Intelligent modular photostudio atmosphere lamp and use method
Through intelligent modular design and motor-driven multi-light linkage control, the problems of clumsy and cumbersome operation of traditional studio ambient lights are solved, flexible deployment and light uniformity are achieved, and shooting effect is improved.
Patent Information
- Application Number
- CN202510737278.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-04
- Publication Date
- 2025-08-01
AI Technical Summary
The existing studio ambient lights are bulky and have insufficient flexibility in mobile deployment. The multi-light association also requires cumbersome manual operation, and the light uniformity is difficult to control, which affects the shooting quality.
An intelligent modular studio ambient light was designed, using a meshing motor-driven meshing gear and a sliding module to achieve intelligent linkage control of multiple lamps. Through the combination of push-pull modules and support modules, traditional bulky brackets are abandoned and displacement wheels are used to improve flexibility.
The convenience and light uniformity of multi-light collaborative work are achieved, reducing deployment difficulty and improving shooting efficiency and quality.
Smart Images

Figure CN120402858A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of special atmosphere lights for photo studios, and particularly to intelligent modular atmosphere lights for photo studios and usage methods thereof. Background Art
[0002] Special atmosphere lights for photo studios are special lighting devices designed for scenarios such as photography and film shooting. They are mainly used to create specific light and shadow atmospheres, enhance the emotional expression of the picture, or highlight the artistry of the shooting theme.
[0003] Currently, existing atmosphere lights for photo studios, such as a fully rotatable lamp disclosed in Chinese Patent Publication No. CN119196594A, are provided with a light adjustment device to facilitate the adjustment of the brightness of the light irradiation, making it convenient for users to take photos with different effects, increasing the usability of the device, and facilitating its use in photo studios in different environments. However, in the actual use process, the following problems exist in this traditional photo studio lamp: First, the traditional photo studio atmosphere light is bulky and needs to be fixed with a tripod or a lamp stand, resulting in time-consuming mobile deployment and insufficient flexibility, which affects efficiency; Second, when multi-light coordination is required, there is a lack of intelligent linkage control, and multiple devices need to be manually operated to adjust their mechanical structures, resulting in cumbersome operations; Moreover, when multiple lights work together, manually operating multiple devices to adjust will change the light uniformity, easily generating shadows or light spots, which affects the shooting quality. Therefore, the present application provides intelligent modular atmosphere lights for photo studios and usage methods to meet the needs. Summary of the Invention
[0004] (I) Technical Problems to be Solved Aiming at the deficiencies of the prior art, the present invention provides intelligent modular atmosphere lights for photo studios and usage methods thereof, solving the problems that the existing photo studio atmosphere lights are bulky, lack flexibility during mobile deployment, are cumbersome to operate manually when multi-light coordination is required, and the manual operation adjustment will change the light uniformity, easily generating shadows or light spots, which affects the shooting quality.
[0005] (II) Technical Solutions To solve the above technical problems, the present invention provides the following technical solutions: The intelligent modular atmosphere light for a photo studio includes a base. Above the rear end of the base is provided an arc-shaped column. Inside the arc-shaped column is provided a back plate. Inside the upper end of the back plate is provided a push-pull module. In front of the push-pull module is provided a front light. On the front side of the upper end of the base is provided an arc-shaped groove. On the left and right sides of the arc-shaped groove are provided meshing motors. Inside the arc-shaped groove is provided a sliding module. Inside the front end of the sliding module is provided a support module. A side light is snap-mounted on the front side of the upper end of the support module. Below the back plate is provided a control integration box. On the front and rear sides of the lower end of the base are provided displacement wheels.
[0006] Preferably, the base includes a rectangular plate, an inner arc plate, a bottom plate, an upper plate, an embedding groove, a limiting groove, and mounting holes. An inner arc plate is provided at the front end of the rectangular plate. A bottom plate is provided at the lower end of the inner arc plate. An upper plate is provided at the upper end of the inner arc plate. Embedding grooves are formed on the left and right sides at the upper end of the inner arc plate. A limiting groove is formed at the front side of the upper end of the upper plate. Mounting holes are formed on the left and right sides behind the limiting groove.
[0007] Preferably, the arc-shaped column includes side arc rods, a middle arc rod, a tightening groove, a support screw, an adjusting screw, and a support spring. There are two side arc rods symmetrically distributed on the left and right. A middle arc rod is provided in the middle of the two side arc rods. A tightening groove is formed on the inner side at the rear end of the middle arc rod. A support screw is provided at the rear side of the lower ends of the side arc rods and the middle arc rod. An adjusting screw is provided at the front side of the lower ends of the side arc rods and the middle arc rod. A support spring is sleeved and installed in the middle of the outer end of the adjusting screw.
[0008] Preferably, the back plate includes a plate body, a push-pull groove, reinforcement holes, and reinforcement pins. A push-pull groove is formed on the inner side at the upper end of the plate body. Reinforcement holes are formed on the left and right sides at the outer end of the plate body. Reinforcement pins are threadedly installed inside the reinforcement holes.
[0009] Preferably, the push-pull module includes a main push block, side push blocks, a grip rod, a clamping rod, a clamping groove, and an adjusting motor. Side push blocks are symmetrically provided on the left and right sides of the main push block. Grip rods are provided on the left and right sides at the outer end of the main push block. Clamping rods are provided in the middle of the front ends of the main push block and the side push blocks. A clamping groove is formed on the inner side at the front end of the clamping rod. An adjusting motor is provided on the right side at the outer end of the clamping rod.
[0010] Preferably, the front lamp includes a lamp housing, an LED lamp, a reflector, a magnetic attraction fixing plate, and a handle. The LED lamp is embedded and installed inside the lamp housing. A reflector is provided on the outer side at the front end of the lamp housing. A magnetic attraction fixing plate is provided in the middle at the rear end of the LED lamp. A handle is provided on the rear side at the outer end of the lamp housing.
[0011] Preferably, the sliding module includes an arc-shaped lying block, a meshing groove, a rectangular block, a leg, and a limiting block. A meshing groove is formed on the inner side at the rear end of the arc-shaped lying block. A rectangular block is provided at the right end of the arc-shaped lying block. A leg is threadedly installed in the middle at the upper end of the rectangular block. A limiting block is provided on the left side at the upper end of the arc-shaped lying block.
[0012] Preferably, the support module includes a table plate, a clamping block, a threaded pin, a vertical rod, and a knob block. A clamping block is provided at the rear end of the table plate. A threaded pin is provided on the inner side at the front end of the table plate. A vertical rod is provided at the upper end of the table plate. A knob block is threadedly installed at the top of the vertical rod.
