Auxiliary tool for splicing and mounting photovoltaic panels

By designing a photovoltaic panel installation auxiliary tool that includes movable panel surface, fixed frame, telescopic pillar, fixed nail and universal wheel, the existing tools are solved inadequate versatility and low installation accuracy when adapting to different photovoltaic panels and bracket systems, and efficient and accurate photovoltaic panel installation is achieved.

CN222903952UActive Publication Date: 2025-05-27SUZHOU WOTAILANG ENERGY CO LTD
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Patent Information

Application Number
CN202421954124.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-13
Publication Date
2025-05-27
Estimated Expiration
2034-08-13

AI Technical Summary

Technical Problem

Existing photovoltaic panel installation tools are inadequate in versatility when adapting to different types of photovoltaic panels and bracket systems, and the lack of high-precision auxiliary tools leads to inadequate installation accuracy and efficiency.

Method used

A photovoltaic panel splicing and installation auxiliary tool including movable plate surface, fixed frame, telescopic support, fixed nails and universal wheels is designed. Through the synergy of these components, high-precision alignment and stable fixation of the photovoltaic panels are achieved.

Benefits of technology

This tool effectively improves the efficiency and accuracy of photovoltaic panel installation, reduces the work intensity of workers, and is suitable for photovoltaic panels of different sizes and installation requirements, improving the versatility of the tool.

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Abstract

The utility model relates to the technical field of photovoltaic panel installation, in particular to a photovoltaic panel splicing installation auxiliary tool which comprises an auxiliary mechanism, the auxiliary mechanism comprises a movable panel, a fixed frame, two telescopic supporting columns, two fixing nails and two universal wheels, and the movable panel is arranged on the movable panel. The movable board is arranged above the fixed frame, the telescopic supporting column is arranged below the fixed frame, the fixing nail is arranged on one side of the telescopic supporting column, the universal wheel is arranged below the telescopic supporting column, and the movable board is in sliding fit with the fixed frame. The telescopic supporting columns are movably connected with the fixing frame, the telescopic supporting columns are fixedly connected with the fixing nails, and the universal wheels are rotationally connected with the telescopic supporting columns. And the auxiliary mechanism assists a worker in positioning and mounting through the clamping piece, the gear telescopic rod, the belt telescopic rod and the positioning piece, so that the working intensity of the worker is effectively reduced, and the working efficiency of the worker is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of photovoltaic panel installation, in particular to an auxiliary tool for splicing and installing photovoltaic panels. Background Art

[0002] The functions of the auxiliary tool for splicing and installing photovoltaic panels are mainly to improve the installation efficiency, ensure the installation quality and safety. These tools play an important role in the process of installing photovoltaic panels. They can not only improve the installation speed and quality, but also ensure the safety of the staff. With the progress of technology, the future auxiliary tools for installing photovoltaic panels may be more intelligent and automated, further improving the installation efficiency and convenience.

[0003] Some problems may occur during the splicing and installation process of photovoltaic panels. These problems are often related to installation tools, technologies, materials and environmental factors. The following are some common problems: The installation tools need to adapt to different types of photovoltaic panels and support systems. Sometimes, general tools may not meet the requirements of specific scenarios; Photovoltaic panels need to be accurately aligned to ensure the best solar light reception angle, which may be difficult due to the lack of high-precision auxiliary tools; Manual installation may be slow and labor-intensive due to the lack of efficient auxiliary tools. Summary of the Utility Model

[0004] In view of the problems of the versatility of the above installation tools, installation accuracy and the efficiency of manual installation, the present utility model is proposed.

[0005] The purpose of the utility model is to provide an auxiliary tool for splicing and installing photovoltaic panels.

[0006] To solve the above technical problems, the utility model provides the following technical solution: An auxiliary tool for splicing and installing photovoltaic panels, which includes an auxiliary mechanism. The auxiliary mechanism includes a movable plate surface, a fixed frame, telescopic struts, fixing nails and universal wheels. There are two telescopic struts, two fixing nails and two universal wheels. The movable plate surface is arranged above the fixed frame, the telescopic struts are arranged below the fixed frame, the fixing nails are arranged on one side of the telescopic struts, the universal wheels are arranged below the telescopic struts. The movable plate surface is slidably matched with the fixed frame, the telescopic struts are movably connected with the fixed frame, the telescopic struts are fixedly connected with the fixing nails, and the universal wheels are rotatably connected with the telescopic struts.

