Rapid assembling and supporting device for modularized photovoltaic shed power station

The modular design and quick-connect component support system solve the problems of long construction cycle and high cost of photovoltaic greenhouse power stations, enabling rapid construction and stable installation, adapting to different terrains, and promoting the widespread application of photovoltaic greenhouse power stations.

CN223625808UActive Publication Date: 2025-12-02HEBEI YUANNENG POWER ENG TECH CO LTD
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Patent Information

Application Number
CN202520284750.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-21
Publication Date
2025-12-02
Estimated Expiration
2035-02-21

AI Technical Summary

Technical Problem

Existing photovoltaic greenhouse power stations have long construction cycles and high costs when built in residential areas, making them difficult to promote and use, especially small photovoltaic greenhouse power stations.

Method used

The modular support system includes outriggers, prefabricated counterweights, quick-connect components, and lifting adjustment devices. The outriggers are connected to the prefabricated counterweights via quick-connect components, and the height of the outriggers is adjusted using the lifting adjustment devices. Combined with diagonal bracing, it forms a stable structure that can adapt to different terrains.

Benefits of technology

It significantly shortens the construction cycle, reduces material and labor costs, improves construction efficiency, enhances structural stability, adapts to different terrain conditions, ensures the level and stability of photovoltaic modules, and promotes the widespread use of photovoltaic greenhouse power stations.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a modular photovoltaic shed power station rapid assembling and supporting device, and relates to the technical field of photovoltaic power generation, the photovoltaic shed power station rapid assembling and supporting device comprises a support used for installing a photovoltaic module, the support is provided with a plurality of supporting legs at intervals in the circumferential direction, one end of each supporting leg is detachably connected with the support, and the other end of each supporting leg is detachably connected with the support; the supporting legs comprise an upper supporting leg and a lower supporting leg; the prefabricated counterweight seats are arranged below the supporting legs, the number of the prefabricated counterweight seats is multiple, and the multiple prefabricated counterweight seats are in one-to-one correspondence with the multiple supporting legs; the quick connecting assembly is arranged between the supporting leg and the prefabricated counterweight seat and is used for connecting the supporting leg and the prefabricated counterweight seat; the lifting adjusting part is arranged between the upper supporting leg and the lower supporting leg and used for adjusting the distance between the upper supporting leg and the lower supporting leg. The method has the advantages that the building construction period of the small photovoltaic shed power station is shortened, and the construction cost is reduced.
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Description

Technical Field

[0001] This application relates to the field of photovoltaic power generation technology, and in particular to a rapid assembly support device for modular photovoltaic power sheds. Background Technology

[0002] Modular photovoltaic (PV) shed power stations are solar power generation systems that integrate photovoltaic modules with building structures to form multifunctional photovoltaic application products. PV shed power stations can adapt to different application scenarios and needs, thus efficiently utilizing solar energy resources. Existing PV shed power stations come in various forms, including rooftop shed power stations suitable for industrial and commercial building roofs, PV parking lots that combine parking facilities to provide shading and vehicle protection, and small sunshades for residential areas to meet household electricity needs.

[0003] Currently, photovoltaic (PV) greenhouse power stations mainly include PV modules (including multiple solar panels), the core component used to convert sunlight into electricity; brackets for fixing the PV modules; inverters that convert the direct current (DC) generated by the PV modules into alternating current (AC); energy storage systems for storing excess solar power; cables and connectors; and distribution boxes. During construction, to ensure overall stability and resistance to wind and other factors, PV greenhouse power stations often use concrete foundations to fix the PV brackets. This requires not only leveling the ground and constructing and maintaining the concrete foundation, but also a long overall construction period. This is especially true for small-scale PV greenhouse power stations built in residential areas to meet household electricity needs; the construction period is long and the cost is high, making widespread adoption difficult. Utility Model Content

[0004] In order to shorten the construction cycle and reduce the construction cost of small photovoltaic shed power stations built in residential areas to meet household electricity needs, this application provides a modular photovoltaic shed power station rapid assembly support device.

