Photovoltaic panel processing and carrying device
The combined design of the photovoltaic transport rack and the snap-on plate solves the problems of friction and cumbersome snap-on during the transportation of photovoltaic panels, achieves anti-slip, buffering and positioning, and improves transportation efficiency and prevents scratches.
Patent Information
- Application Number
- CN202510949831.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-10
- Publication Date
- 2025-09-23
- Estimated Expiration
- 2045-07-10
AI Technical Summary
Existing photovoltaic panels are easily scratched due to friction during transportation, and the clamping and positioning process is cumbersome and time-consuming.
Photovoltaic transport racks, photovoltaic panel clamping plates, corner support arm plates, push pressure columns and downward pressure columns are used to avoid friction and shaking of photovoltaic panels during transportation through friction enhancement, buffering and limit design.
Effectively prevent scratches on the surface of photovoltaic panels, improve handling efficiency, reduce manual operations, and simplify the clamping process.
Smart Images

Figure CN120681532A_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of photovoltaic panel transportation, in particular to a photovoltaic panel processing and transportation device. Background Art
[0002] Photovoltaic panels, also known as solar panels, are devices that convert solar energy into electricity. Based on the photovoltaic effect, when sunlight shines on a photovoltaic panel, photons interact with the semiconductor material within the panel, releasing electrons, forming an electric current and generating electricity.
[0003] A patent with publication number CN118515036A discloses a photovoltaic panel handling device, comprising: a frame body, comprising a first frame and a second frame rotatably connected to the first frame, the second frame being located above the first frame and the lower surface of the second frame being adapted to fit the roof; a handling assembly, located on the upper surface of the frame body and slidably connected to the upper surface of the frame body, the handling assembly being used to limit the position of the photovoltaic panel; and a driving assembly, connected to the handling assembly and adapted to drive the handling assembly to slide on the upper surface of the frame body. Rotating the first frame and the second frame together can keep the angle between the first frame and the second frame compatible with the inclination of the roof, thereby reducing handling risks, improving handling efficiency, and increasing the versatility of the photovoltaic panel handling device. In addition, through the mutual cooperation of the handling assembly and the driving assembly, the automation of photovoltaic panel handling can be achieved, reducing the labor intensity of staff and improving handling efficiency.
[0004] In the current existing technology, since the surface of the photovoltaic panel is glass, in order to increase the transmittance of the light source, the surface of the glass will be very smooth and pure. When the existing photovoltaic panels are processed and transported, the photovoltaic panels will be stacked on each other. During transportation, the transport vehicle and the transport device will produce slight shaking, which will cause friction between the photovoltaic panels, and then cause scratches on the surface of the glass due to friction, which will cause the glass surface to become blurred. If the photovoltaic panels are clamped and positioned, employees will need to clamp and disassemble each group of photovoltaic panels, which will waste a lot of time and the process is relatively cumbersome.
[0005] To this end, the present invention provides a photovoltaic panel processing and transporting device. Summary of the Invention
[0006] In order to make up for the deficiencies of the prior art, at least one technical problem raised in the background technology is solved.
[0007] The technical solution adopted by the present invention to solve its technical problem is as follows: a photovoltaic panel processing and handling device according to the present invention comprises a photovoltaic transport frame and a photovoltaic panel clamping plate movably sleeved on the inner wall surface of the photovoltaic transport frame, a photovoltaic panel movably sleeved on the inner wall surface of the photovoltaic panel clamping plate, a top surface of the photovoltaic transport frame and located at the four edges thereof are provided with corner support arm plates, and a top surface of the corner support arm plate and located at the edge position of one side is provided with a rounded corner; The bottom surface of the photovoltaic panel clamping plate is fixedly installed with a raised buffer seat on the four edges, and an inward groove is provided on the inner wall of the raised buffer seat, and a pushing pressure column and a lower pressure column are movably sleeved on the inner wall of the inward groove, and an R-shaped fillet 1 is provided on the bottom surface of the pushing pressure column and the edge positions at both ends, and an R-shaped fillet 2 is provided on the top surface of the lower pressure column and the outer surface of the R-shaped fillet 1 is fitted therewith, and a limiting sleeve is movably sleeved on the bottom surface of the lower pressure column, and a swinging soft plate is provided on both ends of the limiting sleeve, and a silicone anti-slip soft strip is fixedly connected to the bottom surface of the swinging soft plate.