[0007] As a preferred embodiment of the auxiliary tool for splicing and installing photovoltaic panels of the present utility model, the following is provided: The movable plate surface includes a storage plate, a clamping member, and a gear telescopic rod. A square convex block and two T-shaped chutes are provided below the storage plate. Two clamping members are provided and symmetrically distributed on both sides of the storage plate. One end of the gear telescopic rod is fixedly connected to the square convex block of the storage plate. The gear telescopic rod is arranged below one of the clamping members, and the gear telescopic rod and the clamping member are in the same vertical plane.

[0008] As a preferred embodiment of the auxiliary tool for splicing and installing photovoltaic panels of the present utility model, the following is provided: The clamping member includes a first pipe sleeve, a second pipe sleeve, a clamping spring, and a clamping plate. One end of the first pipe sleeve is fixedly connected to the storage plate. The second pipe sleeve is arranged outside the first pipe sleeve. One end of the second pipe sleeve is fixedly connected to the clamping plate. The clamping spring is arranged inside the first pipe sleeve and the second pipe sleeve. One end of the clamping spring is fixedly connected to the storage plate, and the other end of the clamping spring is fixedly connected to the clamping plate.

[0009] As a preferred embodiment of the auxiliary tool for splicing and installing photovoltaic panels of the present utility model, the following is provided: The gear telescopic rod includes a first-stage gear telescopic rod, a second-stage gear telescopic rod, and a third-stage gear telescopic rod. The first-stage gear telescopic rod is a hollow cylinder and is fixedly connected to the square convex block of the storage plate. Two symmetrically distributed racks are provided inside the first-stage gear telescopic rod. The second-stage gear telescopic rod is arranged inside the first-stage gear telescopic rod and is a hollow cylinder. Two symmetrically distributed gears are provided at one end of the second-stage gear telescopic rod. The gears are rotatably connected to the second-stage gear telescopic rod. The gears of the second-stage gear telescopic rod are engaged with the racks of the first-stage gear telescopic rod. Two symmetrically distributed L-shaped chutes and L-shaped convex blocks are respectively provided at the other end of the second-stage gear telescopic rod. The L-shaped chutes of the second-stage gear telescopic rod and the L-shaped convex blocks of the second-stage gear telescopic rod are in sliding fit. The third-stage gear telescopic rod is arranged inside the second-stage gear telescopic rod and is a solid cylinder. A rectangular bar is provided at one end of the third-stage gear telescopic rod. Tooth grooves are provided on both sides of the rectangular bar. The tooth grooves of the rectangular bar are engaged with the gears. The lower end of the clamping plate and the upper end of the second-stage gear telescopic rod are in the same horizontal plane.

[0010] As a preferred embodiment of the auxiliary tool for splicing and installing photovoltaic panels of the present utility model, the following is provided: the fixed frame includes a first frame, a second frame, a belt telescopic rod, and a positioning member. The first frame is provided as two cuboids parallel to the clamping member. Chutes are respectively provided on both sides of the cuboid of the first frame. The chutes of the first frame are slidably engaged with the T-shaped chutes of the placement board. The second frame is provided as two cuboids perpendicular to the first frame. Spherical bumps are respectively provided below the cuboids of the second frame. The lower end of the first frame is fixedly connected to the upper end of the second frame. One end of the belt telescopic rod is fixedly connected to the second frame. The belt telescopic rod is arranged below the gear telescopic rod. The belt telescopic rod and the gear telescopic rod are in the same vertical plane. The positioning member is respectively fixedly connected to the other end of the belt telescopic rod and the other end of the gear telescopic rod.

