A prefabricated photovoltaic module and photovoltaic power generation system

By using pile stabilization and adjustment components, along with structures such as arc-shaped extension shovels and support plates, the problem of unstable photovoltaic support piles in uneven soil has been solved, thus improving the stability and safety of photovoltaic modules.

CN119921646BActive Publication Date: 2026-01-30CHINA CONSTR SECOND ENG BUREAU LTD +1
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Patent Information

Application Number
CN202510206944.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-02-25
Publication Date
2026-01-30
Estimated Expiration
2045-02-25

AI Technical Summary

Technical Problem

Existing photovoltaic support structures are unstable in uneven soil, resulting in insufficient load-bearing capacity and affecting the stability and safety of photovoltaic modules.

Method used

The pile stabilization component includes an arc-shaped extension shovel and a drive mechanism. The drive mechanism extends the arc-shaped extension shovel and drives it into the soil, increasing friction. The pile adjustment component adjusts the position and angle of the pile through a support plate and a locking mechanism to ensure verticality.

Benefits of technology

It improves the stability and bearing capacity of the piles in the soil, reduces construction errors, and enhances the safety and durability of photovoltaic modules.

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Abstract

This invention relates to the field of photovoltaic power station technology, and discloses a prefabricated photovoltaic module and photovoltaic power generation system, including a pile body. The pile body is equipped with a pile body stabilization component, a pile body adjustment component, and a conversion component. The photovoltaic module includes multiple photovoltaic cells that directly convert sunlight into direct current (DC) power and can provide DC power output independently. The pile body stabilization component includes an arc-shaped extension shovel. By adjusting the placement and angle of the support plate according to the surrounding environment, the pile body remains vertical within the hole, ensuring that the verticality of the pile body can effectively reduce construction errors and make the pile foundation structure more stable, thereby improving the safety and durability of the equipment. A drive component drives the arc-shaped extension shovel at the bottom of the pile body to extend fully through the blocking component. The extended arc-shaped extension shovel rotates and penetrates into the soil around the bottom of the pile body, stabilizing the bottom of the pile body and increasing the contact area and friction between the pile side surface and the surrounding soil.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of photovoltaic power stations, in particular to an assembled photovoltaic module and a photovoltaic power generation system. BACKGROUND

[0002] Monomer solar cells cannot be directly used as power sources. To make a power source, a number of monomer cells must be connected in series and parallel and tightly packaged into a module. The solar cell module (also called a solar cell panel) is the core part of the solar power generation system and is the most important part of the solar power generation system. Its role is to convert solar energy into electrical energy, or to store it in a storage battery, or to drive the load to work.

[0003] A photovoltaic support disclosed in Chinese patent CN112688627B, the first driving mechanism can make the first tooth and the second tooth have two states of separation and engagement in the axial direction of the main beam. When the first driving mechanism works to achieve the separation state, the second driving mechanism works, which facilitates the angle adjustment of the support; and after the support is adjusted to the required angle, the first driving mechanism works again to achieve the engagement state, which keeps the support at a fixed angle. Therefore, the photovoltaic support has the advantages of stable structure, convenient angle adjustment and low cost, and has the beneficial effect of good adjustment consistency.

[0004] The above-mentioned photovoltaic support, when installed, encounters uneven soil or other external factors, and the soil is difficult to stabilize the pile body in the hole, which causes the pile body to easily tilt in the hole, and thus the carrying capacity of the pile body cannot meet the design requirements, affecting the overall stability and safety of the photovoltaic module. SUMMARY

[0005] (I) Technical problems solved

[0006] In view of the deficiencies of the prior art, the present application provides an assembled photovoltaic module and a photovoltaic power generation system, which has the advantages of increasing the friction between the bottom end of the pile body and the soil, and solves the problem of instability of the pile body in the soil.