[0008] Preferably, a limiting strip is fixedly connected to the top inner wall surface of the sunken groove, a limiting groove is provided on the top outer surface of the pushing pressure column, and the outer surface of the limiting strip is movably sleeved on the inner wall surface of the limiting groove.
[0009] Preferably, an elastic pushing wire is fixedly connected to the inner wall surface of one side of the sunken groove at a horizontal angle position of the pushing pressure column, and the other end of the elastic pushing wire is fixedly connected to the outer surface of one end of the pushing pressure column.
[0010] Preferably, both side surfaces of the bottom end of the downward pressing column are fixedly connected with downward pressing laminating plates, and the top surface of the downward pressing laminating plates is fixedly connected with a back drawing wire.
[0011] Preferably, the other end of the pull-back wire is fixedly connected to the inner wall surface of the sunken groove, and the damping rod and the shock-absorbing buffer wire are fixedly connected to the bottom surface of the downward pressure column respectively.
[0012] Preferably, the damping rod is arranged inside the shock-absorbing buffer wire, and the other ends of the damping rod and the shock-absorbing buffer wire are fixedly connected to the top surface of the limiting housing.
[0013] Preferably, a downward-pressing top cover is movably sleeved on the top surface of the photovoltaic panel snap-in plate, and recessed docking grooves are symmetrically provided on the outer surfaces of the photovoltaic panel snap-in plate and the downward-pressing top cover, and a C-shaped docking buckle is movably sleeved on the inner wall surface of the recessed docking groove.
[0014] Preferably, an extrusion anti-sway strip is fixedly connected to the inner wall surface of the photovoltaic panel clamping plate, and the outer surface of the photovoltaic panel is movably overlapped on the outer surface of the extrusion anti-sway strip.
[0015] Preferably, a shock-absorbing pump is fixedly connected to the top surface of the photovoltaic transport rack and located at the four edges. A lap support plate is provided on the top surface of the shock-absorbing pump, and a closed lap plate is swingably connected to the top surface of the corner support arm plate.
[0016] Preferably, a photovoltaic panel transport trolley is provided on the bottom surface of the photovoltaic transport rack, and a closing cover is swingably connected to the top surface of the photovoltaic panel transport trolley.
[0017] The beneficial effects of the present invention are as follows: 1. A photovoltaic panel processing and handling device described in the present invention, after the photovoltaic panel is received into the interior of the photovoltaic panel card connecting plate, an intelligent lifting device is used to move the photovoltaic panel card connecting plate and connect it to the interior of the photovoltaic transport rack. At this time, the corner positions of the photovoltaic panel card connecting plate are limited by the corner support arm plate. When the photovoltaic panel card connecting plate is lowered, the gravity of the photovoltaic panel card connecting plate and the photovoltaic panel itself is used to slide inside the corner support arm plate, so that the photovoltaic panel card connecting plate can be lowered in a vertical state, thereby avoiding the situation where the position of the photovoltaic panel card connecting plate cannot be limited when the photovoltaic panel card connecting plates are stacked, which easily causes the photovoltaic panel card connecting plate to have a positional offset effect when it is lowered; 2. In the photovoltaic panel processing and handling device described in the present invention, after the lower pressure column moves out from the interior of the raised buffer seat, when two photovoltaic panel clamping plates are stacked, the bottom surface of the swinging soft plate will preferentially overlap the top surface of the previous photovoltaic panel clamping plate. The swinging soft plate is deformed by the external force, causing the silicone anti-slip soft strip on the bottom surface of the swinging soft plate to be stretched and adhere to the top surface of the photovoltaic panel clamping plate, thereby increasing the friction and anti-slip effect between the lower pressure column and the photovoltaic panel clamping plates; 3. In the photovoltaic panel processing and handling device described in the present