[0011] As a preferred embodiment of the auxiliary tool for splicing and installing photovoltaic panels of the present utility model, the following is provided: the belt telescopic rod includes a first-stage belt telescopic rod, a second-stage belt telescopic rod, and a third-stage belt telescopic rod. The first-stage belt telescopic rod is provided as a hollow cylinder. A square hole is provided above the first-stage belt telescopic rod. Ball bearings are provided in the square hole of the first-stage belt telescopic rod. The second-stage belt telescopic rod is arranged inside the first-stage belt telescopic rod. The second-stage belt telescopic rod is provided as a hollow cylinder. Two rollers are provided at one end of the second-stage belt telescopic rod. The rollers are rotatably connected to the second-stage belt telescopic rod. A belt is provided on the side of the rollers. The belt is slidably engaged with the rollers. A limit connection block is provided above the belt. One end of the limit connection block is slidably engaged with the belt. The limit connection block includes a sliding block and a limit block. The limit block of the limit connection block is arranged inside the sliding block of the limit connection block. The other end of the sliding block of the limit connection block is fixedly connected to the first-stage belt telescopic rod. A groove is provided on the side of the limit block of the limit connection block. The other end of the limit block of the limit connection block passes through the square hole of the first-stage belt telescopic rod and is arranged outside the first-stage belt telescopic rod. The ball bearings in the square hole of the first-stage belt telescopic rod cooperate with the groove on the side of the limit block of the limit connection block. A driven connection block is provided below the belt. One end of the driven connection block is fixedly connected to the belt. The other end of the driven connection block is fixedly connected to one end of the third-stage belt telescopic rod. The third-stage belt telescopic rod is arranged inside the second-stage belt telescopic rod. The other end of the third-stage belt telescopic rod is fixedly connected to the second frame.

[0012] As a preferred embodiment of the auxiliary tool for splicing and installing photovoltaic panels of the present utility model, the positioning member includes a positioning plate, a semi-circular groove, and a bolt. The positioning plate is provided with a circular hole. One end of the bolt is provided with a semi-circular convex block. The semi-circular convex block of the bolt, the semi-circular groove, the gear telescopic rod, and the belt telescopic rod are all arranged on the same side of the positioning plate. The other end of the bolt is arranged on the other side of the positioning plate through the circular hole of the positioning plate. Nuts adapted to the bolt are provided on both sides of the positioning plate. The other end of the third-segment gear telescopic rod is fixedly connected to the positioning member. One end of the first-segment belt telescopic rod is fixedly connected to the positioning member.

[0013] As a preferred embodiment of the auxiliary tool for splicing and installing photovoltaic panels of the present utility model, the telescopic support includes a first support and a second support. The first support is a solid cylinder, and the second support is a hollow cylinder. The second support is arranged outside the first support, and the first support and the second support are in sliding fit.

[0014] As a preferred embodiment of the auxiliary tool for splicing and installing photovoltaic panels of the present utility model, the first support is provided with a spherical groove, an annular groove, a threaded sleeve, and a square groove. The spherical groove is arranged above the first support. The spherical groove is a groove larger than the hemisphere size of the spherical convex block of the second frame. The diameter of the spherical convex block of the second frame is larger than the diameter of the groove opening of the spherical groove. The spherical convex block of the second frame is movably connected to the spherical groove. The annular groove is arranged on the side of the first support. The threaded sleeve is rotatably connected to the annular groove. The square groove is arranged on one side of the first support, and there are multiple square grooves arranged in a linear array.

[0015] As a preferred embodiment of the auxiliary tool for splicing and installing photovoltaic panels of the present utility model, the second support is provided with a support spring, a threaded groove, and a rotating block. The support spring is arranged inside the second support. One end of the support spring is fixedly connected to the first support, and the other end of the support spring is fixedly connected to the second support. The threaded groove is arranged inside the second support, and the threaded groove is in sliding fit with the threaded sleeve. The rotating block is arranged on one side of the upper end of the second support. One end of the rotating block is rotatably connected to the second support, and the other end of the rotating block is engaged with the square groove.

[0016] The beneficial effects of the photovoltaic panel splicing and installation auxiliary tool of the present utility model are as follows: The auxiliary mechanism assists workers in positioning and installation through the clamping member, the gear telescopic rod, the belt telescopic rod, and the positioning member, effectively reducing the working intensity of workers and improving their working efficiency; The auxiliary mechanism is equipped with the universal wheels for movement, facilitating the carrying and use by workers; The auxiliary mechanism is equipped with the fixing nails for fixation, facilitating the fixation and use by workers on abnormal terrains; The spherical convex block of the second frame is movably connected with the spherical groove of the first pillar, meeting the requirement of automatic leveling of the placement board on any terrain; The auxiliary mechanism is applicable to photovoltaic panels of different sizes and installation requirements, effectively improving the versatility of the photovoltaic panel splicing and installation auxiliary mechanism. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] In order to more clearly illustrate the technical solutions of the embodiments of the present utility model, the following will briefly introduce the drawings required for description in the embodiments. Obviously, the following described drawings are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings. Among them:

[0018] Figure 1 It is the overall structure diagram of a photovoltaic panel splicing and installation auxiliary tool in the present utility model.