[0013] Preferably, three notches are horizontally provided at the rear side of the lower end of the base. The distribution spacing of the three notches is equal to the installation spacing of the arc-shaped columns. Two back plates are symmetrically distributed on the left and right, and both back plates are in mutual contact with the arc-shaped columns. The push-pull module is embedded in the notch provided at the upper end of the back plate. Six groups of front lights are horizontally distributed. A meshing gear is installed below the transmission end of the meshing motor, and bearings are installed at both the upper and lower ends of the meshing gear. Two groups of sliding modules and support modules are symmetrically distributed.
[0014] The using method of the intelligent modular photography studio atmosphere lamp includes the following steps: Step 1: Before starting work, first, fit and install the table board and the clamping block in the support module together. Then align the combined table board and clamping block with the front end of the arc-shaped lying block. Pass a threaded pin through the inside of the table board and the clamping block and thread it to extend to the inside of the front end of the arc-shaped lying block for reinforcement, so that the support module and the sliding module are combined into an integrated structure; Step 2: Install the meshing gear and the bearing at the lower end of the meshing motor in the embedding groove. For the integrated structure formed by combining the support module and the sliding module in Step 1, make it fit with the meshing gear at the angle and the inner arc plate that are mutually adapted through the meshing groove provided at the rear side. Then assemble the bottom plate and the upper plate with the inner arc plate to clamp the integrated structure formed by the support module and the sliding module. Among them, the outer wall of the front end of the limit groove is clamped with the upper end of the clamping block, and the limit block on the upper right side of the arc-shaped lying block is clamped inside the limit groove. Then install the meshing motor on the left and right sides of the upper end of the upper plate, and insert the transmission end of the meshing motor into the middle notch of the meshing gear to be clamped together to form an integrated structure, which is convenient for subsequent power transmission work; Step 3: Through the provided support screw and adjustment screw, install the two side arc rods and the middle arc rod on the upper end of the rectangular plate according to the preset holes and spacing. Then place the back plate with the push-pull module and the front light installed in the reserved space in the middle of the two side arc rods and the middle arc rod. Pass a reinforcement pin through the inside of the side arc rod and the middle arc rod and extend it into the inside of the back plate for reinforcement. Then install the control integration box in the space below the back plate, and arrange the connection lines between the control integration box, the adjustment motor, the front light, the meshing motor and the side light; Step 4: After completing the assembly of the atmosphere lamp and the wiring layout, move the atmosphere lamp to the front of the area for shooting in the photography studio through the provided displacement wheel, and then connect the external power supply. When it is necessary to adjust the irradiation angle of the front light, adjust the tightness of the grip rod to reduce the pulling force of the main push block and the side push block. With a little force, the up and down sliding can be completed in the push-pull groove, so as to adjust the overall irradiation angle of the front light installed in the front slot of the clamping rod. Subsequently, the fine adjustment of the tilting angle of the front light itself can be completed by controlling the adjustment motor through the control integration box; Step 5: When multi-light coordination is required, turn on the meshing motor through the control integration box, drive the lower meshing gear to rotate, and the meshing gear just matches the meshing groove opened on the inner side of the outer end of the sliding module, so that the sliding module can extend outward from the inner side of the arc groove, and the supporting module will also drive the side lights to extend outward, forming an embracing illumination area on both sides in front of the base, cooperating with the front lights to achieve the coordinated operation of multiple lights.
[0015] Compared with the prior art, the present invention has at least the following beneficial effects: In the above solution, through the arranged meshing motor, the meshing gear is driven to rotate, and the meshing gear just meshes with the meshing groove opened on the inner side of the outer end of the sliding module, so that the sliding module extends outward from the inner side of the arc groove. The sliding module and the supporting module are reinforced together by threaded pins, so that the supporting module will also move along the extension angle of the sliding module, thereby driving the side lights installed above the vertical rod to start to displace synchronously, forming an embracing illumination area on both sides in front of the base, and cooperating with the front lights to achieve the coordinated operation of multiple lights. The displacement of multiple groups of side lights on the left and right sides is intelligently linked and controlled by the device. Compared with the traditional need for manual operation during multi-light coordination, it is more convenient. At the same time, for multi-light linkage control, it is not easy to change the light uniformity during adjustment, affecting the shooting quality.
[0016] Through the arranged rectangular plate, the arc column and the back plate are installed at the rear side of the upper end of the base. At the same time, in cooperation with the inner arc plate, the bottom plate and the upper plate, the assembled structure of the sliding module and the supporting module is clamped and installed inside the front end of the base, abandoning the heavy brackets of the traditional ambient lights. Through the clamping rod and the clamping groove in the arranged push-pull module, the front light is installed at the front end, and through the arranged vertical rod and the button block, the side lights can be installed at the front side of the upper end of the supporting module to achieve multi-light integration. In cooperation with the displacement wheels symmetrically installed front and back below the base, during subsequent use, the deployment difficulty of multiple groups of ambient lights is reduced, making it more flexible.
[0017] In summary, the present invention has the advantages of reducing the movement and deployment difficulty of multiple groups of ambient lights, making the deployment of ambient lights more flexible. At the same time, when multiple lights work in coordination, manual participation is not required, and intelligent linkage control can be automatically achieved. It is not easy to change the light uniformity during adjustment, affecting the shooting quality. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 is a three-dimensional structural schematic diagram of the present invention; Figure 2 is an exploded three-dimensional structural schematic diagram of the base of the present invention; Figure 3 is an assembled three-dimensional structural schematic diagram of the base and the arc column of the present invention; Figure 4Explosion schematic diagram of the arc-shaped column three-dimensional structure of the present invention; Figure 5 Explosion schematic diagram of the backplane three-dimensional structure of the present invention; Figure 6 Schematic sectional structure diagram of the push-pull module and the atmosphere lamp of the present invention; Figure 7 Front view plane structure schematic diagram of the atmosphere lamp of the present invention; Figure 8 Rear view plane structure schematic diagram of the atmosphere lamp of the present invention; Figure 9 Schematic three-dimensional structure diagram of the LED lamp of the present invention; Figure 10 Schematic assembly diagram of the three-dimensional structure of the base, meshing motor, sliding module, support module and side lamp of the present invention; Figure 11 Explosion schematic diagram of the three-dimensional structure of the meshing motor, sliding module and support module of the present invention.