invention, after the lower pressure column moves out of the raised buffer seat, the drop cavity between the lower pressure column and the photovoltaic panel clamping plate is used to provide a certain buffer space for the vibration of the photovoltaic panel clamping plate during transportation, thereby preventing the two photovoltaic panels from being directly pressed together, which would cause shaking during transportation and lead to friction between the two photovoltaic panels, thereby causing scratches on the photovoltaic panel surface; 4. A photovoltaic panel processing and handling device described in the present invention, when the photovoltaic panel clamping plate is moved to a suitable position, the photovoltaic panel clamping plate is lifted out from the inside of the corner support arm plate in cooperation with the lifting device. At this time, after the surface of one end of the pushing pressure column is separated from the inner wall surface of the corner support arm plate, the elastic pushing wire is cooperated to push the pushing pressure column in the opposite direction, and then the pushing pressure column is separated from the inside of the sunken groove. At this time, after the pushing pressure column moves away from the top surface of the lower pressure column, the top end of the lower pressure column is no longer blocked by the pushing pressure column, and under the elastic pullback of the pullback wire, the lower pressure column is re-closed into the inside of the sunken groove, thereby performing a recycling process on the lower pressure column; 5. The photovoltaic panel processing and handling device described in the present invention utilizes the spring wire size of the elastic pushing wire to be thicker than the spring size of the back-pull wire, thereby making the elasticity of the elastic pushing wire greater than the elasticity of the back-pull wire, so that when the back-pull wire pulls back the lower pressure column and overlaps the bottom surface of the pushing pressure column, the elastic push of the elastic pushing wire can easily move the pushing pressure column away from the top surface of the lower pressure column, so that the lower pressure column can be easily retracted into the inside of the sunken groove, avoiding the effect that the elastic pushing wire is not easy to separate the pushing pressure column from the top surface of the lower pressure column under the elastic pull of the back-pull wire. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The present invention will be further described below with reference to the accompanying drawings.
[0019] Figure 1 is a perspective view of the present invention; Figure 2 is a three-dimensional diagram of the photovoltaic panel transport vehicle of the present invention; Figure 3 This is a perspective view of the photovoltaic transport rack in the present invention; Figure 4 This is a three-dimensional diagram of the photovoltaic panel clamping plate in the present invention; Figure 5 This is a perspective view of the photovoltaic panel clamping plate of the present invention; Figure 6 This is a perspective view of the photovoltaic panel snap-in plate in the present invention; Figure 7 This is a sectional perspective view of the raised buffer seat of the present invention; Figure 8 This is a stereoscopic diagram of the push-pull pressurizing column in the present invention; Figure 9 It is a sectional stereoscopic view of the lower pressure column in the present invention.
[0020] In the figure: 11. Photovoltaic panel transport vehicle; 111. Closed cover; 12. Photovoltaic transport rack; 121. Corner support arm plate; 122. Rounded corner; 123. Shock-absorbing pump; 124. Overlap support plate; 125. Closed overlap plate; 13. Photovoltaic panel snap-in plate; 131. Press-down top cover; 132. Recessed docking groove; 133. C-shaped docking buckle; 134. Squeeze anti-sway soft strip; 135. Pad cushion seat; a1. Recessed groove; a2. Limit strip; a3. Elastic push wire; a4. Pull-back wire; a5. Push pressure column; a6. R-shaped rounded corner 1; a7. Press-down column; a8. R-shaped rounded corner 2; a9. Press-down laminating plate; a10. Damping rod; a11. Shock-absorbing buffer wire; a12. Limit sleeve; a13. Swing soft plate; a14. Silicone anti-slip soft strip; 14. Photovoltaic panel. DETAILED DESCRIPTION
[0021] In order to make the technical means, creative features, objectives and effects achieved by the present invention easier to understand, the present invention is further described below in conjunction with specific implementation methods.
