A barrier structure for effectively preventing the penetration of corrosion factors and a method for using the same

By designing a photovoltaic panel barrier structure including support columns, load-bearing frames and light source tracking sensors, the existing equipment is complicated to install, unable to adjust the light direction and low corrosion resistance, and the effect of simplifying installation, improving power generation efficiency and extending service life is achieved.

CN114553127BActive Publication Date: 2025-06-03XIAMEN ANTAI NEW ENERGY TECH
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Patent Information

Application Number
CN202210217218.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-03-07
Publication Date
2025-06-03
Estimated Expiration
2042-03-07

AI Technical Summary

Technical Problem

The existing ground photovoltaic panel barrier equipment is cumbersome to install, cannot adjust the direction of light, and has low corrosion resistance, resulting in low power generation efficiency and short service life.

Method used

A barrier structure including ground, photovoltaic panels and crossbars was designed. Through the combination of support columns, load-bearing frames, annular chute plates, electric telescopic rods and light source tracking sensors, the effect of simplifying installation, automatic adjustment of the direction of photovoltaic panels and improving corrosion resistance is achieved.

Benefits of technology

It reduces installation costs and time, improves power generation efficiency, extends the service life of photovoltaic panels, and realizes effective prevention and self-repair functions of corrosion factors through the use of galvanized aluminum-magnesium materials.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a barrier structure that effectively prevents corrosion factors from penetrating and its usage method, including a ground, a photovoltaic panel, and a cross bar. Plugging slots are provided on both sides of the top of the ground. Support columns are placed inside the plugging slots. The top ends of the support columns are sleeved with connection frames. The top of the connection frame is fixedly connected with a load-bearing frame through fixing blocks. The present invention relates to the technical field of anti-corrosion barriers. For this barrier structure that effectively prevents corrosion factors from penetrating and its usage method, by separately arranging important structural devices such as support columns, cross bars, and photovoltaic panels, and through the cooperation of connection structures such as load-bearing frames and rotating boxes, when workers install, they do not need to fixedly connect through a large number of bolt assemblies, which not only reduces the installation cost but also improves the installation efficiency, facilitating the use of workers.
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Description

Technical Field

[0001] The present invention relates to the technical field of anti-corrosion barriers, and specifically to a barrier structure that effectively prevents corrosion factors from penetrating and its usage method. Background Art

[0002] In the current mechanical equipment industry, various types of devices emerge in an endless stream. The most common in daily life are ground power station equipment. Ground power stations support and install solar panels through bracket equipment. Its functions can not only be used for power generation, but also be used as a barrier for shading. However, there are many defects in the current use. For example, these devices are too complicated and time-consuming to assemble and install, and a large number of bolt parts are required. Moreover, the photovoltaic panels can only face one direction and cannot change with the movement of the light source, resulting in low power generation efficiency. At the same time, the materials of existing photovoltaic panels reduce the corrosion resistance and shorten the service life of the barrier. Summary of the Invention

[0003] Aiming at the deficiencies of the prior art, the present invention provides a barrier structure that effectively prevents corrosion factors from penetrating and its usage method, solving the problems of cumbersome installation of existing ground photovoltaic panel barrier equipment, inability to adjust the light direction, and low corrosion resistance.

[0004] To achieve the above objectives, the present invention is realized through the following technical solutions: A barrier structure that effectively prevents corrosion factors from penetrating and its usage method, including the ground, photovoltaic panels, and crossbars. Plugging slots are opened on both sides of the top of the ground. Support columns are placed inside the plugging slots. The top of the support columns is sleeved with connection frames. The top of the connection frames is fixedly connected with load-bearing frames through fixing blocks. An annular sliding groove plate is fixedly connected to the inner wall of the load-bearing frames. An annular slider is slidably installed inside the annular sliding groove plate. A circular seat is fixedly connected to the inner side of the annular slider. The crossbars are located between two load-bearing frames. Shrinkage grooves are opened at both ends of the crossbars. Sliding grooves are opened at the top and bottom of the inner cavity of the shrinkage grooves. Sliders are slidably installed inside the sliding grooves. A plug post that cooperates with the shrinkage groove is fixedly connected between the two sliders. A spring is fixedly connected between the end of the plug post located inside the shrinkage groove and the inner side of the shrinkage groove.