[0019] [Reference numerals] 1. Base; 2. Arc-shaped column; 3. Backplane; 4. Push-pull module; 5. Front lamp; 6. Arc-shaped groove; 7. Meshing motor; 8. Sliding module; 9. Support module; 10. Side lamp; 11. Control integration box; 12. Displacement wheel; 101. Rectangular plate; 102. Inner arc plate; 103. Bottom plate; 104. Upper plate; 105. Embedding groove; 106. Limiting groove; 107. Mounting hole; 201. Side arc rod; 202. Middle arc rod; 203. Tightening groove; 204. Support screw; 205. Adjusting screw; 206. Support spring; 301. Plate body; 302. Push-pull groove; 303. Reinforcement hole; 304. Reinforcement pin; 401. Main push block; 402. Side push block; 403. Holding rod; 404. Clamping rod; 405. Clamping groove; 406. Adjusting motor; 501. Lamp housing; 502. LED lamp; 503. Reflector; 504. Magnetic adsorption fixing plate; 505. Handle; 801. Arc-shaped lying block; 802. Meshing groove; 803. Rectangular block; 804. Leg; 805. Limiting block; 901. Table board; 902. Clamping block; 903. Threaded pin; 904. Upright rod; 905. Button block.
[0020] As shown in the figure, in order to clearly implement the structure of the embodiments of the present invention, specific structures and devices are marked in the figure, but this is only for schematic needs and is not intended to limit the present invention to this specific structure, device and environment. According to specific needs, those of ordinary skill in the art can adjust or modify these devices and environments. Detailed implementation manners
[0021] The intelligent modular photography studio atmosphere lamp and its usage method provided by the present invention will be described in detail below in conjunction with the accompanying drawings and specific embodiments. At the same time, it should be noted here that in order to make the embodiments more detailed, the following embodiments are the best and preferred embodiments. For some well-known technologies, those skilled in the art can also adopt other alternative methods for implementation; moreover, the accompanying drawings are only for more specifically describing the embodiments and are not intended to specifically limit the present invention.
[0022] It should be noted that in the specification, references to "one embodiment", "an embodiment", "exemplary embodiments", "some embodiments", etc. indicate that the described embodiments may include specific features, structures, or characteristics, but not necessarily every embodiment includes such specific features, structures, or characteristics. Additionally, when combining embodiments to describe a specific feature, structure, or characteristic, implementing such feature, structure, or characteristic in combination with other embodiments (whether explicitly described or not) should be within the knowledge of those skilled in the relevant art.
[0023] Generally, terms can be understood at least in part from their use in context. For example, at least in part depending on the context, the term "one or more" as used herein can be used to describe any feature, structure, or characteristic in a singular sense, or can be used to describe a combination of features, structures, or characteristics in a plural sense. Additionally, the term "based on" can be understood as not necessarily intended to convey a set of exclusive factors, but rather, at least in part depending on the context, can allow for the existence of other factors that may not be explicitly described.
[0024] It can be understood that the meanings of "on...", "above...", and "over..." in the present invention should be interpreted in the broadest manner, such that "on..." not only means "directly on" something, but also includes the meaning of being "on" something with intervening features or layers therebetween, and "above..." or "over..." not only means "above" or "over" something, but also can include the meaning of being "above" or "over" something with no intervening features or layers therebetween.
[0025] In addition, spatial relative terms such as "under...", "below...", "lower", "above...", "upper", etc. are used herein for convenience of description to describe the relationship of one element or feature to another or other elements or features, as shown in the accompanying drawings. Spatial relative terms are intended to cover different orientations in the use or operation of the device in addition to the orientation depicted in the drawings. The device can be oriented in other ways, and the spatial relative descriptive terms used herein can be correspondingly interpreted similarly.
[0026] As Figures 1 to 11As shown, an embodiment of the present invention provides an intelligent modular photography studio atmosphere lamp, which includes a base 1. Above the rear end of the base 1, there is an arc-shaped column 2. Inside the arc-shaped column 2, there is a back plate 3. Inside the upper end of the back plate 3, there is a push-pull module 4. In front of the push-pull module 4, there is a front light 5. On the front side of the upper end of the base 1, there is an arc-shaped groove 6. On the left and right sides of the arc-shaped groove 6, there are meshing motors 7. Inside the arc-shaped groove 6, there is a sliding module 8. Inside the front end of the sliding module 8, there is a support module 9. Above the front side of the upper end of the support module 9, there is a side light 10 clamped and installed. Below the back plate 3, there is a control integration box 11. On the front and rear sides of the lower end of the base 1, there are displacement wheels 12.
[0027] On the rear side of the lower end of the base 1, there are three notches horizontally opened, and the distribution spacing of the three notches is equal to the installation spacing of the arc-shaped column 2. The arc-shaped column 2 is composed of left and right side structures and a middle structure. The overall diameter of the side structure is half of that of the middle structure. And the lower ends of the left and right side structures and the middle structure of the arc-shaped column 2 are all threadedly extended to the inside of the upper end of the base 1. The spacing between the left and right side structures and the middle structure of the arc-shaped column 2 matches the overall width of the back plate 3. There are two back plates 3 symmetrically distributed left and right, and the rear sides of the two back plates 3 are all in contact with the rear sides of the left and right side structures and the middle structure of the arc-shaped column 2 to form a planar structure. The push-pull module 4 is embedded and installed in the groove opened at the upper end of the back plate 3, and the push-pull module 4 can slide in the groove opened at the upper end of the back plate 3. There are six groups of front lights 5 distributed horizontally, and the rear ends of the front lights 5 all extend into the grooves opened at the front end of the push-pull module 4. Below the driving end of the meshing motor 7, there is a meshing gear installed. In the middle of the meshing gear, there is a rectangular hole opened, and bearings are installed at both the upper and lower ends of the meshing gear. The lower part of the driving end of the meshing motor 7 is in a rectangular structure, and the rectangular structure extends into the rectangular hole opened in the middle of the meshing gear. There are two groups of sliding modules 8 and support modules 9 symmetrically distributed left and right. The sliding module 8 and the support module 9 are reinforced with each other through a threaded pin 903. There are eight groups of side lights 10 symmetrically distributed, and they are all sleeved and installed above the outer end of the support module 9. There are two control integration boxes 11 symmetrically distributed. Inside each of them, there is a single-chip microcomputer and control circuits installed, which are used to control parameters such as the brightness and hue of the front lights 5 and the side lights 10. Among them, the technology of controlling the brightness, hue and other parameters of the lamps through a single-chip microcomputer is an existing and mature well-known technology. Therefore, in this article, it will not be elaborated too much.