[0022] like Figure 1 and Figures 3 to 9 As shown, a photovoltaic panel processing and handling device according to an embodiment of the present invention includes a photovoltaic transport frame 12 and a photovoltaic panel clamping plate 13 movably sleeved on the inner wall surface of the photovoltaic transport frame 12, a photovoltaic panel 14 movably sleeved on the inner wall surface of the photovoltaic panel clamping plate 13, a top surface of the photovoltaic transport frame 12 and located at the four edges thereof are provided with a corner support arm plate 121, and a top surface of the corner support arm plate 121 and located at the edge position of one side is provided with a rounded corner 122; The bottom surface of the photovoltaic panel clamping plate 13 is fixedly installed with a raised buffer seat 135 on the edge position around it, and an inward recessed groove a1 is provided on the inner wall surface of the raised buffer seat 135. A pushing pressure column a5 and a downward pressure column a7 are movably sleeved on the inner wall surface of the inward recessed groove a1. The bottom surface of the pushing pressure column a5 and the edge positions at both ends are respectively provided with an R-shaped fillet a6, and the top surface of the downward pressure column a7 and the outer surface of the R-shaped fillet a6 are provided with an R-shaped fillet a8. A limiting sleeve a12 is movably sleeved on the bottom surface of the downward pressure column a7, and a swinging soft plate a13 is provided on both ends of the limiting sleeve a12. A silicone anti-slip soft strip a14 is fixedly connected to the bottom surface of the swinging soft plate a13.
[0023] After the photovoltaic panel 14 is clipped into the photovoltaic panel clip plate 13, the intelligent lifting device is used to move the photovoltaic panel clip plate 13 and clip it into the photovoltaic transport rack 12. At this time, the corner positions of the photovoltaic panel clip plate 13 are limited by cooperating with the corner support arm plate 121. When the photovoltaic panel clip plate 13 is lowered, the gravity of the photovoltaic panel clip plate 13 and the photovoltaic panel 14 themselves is used to slide inside the corner support arm plate 121, so that the photovoltaic panel clip plate 13 can be lowered in a vertical state, avoiding the situation where the position of the photovoltaic panel clip plate 13 cannot be limited when the photovoltaic panel clip plates 13 are stacked, which easily causes the photovoltaic panel clip plate 13 to have a positional offset when it is lowered. When the photovoltaic panel clamping plate 13 is clamped to the inner wall of the corner support arm plate 121, the rounded corner 122 on the top surface of the corner support arm plate 121 is pressed and fitted with the R-shaped rounded corner a6 on the outer surface of the push-pressurizing column a5. Under the extrusion of the rounded corner 122, the gradual rounded corner of the R-shaped rounded corner a6 is used to reduce the friction between the R-shaped rounded corner a6 and the rounded corner 122, so that the push-pressurizing column a5 is retracted into the inside of the sunken groove a1 under the continuous extrusion of the rounded corner 122, and under the obstruction of the corner support arm plate 121, the push-pressurizing column a5 is pushed back. a5 will always retract inside the sunken groove a1, and effectively prevent the lower pressure column a7 from being pushed outward when it is subjected to the upward extrusion force, and the R-shaped fillet a6 on the other side surface of the push-pressurizing column a5 will squeeze the top of the lower pressure column a7, and the R-shaped fillet a8 on the outer surface of the top of the lower pressure column a7 will be used to push the lower pressure column a7 outward under the pressure of the push-pressurizing column a5, thereby creating a certain drop gap between the lower pressure column a7 and the raised buffer seat 135; When the lower pressure column a7 moves out from the inside of the cushioning buffer seat 135, when the two photovoltaic panel clamping plates 13 are stacked, the bottom surface of the swinging soft plate a13 will preferentially overlap the top surface of the previous photovoltaic panel clamping plate 13, and the swinging soft plate a13 is deformed under the external force, and the silicone anti-slip soft strip a14 on the bottom surface of the swinging soft plate a13 is stretched and adhered to the top surface of the photovoltaic panel clamping plate 13, thereby increasing the friction and anti-slip effect between the lower pressure column a7 and the photovoltaic panel clamping plate 13; When the lower pressure column a7 moves out from the inside of the raised buffer seat 135, the drop cavity between the lower pressure column a7 and the photovoltaic panel clamping plate 13 is used to provide a certain buffer space for the vibration of the photovoltaic panel clamping plate 13 during transportation of the photovoltaic panel 14, thereby avoiding the two photovoltaic panels 14 from directly fitting together. During transportation, shaking will occur, resulting in friction between the two photovoltaic panels 14, and the surface of the photovoltaic panel 14 will be scratched.