[0007] (II) Technical solutions

[0008] To solve the above-mentioned problems, the present application provides the following technical solutions: an assembled photovoltaic module, comprising a pile body, the pile body is provided with a pile body stabilizing assembly, a pile body adjusting assembly and a conversion assembly;

[0009] The conversion assembly comprises a plurality of photovoltaic cell pieces, which directly convert sunlight into direct current electrical energy and can independently provide direct current output;

[0010] The pile body stabilizing assembly comprises an arc-shaped extension shovel, a driving element arranged in the pile body and capable of driving the arc-shaped extension shovel to slide, the driving element drives the arc-shaped extension shovel to rotate and extend from the bottom end of the pile body, and the inner wall of the pile body is provided with a blocking element for scraping off the soil adhered to the surface of the arc-shaped extension shovel, the extended arc-shaped extension shovel is in contact with the soil at the bottom end of the pile body through the blocking element, and the friction between the pile body and the surrounding soil is increased.

[0011] The pile body adjusting assembly comprises a plurality of support plates and a sliding base slidably connected to the bottom end of the pile body, a locking element is arranged between the sliding base and the pile body to prevent the support plates from shaking during transportation, and when the pile body slides downward along the support plates, the locking element simultaneously unlocks the plurality of support plates, so that the plurality of support plates are simultaneously ejected from the pile body, and the position of the pile body is adjusted.

[0012] As a preferred scheme of the assembled photovoltaic module, the pile body stabilizing assembly comprises an arc-shaped tooth ring fixedly installed on one side of the arc-shaped extension shovel, a rotating turbine is engaged on one side of the arc-shaped tooth ring, the arc-shaped tooth ring is arranged between the arc-shaped extension shovel and the rotating turbine, a positioning bracket is fixedly installed on the inner wall of the pile body, the top end of the positioning bracket is rotatably connected with the rotating turbine, and a rotating worm is engaged on one side of the rotating turbine.

[0013] As a preferred scheme of the assembled photovoltaic module, the bottom end of the rotating worm is rotatably connected with the positioning bracket, a limiting protrusion is fixedly connected to the rotating worm, a limiting sliding rail is formed in one side of the arc-shaped extension shovel, a limiting sliding block is slidably connected in the limiting sliding rail, a fixing plate is fixedly connected to one side of the limiting sliding block, the limiting sliding block is arranged between the arc-shaped extension shovel and the fixing plate, and the fixing plate is fixedly installed on the inner wall of the pile body.

[0014] As a preferred scheme of the assembled photovoltaic module, the blocking element comprises a slot formed in the inner wall of the pile body, a sliding scraper is symmetrically arranged in the slot, the sliding scraper is slidably connected to the inner wall of the pile body, a right-angle slot is formed in one end of the sliding scraper, a folding elastic sheet is fixedly installed on the other end of the sliding scraper, the folding elastic sheet is arranged in the slot, and the folding elastic sheet is fixedly installed between the pile body and the sliding scraper.

[0015] As a preferred scheme of the assembled photovoltaic module, the driving element comprises a limiting frame fixedly connected to the inner wall of the pile body, a driven gear is rotatably connected to the limiting frame, a driving gear is engaged on one side of the driven gear, one end of the driving gear is rotatably connected with the limiting frame, and a knob is fixedly connected to one end of the driving gear.

[0016] As a preferred scheme of the assembled photovoltaic module, the pile body adjusting assembly comprises a limiting slide rod rotatably connected to the top end of the sliding base, a reset spring plate is arranged between the positioning support and the sliding base, the reset spring plate is sleeved on the limiting slide rod, a limiting groove is formed in the limiting slide rod, the rotating worm is sleeved on the limiting slide rod, the limiting slide rod is rotatably connected to the center of the positioning support, the top end of the limiting slide rod is in sliding fit with the center of the driven gear, the limiting slide rod is rotatably connected to the limiting frame, and the limiting convex strip is in sliding fit in the limiting groove.

[0017] As a preferred scheme of the assembled photovoltaic module, the locking piece comprises a lifting plate fixedly connected to the limiting slide rod, a locking plate is sleeved on the limiting slide rod, the lower surface of the locking plate is in abutment with the upper surface of the lifting plate, the limiting slide rod is rotatably connected to the center of the locking plate, one side of the locking plate is fixedly connected with a locking buckle, and one end of the supporting plate is fixedly connected with a locking slot.

[0018] As a preferred scheme of the assembled photovoltaic module, the pile body adjusting assembly further comprises an adjusting sliding plate slidingly connected in the supporting plate, a fixed block is fixedly connected to the upper surface of the adjusting sliding plate, elastic ratchet blocks are symmetrically arranged in the fixed block, and an elastic element is arranged between the elastic ratchet blocks.