[0005] This application provides a modular photovoltaic greenhouse power station rapid assembly support device, which adopts the following technical solution:

[0006] A modular photovoltaic power station rapid assembly support device includes:

[0007] A bracket for mounting photovoltaic modules, wherein the bracket is provided with multiple legs spaced apart along its circumference, one end of each leg being detachably connected to the bracket, and each leg including an upper support leg and a lower support leg;

[0008] Prefabricated counterweights are disposed below the legs, and multiple prefabricated counterweights are provided, with each prefabricated counterweight corresponding to one of the multiple legs.

[0009] A quick-connect assembly is disposed between the outrigger and the prefabricated counterweight seat for connecting the outrigger and the prefabricated counterweight seat;

[0010] A lifting adjustment component is disposed between the upper support leg and the lower support leg, and is used to adjust the distance between the upper support leg and the lower support leg.

[0011] By adopting the above technical solution, when constructing a small modular photovoltaic (PV) shed power station in a residential area to meet household electricity needs, the installation location is first selected, ensuring that there are no obstructions blocking sunlight. Then, each prefabricated counterweight is placed in the predetermined position, and the support legs are connected to the prefabricated counterweight using quick-connect components. Subsequently, the distance between the upper and lower support legs is adjusted using lifting and adjusting components to ensure the levelness and stability of the support frame during installation. Next, the support frame is connected to the upper support leg, and then the PV modules and other electrical equipment such as inverters and energy storage systems are installed. The entire PV shed power station uses prefabricated counterweights and support legs for rapid construction and support, eliminating the need for complex concrete foundation construction and maintenance. This significantly reduces on-site installation time, shortens the construction cycle, and reduces material and labor costs, promoting the widespread adoption and use of PV shed power stations in household electricity demand scenarios. Simultaneously, the modular design and quick-connect components reduce on-site installation workload, further reducing installation time. Furthermore, the lifting and adjusting components allow for adjustment of the support leg length according to uneven ground, adapting to different terrains and ground conditions, ensuring the levelness and stability of the support frame and PV modules.

[0012] Optionally, the prefabricated counterweight includes an upper connecting block and a lower support fixed below the upper connecting block. The bottom of the lower support has a stacking hole from bottom to top, and the upper connecting block can be inserted into the stacking hole.

[0013] By adopting the above technical solution, multiple prefabricated counterweights can be tightly stacked together during transportation to the construction site, reducing the space occupied by the prefabricated counterweights during transportation, improving transportation efficiency, saving transportation costs, and facilitating handling during on-site construction.

[0014] Optionally, the quick-connect component includes:

[0015] A connecting rod is fixed below the support leg, and an insertion hole is provided on the top of the upper connecting block, into which the connecting rod is inserted;

[0016] A snap-fit ​​ring is fixedly sleeved on the outside of the connecting rod. The upper connecting block is also provided with a snap-fit ​​groove, and the snap-fit ​​ring can be snapped into the snap-fit ​​groove.

[0017] The locking block is slidably connected inside the upper connecting block. When the locking ring is engaged in the locking groove, the locking block abuts against one side of the locking ring.

[0018] A pull rod is fixed to the side of the locking block away from the slot and slidably connected to the inside of the upper connecting block. A spring is sleeved on the outside of the pull rod, and the spring applies a force to the pull rod toward the insertion hole.