[0024] like Figures 7 to 9 As shown, a limiting strip a2 is fixedly connected to the inner wall surface of the top of the sunken groove a1, and a limiting groove is provided on the outer surface of the top of the push-pressurizing column a5. The outer surface of the limiting strip a2 is movably sleeved on the inner wall surface of the limiting groove. An elastic pushing wire a3 is fixedly connected to the inner wall surface of one side of the sunken groove a1 and is located at a horizontal angle position of the push-pressurizing column a5, and the other end of the elastic pushing wire a3 is fixedly connected to the outer surface of one end of the push-pressurizing column a5. The surfaces on both sides of the bottom end of the lower pressure column a7 are A downward pressing bonding plate a9 is fixedly connected to the surface, and a back-drawing wire a4 is fixedly connected to the top surface of the downward pressing bonding plate a9. The other end of the back-drawing wire a4 is fixedly connected to the inner wall of the sunken groove a1. The damping rod a10 and the shock-absorbing buffer wire a11 are fixedly connected to the bottom surface of the downward pressing column a7, and the position of the damping rod a10 is set inside the shock-absorbing buffer wire a11. The other ends of the damping rod a10 and the shock-absorbing buffer wire a11 are fixedly connected to the top surface of the limiting sleeve a12.
[0025] When the photovoltaic panel connecting plate 13 moves to the appropriate position, the photovoltaic panel connecting plate 13 is lifted out from the inside of the corner support arm plate 121 in cooperation with the lifting device. At this time, after the end surface of the pushing pressure column a5 is separated from the inner wall surface of the corner support arm plate 121, the elastic pushing wire a3 is cooperated with the pushing pressure column a5 to push the pushing pressure column a5 in the opposite direction, thereby separating the pushing pressure column a5 from the inside of the sunken groove a1. At this time, after the pushing pressure column a5 moves away from the top surface of the lower pressure column a7, the top end of the lower pressure column a7 is no longer blocked by the pushing pressure column a5, and under the elastic pullback of the pullback wire a4, the lower pressure column a7 is re-closed into the inside of the sunken groove a1, thereby recycling the lower pressure column a7. The spring wire size of the elastic pushing wire a3 is thicker than the spring size of the back-pull wire a4, thereby making the elasticity of the elastic pushing wire a3 greater than the elasticity of the back-pull wire a4, so that when the back-pull wire a4 pulls back the lower pressure column a7 and overlaps the bottom surface of the push-pressure column a5, the elastic force of the elastic pushing wire a3 can easily move the push-pressure column a5 away from the top surface of the lower pressure column a7, so that the lower pressure column a7 can be easily retracted into the inside of the sunken groove a1, avoiding the effect that the elastic pushing wire a3 is not easy to separate the push-pressure column a5 from the top surface of the lower pressure column a7 under the elastic pull of the back-pull wire a4; When the lower pressure column a7 is separated from the inside of the raised buffer seat 135, the swing soft plate a13 can be overlapped on the top surface of the lower pressure top cover 131. The vibration force generated when the photovoltaic panel clamping plate 13 is transported is elastically buffered by the shock-absorbing buffer wire a11 to buffer the vibration of the photovoltaic panel clamping plate 13, and the damping rod a10 is used to move the vibration of the shock-absorbing buffer wire a11 vertically up and down to avoid the tilting effect when the lower pressure column a7 moves up and down.