[0019] As a preferred scheme of the assembled photovoltaic module, an adjusting groove is formed in the upper surface of the fixed block, a sliding push plate slidingly connected in the adjusting groove is fixedly connected to the elastic ratchet blocks, a ratchet block strip is fixedly connected to the surface of the supporting plate, and the elastic ratchet blocks are arranged between the ratchet block strips.

[0020] To achieve the above object, a photovoltaic power generation system comprises the assembled photovoltaic module according to any one of claims 1-9.

[0021] Compared with the known prior art, the technical scheme provided by the application has the following beneficial effects:

[0022] 1. The staff adjusts the placement position and angle of the supporting plate according to the surrounding environment, so that the pile body remains vertical in the hole, the construction error can be effectively reduced, the pile foundation structure is more stable, and the safety and durability of the equipment are improved; the arc-shaped extension of the pile body bottom end is driven by the driving piece to be fully extended through the blocking piece, the extended arc-shaped extension is rotated and penetrated into the soil around the pile body bottom end, the pile body bottom end is stabilized, the contact area and friction force of the pile side surface and the surrounding soil are increased, and the bearing capacity of the pile is improved.

[0023] 2. By pushing the arc-shaped extension shovel through the right-angle groove between the sliding scrapers, the compressed folding spring will push the sliding scraper along the surface of the arc-shaped extension shovel to scrape off the soil. After the arc-shaped extension shovel is retracted into the pile body, it helps to reduce the resistance increased by soil adhesion to the arc-shaped extension shovel, enhances the penetration ability and guidance of the arc-shaped extension shovel when it is driven into the soil, makes it easier to drive into the soil, reduces driving resistance, and greatly improves the efficiency of the work.

[0024] 3. By pressing the sliding push plate on the fixing block, the elastic ratchet blocks on both sides of the fixing block are retracted. By pushing the fixing block to slide between the ratchet blocks on both sides, the adjusting slide plate extends out from the support plate, which can provide additional support force to correct or counteract the tilting trend of the pile and ensure the verticality of the pile. This helps to improve the stability and safety of the entire structure. Attached Figure Description

[0025] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are merely some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without any creative effort.

[0026] Figure 1 This is a three-dimensional overall structural diagram of the present invention;

[0027] Figure 2 This is a schematic diagram of the pile structure of the present invention;

[0028] Figure 3 This is a schematic diagram of the structure of the pile stabilization component of the present invention;

[0029] Figure 4 For the present invention Figure 3 Schematic diagram of the structure at point A in the middle;

[0030] Figure 5 For the present invention Figure 3 Schematic diagram of the structure at point B;

[0031] Figure 6 This is a schematic diagram of the locking component of the present invention;

[0032] Figure 7 This is a schematic diagram of the structure of the pile body adjustment component of the present invention;

[0033] Figure 8 For the present invention Figure 7 Schematic diagram of the structure at point C.

[0034] In the diagram: 100, pile body; 200, pile body stabilizing component; 201, arc-shaped extension shovel; 202, arc-shaped toothed ring; 203, rotating turbine; 204, positioning bracket; 205, rotating worm gear; 206, limiting protrusion; 207, limiting slide rail; 208, limiting slider; 209, fixing plate; 210, slot; 211, sliding scraper; 212, right-angle slot; 213, folding spring; 214, limiting frame; 215, driven gear; 21 6. Drive gear; 217. Knob; 300. Pile body adjustment assembly; 301. Support plate; 302. Sliding base; 303. Limiting slide rod; 304. Reset spring; 305. Limiting groove; 306. Lifting plate; 307. Locking plate; 308. Locking buckle; 309. Locking slot; 310. Adjusting slide plate; 311. Fixing block; 312. Elastic ratchet block; 313. Adjustment groove; 314. Sliding push plate; 315. Racket strip. Detailed Implementation

[0035] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of the present invention. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative effort are within the scope of protection of the present invention.

[0036] The present invention will be further described below with reference to embodiments. Example 1

[0037] Reference Figures 1-3 and Figure 6 The first embodiment of the present invention provides a prefabricated photovoltaic module, including a pile body 100, on which a pile body stabilizing component 200, a pile body adjusting component 300 and a conversion component are installed;

[0038] The conversion module includes multiple photovoltaic cells that directly convert sunlight into direct current (DC) electricity and can provide DC output independently.