[0005] Preferably, limiting grooves are opened on both sides of the circular seat. One end of the plug post away from the crossbar sequentially penetrates through the adjacent load-bearing frame and extends to the inside of the limiting groove. Through holes that cooperate with the plug post are opened on both sides of the load-bearing frame.

[0006] Preferably, a connecting plate is fixedly connected to the surface of the plug post between the crossbar and the load-bearing frame through a bracket. A first electric telescopic rod is rotatably connected to the rear of the support column through a rotating member. The top of the first electric telescopic rod is fixedly connected with a rotating box, and the rotating box is located between the two connecting plates.

[0007] Preferably, a threaded cylinder is rotatably connected to the upper part of one side of the connecting plate by opening an opening. Threaded holes are formed on both sides of the rotating box. A threaded rod that is in threaded connection with the threaded cylinder and is used in cooperation with the threaded hole is arranged inside the threaded cylinder, and one end of the threaded rod extends into the adjacent threaded hole.

[0008] Preferably, a bearing cylinder is fixedly connected to the surface of the cross bar through a bracket, and a plurality of bearing cylinders are provided. A square cylinder is rotatably connected to the inside of the bearing cylinder. A square ring that is used in cooperation with the square cylinder is fixedly connected to the rear part of the photovoltaic panel through a bracket.

[0009] Preferably, a square plug is slidably installed inside the square cylinder and the square ring. A gear is fixedly connected to the top end of the square plug. Second electric telescopic rods are fixedly connected to both sides of the top of the cross bar through fixing blocks.

[0010] Preferably, a rack that is meshed with the gear is fixedly connected between the two second electric telescopic rods through a fixing block. A threaded groove is formed in the lower part of the surface of the support column.

[0011] Preferably, a stabilizing disk is sleeved on the surface of the support column, and the stabilizing disk is in contact with the ground. An internally threaded disk that is used in cooperation with the stabilizing disk is threadedly connected to the surface of the threaded groove.

[0012] Preferably, a light source tracking sensor is fixedly connected to the top of the middle photovoltaic panel through a fixing plate.

[0013] The present invention also discloses a method for using a barrier structure that effectively prevents corrosion factors from penetrating, which specifically includes the following steps:

[0014] S1. During use, the staff first sequentially insert several support columns into the insertion slots, then rotate the internally threaded disk to push the stabilizing disk downward under the cooperation of the threaded groove, and then the stabilizing disk contacts the ground to fix the support columns.

[0015] S2. Subsequently, place the cross bar between the two load-bearing frames, then pull the connecting plate by hand to pull the insertion post backward so that it retracts into the retraction slot. At this time, align the cross bar with the through hole and release the hand. The insertion post penetrates through the through hole and inserts into the inner side of the limit slot under the thrust of the spring. At this time, the cross bar is fixed. Then rotate the threaded rod on one side of the connecting plate to connect with the rotating box, and then sequentially dock and install several photovoltaic panels with the square cylinders. First, make the square ring parallel to the square cylinder, and then use the square plug to insert and connect them. At this time, the photovoltaic panels are fixed, and at the same time, the gear and the rack are also meshed. Then start using.

[0016] S3. During use, the light source tracking sensor operates. The light source tracking sensor can drive the second electric telescopic rod and the first electric telescopic rod to adjust the photovoltaic panel in the left - right, up - down directions according to the sunlight source. The first electric telescopic rod pulling the rotating box can make the cross - bar drive the photovoltaic panel to rotate vertically, while the second electric telescopic rod can drive the rack to move left and right, making the gear drive the photovoltaic panel to rotate left and right, thus achieving the effect of following the light source.

[0017] Beneficial effects

[0018] The present invention provides a barrier structure that effectively prevents corrosion factors from penetrating and its usage method. Compared with the existing technology, it has the following beneficial effects:

[0019] (1). For the barrier structure that effectively prevents corrosion factors from penetrating and its usage method, by separately setting important structural devices such as support columns, cross - bars, and photovoltaic panels, and through the cooperation of connection structures such as load - bearing frames and rotating boxes, when workers install, they do not need to fix and connect through a large number of bolt assemblies. This not only reduces the installation cost but also improves the installation efficiency, facilitating the use of workers.