[0026] like Figures 1 to 6 As shown, a downward pressure top cover 131 is movably sleeved on the top surface of the photovoltaic panel snap-in plate 13, and recessed docking grooves 132 are symmetrically provided on the outer surfaces of the photovoltaic panel snap-in plate 13 and the downward pressure top cover 131. A C-shaped docking buckle 133 is movably sleeved on the inner wall surface of the recessed docking groove 132. An extrusion anti-sway soft strip 134 is fixedly connected on the inner wall surface of the photovoltaic panel snap-in plate 13, and the outer surface of the photovoltaic panel 14 is movably overlapped on the outer surface of the extrusion anti-sway soft strip 134. A shock-absorbing pump 123 is fixedly connected to the top surface of the photovoltaic transport frame 12 and located at the edge positions thereof. A lap support plate 124 is provided on the top surface of the shock-absorbing pump 123, and a closed lap plate 125 is swingably connected to the top surface of the corner support arm plate 121. A photovoltaic panel transport vehicle 11 is provided on the bottom surface of the photovoltaic transport frame 12, and a closed cover 111 is swingably connected to the top surface of the photovoltaic panel transport vehicle 11.
[0027] After the photovoltaic panel 14 is overlapped inside the photovoltaic panel clamping plate 13, the photovoltaic panel 14 is used to squeeze the surface of the anti-sway soft strip 134. The deformed anti-sway soft strip 134 can effectively fit the outer surface of the photovoltaic panel 14. The anti-sway soft strip 134 is used to raise the photovoltaic panel clamping plate 13, so that the vibration force generated during the transportation of the photovoltaic panel 14 can be buffered. When the pressing top cover 131 is sleeved on the top surface of the photovoltaic panel clamping plate 13, the C-shaped docking buckle 133 is clamped into the inside of the sunken docking groove 132. The C-shaped docking buckle 133 is used to limit the position of the photovoltaic panel clamping plate 13 and the pressing top cover 131 to prevent the pressing top cover 131 from shaking apart during transportation. The closed photovoltaic panel connecting plate 13 is inserted into the interior of the corner support arm plate 121. At this time, the top surface of the photovoltaic panel connecting plate 13 is limited by the overlapping support plate 124. When multiple groups of photovoltaic panel connecting plates 13 are stacked together, they will form a whole. The overweight photovoltaic panel connecting plate 13 will generate excessive vibration force during transportation. At this time, the photovoltaic panel connecting plate 13 will generate downward pressure on the overlapping support plate 124. At this time, the overlapping support plate 124 is used to squeeze the shock-absorbing pump 123, and the shock-absorbing pump 123 is used to perform elastic buffering on the downward pressure of the photovoltaic panel connecting plate 13 to avoid the overweight photovoltaic panel connecting plate 13 from generating excessive pressure on the bottom photovoltaic panel connecting plate 13, which will cause damage to the bottom photovoltaic panel connecting plate 13.