[0039] The pile stabilization component 200 includes an arc-shaped extension shovel 201. A drive unit is provided inside the pile body 100 to drive the arc-shaped extension shovel 201 to slide. The drive unit drives the arc-shaped extension shovel 201 to rotate and extend from the bottom end of the pile body 100. An obstruction member is provided on the inner wall of the pile body 100 to scrape off the soil adhering to the surface of the arc-shaped extension shovel 201. The extended arc-shaped extension shovel 201 will contact the soil at the bottom end of the pile body 100 through the obstruction member, increasing the friction between the pile body 100 and the surrounding soil.

[0040] The pile body adjustment assembly 300 includes multiple support plates 301 and a sliding base 302 slidably connected to the bottom end of the pile body 100. A locking element is provided between the sliding base 302 and the pile body 100 to prevent the support plates 301 from shaking during transportation. When the pile body 100 slides down along the support plates 301, it drives the locking element to unlock the multiple support plates 301 at the same time, so that the multiple support plates 301 pop out from the pile body 100 at the same time, thereby adjusting the position of the pile body 100.

[0041] Specifically, the pile is placed into the pre-drilled hole using a pile driver. When the pile falls and contacts the bottom of the hole, it remains stationary relative to the sliding base 302. Due to inertia, the pile continues to slide a certain distance along the sliding base 302, thereby driving the locking mechanism inside the pile. The locking mechanism simultaneously releases the locking of the surrounding support plate 301. The torsion spring at the top of the support plate 301 pops the support plate 301, which is fitted against the inner wall of the pile. The workers adjust the position and angle of the support plate 301 according to the surrounding environment to keep the pile vertical inside the hole. The workers use a key to open the box door on one side of the pile. The driving mechanism drives the arc-shaped extension shovel 201 at the bottom of the pile to extend fully through the blocking mechanism. The extended arc-shaped extension shovel 201 rotates and penetrates into the soil around the bottom of the pile to stabilize the bottom of the pile.

[0042] By adjusting the placement and angle of the support plate 301 according to the surrounding environment, the pile body remains vertical in the hole, ensuring that the verticality of the pile body can effectively reduce construction errors, making the pile foundation structure more stable, thereby improving the safety and durability of the equipment. The drive component drives the arc-shaped extension shovel 201 at the bottom of the pile body to extend fully through the blocking component. The extended arc-shaped extension shovel 201 will rotate and penetrate into the soil around the bottom of the pile body, stabilizing the bottom of the pile body, increasing the contact area and friction between the pile side surface and the surrounding soil, thereby improving the bearing capacity of the pile. Example 2

[0043] Reference Figures 1-6 In the second embodiment of the present invention, a prefabricated photovoltaic module is provided. The pile stabilization component includes an arc-shaped toothed ring fixedly installed on one side of an arc-shaped extension shovel. A rotating turbine is engaged on one side of the arc-shaped toothed ring. The arc-shaped toothed ring is disposed between the arc-shaped extension shovel and the rotating turbine. A positioning bracket is fixedly installed on the inner wall of the pile. The top end of the positioning bracket is rotatably connected to the rotating turbine. A rotating worm is engaged on one side of the rotating turbine.

[0044] The bottom end of the rotating worm is rotatably connected to the positioning bracket. A limit convex strip is fixedly connected to the rotating worm. A limit slide rail is opened on one side of the arc-shaped extension shovel. A limit slider is slidably connected inside the limit slide rail. A fixing plate is fixedly connected to one side of the limit slider. The limit slider is set between the arc-shaped extension shovel and the fixing plate. The fixing plate is fixedly installed on the inner wall of the pile body.

[0045] The blocking component includes a groove formed in the inner wall of the pile body, with symmetrically arranged sliding scrapers in the groove. The sliding scrapers are slidably connected to the inner wall of the pile body. One end of the sliding scraper has a right-angle groove, and the other end of the sliding scraper is fixedly installed with a folding spring piece. The folding spring piece is set in the groove and fixedly installed between the pile body and the sliding scraper.

[0046] The driving component includes a limiting frame fixedly connected to the inner wall of the pile body, a driven gear rotatably connected to the limiting frame, a driving gear meshing on one side of the driven gear, one end of the driving gear rotatably connected to the limiting frame, and a knob fixedly connected to one end of the driving gear.