[0019] Figure 2 It is the cross-sectional view of the clamping member of a photovoltaic panel splicing and installation auxiliary tool in the present utility model.

[0020] Figure 3 It is the cross-sectional view of the gear telescopic rod of a photovoltaic panel splicing and installation auxiliary tool in the present utility model.

[0021] Figure 4 It is the cross-sectional view of the belt telescopic rod of a photovoltaic panel splicing and installation auxiliary tool in the present utility model.

[0022] Figure 5 It is the structural display diagram of the clamping member, gear telescopic rod, belt telescopic rod, and positioning member of a photovoltaic panel splicing and installation auxiliary tool in the present utility model.

[0023] Figure 6 It is the cross-sectional view of the telescopic pillar of a photovoltaic panel splicing and installation auxiliary tool in the present utility model. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0024] In order to make the above objects, features, and advantages of the present utility model more obvious and understandable, the following will describe the specific embodiments of the present utility model in detail with reference to the drawings in the specification.

[0025] In the following description, numerous specific details are set forth to provide a thorough understanding of the present utility model. However, the present utility model may also be implemented in other ways different from those described herein. Those skilled in the art can make similar extensions without departing from the connotation of the present utility model. Therefore, the present utility model is not limited by the specific embodiments disclosed below.

[0026] Secondly, the so-called "one embodiment" or "embodiment" herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation manner of the present utility model. The phrase "in one embodiment" that appears in different places in this specification does not necessarily refer to the same embodiment, nor is it an embodiment that is separate or selectively exclusive of other embodiments.

[0027] Embodiment 1

[0028] Referring to Figures 1 to 6 , which is the first embodiment of the present utility model. This embodiment provides an auxiliary tool for splicing and installing photovoltaic panels, including an auxiliary mechanism 100. The auxiliary mechanism 100 includes a movable plate surface 101, a fixed frame 102, telescopic struts 103, fixing nails 104, and universal wheels 105. There are two telescopic struts 103, fixing nails 104, and universal wheels 105 respectively. The movable plate surface 101 is arranged above the fixed frame 102, the telescopic struts 103 are arranged below the fixed frame 102, the fixing nails 104 are arranged on one side of the telescopic struts 103, and the universal wheels 105 are arranged below the telescopic struts 103. The movable plate surface 101 is slidably matched with the fixed frame 102, the telescopic struts 103 are movably connected to the fixed frame 102, the telescopic struts 103 are fixedly connected to the fixing nails 104, and the universal wheels 105 are rotatably connected to the telescopic struts 103.

[0029] Furthermore, the movable plate surface 101 includes a storage plate 101a, clamping members 101b, and a gear telescopic rod 101c. There are a square convex block and two T-shaped chutes below the storage plate 101a. There are two clamping members 101b, which are symmetrically distributed on both sides of the storage plate 101a. One end of the gear telescopic rod 101c is fixedly connected to the square convex block of the storage plate 101a. The gear telescopic rod 101c is arranged below one of the clamping members 101b, and the gear telescopic rod 101c and the clamping member 101b are in the same vertical plane.

[0030] Further, the clamping member 101b includes a first sleeve 101b-1, a second sleeve 101b-2, a clamping spring 101b-3, and a clamping plate 101b-4. One end of the first sleeve 101b-1 is fixedly connected to the storage plate 101a. The second sleeve 101b-2 is disposed outside the first sleeve 101b-1. One end of the second sleeve 101b-2 is fixedly connected to the clamping plate 101b-4. The clamping spring 101b-3 is disposed inside the first sleeve 101b-1 and the second sleeve 101b-2. One end of the clamping spring 101b-3 is fixedly connected to the storage plate 101a, and the other end of the clamping spring 101b-3 is fixedly connected to the clamping plate 101b-4.