[0019] By adopting the above technical solution, when connecting the outrigger to the prefabricated counterweight using the quick-connect assembly, first align the connecting rod with the insertion hole on the top of the upper connecting block and slowly press down to gradually insert the connecting rod into the insertion hole. When the connecting rod is fully inserted into the insertion hole, the locking ring will automatically lock into the slot of the locking block. At the same time, the spring applies a force to the pull rod towards the slot to prevent the outrigger from accidentally loosening during use. When it is necessary to disassemble or adjust the connection of the outrigger, the pull rod can be pulled away from the slot to overcome the force of the spring, causing the locking ring to disengage from the slot. Then, the connecting rod can be easily disassembled by pulling it out of the insertion hole. The quick-connect assembly makes the connection and disassembly between the outrigger and the prefabricated counterweight quick and simple, without the need for other tools, thereby improving the efficiency of on-site construction.

[0020] Optionally, the upper connecting block has a sliding hole adapted to the pull rod, the pull rod can slide in the sliding hole, and the end of the pull rod away from the locking block does not extend out of the sliding hole.

[0021] By adopting the above technical solution, the end of the tie rod does not protrude outside the sliding hole, so that the prefabricated counterweight seats will not interfere with each other when stacked due to the protrusion of the tie rod, thus maintaining the stability and compactness of the prefabricated counterweight seats when stacked.

[0022] Optionally, the lower support base is provided with a binding groove along its circumference.

[0023] By adopting the above technical solution, after the photovoltaic power station is assembled, it can be tied with wire or rope in the binding groove to connect multiple prefabricated counterweights, forming a more stable overall structure. This improves the stability of the entire photovoltaic power station support structure, especially under conditions of strong winds or unstable ground, and can better resist external forces, ensuring the safe operation of the photovoltaic power station.

[0024] Optionally, the lifting adjustment component includes a screw rod rotatably connected to the lower part of the upper support leg and an adjustment sleeve fixed to the outside of the screw rod. The lower support leg has a threaded hole at its top, and the screw rod is threadedly connected to the threaded hole.

[0025] By adopting the above technical solution, when it is necessary to adjust the height of the top of the outrigger, the construction personnel first rotate the adjusting sleeve. Since the adjusting sleeve is fixedly connected to the screw, the rotation of the adjusting sleeve will drive the screw to rotate. Since the screw is threadedly connected to the threaded hole at the top of the lower support leg, the rotation of the screw will cause it to move up and down in the threaded hole, thereby realizing the adjustment of the height of the top of the outrigger. The height of different outriggers can be adjusted by the lifting adjustment component, thereby adapting to uneven ground and ensuring the levelness and stability of the entire photovoltaic power station.

[0026] Optionally, a diagonal brace is provided between the support leg and the bracket. One end of the diagonal brace is detachably connected to the bracket, and the other end is provided with a pipe clamp between the support leg and the support leg. The pipe clamp is sleeved on the outside of the support leg and rotatably connected to the support leg.

[0027] By adopting the above technical solution, a stable triangular support structure is formed between the diagonal brace, the bracket, and the outrigger, which significantly enhances the stability of the overall structure. Especially in the case of strong winds or poor ground conditions, it prevents the structure from tilting or collapsing. In addition, the pipe clamp can move along the height direction of the outrigger and cooperate with the rotational connection between the outrigger and the outrigger, so that the angle of the diagonal brace can be adjusted according to actual needs to adapt to different terrains and installation requirements, thereby improving the flexibility of installation.

[0028] Optionally, the bracket is provided with a plurality of connection holes spaced apart, one end of the support leg is connected to the connection hole by bolt thread, and one end of the diagonal brace is also connected to the connection hole by bolt thread.

[0029] By adopting the above technical solution, the position of the prefabricated counterweight may need to be adjusted in order to avoid obstacles. The multiple connection holes allow the positions of the legs and diagonal braces to be adjusted according to actual needs, thereby making it easier for the prefabricated counterweight to avoid obstacles such as underground pipelines, rocks or other structures, and ensuring that the installation position of the prefabricated counterweight is more reasonable.