[0020] (2). For the barrier structure that effectively prevents corrosion factors from penetrating and its usage method, by installing a light source tracking sensor on the top of the photovoltaic panel, and the light source tracking sensor is respectively connected to the second electric telescopic rod and the first electric telescopic rod through wires. When the light source tracking sensor operates, it can effectively sense the direction of the light source, thereby starting the second electric telescopic rod and the first electric telescopic rod to adjust the turning of the photovoltaic panel, enabling it to achieve the function of chasing light, and greatly improving its own power generation efficiency.

[0021] (3). For the barrier structure that effectively prevents corrosion factors from penetrating and its usage method, by making the photovoltaic panel of galvanized aluminum - magnesium material, and its surface coating is formed by high - temperature curing of zinc, aluminum, and magnesium, forming a protective layer for the photovoltaic panel. It can not only effectively prevent corrosion, but also the coating components will continuously emerge to achieve the function of self - repair, extending the service life of the photovoltaic panel, and increasing its practicality and functionality. Brief description of the drawings

[0022] Figure 1 is the structural schematic diagram of the present invention;

[0023] Figure 2 is the cross - sectional view of the ground, load - bearing frame and rotating box structure of the present invention;

[0024] Figure 3 For the present invention Figure 2 is the partial enlarged view at A in;

[0025] Figure 4 For the present inventionFigure 2 Partial enlarged view at B in the figure;

[0026] Figure 5 Side view of the photovoltaic panel, gear and rack structure of the present invention;

[0027] Figure 6 Side view of the connecting plate, first electric telescopic rod and rotating box structure of the present invention.

[0028] In the figure: 1, ground; 2, photovoltaic panel; 3, insertion slot; 4, support column; 5, load-bearing frame; 6, annular sliding groove plate; 7, annular slider; 8, circular seat; 9, cross bar; 10, contraction groove; 11, sliding groove; 12, slider; 13, insertion post; 14, spring; 15, limit groove; 16, through hole; 17, connecting plate; 18, first electric telescopic rod; 19, rotating box; 20, threaded cylinder; 21, threaded hole; 22, threaded rod; 23, bearing cylinder; 24, square cylinder; 26, square pin; 27, gear; 28, square ring; 29, rack; 30, threaded groove; 31, stabilizing plate; 32, internal threaded plate; 33, connecting frame; 34, light source tracking sensor; 35, second electric telescopic rod. Detailed implementation manners

[0029] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0030] Please refer to Figures 1-6 , the present invention provides two technical solutions:

[0031] Embodiment 1

[0032] A barrier structure that effectively prevents corrosion factors from penetrating, including a ground 1, a photovoltaic panel 2 and a cross bar 9. Insertion slots 3 are opened on both sides of the top of the ground 1. Support columns 4 are placed inside the insertion slots 3. The top ends of the support columns 4 are sleeved with a connecting frame 33. The top of the connecting frame 33 is fixedly connected with a load-bearing frame 5 through a fixing block. The inner wall of the load-bearing frame 5 is fixedly connected with an annular sliding groove plate 6. An annular slider 7 is slidably installed inside the annular sliding groove plate 6. The inner side of the annular slider 7 is fixedly connected with a circular seat 8. The cross bar 9 is located between the two load-bearing frames 5. Contraction grooves 10 are opened at both ends of the cross bar 9. Sliding grooves 11 are opened at the top and bottom of the inner cavity of the contraction grooves 10. Sliders 12 are slidably installed inside the sliding grooves 11. An insertion post 13 that cooperates with the contraction groove 10 is fixedly connected between the two sliders 12. A spring 14 is fixedly connected between one end of the insertion post 13 located inside the contraction groove 10 and the inner side of the contraction groove 10.

