A transport device for satellite solar panels
By incorporating a transport device with a body, clamping mechanism, sliding mechanism, and rotating mechanism, the problem of inconvenient steering in solar panel transport devices has been solved, achieving convenient steering and stability, and facilitating efficient transport of solar panels.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- GALAXY AEROSPACE TECH (NANTONG) CO LTD
- Filing Date
- 2022-10-27
- Publication Date
- 2026-05-26
AI Technical Summary
Existing satellite solar panel transport devices are difficult to maneuver, affecting transport efficiency.
The transport device includes a body, clamping device, sliding mechanism, rotating mechanism and limiting mechanism. By controlling the rotation and sliding of the rollers, convenient steering and state switching can be achieved.
This improves the transportation efficiency of solar panels and ensures the stability and convenient switching of the transportation device when it is not in operation.
Smart Images

Figure CN115743269B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of transportation equipment, and in particular to a transportation device for satellite solar panels. Background Technology
[0002] After the satellite is launched, its solar panels will deploy to convert solar energy into electrical energy to power the satellite.
[0003] The solar array is composed of multiple solar panels. During the process of assembling the multiple solar panels into a solar array, workers need to use a transport device to transport the solar panels to the designated location. As the solar array is gradually assembled, the transport device for the solar panels will gradually change. However, the existing transport device is relatively inconvenient to turn, which affects the transport efficiency of the solar panels and needs to be improved. Summary of the Invention
[0004] In order to facilitate the turning of the transport device and thus improve the transport efficiency of the solar panels, this application provides a transport device for satellite solar panels.
[0005] The technical solution of the satellite solar panel transportation device provided in this application is as follows:
[0006] A transport device for satellite solar panels includes a body and a clamping device mounted on the body. The clamping device is used to clamp the solar panels. The bottom of the body is provided with a mounting groove, and a mounting platform is embedded in the mounting groove. The mounting platform can slide vertically along the mounting groove for a certain distance. Rollers are provided at the four corners of the bottom of the mounting platform. A sliding mechanism is provided in the mounting groove to control the vertical sliding of the mounting platform. A rotating mechanism is provided in the mounting platform to control the synchronous rotation of the rollers. When the mounting platform slides downward to its limit position, the rotating mechanism starts to work.
[0007] By adopting the above technical solution and setting up a transport device that can control the rotation of the rollers, the transport device can be easily turned, which helps to improve the transport efficiency of the solar panels. At the same time, by setting up a sliding mechanism, the rollers can be easily switched between the storage state and the non-working state, thereby fixing the position of the transport device in the non-working state and helping to ensure the stability of the transport device in the non-working state.
[0008] Optionally, the sliding mechanism includes a rod, a tube, a bevel gear ring, a drive shaft, and a bevel gear. The rod is vertically mounted on the top of the mounting platform. The tube is fitted over the rod and threadedly connected to it. The tube is rotatably connected to the mounting groove via a bracket. The bevel gear ring is fitted over the top of the tube. The drive shaft is horizontally mounted in the mounting groove and located above the tube. The drive shaft is rotatably connected to the machine body. The bevel gear is mounted on the drive shaft and meshes with the bevel gear ring for transmission. A drive motor for controlling the rotation of the drive shaft is provided on the side wall of the machine body.
[0009] By adopting the above technical solution and setting a simple and stable sliding mechanism, the vertical sliding of the mounting platform is conveniently driven, thereby realizing the convenient switching between the retracted state and the outward extension state of the roller, and thus the convenient switching between the working state and the non-working state of the roller.
[0010] Optionally, the rotating mechanism includes a main gear and four auxiliary gears. The roller is connected to the mounting platform via a support rod, and the upper end of the support rod extends into the mounting platform and is rotatably connected to the mounting platform. The four auxiliary gears are sequentially arranged on the top of the four support rods. The main gear is arranged between the four auxiliary gears and meshes with them for transmission. A polygonal sliding hole is provided through the main gear for the rod body to pass through. A polygonal slider is provided on the rod body for embedding in the sliding hole. A mounting hole is provided through the bottom of the mounting platform, and a groove is also provided at the bottom of the mounting platform for covering the mounting hole. A mounting plate is horizontally arranged in the groove, and multiple support springs are provided in the groove for driving the mounting plate to slide vertically upward and embed in the mounting hole. The bottom of the rod body is rotatably connected to the mounting plate. A limiting mechanism is provided on the tube body for limiting the downward sliding distance of the rod body. When the limiting mechanism is working, the slider is embedded in the sliding hole, and at this time, the rod body is used to drive the main gear to rotate.