[0030] In summary, this application includes at least one of the following beneficial technical effects:

[0031] 1. The entire photovoltaic greenhouse power station uses prefabricated counterweights and outriggers for rapid assembly and support. It eliminates the need for complex concrete foundation construction and maintenance, greatly reducing on-site installation time, significantly shortening the construction cycle, and reducing material and labor costs. This promotes the adoption and use of photovoltaic greenhouse power stations in household electricity demand scenarios. At the same time, the modular design and quick-connect components reduce the workload of on-site installation, further reducing installation time. In addition, the lifting and adjusting components can adjust the length of the outriggers according to uneven ground, thereby adapting to different terrains and ground conditions and ensuring the levelness and stability of the brackets and photovoltaic modules.

[0032] 2. During transportation to the construction site, multiple prefabricated counterweights can be tightly stacked together, reducing the space occupied by the prefabricated counterweights during transportation, improving transportation efficiency, saving transportation costs, and facilitating handling during on-site construction; quick-connect components make the connection and disassembly between the outriggers and the prefabricated counterweights quick and easy, without the need for other tools, thereby improving the efficiency of on-site construction;

[0033] 3. After the photovoltaic power station is assembled, wires or ropes can be used to tie it in the binding groove to connect multiple prefabricated counterweights and form a more stable overall structure. This improves the stability of the entire photovoltaic power station support structure, especially under conditions of strong winds or unstable ground, and can better resist external forces to ensure the safe operation of the photovoltaic power station.

[0034] 4. To avoid obstacles, the position of the prefabricated counterweight may need to be adjusted. Multiple connection holes allow the positions of the legs and diagonal braces to be adjusted according to actual needs, thus facilitating the prefabricated counterweight to avoid obstacles such as underground pipelines, rocks or other structures, and ensuring a more reasonable installation position for the prefabricated counterweight. Attached Figure Description

[0035] Figure 1 This is a structural schematic diagram of the rapid assembly support device for the modular photovoltaic greenhouse power station in this application;

[0036] Figure 2 This is a partial structural diagram of the support device for rapid assembly of modular photovoltaic greenhouse power stations;

[0037] Figure 3 This is a schematic diagram showing the structure after the prefabricated counterweights are stacked.

[0038] Figure 4 This is a partial cross-sectional view of the upper connecting block.

[0039] Explanation of reference numerals in the attached drawings: 1. Photovoltaic module; 2. Bracket; 21. Connecting hole; 3. Support leg; 31. Upper support leg; 32. Lower support leg; 321. Threaded hole; 4. Prefabricated counterweight seat; 41. Upper connecting block; 411. Insertion hole; 412. Slot; 413. Sliding hole; 42. Lower support seat; 421. Binding groove; 5. Quick-connect component; 51. Connecting rod; 52. Snap-fit ​​ring; 53. Clip; 54. Pull rod; 55. Spring; 6. Lifting adjustment component; 61. Screw; 62. Adjusting sleeve; 7. Diagonal brace; 8. Pipe clamp. Detailed Implementation

[0040] The following is in conjunction with the appendix Figures 1-4 This application will be described in further detail.

[0041] After reading this specification, those skilled in the art may make modifications to this embodiment without contributing any inventive step, but such modifications are protected by patent law as long as they fall within the scope of the claims of this application.

[0042] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0043] This application discloses a modular photovoltaic greenhouse power station rapid assembly support device. (Refer to...) Figure 1 and Figure 2 The modular photovoltaic (PV) greenhouse power station rapid assembly support device includes a bracket 2 for installing PV modules 1. The bracket 2 has multiple legs 3 spaced circumferentially along its circumference. Each leg 3 is divided into front legs 3 and rear legs 3, with the rear legs 3 being longer than the front legs 3. Each leg 3 includes an upper support leg 31 and a lower support leg 32. Multiple prefabricated counterweight seats 4 are located below each leg 3, corresponding one-to-one with each leg 3. A quick-connect assembly 5 connects the leg 3 to the corresponding prefabricated counterweight seat 4. A lifting adjustment component 6 is located between the upper support leg 31 and the lower support leg 32, adjusting the distance between them.