[0031] Further, the gear telescopic rod 101c includes a first-stage gear telescopic rod 101c-1, a second-stage gear telescopic rod 101c-2, and a third-stage gear telescopic rod 101c-3. The first-stage gear telescopic rod 101c-1 is a hollow cylinder and is fixedly connected to the square convex block of the storage plate 101a. Two symmetrically distributed racks 101c-11 are provided inside the first-stage gear telescopic rod 101c-1. The second-stage gear telescopic rod 101c-2 is disposed inside the first-stage gear telescopic rod 101c-1 and is a hollow cylinder. Two symmetrically distributed gears 101c-21 are provided at one end of the second-stage gear telescopic rod 101c-2. The gears 101c-21 are rotatably connected to the second-stage gear telescopic rod 101c-2. The gears of the second-stage gear telescopic rod 101c-2 mesh with the racks of the first-stage gear telescopic rod 101c-1. Two symmetrically distributed L-shaped chutes and L-shaped protrusions are respectively provided at the other end of the second-stage gear telescopic rod 101c-2. The L-shaped chutes and the L-shaped protrusions of the second-stage gear telescopic rod 101c-2 are in sliding fit. The third-stage gear telescopic rod 101c-3 is disposed inside the second-stage gear telescopic rod 101c-2 and is a solid cylinder. A rectangular strip 101c-31 is provided at one end of the third-stage gear telescopic rod 101c-3. Tooth grooves are provided on both sides of the rectangular strip 101c-31. The tooth grooves of the rectangular strip 101c-31 mesh with the gears 101c-21. The lower end of the clamping plate 101b-4 and the upper end of the second-stage gear telescopic rod 101c-2 are at the same horizontal plane.

[0032] Further, the fixing frame 102 includes a first frame 102a, a second frame 102b, a belt telescopic rod 102c, and a positioning member 102d. The first frame 102a is provided as two rectangular parallelepipeds parallel to the clamping member 101b. Chutes are respectively provided on both sides of the rectangular parallelepiped of the first frame 102a, and the chutes of the first frame 102a are slidably engaged with the T-shaped chutes of the placing plate 101a. The second frame 102b is provided as two rectangular parallelepipeds perpendicular to the first frame 102a. Spherical bumps are respectively provided below the rectangular parallelepipeds of the second frame 102b. The lower end of the first frame 102a is fixedly connected to the upper end of the second frame 102b. One end of the belt telescopic rod 102c is fixedly connected to the second frame 102b. The belt telescopic rod 102c is arranged below the gear telescopic rod 101c, and the belt telescopic rod 102c and the gear telescopic rod 101c are in the same vertical plane. The positioning member 102d is respectively fixedly connected to the other end of the belt telescopic rod 102c and the other end of the gear telescopic rod 101c.

[0033] Further, the belt telescopic rod 102c includes a first-stage belt telescopic rod 102c-1, a second-stage belt telescopic rod 102c-2, and a third-stage belt telescopic rod 102c-3. The first-stage belt telescopic rod 102c-1 is provided as a hollow cylinder. There is a square hole above the first-stage belt telescopic rod 102c-1, and there are balls in the square hole of the first-stage belt telescopic rod 102c-1. The second-stage belt telescopic rod 102c-2 is arranged inside the first-stage belt telescopic rod 102c-1 and is provided as a hollow cylinder. One end of the second-stage belt telescopic rod 102c-2 is provided with two rollers 102c-21. The rollers 102c-21 are rotatably connected to the second-stage belt telescopic rod 102c-2. There is a belt 102c-22 on the side of the rollers 102c-21. The belt 102c-22 is slidably matched with the rollers 102c-21. There is a limit connection block 102c-23 above the belt 102c-22. One end of the limit connection block 102c-23 is slidably matched with the belt 102c-22. The limit connection block 102c-23 includes a sliding block and a limit block. The limit block of the limit connection block 102c-23 is arranged inside the sliding block of the limit connection block 102c-23. The other end of the sliding block of the limit connection block 102c-23 is fixedly connected to the first-stage belt telescopic rod 102c-1. There is a groove on the side of the limit block of the limit connection block 102c-23. The other end of the limit block of the limit connection block 102c-23 passes through the square hole of the first-stage belt telescopic rod 102c-1 and is arranged outside the first-stage belt telescopic rod 102c-1. The balls in the square hole of the first-stage belt telescopic rod 102c-1 are matched with the groove on the side of the limit block of the limit connection block 102c-23. There is a driven connection block 102c-24 below the belt 102c-22. One end of the driven connection block 102c-24 is fixedly connected to the belt 102c-22. The other end of the driven connection block 102c-24 is fixedly connected to one end of the third-stage belt telescopic rod 102c-3. The third-stage belt telescopic rod 102c-3 is arranged inside the second-stage belt telescopic rod 102c-2. The other end of the third-stage belt telescopic rod 102c-3 is fixedly connected to the second frame 102b.