[0011] By adopting the above technical solution, during the rotation of the tube, the tube first drives the rod to move downwards. The rod then drives the mounting platform downwards a certain distance, extending the rollers outside the machine body. At this point, the mounting platform slides vertically downwards to its limit position. Subsequently, since the position of the mounting platform is fixed, as the rod continues to slide downwards, it drives the mounting plate to retract into the groove. At this time, the slider engages in the sliding hole, and the limiting mechanism activates, preventing the rod from sliding further downwards. Consequently, the rod rotates together with the tube, driving the drive gear to rotate, which in turn drives the main gear to drive the auxiliary gear, achieving synchronous rotation of the rollers and thus enabling the transport device to turn. By setting up a simple and stable rotating mechanism, synchronous rotation of the rollers is achieved, thereby enabling convenient turning of the transport device and facilitating the transportation of solar panels by the staff.
[0012] Optionally, the limiting mechanism includes a pair of limiting blocks and a pair of limiting rods. The pair of limiting rods are distributed on both sides of the tube body, and a limiting groove is provided along the length direction on the side of the pair of limiting rods that are opposite to each other. The pair of limiting blocks are distributed on both sides of the rod body and are respectively embedded in the pair of limiting grooves. The limiting blocks and the limiting grooves are vertically slidably connected, and when the slider slides down and is embedded in the sliding hole, the limiting block moves to the lower limit position of the limiting groove.
[0013] By adopting the above technical solution and setting a simple and stable limiting mechanism, the downward movement distance of the rod is limited while ensuring the normal driving state of the rod's vertical sliding on the mounting platform.
[0014] Optionally, the clamping device includes multiple pairs of clamping plates. A clamping groove is provided on the top of the machine body along its length. The multiple pairs of clamping plates are vertically arranged in the clamping groove and evenly arranged along its length. An installation cavity is provided in the machine body below the clamping groove. A pair of support plates are vertically arranged in the installation cavity. Each support plate is connected to the clamping plate located on the same side. Multiple pairs of clamping holes are provided through the bottom of the clamping groove for the clamping plates to slide through sequentially. A control mechanism is provided in the installation cavity for driving a pair of clamping plates to slide closer to or further away from each other.
[0015] By adopting the above technical solution and setting up a simple and stable clamping device, stable clamping of the solar panel is achieved.
[0016] Optionally, the control mechanism includes a control shaft, multiple control gears, and multiple pairs of racks. The control shaft is horizontally arranged in the mounting cavity and along its length, and is rotatably connected to the machine body. The multiple control gears are evenly arranged along the length of the control shaft. The multiple pairs of racks are sequentially arranged on a pair of support plates, and each pair of racks is sequentially distributed above and below the control gears and meshes with them for transmission. The support plates are provided with toothed holes for the racks to slide through. The machine body is provided with a control motor for driving the control shaft to rotate.
[0017] By adopting the above technical solution and setting a simple and stable control mechanism, convenient sliding drive of multiple pairs of clamping plates is realized, further ensuring stable clamping and fixing of the solar panels.
[0018] Optionally, multiple support rods are evenly arranged on both sides of the top of the body along its length. The support rods are hinged to the body. The body is provided with a drive spring for driving the support rods to deflect inward. The top of the support rod is provided with an abutment rod for abutting against the solar panel.
[0019] By adopting the above technical solution, and by setting up an auxiliary clamping mechanism that can assist in clamping the solar panel, the stability of the transport device in clamping the solar panel is effectively guaranteed when used in conjunction with the clamping device.
[0020] Optionally, the end of the abutment rod away from the support rod is arc-shaped.
[0021] By adopting the above technical solution, the stress exerted by the contact rod with one end set in an arc shape is effectively reduced, ensuring the normal working condition of the solar panel.
[0022] In summary, this application includes at least one of the following beneficial technical effects:
[0023] By setting up a transport device that can control the rotation of the rollers, the transport device can be easily turned around, which helps to improve the transport efficiency of the solar panels. At the same time, by setting up a sliding mechanism, the rollers can be easily switched between the storage state and the non-working state, thereby fixing the position of the transport device in the non-working state and helping to ensure the stability of the transport device in the non-working state.