[0044] Reference Figure 1 and Figure 2 The bracket 2 has multiple connection holes 21 spaced apart. One end of the support leg 3 is detachably connected to the connection hole 21 by bolts. A diagonal brace 7 is also provided between the support leg 3 and the bracket 2. One end of the diagonal brace 7 is also detachably connected to the connection hole 21 by bolts, and the other end of the diagonal brace 7 is connected to the support leg 3 by a pipe clamp 8. The pipe clamp 8 is fitted onto the outside of the support leg 3 and rotatably connected to it. To avoid obstacles, the position of the prefabricated counterweight 4 may need to be adjusted. The multiple connection holes 21 allow the positions of the support leg 3 and the diagonal brace 7 to be adjusted according to actual needs, thus facilitating the prefabricated counterweight 4 to avoid obstacles such as underground pipelines, rocks, or other structures, ensuring a more reasonable installation position for the prefabricated counterweight 4. Furthermore, the pipe clamp 8 can move along the height direction of the support leg 3 to cooperate with the rotatable connection between it and the support leg 3, allowing the angle of the diagonal brace 7 to be adjusted according to actual needs to adapt to different terrains and installation requirements, improving installation flexibility.

[0045] When constructing a small, modular photovoltaic (PV) greenhouse power station in a residential area to meet household electricity needs, the first step is to select an installation location, ensuring it is unobstructed from sunlight. Next, each prefabricated counterweight 4 is placed in its designated position, and the support legs 3 are connected to the prefabricated counterweight 4 using quick-connect components 5. Then, the distance between the upper support leg 31 and the lower support leg 32 is adjusted using lifting adjustment components 6 to ensure the levelness and stability of the support frame 2 during installation. The support frame 2 is then connected to the upper support leg 31, and the diagonal braces 7 are connected to the support frame 2 and the support legs 3 respectively. Finally, the photovoltaic modules 1 and other electrical equipment such as inverters and energy storage systems are installed. The entire PV greenhouse power station utilizes prefabricated counterweight 4 and support legs 3 for rapid construction and support, eliminating the need for complex concrete foundation construction and maintenance. This significantly reduces on-site installation time, shortens the construction cycle, and reduces material and labor costs, promoting the widespread adoption and use of PV greenhouse power stations in household electricity demand scenarios. Meanwhile, the modular design and quick-connect components 5 reduce the workload of on-site installation and further reduce installation time. In addition, the lifting adjustment components 6 can adjust the length of the support legs 3 according to the unevenness of the ground, thereby adapting to different terrains and ground conditions and ensuring the level and stability of the bracket 2 and photovoltaic modules 1.

[0046] Reference Figure 3 and Figure 4 The prefabricated counterweight 4 includes an upper connecting block 41 and a lower support 42 fixed below the upper connecting block 41. The lower support 42 has stacking holes at its bottom from bottom to top, into which the upper connecting block 41 can be inserted. During transportation to the construction site, multiple prefabricated counterweights 4 can be tightly stacked together, reducing the space occupied by the prefabricated counterweights 4 during transportation, improving transportation efficiency, saving transportation costs, and facilitating handling during on-site construction. The lower support 42 has binding grooves 421 along its circumference. After the photovoltaic power station is assembled, wires or ropes can be used to bind the prefabricated counterweights 4 in the binding grooves 421, connecting the multiple prefabricated counterweights 4 to form a more stable overall structure. This improves the stability of the entire photovoltaic power station support structure, especially under conditions of strong winds or unstable ground, better resisting external forces and ensuring the safe operation of the photovoltaic power station.