[0034] Further, the positioning member 102d includes a positioning plate 102d-1, a semi-circular groove 102d-2, and a bolt 102d-3. The positioning plate 102d-1 is provided with a circular hole. One end of the bolt 102d-3 is provided with a semi-circular protrusion. The semi-circular protrusion of the bolt 102d-3, the semi-circular groove 102d-2, the gear telescopic rod 101c, and the belt telescopic rod 102c are all arranged on the same side of the positioning plate 102d-1. The other end of the bolt 102d-3 is arranged on the other side of the positioning plate 102d-1 through the circular hole of the positioning plate 102d-1. Nuts adapted to the bolt 102d-3 are provided on both sides of the positioning plate 102d-1. The other end of the third-section gear telescopic rod 101c-3 is fixedly connected to the positioning member 102d. One end of the first-section belt telescopic rod 102c-1 is fixedly connected to the positioning member 102d.

[0035] Further, the telescopic support column 103 includes a first support column 103a and a second support column 103b. The first support column 103a is a solid cylinder, and the second support column 103b is a hollow cylinder. The second support column 103b is arranged outside the first support column 103a, and the first support column 103a and the second support column 103b are in sliding fit.

[0036] Further, the first support column 103a is provided with a spherical groove 103a-1, an annular groove 103a-2, a threaded sleeve 103a-3, and a square groove 103a-4. The spherical groove 103a-1 is arranged above the first support column 103a. The spherical groove 103a-1 is a groove larger than the hemisphere size of the spherical protrusion of the second frame 102b. The diameter of the spherical protrusion of the second frame 102b is larger than the diameter of the notch of the spherical groove 103a-1. The spherical protrusion of the second frame 102b is movably connected to the spherical groove 103a-1. The annular groove 103a-2 is arranged on the side surface of the first support column 103a. The threaded sleeve 103a-3 is rotatably connected to the annular groove 103a-2. The square groove 103a-4 is arranged on one side of the first support column 103a, and there are multiple square grooves 103a-4 arranged in a linear array.

[0037] Further, the second support column 103b is provided with a support column spring 103b-1, a threaded groove 103b-2, and a rotating block 103b-3. The support column spring 103b-1 is arranged inside the second support column 103b. One end of the support column spring 103b-1 is fixedly connected to the first support column 103a, and the other end of the support column spring 103b-1 is fixedly connected to the second support column 103b. The threaded groove 103b-2 is arranged inside the second support column 103b, and the threaded groove 103b-2 is in sliding fit with the threaded sleeve 103a-3. The rotating block 103b-3 is arranged on one side of the upper end of the second support column 103b. One end of the rotating block 103b-3 is rotatably connected to the second support column 103b, and the other end of the rotating block 103b-3 is engaged with the square groove 103a-4.