[0024] By setting up a simple and stable sliding mechanism, the vertical sliding of the mounting platform is conveniently driven, thereby enabling convenient switching between the retracted and extended states of the rollers, and further enabling convenient switching between the working and non-working states of the rollers.
[0025] By setting up a simple and stable rotating mechanism, the synchronous rotation of the rollers is achieved, thereby enabling convenient steering of the transport device and facilitating the transportation of solar panels by staff. Attached Figure Description
[0026] Figure 1 This is a schematic diagram of the overall structure of an embodiment of this application.
[0027] Figure 2 This is a schematic diagram of the internal structure of the body and the internal structure of the mounting slot in the embodiments of this application.
[0028] Figure 3 This is a schematic diagram showing the connection relationship between the clamping device and the control mechanism in an embodiment of this application.
[0029] Figure 4 This is a schematic diagram showing the connection relationship between the rod and the rotating mechanism in an embodiment of this application.
[0030] Figure 5 This is a schematic diagram of the main gear in an embodiment of this application.
[0031] Explanation of reference numerals in the attached drawings: 1. Body; 11. Clamping groove; 111. Clamping hole; 12. Mounting cavity; 121. Support plate; 1211. Toothed hole; 13. Control motor; 14. Support rod; 141. Abutment rod; 1411. Rubber pad; 15. Drive spring; 16. Mounting groove; 161. Mounting platform; 1611. Roller; 1612. Support rod; 1613. Mounting hole; 17. Drive motor; 2. Clamping device; 21. Clamping plate; 211. Soft rubber sheet; 3. Control mechanism; 31. Control shaft; 32. Control gear; 33. Rack; 4. Sliding mechanism; 41. Rod; 411. Slider; 42. Tube; 421. Bracket; 43. Bevel gear ring; 44. Drive shaft; 45. Bevel gear; 5. Rotating mechanism; 51. Main gear; 511. Sliding hole; 52. Auxiliary gear; 6. Groove; 61. Mounting plate; 62. Support spring; 7. Limiting mechanism; 71. Limiting block; 72. Limiting rod; 721. Limiting groove. Detailed Implementation
[0032] The present application will be further described in detail below with reference to the accompanying drawings.
[0033] This application discloses a transportation device for satellite solar panels.
[0034] Reference Figure 1 A transport device for satellite solar panels includes a body 1 and a clamping device 2, the clamping device 2 being disposed on the body 1 and used to clamp the solar panels.
[0035] Reference Figure 2 , Figure 3The clamping device 2 includes multiple pairs of clamping plates 21. A clamping groove 11 is provided on the top of the machine body 1 along its length direction, and the clamping groove 11 extends through both ends of the machine body 1. Multiple pairs of clamping plates 21 are all arranged in the clamping groove 11 and are evenly arranged along its length direction. Each pair of clamping plates 21 is arranged opposite to each other. An installation cavity 12 is provided in the machine body 1 below the clamping groove 11. A pair of support plates 121 are vertically arranged in the installation cavity 12. The support plates 121 are arranged along the length direction of the installation cavity 12. Each support plate 121 is connected to multiple clamping plates 21 located on the same side. Multiple pairs of clamping holes 111 communicating with the installation cavity 12 are evenly arranged at the bottom of the clamping groove 11 along its length direction. The multiple pairs of clamping holes 111 are used for multiple pairs of clamping plates 21 to slide through.
[0036] Reference Figure 2 , Figure 3 The mounting cavity 12 is equipped with a control mechanism 3, which is used to drive a pair of clamping plates 21 to slide towards or away from each other, so as to clamp the solar panel using the clamping plates 21. The control mechanism 3 includes a control shaft 31, multiple control gears 32 and multiple pairs of racks 33.
[0037] Reference Figure 2 , Figure 3 The control shaft 31 is horizontally positioned within the mounting cavity 12 and along its length. The control shaft 31 is rotatably connected to the machine body 1. A control motor 13 for driving the control shaft 31 is provided on the end face of the machine body 1. Multiple control gears 32 are evenly arranged along the length of the control shaft 31. Multiple pairs of racks 33 are evenly arranged along the length of a pair of support plates 121 and connected to them. Each pair of racks 33 is distributed above and below the control gears 32 and meshes with the control gears 32 for transmission. The support plates 121 are provided with toothed holes 1211 along their length for the racks 33 to slide through.