[0047] Reference Figure 4The quick-connect assembly 5 includes a connecting rod 51 fixed below the support leg 3. An insertion hole 411 is provided on the top of the upper connecting block 41, into which the connecting rod 51 is inserted. A retaining ring 52 is fixedly sleeved on the outside of the connecting rod 51. A retaining groove 412 is also provided on the upper connecting block 41, into which the retaining ring 52 can be engaged. A retaining block 53 is slidably connected inside the upper connecting block 41. When the retaining ring 52 is engaged in the retaining groove 412, the retaining block 53 abuts against one side of the retaining ring 52. A pull rod 54 is fixedly provided on the side of the retaining block 53 away from the retaining groove 412. A sliding hole 413 adapted to the pull rod 54 is provided inside the upper connecting block 41. The pull rod 54 is slidably connected in the sliding hole 413, and the end of the pull rod 54 away from the retaining block 53 does not protrude outside the sliding hole 413. A spring 55 is fitted on the outside of the pull rod 54, and the spring 55 applies a force to the pull rod 54 toward the side of the insertion hole 411.

[0048] When connecting the outrigger 3 to the prefabricated counterweight 4 using the quick-connect assembly 5, first align the connecting rod 51 with the insertion hole 411 on the top of the upper connecting block 41, and slowly press down to gradually insert the connecting rod 51 into the insertion hole 411. Once the connecting rod 51 is fully inserted into the insertion hole 411, the locking ring 52 will automatically engage with the slot 412 of the locking block 53. Simultaneously, the spring 55 applies a force to the pull rod 54 towards the slot 412, preventing the outrigger 3 from accidentally loosening during use. When it is necessary to disassemble or adjust the connection of the outrigger 3, the pull rod 54 can be pulled away from the slot 412, causing the pull rod 54 to overcome the force of the spring 55, disengaging the locking ring 52 from the slot 412. Then, the connecting rod 51 can be easily pulled out of the insertion hole 411 for disassembly. The quick-connect assembly 5 makes the connection and disassembly between the outrigger 3 and the prefabricated counterweight 4 quick and simple, requiring no other tools, thereby improving the efficiency of on-site construction. Furthermore, the end of the pull rod 54 does not extend beyond the outside of the sliding hole 413, so that the prefabricated counterweight seats 4 will not interfere with each other when stacked due to the protrusion of the pull rod 54, thus maintaining the stability and compactness of the prefabricated counterweight seats 4 when stacked.

[0049] Reference Figure 1 and Figure 2 The lifting adjustment component 6 includes a screw 61 rotatably connected to the lower part of the upper support leg 31, an adjustment sleeve 62 fixed on the outside of the screw 61, and a threaded hole 321 opened on the top of the lower support leg 32. The screw 61 is threadedly connected to the threaded hole 321.

[0050] When the height of the top of the support leg 3 needs to be adjusted, the construction worker first rotates the adjusting sleeve 62. The adjusting sleeve 62 is fixedly connected to the screw 61. The rotation of the adjusting sleeve 62 will drive the screw 61 to rotate. Since the screw 61 is threadedly connected to the threaded hole 321 at the top of the lower support leg 32, the rotation of the screw 61 will cause it to move up and down within the threaded hole 321, thereby adjusting the height of the top of the support leg 3. The height of different support legs 3 can be adjusted by the lifting adjustment component 6, thereby adapting to uneven ground and ensuring the levelness and stability of the entire photovoltaic power station.

[0051] The implementation principle of the modular photovoltaic (PV) greenhouse power station rapid assembly support device in this application embodiment is as follows: The entire PV greenhouse power station is rapidly assembled and supported using prefabricated counterweight seats 4 and support legs 3. It eliminates the need for complex concrete foundation construction and maintenance, significantly reducing on-site installation time, shortening the construction cycle, and reducing material and labor costs. This promotes the widespread adoption and use of PV greenhouse power stations in household electricity demand scenarios. Simultaneously, the modular design and quick-connect components 5 reduce on-site installation workload, further shortening installation time. Furthermore, the lifting adjustment components 6 allow for adjustment of the support leg length based on uneven ground, adapting to different terrains and ground conditions, ensuring the levelness and stability of the support frame 2 and PV module 1.