[0028] During operation, through the provided base 1, the arc-shaped column 2 and the backboard 3 can be installed at the rear side of its upper end. Then, the assembled structure formed by the sliding module 8 and the support module 9 is clamped and installed in the arc-shaped groove 6 inside the front end of the base 1. After that, the front lamp 5 is clamped and installed through the push-pull module 4. When the side lamp 10 is installed at the front side of the upper end of the support module 9, not only the bulky bracket of the traditional atmosphere lamp is discarded, but also multi-lamp integration is achieved. With the displacement wheels 12 symmetrically installed at the front and rear of the lower part of the base 1, during subsequent use, the deployment difficulty of multiple groups of atmosphere lamps is reduced, and mobile deployment can be carried out more flexibly.
[0029] As Figures 1 to 3 shown, in this embodiment, the base 1 includes a rectangular plate 101, an inner arc plate 102, a bottom plate 103, an upper plate 104, an embedding groove 105, a limiting groove 106, and mounting holes 107. The front end of the rectangular plate 101 is provided with the inner arc plate 102. The lower end of the inner arc plate 102 is provided with the bottom plate 103. The upper end of the inner arc plate 102 is provided with the upper plate 104. Embedding grooves 105 are opened on the left and right sides of the upper end of the inner arc plate 102. The front side of the upper end of the upper plate 104 is provided with the limiting groove 106. Mounting holes 107 are opened on the left and right sides behind the limiting groove 106.
[0030] Three notches are transversely opened at the lower end of the rectangular plate 101, and two threads are longitudinally opened above the three notches. The rectangular plate 101 and the inner arc plate 102 are of an integrated installation structure. Arc openings are opened in the middle of the front ends of the inner arc plate 102, the bottom plate 103, and the upper plate 104. The arc openings of the three are assembled and combined to form the arc-shaped groove 6. Among them, the position of the arc opening opened at the front end of the inner arc plate 102 is vertically equal to the position of the rear groove wall of the limiting groove 106 opened on the inner side of the upper end of the upper plate 104. An inner groove for the passage of the clamping block 902 is opened on the outer side of the front groove wall of the limiting groove 106. Two embedding grooves 105 are opened on the left and right in front of the upper end of the inner arc plate 102. The embedding grooves 105 are open near the arc opening area at the front end of the inner arc plate 102. The inner arc plate 102, the bottom plate 103, and the upper plate 104 are reinforced together by bolts. The mounting holes 107 and the embedding grooves 105 are distributed at a right angle.
[0031] During operation, through the provided rectangular plate 101, the arc-shaped column 2 and the back plate 3 can be installed at the rear side of the upper end of the base 1. In cooperation with the push-pull module 4, a new support structure can be formed. Subsequently, when installing the atmosphere light, the traditional bracket can be discarded. At the same time, in cooperation with the inner arc plate 102, the bottom plate 103, and the upper plate 104, the assembly structure of the sliding module 8 and the support module 9 can be clamped and installed inside the front end of the base 1. Moreover, the outer wall of the front end of the limit groove 106 is clamped with the upper groove of the clamping block 902 to maintain the temperature of the installation structure. The limit block 805 on the upper right side of the arc-shaped lying block 801 is clamped inside the limit groove 106 to play a limiting role. Subsequently, when the meshing motor 7 drives the meshing gear installed inside the embedding groove 105 to rotate, it can drive the sliding module 8 and the support module 9 symmetrically installed inside the arc-shaped groove 6 to perform synchronous controlled displacement, improving the synchronization of subsequent multi-light coordination.
[0032] As Figure 3 and Figure 4 shown, in this embodiment, the arc-shaped column 2 includes side arc rods 201, a middle arc rod 202, a tightening groove 203, a support screw 204, an adjustment screw 205, and a support spring 206. There are two side arc rods 201 symmetrically distributed on the left and right, and a middle arc rod 202 is provided in the middle of the two side arc rods 201. A tightening groove 203 is opened on the inner side of the rear end of the middle arc rod 202. A support screw 204 is provided at the rear side of the lower ends of the side arc rods 201 and the middle arc rod 202. An adjustment screw 205 is provided at the front side of the lower ends of the side arc rods 201 and the middle arc rod 202. A support spring 206 is sleeved on the middle part of the outer end of the adjustment screw 205.
[0033] There are two symmetrically distributed side arc rods 201. The overall diameter of the side arc rod 201 is only half of the overall diameter of the middle arc rod 202. Transverse plates are installed at the bottoms of the side arc rods 201 and the middle arc rod 202. Screw holes are opened at the front and rear sides of the lower end of the transverse plate. The front screw hole is used to install the adjustment screw 205, and the rear screw hole is used to install the support screw 204. Nuts are sleeved on the upper and lower parts of the outer ends of the support screw 204 and the adjustment screw 205. The support spring 206 is sleeved above the nut below the adjustment screw 205 to play a role of limiting and supporting.
[0034] During operation, through the provided support screw 204, the side arc rods 201 and the middle arc rod 202 can be thread-fixed at the rear side of the upper end of the base 1. By installing the adjustment screw 205 at the front side of the lower ends of the side arc rods 201 and the middle arc rod 202, it can not only ensure the stability of the installation structure of the side arc rods 201 and the middle arc rod 202 but also prevent the situation of tipping over. At the same time, through the design of the adjustment screw 205, it plays a role of supporting and limiting below the side arc rods 201 and the middle arc rod 202, and can also prevent the side arc rods 201 and the middle arc rod 202 from being overly lowered when descending.
[0035] AsFigures 1 to 5 As shown in the figure, in this embodiment, the backplane 3 includes a plate body 301, a push-pull groove 302, a reinforcement hole 303, and a reinforcement pin 304. A push-pull groove 302 is provided inside the upper end of the plate body 301, and reinforcement holes 303 are provided on the left and right sides of the outer end of the plate body 301. A reinforcement pin 304 is installed inside the reinforcement hole 303 by threading.
[0036] There are two plate bodies 301 symmetrically distributed left and right, and the overall arc inclination angle of the plate body 301 coincides with the overall arc inclination angle of the arc column 2. Three push-pull grooves 302 are horizontally provided inside the upper end of the plate body 301. The inner diameter of the push-pull groove 302 is adapted to the front end diameters of the main push block 401 and the side push block 402. The reinforcement holes 303 are symmetrically distributed at the upper and lower four corners of the outer end of the plate body 301, and there are four symmetrically distributed reinforcement pins 304.