[0038] Reference Figure 2 , Figure 3 The inner side of the clamping plate 21 is provided with soft rubber sheet 211 to effectively reduce the stress on the solar panel during the clamping process, thereby ensuring the normal use of the solar panel.
[0039] Reference Figure 1 , Figure 2Multiple support rods 14 are evenly arranged along the length of both sides of the top of the body 1. The lower ends of the support rods 14 are hinged to the body 1. Multiple drive springs 15 are evenly arranged along the length of both sides of the top of the body 1. The multiple drive springs 15 are arranged below the multiple support rods 14 and are used to drive the support rods 14 to flip inward. The top of the support rods 14 is provided with a contact rod 141 for contacting the solar panel. At the same time, the end of the contact rod 141 away from the support rod 14 is arc-shaped and covered with a rubber pad 1411 to effectively reduce the stress between the contact rod 141 and the solar panel, so as to achieve stable clamping of the solar panel while ensuring the normal use of the solar panel.
[0040] Reference Figure 2 , Figure 4 The bottom center of the body 1 is provided with a mounting groove 16, and a mounting platform 161 is embedded in the mounting groove 16. The mounting platform 161 can slide vertically along the mounting groove 16 for a certain distance. Rollers 1611 are provided at the four corners of the bottom of the mounting platform 161. A sliding mechanism 4 is provided in the mounting groove 16 to drive the mounting platform 161 to slide vertically along the mounting groove 16 for a certain distance, so as to realize the convenient switching between the storage state and the working state of the rollers 1611.
[0041] Reference Figure 2 , Figure 4 The sliding mechanism 4 includes a rod 41, a tube 42, a bevel gear ring 43, a drive shaft 44, and a bevel gear 45. The rod 41 is vertically mounted on the top of the mounting platform 161. The tube 42 is fitted over the rod 41 and threadedly connected to it. The tube 42 is rotatably connected to the mounting groove 16 via a bracket 421. The bevel gear ring 43 is fitted over the top of the tube 42. The drive shaft 44 is horizontally mounted in the mounting groove 16 and located above the tube 42. The drive shaft 44 is rotatably connected to the machine body 1. The bevel gear 45 is mounted on the drive shaft 44 and meshes with the bevel gear ring 43 for transmission. A drive motor 17 is provided on the side wall of the machine body 1 to control the rotation of the drive shaft 44, so as to drive the rod 41 to slide vertically by rotating the tube 42, thereby driving the vertical sliding of the mounting platform 161.
[0042] Reference Figure 4 The mounting platform 161 is equipped with a rotating mechanism 5 for controlling the synchronous rotation of the rollers 1611, so as to realize convenient steering control of the entire transport device. When the mounting platform 161 slides down to the limit position, the rotating mechanism 5 starts to work. The rotating mechanism 5 includes a main gear 51 and four auxiliary gears 52.
[0043] Reference Figure 2 , Figure 4The roller 1611 is connected to the mounting platform 161 via the support rod 1612, and the upper end of the support rod 1612 extends into the mounting platform 161 and is rotatably connected to the mounting platform 161. The four auxiliary gears 52 are all located inside the mounting platform 161 and are sequentially located on the top of the four support rods 1612. The main gear 51 is located between the four auxiliary gears 52 and meshes with them for transmission.
[0044] Reference Figure 4 , Figure 5 The main gear 51 has a through hole 511 for the rod 41 to pass through. The through hole 511 is polygonal. The rod 41 has a polygonal slider 411 corresponding to the shape of the through hole 511. The bottom of the mounting platform 161 has a through hole 1613 that is connected to the inside of the mounting platform 161. The bottom of the mounting platform 161 also has a groove 6 for covering the mounting hole 1613. The mounting plate 61 is horizontally arranged in the groove 6. The groove 6 also has multiple support springs 62 for driving the mounting plate 61 to slide vertically upward and embed into the mounting hole 1613. The bottom of the rod 41 is rotatably connected to the mounting plate 61.