[0047] Specifically, after the pile body's angle is adjusted within the hole, the worker rotates knob 217, causing the drive gear 216 and the meshing driven gear 215 to rotate on the limiting frame 214. Through the engagement of the limiting protrusion 206 and the limiting groove 305, the rotating driven gear 215 drives the rotating worm gear 205 at the bottom of the limiting slide rod 303 to rotate together. When the rotating worm gear 205 rotates, it drives the surrounding meshing rotating turbine 203 to rotate on the positioning bracket 204, causing the meshing arc-shaped toothed ring 202 on one side to rotate. This pushes the arc-shaped extension shovel 201 on one side of the arc-shaped toothed ring 202 to slide along the limiting slider 208. When the bottom end of the arc-shaped extension shovel 201 slides outward, it simultaneously engages with the... When the sliding scraper 211 comes into contact, the arc-shaped extension shovel 201 passes through the right-angle groove 212 between the sliding scraper 211, pushing the sliding scraper 211 to compress the folding spring 213. The sliding scraper 211 will slide along the surface of the arc-shaped extension shovel 201, gradually opening the groove 210 on the side of the pile. The extended arc-shaped extension shovel 201 will rotate and penetrate into the soil around the bottom of the pile. When the knob 217 is turned in the opposite direction, the working steps are reversed. When the arc-shaped extension shovel 201 retracts from the groove 210, the compressed folding spring 213 will push the sliding scraper 211 along the surface of the arc-shaped extension shovel 201 to scrape the soil off. After the arc-shaped extension shovel 201 is retracted into the pile, the sliding scraper 211 will automatically close the groove 210 on the side of the pile. Example 3

[0048] Reference Figures 6-8 The third embodiment of the present invention provides a prefabricated photovoltaic module. The pile body adjustment component includes a limiting slide rod rotatably connected to the top of the sliding base. A reset spring is provided between the positioning bracket and the sliding base. The reset spring is sleeved on the limiting slide rod. A limiting groove is formed on the limiting slide rod. A rotating worm gear is sleeved with the limiting slide rod. The limiting slide rod is rotatably connected to the center of the positioning bracket. The top of the limiting slide rod is engaged with the center of the driven gear and slides. The limiting slide rod is rotatably connected to the limiting frame. The limiting protrusion is engaged with and slides in the limiting groove.

[0049] The locking component includes a lifting plate fixedly connected to the limiting slide rod, a locking plate sleeved on the limiting slide rod, the lower surface of the locking plate abutting against the upper surface of the lifting plate, the limiting slide rod being rotatably connected to the center of the locking plate, a locking buckle fixedly connected to one side of the locking plate, and a locking groove fixedly connected to one end of the support plate.

[0050] The pile body adjustment assembly also includes an adjustment slide plate that is slidably connected within the support plate. A fixing block is fixedly connected to the upper surface of the adjustment slide plate, and elastic ratchet blocks are symmetrically arranged within the fixing block. Elastic elements are arranged between the elastic ratchet blocks.

[0051] An adjustment groove is provided on the upper surface of the fixed block, and a sliding push plate that is slidably connected in the adjustment groove is fixedly connected to the elastic ratchet block. A ratchet strip is fixedly connected to the surface of the support plate, and the elastic ratchet block is arranged between the ratchet strips.

[0052] Specifically, the pile is placed into the pre-drilled hole using a pile driver. When the pile falls and contacts the bottom of the hole, while it is stationary relative to the sliding base 302, it continues to slide a certain distance along the sliding base 302 due to inertia. This causes the pile to press the reset spring 304 between the positioning bracket 204 and the sliding base 302, pushing the limit slide rod 303 at the top of the sliding base 302 to rise. This, in turn, pushes the locking buckles 308 around the locking plate 307 to rise simultaneously via the lifting plate 306, causing the locking buckles 308 around the locking plate 307 to move out of the locking slots 309. When the support plate 301 is released... After locking, the torsion spring will push the support plate 301 to rotate and pop out from the side of the pile. By pressing the sliding push plate 314 on the fixing block 311, the elastic ratchet blocks 312 on both sides of the fixing block 311 will be retracted. By pushing the fixing block 311 to slide between the ratchet strips 315 on both sides, the adjusting slide plate 310 will extend out from the support plate 301. The staff will adjust the placement position and angle of the support plate 301 according to the environment around the pile to keep the pile vertical in the hole. After the position is determined, the sliding push plate 314 will be released, and the elastic element will push the elastic ratchet blocks 312 on both sides to slide and lock into the ratchet strips 315 on both sides for fixation. Example 4