[0033] As a preferred embodiment, in order to facilitate the installation of the cross bar 9, in the present invention, limiting grooves 15 are provided on both sides of the circular seat 8. One end of the insertion post 13 away from the cross bar 9 sequentially penetrates through the adjacent load-bearing frame 5 and extends to the inside of the limiting groove 15. Through holes 16 that cooperate with the insertion post 13 are provided on both sides of the load-bearing frame 5.

[0034] Embodiment Two

[0035] A barrier structure that effectively prevents corrosion factors from penetrating, including a ground 1, a photovoltaic panel 2, and a cross bar 9. Insertion slots 3 are provided on both sides of the top of the ground 1. Support columns 4 are placed inside the insertion slots 3. A connection frame 33 is sleeved on the top of the support column 4. The top of the connection frame 33 is fixedly connected to a load-bearing frame 5 through a fixing block. An annular sliding groove plate 6 is fixedly connected to the inner wall of the load-bearing frame 5. An annular sliding block 7 is slidably installed inside the annular sliding groove plate 6. A circular seat 8 is fixedly connected to the inside of the annular sliding block 7. The cross bar 9 is located between the two load-bearing frames 5. Shrinkage grooves 10 are provided at both ends of the cross bar 9. Sliding grooves 11 are provided at the top and bottom of the inner cavity of the shrinkage groove 10. Sliding blocks 12 are slidably installed inside the sliding grooves 11. An insertion post 13 that cooperates with the shrinkage groove 10 is fixedly connected between the two sliding blocks 12. A spring 14 is fixedly connected between one end of the insertion post 13 located inside the shrinkage groove 10 and the inside of the shrinkage groove 10.

[0036] As a preferred embodiment, in order to facilitate the installation of the cross bar 9, in the present invention, limiting grooves 15 are provided on both sides of the circular seat 8. One end of the insertion post 13 away from the cross bar 9 sequentially penetrates through the adjacent load-bearing frame 5 and extends to the inside of the limiting groove 15. Through holes 16 that cooperate with the insertion post 13 are provided on both sides of the load-bearing frame 5.

[0037] As a preferred embodiment, in order to install the photovoltaic panel 2 and enable stable rotation, in the present invention, a bearing cylinder 23 is fixedly connected to the surface of the cross bar 9 through a bracket, and a plurality of bearing cylinders 23 are provided. A square cylinder 24 is rotatably connected to the inside of the bearing cylinder 23. A square ring 28 that cooperates with the square cylinder 24 is fixedly connected to the rear of the photovoltaic panel 2 through a bracket. A light source tracking sensor 34 is fixedly connected to the top of the middle photovoltaic panel 2 through a fixing plate. A square insertion pin 26 is slidably installed inside the square cylinder 24 and the square ring 28. A gear 27 is fixedly connected to the top of the square insertion pin 26. Second electric telescopic rods 35 are fixedly connected to both sides of the top of the cross bar 9 through fixing blocks. A rack 29 that meshes with the gear 27 is fixedly connected between the two second electric telescopic rods 35 through a fixing block. A threaded groove 30 is provided in the lower part of the surface of the support column 4. A stabilizing disc 31 is sleeved on the surface of the support column 4, and the stabilizing disc 31 is in contact with the ground 1. An internal threaded disc 32 that cooperates with the stabilizing disc 31 is threadedly connected to the surface of the threaded groove 30

[0038] As a preferred embodiment, in order to drive the photovoltaic panel 2 to turn, in the present invention, a connecting plate 17 is fixedly connected to the surface of the insertion post 13 between the cross bar 9 and the load-bearing frame 5 through a bracket. The rear part of the support column 4 is rotatably connected to a first electric telescopic rod 18 through a rotating member. The top end of the first electric telescopic rod 18 is fixedly connected to a rotating box 19, and the rotating box 19 is located between the two connecting plates 17. The upper part of one side of the connecting plate 17 is rotatably connected to a threaded cylinder 20 through an opening. Threaded holes 21 are formed on both sides of the rotating box 19. A threaded rod 22 that is in threaded connection with the threaded cylinder 20 and is used in cooperation with the threaded hole 21 is connected to the inner side of the threaded cylinder 20, and one end of the threaded rod 22 extends into the adjacent threaded hole 21.