[0045] Reference Figure 4 A limiting mechanism 7 is provided on the tube body 42 to limit the vertical downward sliding distance of the rod body 41. The limiting mechanism 7 includes a pair of limiting blocks 71 and a pair of limiting rods 72. The pair of limiting rods 72 are arranged on both sides of the tube body 42, and the pair of limiting blocks 71 are distributed on both sides of the rod body 41 and respectively set relative to the pair of limiting rods 72. Each side of the pair of limiting rods 72 is provided with a limiting groove 721 along its length direction. The pair of limiting grooves 721 are used for the pair of limiting blocks 71 to be inserted and slid. When the limiting block 71 moves to the lower limit position of the limiting groove 721, the slider 411 is inserted into the sliding hole 511. At this time, the rod body 41 rotates together with the tube body 42 and drives the drive gear to rotate. Then, through the auxiliary gear 52 and the support rod 1612, the roller 1611 is controlled to rotate, realizing the steering of the transport device.
[0046] Therefore, during the rotation of the tube body 42, the tube body 42 first drives the rod body 41 to move downward. The rod body 41 drives the mounting platform 161 to move downward a certain distance and extends the roller 1611 outside the machine body 1. At this time, the mounting platform 161 slides vertically downward to the limit position. Subsequently, since the position of the mounting platform 161 is fixed, the rod body 41 continues to slide downward, driving the mounting plate 61 to retract into the groove 6. At this time, the slider 411 is embedded in the sliding hole 511, and the limiting block 71 slides to the lower limit position of the limiting groove 721, so that the rod body 41 can no longer slide downward. Thus, the rod body 41 rotates together with the tube body 42, and the rod body 41 drives the drive gear to rotate, which in turn drives the main gear 51 to drive the auxiliary gear 52 to rotate, realizing the synchronous rotation of the roller 1611, thereby realizing the steering of the transport device.
[0047] The implementation principle of a satellite solar panel transport device according to an embodiment of this application is as follows: When the transport device is used, the drive motor 17 is started. The drive motor 17 controls the rotation of the tube body 42 through the bevel gear 45 and the bevel gear ring 43. During the rotation of the tube body 42, the rod 41 drives the mounting platform 161 to move downward a certain distance and extends the roller 1611 outside the body 1. When the mounting platform 161 slides vertically downward to the limit position, the drive motor 17 is stopped, realizing the outward extension of the roller 1611.
[0048] When the drive transport device turns, the drive motor 17 is started again and the tube 42 is controlled to continue to rotate in the same direction. At this time, since the position of the mounting platform 161 is fixed, the rod 41 continues to slide down, and the drive mounting plate 61 retracts into the groove 6. At the same time as the slider 411 is embedded in the sliding hole 511, the limiting block 71 slides to the lower limit position of the limiting groove 721, so that the rod 41 can no longer slide down, and the rod 41 rotates together with the tube 42. The rod 41 drives the drive gear to rotate, which in turn drives the main gear 51 to drive the auxiliary gear 52 to rotate, realizing the synchronous rotation of the roller 1611, thereby realizing the turning of the transport device.