[0053] Reference Figures 1-8 This is the fourth embodiment of the present invention, which provides a photovoltaic power generation module, including the following steps:

[0054] First, the pile is placed into the pre-drilled hole using a pile driver. When the pile falls and contacts the bottom of the hole, while it is stationary relative to the sliding base 302, it continues to slide a certain distance along the sliding base 302 due to inertia. This causes the pile to press the reset spring 304 between the positioning bracket 204 and the sliding base 302, pushing the limit slide rod 303 at the top of the sliding base 302 to rise. This, in turn, pushes the locking buckles 308 around the locking plate 307 to rise simultaneously via the lifting plate 306, causing the locking buckles 308 around the locking plate 307 to move out of the locking slot 309. When the support plate 301 is unlocked... Once set, the torsion spring will push the support plate 301 to rotate and pop out from the side of the pile. By pressing the sliding push plate 314 on the fixing block 311, the elastic ratchet blocks 312 on both sides of the fixing block 311 will be retracted. By pushing the fixing block 311 to slide between the ratchet strips 315 on both sides, the adjusting slide plate 310 will extend out from the support plate 301. The staff will adjust the placement and angle of the support plate 301 according to the environment around the pile to keep the pile vertical in the hole. After the position is determined, the sliding push plate 314 will be released, and the elastic element will push the elastic ratchet blocks 312 on both sides to slide and lock into the ratchet strips 315 on both sides for fixation.

[0055] By rotating knob 217, the operator drives the drive gear 216 and the meshing driven gear 215 to rotate on the limiting frame 214. Through the engagement of the limiting protrusion 206 and the limiting groove 305, the rotating driven gear 215 drives the rotating worm 205 at the bottom of the limiting slide rod 303 to rotate together. When the rotating worm 205 rotates, it drives the surrounding meshing rotating turbine 203 to rotate on the positioning bracket 204, which in turn drives the meshing arc-shaped toothed ring 202 to rotate. This pushes the arc-shaped extension shovel 201 on one side of the arc-shaped toothed ring 202 to slide along the limiting slider 208. When the bottom end of the arc-shaped extension shovel 201 slides outward, it simultaneously interacts with the symmetrical sliding scraper 211. Upon contact, the curved extension shovel 201 passes through the right-angle groove 212 between the sliding scrapers 211, pushing the sliding scrapers 211 to compress the folding spring 213. The sliding scrapers 211 slide along the surface of the curved extension shovel 201, gradually opening the groove 210 on the side of the pile. The extended curved extension shovel 201 rotates and penetrates into the soil around the bottom of the pile. When the knob 217 is turned in the opposite direction, the working steps are reversed. When the curved extension shovel 201 retracts from the groove 210, the compressed folding spring 213 pushes the sliding scrapers 211 along the surface of the curved extension shovel 201 to scrape off the soil. After the curved extension shovel 201 is retracted into the pile, the sliding scrapers 211 automatically close the groove 210 on the side of the pile.

[0056] The above embodiments are only used to illustrate the technical solutions of the present invention, and are not intended to limit it. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions will not cause the essence of the corresponding technical solutions to deviate from the protection scope of the technical solutions of the embodiments of the present invention.