[0039] The advantages of the second embodiment compared to the first embodiment are as follows: By installing a light source tracking sensor 34 on the top of the photovoltaic panel 2, and the light source tracking sensor 34 is electrically connected to the second electric telescopic rod 35 and the first electric telescopic rod 18 respectively. When the light source tracking sensor 34 is working, it can effectively sense the orientation of the light source, so that the second electric telescopic rod 35 and the first electric telescopic rod 18 can be started to adjust the turning of the photovoltaic panel 2, enabling it to achieve the function of chasing light, greatly improving its own power generation efficiency. By making the photovoltaic panel 2 of galvanized aluminum-magnesium material, and its surface coating is formed by high-temperature curing of zinc, aluminum, and magnesium, a protective layer is formed for the photovoltaic panel 2, which can not only effectively prevent corrosion, but also the coating components will continuously emerge to achieve the function of self-repair, extend the service life of the photovoltaic panel 2, and increase its practicability and functionality.

[0040] The usage method of the above-mentioned barrier structure that effectively prevents the penetration of corrosion factors specifically includes the following steps:

[0041] S1. During use, the staff first inserts several support columns 4 into the insertion slots 3 in sequence, then rotates the internal thread disk 32 to push the stabilizing disk 31 downward in cooperation with the thread groove 30, and then the stabilizing disk 31 contacts the ground 1 to fix the support column 4.

[0042] S2. Subsequently, place the cross bar 9 between the two load-bearing frames 5, then pull the connecting plate 17 by hand to pull the insertion post 13 backward so that it retracts into the retraction groove 10. At this time, align the cross bar 9 with the through hole 16 and release the hand. The insertion post 13 is inserted into the inner side of the limit groove 15 through the through hole 16 under the thrust of the spring 14. At this time, the cross bar 9 is fixed. Then rotate the threaded rod 22 on one side of the connecting plate 17 to connect with the rotating box 19, and then sequentially dock and install several photovoltaic panels 2 with the square tubes 24. First, make the square ring 28 parallel to the square tube 24, and then use the square pin 26 to insert it. At this time, the photovoltaic panel 2 is fixed, and at the same time, the gear 27 and the rack 29 are also engaged, and then start to use.

[0043] S3. During use, the light source tracking sensor 34 operates. The light source tracking sensor 34 can drive the second electric telescopic rod 35 and the first electric telescopic rod 18 to adjust the photovoltaic panel 2 in the left-right and up-down directions according to the light source of the sun. The first electric telescopic rod 18 pulls the rotating box 19, enabling the cross bar 9 to drive the photovoltaic panel 2 to rotate vertically. The second electric telescopic rod 35 can drive the rack 29 to move left and right, causing the gear 27 to drive the photovoltaic panel 2 to rotate left and right, thereby achieving the effect of following the light source.