[0052] 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 modular photovoltaic greenhouse power station rapid assembly support device, characterized in that, include: A bracket (2) is used to install a photovoltaic module (1). The bracket (2) is provided with a plurality of legs (3) spaced apart along its circumference. One end of each leg (3) is detachably connected to the bracket (2). Each leg (3) includes an upper support leg (31) and a lower support leg (32). Prefabricated counterweights (4) are provided below the legs (3), and multiple prefabricated counterweights (4) are provided, with each of the multiple prefabricated counterweights (4) corresponding to one of the multiple legs (3); A quick-connect component (5) is disposed between the support leg (3) and the prefabricated counterweight seat (4) for connecting the support leg (3) and the prefabricated counterweight seat (4); A lifting adjustment component (6) is disposed between the upper support leg (31) and the lower support leg (32) for adjusting the distance between the upper support leg (31) and the lower support leg (32).

2. The modular photovoltaic greenhouse power station rapid assembly support device according to claim 1, characterized in that, The prefabricated counterweight base (4) includes an upper connecting block (41) and a lower support base (42) fixed below the upper connecting block (41). The bottom of the lower support base (42) has a stacking hole from bottom to top, and the upper connecting block (41) can be inserted into the stacking hole.

3. The modular photovoltaic greenhouse power station rapid assembly support device according to claim 2, characterized in that, The quick-connect assembly (5) includes: A connecting rod (51) is fixed below the support leg (3). The top of the upper connecting block (41) is provided with a plug hole (411), and the connecting rod (51) is inserted into the plug hole (411). A snap ring (52) is fixedly sleeved on the outside of the connecting rod (51). The upper connecting block (41) is also provided with a slot (412), and the snap ring (52) can be snapped into the slot (412). The locking block (53) is slidably connected inside the upper connecting block (41). When the locking ring (52) is locked into the locking groove (412), the locking block (53) abuts against one side of the locking ring (52). A pull rod (54) is fixed to the side of the card block (53) away from the card slot (412) and slidably connected to the inside of the upper connecting block (41). A spring (55) is sleeved on the outside of the pull rod (54), and the spring (55) gives the pull rod (54) a force toward the insertion hole (411).

4. The modular photovoltaic greenhouse power station rapid assembly support device according to claim 3, characterized in that, The upper connecting block (41) has a sliding hole (413) that is compatible with the pull rod (54). The pull rod (54) can slide in the sliding hole (413), and the end of the pull rod (54) away from the locking block (53) does not extend out of the sliding hole (413).

5. The modular photovoltaic greenhouse power station rapid assembly support device according to claim 2, characterized in that, The lower support (42) has a binding groove (421) along its circumference.

6. The modular photovoltaic greenhouse power station rapid assembly support device according to claim 1, characterized in that, The lifting adjustment component (6) includes a screw (61) rotatably connected to the lower part of the upper support leg (31) and an adjustment sleeve (62) fixed to the outside of the screw (61). The lower support leg (32) has a threaded hole (321) at the top, and the screw (61) is threadedly connected to the threaded hole (321).

7. A modular photovoltaic greenhouse power station rapid assembly support device according to any one of claims 1-6, characterized in that, A diagonal brace (7) is also provided between the support leg (3) and the bracket (2). One end of the diagonal brace (7) is detachably connected to the bracket (2), and the other end is provided with a pipe clamp (8) between it and the support leg (3). The pipe clamp (8) is sleeved on the outside of the support leg (3) and rotatably connected to the support leg (3).

8. The modular photovoltaic greenhouse power station rapid assembly support device according to claim 7, characterized in that, The bracket (2) has multiple connecting holes (21) spaced apart. One end of the support leg (3) is connected to the connecting hole (21) by a bolt thread, and one end of the diagonal brace (7) is also connected to the connecting hole (21) by a bolt thread.