[0037] During operation, through the provided reinforcement pins 304 and reinforcement holes 303, the back surface of the plate body 301 can be attached to the back surface of the arc column 2, so that the back surfaces of the two are at a flat angle. Then, the reinforcement pins 304 are passed through the inside of the arc column 2 and threaded to extend to the reinforcement holes 303 provided at the four corners of the outer end of the plate body 301 to reinforce the plate body 301 and the arc column 2, ensuring the stability of the installation structure of the two. Moreover, through the provided push-pull groove 302, the front ends of the main push block 401 and the side push block 402 in the push-pull module 4 are embedded and installed inside. When the inclination angle of the front end of the push-pull module 4 needs to be adjusted, only the main push block 401 and the side push block 402 need to be operated to slide in an arc in the push-pull groove 302, so that the multiple front lights 5 held and installed by the front end of the push-pull module 4 can be adjusted uniformly. Compared with the traditional atmosphere lights that need to be adjusted individually one by one, it is more convenient, time-saving and labor-saving.
[0038] As Figure 5 and Figure 6 shown in the figure, in this embodiment, the push-pull module 4 includes a main push block 401, a side push block 402, a grip rod 403, a locking rod 404, a card slot 405, and an adjustment motor 406. Side push blocks 402 are symmetrically provided on the left and right sides of the main push block 401. Grip rods 403 are provided on the left and right sides of the outer end of the main push block 401. Locking rods 404 are provided in the middle of the front ends of the main push block 401 and the side push block 402. A card slot 405 is provided inside the front end of the locking rod 404. An adjustment motor 406 is provided on the right side of the outer end of the locking rod 404.
[0039] The overall sizes of the main push block 401 and the side push blocks 402 are equal. Only the left and right sides at the outer end of the main push block 401 are provided with inner grooves. There are two side push blocks 402 symmetrically distributed. Only one side of the two side push blocks 402 relative to the main push block 401 is provided with a screw hole for installing the grip rod 403. There are two grip rods 403 symmetrically distributed. And the parts of the two grip rods 403 extending into the main push block 401 are convex, which exactly match the inner grooves opened on the left and right sides at the outer end of the main push block 401 and can move in the inner grooves. For the two side push blocks 402, the two grip rods 403 are threaded and extend into the interior. The main function of the grip rod 403 is to adjust the pulling force between the main push block 401 and the two side push blocks 402. There are three clamping rods 404 distributed horizontally. And the contact ends of the three clamping rods 404 with the main push block 401 and the two side push blocks 402 are reinforced by screws. At the same time, clamping grooves 405 are opened at the front ends of the three clamping rods 404, so that the rear end of the front light 5 extends into the clamping grooves 405. The transmission end of the adjustment motor 406 installed on the right side of the clamping groove 405 penetrates through the clamping groove 405 and the rear end structure of the front light 5 and extends to the outside.
[0040] During operation, through the arranged grip rod 403, the pulling force between the middle main push block 401 and the two side push blocks 402 on both sides can be adjusted. When adjustment is needed, rotate the grip rod 403 upward to reduce the pulling force between the main push block 401 and the side push blocks 402. Then push the grip rod 403 to drive the main push block 401 and the side push blocks 402 to slide along the push-pull groove 302 opened on the back plate 3, so as to realize the function of adjusting the overall inclination angle of the clamping rods 404 at the front end of the push-pull module 4. Then rotate the grip rod 403 downward to increase the pulling force between the main push block 401 and the side push blocks 402 and fix it to ensure the stability of the position. At the same time, when fine adjustment of the up-and-down angle of the front light 5 installed at the front end of the clamping rod 404 is needed, only need to turn on the adjustment motor 406. Since the transmission end of the adjustment motor 406 and the rear end structure of the front light 5 are reinforced together by a pin, the front light 5 can be driven to complete the adjustment of the up-and-down angle.
[0041] As Figures 6 to 9 shown, in this embodiment, the front light 5 includes a lamp housing 501, an LED lamp 502, a reflector 503, a magnetic adsorption fixing plate 504 and a handle 505. The LED lamp 502 is embedded and installed inside the lamp housing 501. A reflector 503 is provided on the outside of the front end of the lamp housing 501. A magnetic adsorption fixing plate 504 is provided in the middle of the rear end of the LED lamp 502. A handle 505 is provided on the rear side of the outer end of the lamp housing 501.
[0042] Inside the lamp housing 501, four LED lamps 502 are symmetrically installed. The four LED lamps 502 are installed together in a cross splicing manner. Each LED lamp 502 is a unit, and each unit contains R, G, and B color lamp beads and a soft light diffusion layer. Among them, the R, G, and B color LED lamp beads, the soft light diffusion layer, the heat dissipation structure, and the magnetic link interface support free splicing and expansion in different directions. At the same time, the wavelengths of the R, G, and B light sources are adjusted by dot powder and powder mixing (R 595 - 600nm, G 570 - 575nm, B 480 - 485nm). Four reflecting plates 503 are symmetrically distributed. The four reflecting plates 503 are all embedded and sleeved inside the four sides at the front end of the lamp housing 501. And the four reflecting plates 503 can also be reduced and installed inside the four sides at the front end of a single LED lamp 502. And at the middle part behind the splicing end of the four LED lamps 502, it is fixed by a magnetic absorption fixing plate 504. The left and right sides of the handle 505 pass through the inside of the lamp housing 501 through screw buttons and extend into the holes opened on the outer side surfaces of each LED lamp 502 for reinforcement.
[0043] During operation, through the provided LED lamps 502, since the magnetic link interfaces between the LED lamps 502 can allow them to be freely spliced and expanded according to their own needs, the front lamp 5 formed by the combined splicing of the LED lamps 502 breaks through the limitations of the fixed size of traditional lamps, realizes modular free combination, and cooperates with the angle adjustment of the reflecting plate 503 to achieve a 360-degree shadowless supplementary lighting effect. And through the modular installation structure and the magnetic absorption reinforcement method, it will be more convenient during subsequent maintenance.