Claims

1. A fabricated photovoltaic module comprising a pile body, characterized by: The pile body is provided with a pile body stabilizing assembly, a pile body adjusting assembly and a conversion assembly; The conversion assembly comprises a plurality of photovoltaic cells, which directly converts sunlight into direct current and can provide direct current output alone; The pile body stabilizing assembly comprises an arc-shaped extension shovel, a driving member is arranged in the pile body and can drive the arc-shaped extension shovel to slide, the driving member drives the arc-shaped extension shovel to rotate and extend from the bottom end of the pile body, the inner wall of the pile body is provided with a blocking member for scraping off the soil adhered to the surface of the arc-shaped extension shovel, the extended arc-shaped extension shovel contacts the soil at the bottom end of the pile body through the blocking member, and the friction between the pile body and the surrounding soil is increased; The pile body adjusting assembly comprises a plurality of support plates and a sliding base slidingly connected to the bottom end of the pile body, a locking member is arranged between the sliding base and the pile body to prevent the support plates from shaking during transportation, and when the pile body slides downward along the support plates, the locking member simultaneously unlocks the plurality of support plates, so that the plurality of support plates are simultaneously ejected from the pile body, and the position of the pile body is adjusted; The pile body stabilizing assembly comprises an arc-shaped tooth ring fixedly installed on one side of the arc-shaped extension shovel, one side of the arc-shaped tooth ring is engaged with a rotating turbine, the arc-shaped tooth ring is arranged between the arc-shaped extension shovel and the rotating turbine, a positioning bracket is fixedly installed on the inner wall of the pile body, the top end of the positioning bracket is rotatably connected with the rotating turbine, and one side of the rotating turbine is engaged with a rotating worm; The bottom end of the rotating worm is rotatably connected with the positioning bracket, a limiting protruding strip is fixedly connected to the rotating worm, a limiting sliding rail is formed in one side of the arc-shaped extension shovel, a limiting sliding block is slidingly connected in the limiting sliding rail, one side of the limiting sliding block is fixedly connected with a fixed plate, the limiting sliding block is arranged between the arc-shaped extension shovel and the fixed plate, and the fixed plate is fixedly installed on the inner wall of the pile body; The driving member comprises a limiting frame fixedly connected to the inner wall of the pile body, a driven gear is rotatably connected to the limiting frame, one side of the driven gear is engaged with a driving gear, one end of the driving gear is rotatably connected with the limiting frame, and one end of the driving gear is fixedly connected with a knob; The pile body adjusting assembly comprises a limiting slide rod rotatably connected to the top end of the sliding base, a reset spring sheet is arranged between the positioning bracket and the sliding base, the reset spring sheet is sleeved on the limiting slide rod, a limiting groove is formed in the limiting slide rod, the rotating worm is sleeved on the limiting slide rod, the limiting slide rod is rotatably connected at the center of the positioning bracket, the top end of the limiting slide rod is slidingly engaged with the center of the driven gear, the limiting slide rod is rotatably connected with the limiting frame, and the limiting protruding strip slidingly engages in the limiting groove; The locking piece comprises a lifting plate fixedly connected to a limiting slide rod, a locking plate is sleeved on the limiting slide rod, the lower surface of the locking plate is in abutment with the upper surface of the lifting plate, the limiting slide rod is rotationally connected to the center of the locking plate, one side of the locking plate is fixedly connected with a locking buckle, one end of the supporting plate is fixedly connected with a locking slot, the locking buckle around the locking plate is pushed up by the lifting plate, and the locking buckle around the locking plate is moved out of the locking slot, when the supporting plate is unlocked, the torsional spring pushes the supporting plate to rotate and pop out from the side of the pile body.

2. The assembled photovoltaic module of claim 1, wherein: The blocking piece comprises a notch opened in the inner wall of the pile body, and symmetrical sliding scrapers are arranged in the notch, the sliding scrapers are slidingly connected to the inner wall of the pile body, a right-angle groove is formed in one end of the sliding scraper, a folding elastic sheet is fixedly installed at the other end of the sliding scraper, the folding elastic sheet is arranged in the notch, and the folding elastic sheet is fixedly installed between the pile body and the sliding scraper.

3. The assembled photovoltaic module of claim 2, wherein: The pile body adjusting assembly further comprises an adjusting sliding plate slidingly connected to the supporting plate, a fixed block is fixedly connected to the upper surface of the adjusting sliding plate, and symmetrical elastic ratchet blocks are arranged in the fixed block.

4. The assembled photovoltaic module of claim 3, wherein: An adjusting groove is formed in the upper surface of the fixed block, a sliding push plate slidingly connected to the adjusting groove is fixedly connected to the elastic ratchet blocks, and a ratchet block strip is fixedly connected to the surface of the supporting plate. 5.A photovoltaic power generation system comprising the assembled photovoltaic module according to any one of claims 1-4.

Citation Information

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