[0028] Working principle: After the photovoltaic panel 14 is clipped into the photovoltaic panel connecting plate 13, the intelligent lifting device is used to move the photovoltaic panel connecting plate 13 and connect it to the inside of the photovoltaic transport rack 12. At this time, the corner positions of the photovoltaic panel connecting plate 13 are limited by cooperating with the corner support arm plate 121. When the photovoltaic panel connecting plate 13 is lowered, the gravity of the photovoltaic panel connecting plate 13 and the photovoltaic panel 14 themselves is used to slide inside the corner support arm plate 121, so that the photovoltaic panel connecting plate 13 can be lowered in a vertical state, avoiding the situation where the position of the photovoltaic panel connecting plate 13 cannot be limited when the photovoltaic panel connecting plate 13 is stacked, which easily leads to the effect of positional deviation of the photovoltaic panel connecting plate 13 when it is lowered. When the photovoltaic panel clamping plate 13 is clamped to the inner wall of the corner support arm plate 121, the rounded corner 122 on the top surface of the corner support arm plate 121 is pressed and fitted with the R-shaped rounded corner a6 on the outer surface of the push-pressurizing column a5. Under the extrusion of the rounded corner 122, the gradual rounded corner of the R-shaped rounded corner a6 is used to reduce the friction between the R-shaped rounded corner a6 and the rounded corner 122, so that the push-pressurizing column a5 is retracted into the inside of the sunken groove a1 under the continuous extrusion of the rounded corner 122, and under the obstruction of the corner support arm plate 121, the push-pressurizing column a5 is pushed back. a5 will always retract inside the sunken groove a1, and effectively prevent the lower pressure column a7 from being pushed outward when it is subjected to the upward extrusion force, and the R-shaped fillet a6 on the other side surface of the push-pressurizing column a5 will squeeze the top of the lower pressure column a7, and the R-shaped fillet a8 on the outer surface of the top of the lower pressure column a7 will be used to push the lower pressure column a7 outward under the pressure of the push-pressurizing column a5, thereby creating a certain drop gap between the lower pressure column a7 and the raised buffer seat 135; When the lower pressure column a7 moves out from the inside of the cushioning buffer seat 135, when the two photovoltaic panel clamping plates 13 are stacked, the bottom surface of the swinging soft plate a13 will preferentially overlap the top surface of the previous photovoltaic panel clamping plate 13, and the swinging soft plate a13 is deformed under the external force, and the silicone anti-slip soft strip a14 on the bottom surface of the swinging soft plate a13 is stretched and adhered to the top surface of the photovoltaic panel clamping plate 13, thereby increasing the friction and anti-slip effect between the lower pressure column a7 and the photovoltaic panel clamping plate 13; When the photovoltaic panel connecting plate 13 moves to the appropriate position, the photovoltaic panel connecting plate 13 is lifted out from the inside of the corner support arm plate 121 in cooperation with the lifting device. At this time, after the end surface of the pushing pressure column a5 is separated from the inner wall surface of the corner support arm plate 121, the elastic pushing wire a3 is cooperated with the pushing pressure column a5 to push the pushing pressure column a5 in the opposite direction, thereby separating the pushing pressure column a5 from the inside of the sunken groove a1. At this time, after the pushing pressure column a5 moves away from the top surface of the lower pressure column a7, the top end of the lower pressure column a7 is no longer blocked by the pushing pressure column a5, and under the elastic pullback of the pullback wire a4, the lower pressure column a7 is re-closed into the inside of the sunken groove a1, thereby recycling the lower pressure column a7. The spring wire size of the elastic pushing wire a3 is thicker than the spring size of the back-pull wire a4, so that the elasticity of the elastic pushing wire a3 is greater than the elasticity of the back-pull wire a4, so that when the back-pull wire a4 pulls back the lower pressure column a7 and overlaps the bottom surface of the pushing pressure column a5, the elastic force of the elastic pushing wire a3 can easily move the pushing pressure column a5 away from the top surface of the lower pressure column a7, so that the lower pressure column a7 can be easily retracted into the inside of the sunken groove a1, avoiding the effect that the elastic pushing wire a3 is not easy to separate the pushing pressure column a5 from the top surface of the lower pressure column a7 under the elastic pull of the back-pull wire a4.
[0029] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the foregoing embodiments. The foregoing embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.