[0044] As Figure 10 and Figure 11 shown, in this embodiment, the sliding module 8 includes an arc-shaped lying block 801, an engaging groove 802, a rectangular block 803, a leg 804, and a limiting block 805. An engaging groove 802 is opened on the inner side of the rear end of the arc-shaped lying block 801. A rectangular block 803 is provided at the right end of the arc-shaped lying block 801. A leg 804 is threadedly installed in the middle of the upper end of the rectangular block 803. A limiting block 805 is provided on the left side of the upper end of the arc-shaped lying block 801; the support module 9 includes a table plate 901, a clamping block 902, a threaded pin 903, a vertical rod 904, and a button block 905. A clamping block 902 is provided at the rear end of the table plate 901. A threaded pin 903 is provided on the inner side of the front end of the table plate 901. A vertical rod 904 is provided on the upper end of the table plate 901. A button block 905 is threadedly installed at the top of the vertical rod 904.
[0045] The bending angle of the arc-shaped lying block 801 coincides with the bending angles of the platen 901 and the clamping block 902 in the support module 9. The arc length of the platen 901 and the clamping block 902 is equal to the length of the arc-shaped lying block 801 minus the transverse width of the limit block 805. At the same time, after the three are spliced together, they are fixed by the threaded pin 903. The width after adding the clamping block 902 to the arc-shaped lying block 801 is equal to the depth of the arc-shaped groove 6 opened at the front end of the base 1. The engagement groove 802 is in an engagement connection with the engagement gear installed at the lower end of the engagement motor 7. The arc length of the engagement groove 802 is the displacement length of the sliding module 8 and the support module 9. However, due to the engagement method of the engagement groove 802 and the engagement gear, the displacement distance of the sliding module 8 and the support module 9 is slightly shorter than the overall arc length of the engagement groove 802 during actual operation. The rectangular block 803 and the arc-shaped lying block 801 are welded into an integral structure. The support leg 804 is threadedly installed in the middle of the upper end of the rectangular block 803. And a ball is installed in the middle of the lower end of the support leg 804, which can slide while playing a supporting role under the front end of the arc-shaped lying block 801. The limit block 805 and the arc-shaped lying block 801 are integrally cast. The outer arc length of the platen 901 is equal to the inner arc length of the clamping block 902. A notch is opened at the upper end of the clamping block 902, and the size of the notch is equal to the remaining front plate width after removing the space occupied by the limit groove 106 from the upper plate 104. The notch and the remaining front plate width are clamped together. And because an inner groove for the passage of the clamping block 902 is opened on the outer side of the front side wall of the limit groove 106, during the displacement movement, it can be ensured that the assembled structure of the sliding module 8 and the support module 9 will not derail. There are three symmetrically distributed threaded pins 903, and the front ends of the three threaded pins 903 sequentially penetrate the interiors of the platen 901 and the clamping block 902 and extend into the interior of the arc-shaped lying block 801. The vertical rod 904 is composed of upper and lower parts. A rotating motor is installed on the inner side of the lower part of the vertical rod 904, and the transmission end of the rotating motor is welded to the upper part of the vertical rod 904 into an integral structure. The lower end of the button block 905 penetrates the structure at the rear end of the side lamp 10 and is threadedly extended into the inner side of the upper part of the vertical rod 904, and the two are threadedly reinforced with each other.
[0046] During operation, through the set arc-shaped lying block 801, in combination with the platen 901 and the clamping block 902, an arc-shaped object placement structure is formed. At the same time, the threaded pin 903 penetrates through the interiors of the platen 901 and the clamping block 902 and extends into the interior of the arc-shaped lying block 801 for reinforcement, making it form an integrated structure. Then, a vertical rod 904 can be installed at the upper end of the platen 901 as a support, and a side lamp 10 is sleeved and installed at the top of the vertical rod 904 to achieve the assembly of multiple lamps. During operation, as long as the meshing motor 7 is controlled to start, driving the meshing gear to rotate, and the meshing gear just meshes with the meshing groove 802, thereby driving the arc-shaped object placement structure composed of the arc-shaped lying block 801, the platen 901, and the clamping block 902 to extend forward along the arc-shaped groove 6 in an arc. During the extension process, through the ball installed in the middle of the lower end of the leg 804, it can play a supporting role under the arc-shaped object placement structure and can also slide, thereby forming an encircling illumination area on both sides in front of the base 1. Subsequently, in cooperation with multiple groups of front lamps 5, the coordinated operation of multiple lamps is achieved. The displacement of multiple groups of side lamps 10 on both the left and right sides is intelligently linked and controlled by the device. Compared with the traditional method that requires manual operation when multiple lamps cooperate, it is more convenient. At the same time, when multiple lamps are linked and controlled to move synchronously, it is not easy to change the light uniformity during adjustment, affecting the shooting quality.
[0047] The usage method of the intelligent modular photography studio atmosphere lamp includes the following steps; Step 1: Before starting work, first, fit and install the platen 901 and the clamping block 902 in the support module 9 together. Then, align the platen 901 and the clamping block 902 that are fitted together with the front end of the arc-shaped lying block 801. By using the threaded pin 903 to penetrate through the interiors of the platen 901 and the clamping block 902 and threadedly extend to the inner side of the front end of the arc-shaped lying block 801 for reinforcement, the support module 9 and the sliding module 8 are combined into an integrated structure; Step 2: Install the meshing gear and bearing at the lower end of the meshing motor 7 in the embedding groove 105. For the integrated structure formed by combining the support module 9 and the sliding module 8 in Step 1, rely on the angle and inner arc plate 102 of the meshing groove 802 opened at the rear to fit with the meshing gear and then fit together. Then, through the set bottom plate 103 and upper plate 104, assemble with the inner arc plate 102 to clamp the integrated structure formed by the support module 9 and the sliding module 8. Among them, the outer wall at the front end of the limit groove 106 is clamped with the upper end of the clamping block 902, and the limit block 805 on the upper right side of the arc-shaped lying block 801 is clamped inside the limit groove 106. Then, install the meshing motor 7 on the left and right sides at the upper end of the upper plate 104, and insert the transmission end of the meshing motor 7 into the middle slot of the meshing gear to be clamped together to form an integrated structure, facilitating subsequent power transmission work; Step 3: Through the set supporting screw 204 and adjusting screw 205, install the two side arc rods 201 and the middle arc rod 202 on the upper end of the rectangular plate 101 according to the preset holes and spacing. Then, place the back plate 3 with the push-pull module 4 and the front light 5 installed in the reserved space in the middle of the two side arc rods 201 and the middle arc rod 202. Pass the reinforcement pin 304 through the interiors of the side arc rod 201 and the middle arc rod 202 and extend it into the interior of the back plate 3 for reinforcement. Then, install the control integration box 11 in the space below the back plate 3 and arrange the connection lines between the control integration box 11, the adjusting motor 406, the front light 5, the meshing motor 7, and the side light 10; Step 4: After completing the assembly and wiring layout of the atmosphere lights, move the atmosphere lights to the front of the shooting area in the photography studio through the set displacement wheel 12 and then connect to the external power supply. When it is necessary to adjust the irradiation angle of the front light 5, adjust the tightness of the grip rod 403 to reduce the pulling force of the main push block 401 and the side push block 402. With a little force, it can be slid up and down in the push-pull groove 302, thereby adjusting the overall irradiation angle of the front light 5 installed in the front-end card slot 405 of the clamping rod 404. Subsequently, the control integration box 11 is used to control the adjusting motor 406 to complete the fine adjustment of the tilting angle of the front light 5 itself; Step 5: When multi-light coordination is required, turn on the meshing motor 7 through the set control integration box 11 to drive the lower meshing gear to rotate. The meshing gear is exactly adapted to the meshing groove 802 opened on the inner side of the outer end of the sliding module 8, so that the sliding module 8 can extend outward from the inner side of the arc-shaped groove 6, causing the support module 9 to also drive the side light 10 to extend outward, forming an embracing irradiation area on both sides in front of the base 1 and cooperating with the front light 5 to achieve multi-light coordinated operation.
