device can not only work stably under different ground conditions, but also ensure reliability and safety during long-term use.
[0085] The embodiments of the present application are described above in conjunction with the accompanying drawings. Unless there is a conflict, the embodiments and features in the embodiments of the present application can be combined with each other. The present application is not limited to the above-mentioned specific implementation methods. The above-mentioned specific implementation methods are merely illustrative and not restrictive. Under the guidance of this application, ordinary technicians in this field can also make many forms without departing from the purpose of this application and the scope of protection of the claims, all of which are within the protection of this application.
Claims
1. A lighting device for a building, characterized in that: include: Base (1); A telescopic member (2) is provided on the base (1), and the length of the telescopic member (2) can be adjusted as required; A lighting lamp (3) is provided on the telescopic member (2), and the lighting lamp (3) is used to illuminate the construction site; An adjustment mechanism (4) is provided on the telescopic member (2) and cooperates with the lighting lamp (3) to adjust the angle of the lighting lamp (3) to meet different needs; The regulating mechanism (4) comprises: A support sleeve (41) is provided on the telescopic member (2); an ear plate (42) provided on the support sleeve (41); A rotating shaft (43) is rotatably mounted on the ear plate (42); A rotating plate (44) is arranged on the rotating shaft (43), and the rotating plate (44) is connected to the lighting lamp (3); A fixing sleeve (45) is provided on the telescopic member (2), and the fixing sleeve (45) is located above the supporting sleeve (41); A connecting plate (46) is provided on the fixing sleeve (45); A rotating rod (47) is rotatably mounted on the connecting plate (46); A rotating frame (48) is arranged on the rotating rod (47); A cylinder (49) is arranged on the rotating frame (48); A fixing frame (410) is provided on the piston rod of the cylinder (49); A support plate (411) is arranged on the top of the lighting lamp (3); A connecting rod (412) is provided on the supporting plate (411), and the connecting rod (412) is rotatably connected to the fixing frame (410).
2. The architectural lighting device according to claim 1, wherein: The telescopic member (2) comprises a sleeve (21) and a column (22) that is slidably matched with the sleeve (21), and a power mechanism (5) that adjusts the relative position of the column (22) and the sleeve (21).
3. The architectural lighting device according to claim 2, wherein: The power mechanism (5) comprises: Mounting plates (51) are arranged on both sides of the outer wall of the sleeve (21); An electric push rod (52) is arranged on the mounting plate (51); A fixed plate (53) is arranged outside the column (22), and the piston rod of the electric push rod (52) is connected to the fixed plate (53).
4. The architectural lighting device according to claim 2, wherein: It also includes a power supply mechanism (6), which includes: A support frame (61) is provided at the upper end of the column (22); Fixed columns (62) are rotatably arranged on both sides of the support frame (61); The solar panel (63) is arranged on the fixing column (62).
5. The architectural lighting device according to claim 1, wherein: The base (1) is provided with positioning holes (7), and the positioning holes (7) are multiple and evenly spaced along the circumferential direction of the base (1). The positioning holes (7) are fixed at designated positions by means of bolt connection.
6. The architectural lighting device according to claim 1, wherein: A screw pile (8) is provided at the bottom of the base (1).