[0049] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A transport device for a satellite solar panel, comprising a body (1) and a clamping device (2) disposed on the body (1), the clamping device (2) being used to clamp the solar panel, characterized in that: The bottom of the body (1) is provided with a mounting groove (16), and a mounting platform (161) is embedded in the mounting groove (16). The mounting platform (161) can slide vertically along the mounting groove (16) for a certain distance. Rollers (1611) are provided at the four corners of the bottom of the mounting platform (161). A sliding mechanism (4) for controlling the vertical sliding of the mounting platform (161) is provided in the mounting groove (16). A rotating mechanism (5) for controlling the synchronous rotation of the rollers (1611) is provided in the mounting platform (161). When the mounting platform (161) slides down to the limit position, the rotating mechanism (5) starts to work. The sliding mechanism (4) includes a rod (41), a tube (42), a bevel gear ring (43), a drive shaft (44), and a bevel gear (45). The rod (41) is vertically mounted on the top of the mounting platform (161). The tube (42) is sleeved on the top of the rod (41) and threadedly connected to it. The tube (42) is rotatably connected to the mounting groove (16) via a bracket (421). The bevel gear ring (43) is sleeved on the top of the tube (42). The drive shaft (44) is horizontally mounted in the mounting groove (16) and located above the tube (42). The drive shaft (44) is rotatably connected to the machine body (1). The bevel gear (45) is mounted on the drive shaft (44) and meshes with the bevel gear ring (43) for transmission. A drive motor (17) for controlling the rotation of the drive shaft (44) is provided on the side wall of the machine body (1). The rotating mechanism (5) includes a main gear (51) and four auxiliary gears (52). The roller (1611) is connected to the mounting platform (161) via a support rod (1612), and the upper end of the support rod (1612) extends into the mounting platform (161) and is rotatably connected to the mounting platform (161). The four auxiliary gears (52) are sequentially arranged on the top of the four support rods (1612). The main gear (51) is arranged between the four auxiliary gears (52) and meshes with them for transmission. A polygonal sliding hole (511) is provided through the main gear (51) for the rod body (41) to pass through. A polygonal slider (411) is provided on the rod body (41) for embedding into the sliding hole (511). The mounting platform (161) The bottom of the mounting platform (161) is provided with a through mounting hole (1613), and the bottom of the mounting platform (161) is also provided with a groove (6) for covering the mounting hole (1613). The groove (6) is provided with a horizontal mounting plate (61), and the groove (6) is provided with a plurality of support springs (62) for driving the mounting plate (61) to slide vertically upward and embed into the mounting hole (1613). The bottom of the rod (41) is rotatably connected to the mounting plate (61). The tube (42) is provided with a limiting mechanism (7) for limiting the downward sliding distance of the rod (41). When the limiting mechanism (7) is working, the slider (411) is embedded in the sliding hole (511). At this time, the rod (41) is used to drive the main gear (51) to rotate. The limiting mechanism (7) includes a pair of limiting blocks (71) and a pair of limiting rods (72). The pair of limiting rods (72) are distributed on both sides of the tube body (42), and a limiting groove (721) is provided on the opposite side of the pair of limiting rods (72) along its length direction. The pair of limiting blocks (71) are distributed on both sides of the rod body (41) and are respectively embedded in the pair of limiting grooves (721). The limiting blocks (71) and the limiting grooves (721) are vertically slidably connected. When the slider (411) slides down and is embedded in the sliding hole (511), the limiting block (71) moves to the lower limit position of the limiting groove (721).
2. The satellite solar panel transport device according to claim 1, characterized in that: The clamping device (2) includes multiple pairs of clamping plates (21). The top of the body (1) is provided with a clamping groove (11) along its length. The multiple pairs of clamping plates (21) are vertically arranged in the clamping groove (11) and evenly arranged along its length. The body (1) is provided with an installation cavity (12) located below the clamping groove (11). A pair of support plates (121) are vertically arranged in the installation cavity (12). Each support plate (121) is connected to the clamping plate (21) located on the same side. The bottom of the clamping groove (11) is provided with multiple pairs of clamping holes (111) for the clamping plates (21) to slide through in sequence. The installation cavity (12) is provided with a control mechanism (3) for driving a pair of clamping plates (21) to slide closer to or further away from each other.
3. The satellite solar panel transport device according to claim 2, characterized in that: The control mechanism (3) includes a control shaft (31), multiple control gears (32) and multiple pairs of racks (33). The control shaft (31) is horizontally arranged in the mounting cavity (12) and along its length direction. The control shaft (31) and the machine body (1) are rotatably connected. The multiple control gears (32) are evenly arranged along the length direction of the control shaft (31). Multiple pairs of racks (33) are sequentially arranged on a pair of support plates (121). Each pair of racks (33) is sequentially distributed on the upper and lower sides of the control gears (32) and meshes with them for transmission. The support plate (121) is provided with tooth holes (1211) for the racks (33) to slide through. The machine body (1) is provided with a control motor (13) for driving the control shaft (31) to rotate.
4. The satellite solar panel transport device according to claim 1, characterized in that: Multiple support rods (14) are evenly arranged on both sides of the top of the body (1) along its length. The support rods (14) are hinged to the body (1). The body (1) is provided with a drive spring (15) for driving the support rods (14) to deflect inward. The top of the support rods (14) is provided with a contact rod (141) for contacting the solar panel.
5. A transport device for satellite solar panels according to claim 4, characterized in that: The end of the abutment rod (141) away from the support rod (14) is arc-shaped.