[0048] The working principle of the technical solution provided by the present invention is as follows: Before starting work, first, through the meshing motor 7 provided, the meshing gear is driven to rotate, and the meshing gear just meshes with the meshing groove 802 opened on the inner side of the outer end of the sliding module 8, so that the sliding module 8 extends outward from the inner side of the arc groove 6. The sliding module 8 and the support module 9 are fixed together through the threaded pin 903, so that the support module 9 will also move along the extension angle of the sliding module 8, thereby driving the side lamp 10 installed above the vertical rod 904 to start displacement synchronously, forming an encircling illumination area on both sides in front of the base 1, and cooperating with multiple front lamps 5 to realize the cooperative work of multiple lamps. The displacement of multiple side lamps 10 on both the left and right sides is intelligently linked and controlled by the device. Compared with the traditional manual operation required for the cooperation of multiple lamps, it is more convenient. At the same time, for the multi-lamp linkage control, it is not easy to change the light uniformity during adjustment, which affects the shooting quality. Secondly, through the rectangular plate 101 provided, the arc column 2 and the back plate 3 are installed at the rear side of the upper end of the base 1. At the same time, in cooperation with the inner arc plate 102, the bottom plate 103 and the upper plate 104, the assembled structure of the sliding module 8 and the support module 9 is clamped and installed inside the front end of the base 1, abandoning the heavy brackets of the traditional atmosphere lamp. Through the clamping rod 404 and the clamping groove 405 in the push-pull module 4 provided, the front lamp 5 is installed at the front end, and through the vertical rod 904 and the button block 905 provided, the side lamp 10 can be installed at the front side of the upper end of the support module 9 to realize the integration of multiple lamps. In cooperation with the displacement wheels 12 symmetrically installed at the front and rear of the lower part of the base 1, during subsequent use, the deployment difficulty of multiple atmosphere lamps is reduced, making it more flexible.
[0049] The present invention covers any substitutions, modifications, equivalent methods, and solutions made within the essence and scope of the present invention. In order to enable the public to have a thorough understanding of the present invention, specific details are described in detail in the following preferred embodiments of the present invention. However, those skilled in the art can fully understand the present invention without the description of these details. In addition, in order to avoid unnecessary confusion to the essence of the present invention, well-known methods, processes, procedures, components, and circuits are not described in detail.
[0050] The above are only the preferred embodiments of the present invention. It should be noted that for those of ordinary skill in the art, without departing from the principle of the present invention, several improvements and refinements can be made, and these improvements and refinements should also be regarded as the protection scope of the present invention.
Claims
1. Intelligent modular photography studio atmosphere light, characterized in that, It includes a base (1), above the rear end of the base (1) there is an arc-shaped column (2), inside the arc-shaped column (2) there is a backboard (3), inside the upper end of the backboard (3) there is a push-pull module (4), in front of the push-pull module (4) there is a front light (5), on the front side of the upper end of the base (1) there is an arc-shaped groove (6), on the left and right sides of the arc-shaped groove (6) there are meshing motors (7), inside the arc-shaped groove (6) there is a sliding module (8), inside the front end of the sliding module (8) there is a support module (9), on the front side of the upper end of the support module (9) there is a side light (10) clamped and installed, below the backboard (3) there is a control integration box (11), on the front and rear sides of the lower end of the base (1) there are displacement wheels (12).
2. The intelligent modular photography studio atmosphere light according to claim 1, characterized in that The base (1) includes a rectangular plate (101), an inner arc plate (102), a bottom plate (103), an upper plate (104), an embedding groove (105), a limiting groove (106) and a mounting hole (107). In front of the rectangular plate (101) there is an inner arc plate (102), below the inner arc plate (102) there is a bottom plate (103), above the inner arc plate (102) there is an upper plate (104), on the left and right sides of the upper end of the inner arc plate (102) there are embedding grooves (105), on the front side of the upper end of the upper plate (104) there is a limiting groove (106), and on the left and right sides behind the limiting groove (106) there are mounting holes (107).
3. The intelligent modular photography studio atmosphere light according to claim 1, characterized in that, The arc-shaped column (2) includes side arc rods (201), a middle arc rod (202), a tightening groove (203), a support screw (204), an adjusting screw (205) and a support spring (206). There are two side arc rods (201) symmetrically distributed on the left and right, and in the middle of the two side arc rods (201) there is a middle arc rod (202), inside the rear end of the middle arc rod (202) there is a tightening groove (203), on the rear side of the lower ends of the side arc rods (201) and the middle arc rod (202) there is a support screw (204), on the front side of the lower ends of the side arc rods (201) and the middle arc rod (202) there is an adjusting screw (205), and in the middle of the outer end of the adjusting screw (205) there is a support spring (206) sleeved and installed.
4. The intelligent modular photography studio atmosphere light according to claim 1, wherein, The backboard (3) includes a plate body (301), a push-pull groove (302), a reinforcement hole (303) and a reinforcement pin (304). Inside the upper end of the plate body (301) there is a push-pull groove (302), on the left and right sides of the outer end of the plate body (301) there are reinforcement holes (303), and inside the reinforcement holes (303) there are reinforcement pins (304) threadedly installed.