Claims
1. A photovoltaic panel processing and handling device, comprising a photovoltaic transport frame (12), a photovoltaic panel clamping plate (13) movably sleeved on the inner wall surface of the photovoltaic transport frame (12), and a photovoltaic panel (14) movably sleeved on the inner wall surface of the photovoltaic panel clamping plate (13), characterized in that: Corner support arm plates (121) are provided on the top surface of the photovoltaic transport rack (12) and at the edges of the four sides, and rounded corners (122) are provided on the top surface of the corner support arm plates (121) and at the edge of one side. A cushioning seat (135) is fixedly installed on the bottom surface of the photovoltaic panel clamping plate (13) and at the edge positions of the four sides. An indented groove (a1) is provided on the inner wall surface of the cushioning seat (135). A pushing pressure column (a5) and a lower pressure column (a7) are movably sleeved on the inner wall surface of the indented groove (a1). An R-shaped fillet 1 (a6) is provided on the bottom surface of the pushing pressure column (a5) and at the edge positions of both ends. An R-shaped fillet 2 (a8) is provided on the top surface of the lower pressure column (a7) and at the position where it fits with the outer surface of the R-shaped fillet 1 (a6). A limiting sleeve (a12) is movably sleeved on the bottom surface of the lower pressure column (a7). A swinging soft plate (a13) is provided on both ends of the limiting sleeve (a12). A silicone anti-slip soft strip (a14) is fixedly connected to the bottom surface of the swinging soft plate (a13).
2. The photovoltaic panel processing and handling device according to claim 1, characterized in that: A limiting strip (a2) is fixedly connected to the top inner wall surface of the indented groove (a1), a limiting groove is provided on the top outer surface of the pushing pressure column (a5), and the outer surface of the limiting strip (a2) is movably sleeved on the inner wall surface of the limiting groove.
3. The photovoltaic panel processing and handling device according to claim 2, characterized in that: An elastic pushing wire (a3) is fixedly connected to the inner wall surface of one side of the sunken groove (a1) and is located at a horizontal angle position of the pushing and pressurizing column (a5), and the other end of the elastic pushing wire (a3) is fixedly connected to the outer surface of one end of the pushing and pressurizing column (a5).
4. The photovoltaic panel processing and handling device according to claim 3, characterized in that: The two side surfaces of the bottom end of the downward pressing column (a7) are fixedly connected with downward pressing laminating plates (a9), and the top surface of the downward pressing laminating plates (a9) is fixedly connected with a back drawing wire (a4).
5. The photovoltaic panel processing and handling device according to claim 4, characterized in that: The other end of the pull-back wire (a4) is fixedly connected to the inner wall surface of the sunken groove (a1), and the damping rod (a10) and the shock-absorbing buffer wire (a11) are respectively fixedly connected to the bottom surface of the downward pressure column (a7).
6. The photovoltaic panel processing and handling device according to claim 5, characterized in that: The damping rod (a10) is positioned inside the shock-absorbing buffer wire (a11), and the other ends of the damping rod (a10) and the shock-absorbing buffer wire (a11) are fixedly connected to the top surface of the limiting sleeve (a12).
7. The photovoltaic panel processing and handling device according to claim 1, characterized in that: A downward-pressing top cover (131) is movably sleeved on the top surface of the photovoltaic panel snap-in plate (13), and recessed docking grooves (132) are symmetrically provided on the outer surfaces of the photovoltaic panel snap-in plate (13) and the downward-pressing top cover (131), and a C-shaped docking buckle (133) is movably sleeved on the inner wall surface of the recessed docking groove (132).
8. The photovoltaic panel processing and handling device according to claim 1, characterized in that: An extrusion anti-sway soft strip (134) is fixedly connected to the inner wall surface of the photovoltaic panel clamping plate (13), and the outer surface of the photovoltaic panel (14) is movably overlapped on the outer surface of the extrusion anti-sway soft strip (134).
9. The photovoltaic panel processing and handling device according to claim 1, characterized in that: A shock-absorbing pump (123) is fixedly connected to the top surface of the photovoltaic transport rack (12) and at the four edges thereof; a lap support plate (124) is provided on the top surface of the shock-absorbing pump (123); and a closed lap plate (125) is swingably connected to the top surface of the corner support arm plate (121).
10. The photovoltaic panel processing and handling device according to claim 1, characterized in that: A photovoltaic panel transport vehicle (11) is provided on the bottom surface of the photovoltaic transport frame (12), and a closing cover (111) is swingably connected to the top surface of the photovoltaic panel transport vehicle (11).
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