[0044] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A barrier structure that effectively prevents corrosion factors from penetrating, comprising a ground (1), a photovoltaic panel (2), and a crossbar (9). Characterized in that: Insertion grooves (3) are formed on both sides of the top of the ground (1). A support column (4) is placed inside the insertion groove (3). The top of the support column (4) is sleeved with a connection frame (33). The top of the connection frame (33) is fixedly connected with a load-bearing frame (5) through a fixing block. An annular chute plate (6) is fixedly connected to the inner wall of the load-bearing frame (5). An annular slider (7) is slidably installed inside the annular chute plate (6). A circular seat (8) is fixedly connected to the inner side of the annular slider (7). The crossbar (9) is located between the two load-bearing frames (5). Shrinkage grooves (10) are formed at both ends of the crossbar (9). Sliding grooves (11) are formed at the top and bottom of the inner cavity of the shrinkage groove (10). A slider (12) is slidably installed inside the sliding groove (11). A plug post (13) that cooperates with the shrinkage groove (10) is fixedly connected between the two sliders (12). A spring (14) is fixedly connected between one end of the plug post (13) located inside the shrinkage groove (10) and the inner side of the shrinkage groove (10). Limit grooves (15) are formed on both sides of the circular seat (8). One end of the plug post (13) away from the crossbar (9) sequentially penetrates through the adjacent load-bearing frame (5) and extends to the inside of the limit groove (15). Through holes (16) that cooperate with the plug post (13) are formed on both sides of the load-bearing frame (5). A connecting plate (17) is fixedly connected to the surface of the plug post (13) between the crossbar (9) and the load-bearing frame (5) through a bracket. A first electric telescopic rod (18) is rotatably connected to the rear of the support column (4) through a rotating member. The top of the first electric telescopic rod (18) is fixedly connected with a rotating box (19), and the rotating box (19) is located between the two connecting plates (17). A threaded cylinder (20) is rotatably connected to the upper part of one side of the connecting plate (17) through an opening. Threaded holes (21) are formed on both sides of the rotating box (19). A threaded rod (22) that cooperates with the threaded hole (21) is threadedly connected to the inside of the threaded cylinder (20), and one end of the threaded rod (22) extends into the adjacent threaded hole (21). A bearing cylinder (23) is fixedly connected to the surface of the crossbar (9) through a bracket, and a plurality of bearing cylinders (23) are provided. A square cylinder (24) is rotatably connected to the inside of the bearing cylinder (23). A square ring (28) that cooperates with the square cylinder (24) is fixedly connected to the rear of the photovoltaic panel (2) through a bracket. A square plug (26) is slidably installed inside the square cylinder (24) and the square ring (28). A gear (27) is fixedly connected to the top of the square plug (26). Second electric telescopic rods (35) are fixedly connected to both sides of the top of the crossbar (9) through fixing blocks. A rack (29) meshing with a gear (27) is fixedly connected between the two second electric telescopic rods (35) through a fixed block, and a threaded groove (30) is formed in the lower part of the surface of the support column (4).

2. A barrier structure for effectively preventing corrosion factors from penetrating according to claim 1, characterized in that: A stabilizing disc (31) is sleeved on the surface of the support column (4), and the stabilizing disc (31) is in contact with the ground (1). An internally threaded disc (32) that cooperates with the stabilizing disc (31) is threadedly connected to the surface of the threaded groove (30).

3. A method for using a barrier structure for effectively preventing corrosion factors from penetrating according to claim 2, characterized in that: A light source tracking sensor (34) is fixedly connected to the top of the middle photovoltaic panel (2) through a fixing plate.

4. A method for using a barrier structure for effectively preventing corrosion factors from penetrating according to claim 3, characterized in that: Specifically, it includes the following steps: S1. During use, the staff first inserts several support columns (4) into the insertion slots (3) in sequence, and then rotates the internally threaded disc (32) to push the stabilizing disc (31) downward under the cooperation of the threaded groove (30). Then, the stabilizing disc (31) contacts the ground (1) to fix the support column (4). S2. Subsequently, place the cross bar (9) between the two load-bearing frames (5), and then pull the connecting plate (17) by hand to pull the insertion post (13) backward so that it retracts into the retraction groove (10). At this time, align the cross bar (9) with the through hole (16) and release the hand. The insertion post (13) is pushed through the through hole (16) by the spring (14) and inserted into the inner side of the limit groove (15). At this time, the cross bar (9) is fixed. Then, rotate the threaded rod (22) on one side of the connecting plate (17) to connect with the rotating box (19), and then connect several photovoltaic panels (2) to the square tube (24) in sequence. First, make the square ring (28) parallel to the square tube (24), and then use a square pin (26) to insert and connect them. At this time, the photovoltaic panel (2) is fixed, and at the same time, the gear (27) and the rack (29) are also engaged. Then, start using. S3. During use, the light source tracking sensor (34) works. The light source tracking sensor (34) can drive the second electric telescopic rod (35) and the first electric telescopic rod (18) to adjust the photovoltaic panel (2) in the left-right and up-down directions according to the light source of the sun. The first electric telescopic rod (18) pulls the rotating box (19) to enable the cross bar (9) to drive the photovoltaic panel (2) to rotate vertically, and the second electric telescopic rod (35) can drive the rack (29) to move left and right, so that the gear (27) drives the photovoltaic panel (2) to rotate left and right, thereby achieving the effect of following the light source.

Citation Information

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