5. The intelligent modular photography studio atmosphere light according to claim 1, characterized in that, The push-pull module (4) includes a main push block (401), side push blocks (402), a grip rod (403), a locking rod (404), a card slot (405), and an adjustment motor (406). The side push blocks (402) are symmetrically arranged on the left and right sides of the main push block (401). The grip rods (403) are arranged on the left and right sides of the outer end of the main push block (401). The locking rods (404) are arranged in the middle of the front ends of the main push block (401) and the side push blocks (402). The inner side of the front end of the locking rod (404) is provided with a card slot (405). The adjustment motor (406) is arranged on the right side of the outer end of the locking rod (404).
6. The intelligent modular photography studio atmosphere lamp according to claim 1, wherein The front lamp (5) includes a lamp housing (501), an LED lamp (502), a reflector (503), a magnetic adsorption fixing plate (504), and a handle (505). The LED lamp (502) is embedded and installed inside the lamp housing (501). The reflector (503) is arranged on the outer side of the front end of the lamp housing (501). The magnetic adsorption fixing plate (504) is arranged in the middle of the rear end of the LED lamp (502). The handle (505) is arranged on the rear side of the outer end of the lamp housing (501).
7. The intelligent modular photography studio atmosphere light according to claim 1, characterized in that, The sliding module (8) includes an arc-shaped lying block (801), an engagement groove (802), a rectangular block (803), a support leg (804), and a limit block (805). The engagement groove (802) is opened on the inner side of the rear end of the arc-shaped lying block (801). The rectangular block (803) is arranged on the right end of the arc-shaped lying block (801). The support leg (804) is installed on the middle part of the upper end of the rectangular block (803) by threading. The limit block (805) is arranged on the left side of the upper end of the arc-shaped lying block (801).
8. The intelligent modular photography studio atmosphere light according to claim 1, characterized in that The support module (9) includes a table board (901), clamping blocks (902), threaded pins (903), vertical rods (904), and button blocks (905). The clamping blocks (902) are arranged at the rear end of the table board (901). The threaded pins (903) are arranged on the inner side of the front end of the table board (901). The vertical rod (904) is arranged on the upper end of the table board (901). The button block (905) is installed on the top of the vertical rod (904) by threading.
9. The intelligent modular photography studio atmosphere light according to claim 1, characterized in that, Three notches are horizontally opened on the rear side of the lower end of the base (1). The distribution spacing of the three notches is equal to the installation spacing of the arc-shaped columns (2). Two back plates (3) are symmetrically distributed on the left and right. Both of the two back plates (3) are in mutual contact with the arc-shaped columns (2). The push-pull module (4) is embedded and installed in the notch opened on the upper end of the back plate (3). Six groups of front lamps (5) are horizontally distributed. A meshing gear is installed below the transmission end of the meshing motor (7), and bearings are installed at both the upper and lower ends of the meshing gear. Two groups of sliding modules (8) and support modules (9) are symmetrically distributed.
10. The method of using the intelligent modular photography studio atmosphere light according to any one of claims 1-9, characterized in that, It includes the following steps: Step 1: Before starting work, first, fit and install the platen (901) and the clamping block (902) in the support module (9) together. Then, align the platen (901) and the clamping block (902) that are fitted together with the front end of the arc-shaped lying block (801). Reinforce by using a threaded pin (903) to penetrate the interiors of the platen (901) and the clamping block (902) and threadedly extend to the inner side of the front end of the arc-shaped lying block (801), so that the support module (9) and the sliding module (8) are combined into an integral structure; Step 2: Install the meshing gear and the bearing at the lower end of the meshing motor (7) in the embedding groove (105). For the integral structure formed by combining the support module (9) and the sliding module (8) in Step 1, rely on the angle of the meshing groove (802) opened at the rear side that is mutually adapted with the meshing gear and the inner arc plate (102) to fit together. Then, assemble the inner arc plate (102) with the bottom plate (103) and the upper plate (104) provided to clamp the integral structure formed by the support module (9) and the sliding module (8). Among them, the outer wall at the front end of the limiting groove (106) is clamped with the upper end of the clamping block (902), and the limiting block (805) on the upper right side of the arc-shaped lying block (801) is clamped inside the limiting groove (106). Then, install the meshing motor (7) on the left and right sides at the upper end of the upper plate (104), and let the transmission end of the meshing motor (7) insert into the central notch of the meshing gear and be mutually clamped together to form an integral structure, facilitating subsequent power transmission work; Step 3: Through the provided support screw (204) and adjusting screw (205), install the two side arc rods (201) and the middle arc rod (202) on the upper end of the rectangular plate (101) according to the preset holes and spacing. Then, place the back plate (3) on which the push-pull module (4) and the front light (5) are installed in the reserved space in the middle of the two side arc rods (201) and the middle arc rod (202). Reinforce by passing a reinforcement pin (304) through the interiors of the side arc rod (201) and the middle arc rod (202) and extending it into the interior of the back plate (3). Then, install the control integration box (11) in the space below the back plate (3), and arrange the connection lines between the control integration box (11), the adjusting motor (406), the front light (5), the meshing motor (7), and the side light (10); Step 4: After completing the assembly of the atmosphere lamp and the wiring layout, move the atmosphere lamp to the front of the shooting area in the photography studio through the provided displacement wheel (i2). Then, connect to the external power supply. When it is necessary to adjust the irradiation angle of the front light (5), adjust the tightness of the grip rod (403) to reduce the pulling force of the main push block (401) and the side push block (402). With a little force, the up-and-down sliding can be completed in the push-pull groove (302), thereby adjusting the overall irradiation angle of the front light (5) installed in the front slot (405) at the front end of the clamping rod (404). Subsequently, the fine adjustment of the tilting angle of the front light (5) itself can be completed by controlling the adjusting motor (406) through the control integration box (11); Step Five: When multi-lamp coordination is required, turn on the meshing motor (7) by setting the control integration box (11), drive the lower meshing gear to rotate, and the meshing gear is exactly adapted to the meshing groove (802) opened on the inner side of the outer end of the sliding module (8), so that the sliding module (8) can extend outward from the inner side of the arc-shaped groove (6), and the support module (9) will also drive the side lamp (10) to extend outward, forming an encircling illumination area on both sides in front of the base 1, and cooperating with the front lamp (5) to achieve the coordinated operation of multiple lamps.
Citation Information
Patent Citations
Lamp capable of rotating in all directions
CN119196594A