[0038] When in use, first adjust the distance between the semi-circular protrusion of bolt 102d-3 and the positioning plate 102d-1 according to the reserved distance required between the photovoltaic panels to be installed this time, and fix it with the nuts on both sides of the positioning plate 102d-1; push the auxiliary mechanism 100 under the bracket where the photovoltaic panel to be installed is located and make the positioning plate 102d-1 face the previous photovoltaic panel, step on the fixing nail 104 to make it penetrate into the soil, drag the movable plate surface 101 upwards to make it located above the bracket, and turn the rotating block 103b-3 to insert it into the square recess The photovoltaic panel is placed on the storage plate 101a and aligned, fixed by the clamping piece 101b, and the rotating block 103b-3 is rotated again to disengage it from the square groove 103a-4. Under the action of gravity, the movable plate surface 101 begins to fall, and the elastic force of the support spring 103b-1 and the limited rotation mode of the threaded sleeve 103a-3 play a buffering role. When the photovoltaic panel contacts the bracket, the spherical protrusion of the second frame 102b will be offset in the spherical groove 103a-1. , so that the photovoltaic panel is completely fitted with the bracket; pull the positioning plate 102d-1 in the direction of the upper photovoltaic panel to make it fit with the upper photovoltaic panel, press the limit connection block 102c-23 limit block downward so that the ball in the square hole of the first section belt telescopic rod 102c-1 is engaged with the groove on the side of the limit connection block 102c-23 limit block, at this time, the limit connection block 102c-23 will limit the belt 102c-22 from moving anymore; pull the second section gear telescopic rod 101 in the direction of the positioning plate 102d-1 c-2 makes it fit with the semi-circular protrusion of the bolt 102d-3 and moves the second section gear telescopic rod 101c-2 L-shaped slider to fix it with the semi-circular protrusion of the bolt 102d-3. At the same time, the upper clamping plate 101b-4 will be driven by the second section gear telescopic rod 101c-2 to achieve coplanarity with the semi-circular protrusion of the bolt 102d-3, and then the workers can fix and install the two photovoltaic panels; after the installation is completed, reverse the above steps to push the auxiliary mechanism 100 to the position of the next photovoltaic panel to be installed.

[0039] Importantly, it should be noted that the construction and arrangement of the present application shown in multiple different exemplary embodiments are merely illustrative. Although only a few embodiments are described in detail in this disclosure, those who refer to this disclosure should easily understand that many modifications are possible without materially departing from the novel teachings and advantages of the subject matter described in this application (e.g., changes in the dimensions, scales, structures, shapes and proportions of various elements, as well as parameter values (such as temperature, pressure, etc.), installation arrangements, use of materials, colors, orientations, etc.). For example, an element shown as integrally formed may be composed of multiple parts or elements, the position of the element may be inverted or otherwise changed, and the nature, number or position of discrete elements may be altered or changed. Accordingly, all such modifications are intended to be included within the scope of the present utility model. The order or sequence of any process or method steps may be changed or reordered according to alternative embodiments. In the claims, any "means-plus-function" clause is intended to cover the structures that perform the recited function herein, and not only structural equivalents but also equivalent structures. Other substitutions, modifications, changes and omissions may be made in the design, operating conditions and arrangement of the exemplary embodiments without departing from the scope of the present utility model. Therefore, the present utility model is not limited to a particular embodiment, but extends to various modifications that still fall within the scope of the appended claims.

[0040] In addition, in order to provide a concise description of the exemplary embodiments, all features of the actual embodiments may not be described (i.e., those features that are not relevant to the currently contemplated best mode of carrying out the present utility model, or those features that are not relevant to the implementation of the present utility model).

[0041] It should be understood that in the development of any actual implementation, as in any engineering or design project, numerous specific implementation decisions may be made. Such development efforts may be complex and time-consuming, but for those of ordinary skill in the art who benefit from this disclosure, without undue experimentation, such development efforts will be a routine task of design, manufacturing and production.

[0042] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present utility model and not to limit them. Although the present utility model has been described in detail with reference to the preferred embodiments, those of ordinary skill in the art should understand that the technical solutions of the present utility model may be modified or equivalently replaced without departing from the spirit and scope of the technical solutions of the present utility model, and all of them should be covered by the scope of the claims of the present utility model.

Claims

1. A photovoltaic panel splicing installation auxiliary tool, characterized by: include, The auxiliary mechanism (100) comprises a movable panel (101), a fixed frame (102), a telescopic support (103), a fixing nail (104) and a universal wheel (105), wherein two of each of the telescopic support (103), the fixing nail (104) and the universal wheel (105) are provided, the movable panel (101) is arranged above the fixed frame (102), and the telescopic support (103) is arranged below the fixed frame (102). The fixing nail (104) is arranged on one side of the telescopic support (103), the universal wheel (105) is arranged below the telescopic support (103), the movable panel (101) is slidably matched with the fixed frame (102), the telescopic support (103) is movably connected to the fixed frame (102), the telescopic support (103) is fixedly connected to the fixing nail (104), and the universal wheel (105) is rotatably connected to the telescopic support (103).

2. The photovoltaic panel splicing and installation auxiliary tool according to claim 1, characterized in that: The movable plate surface (101) comprises a storage plate (101a), a clamping member (101b) and a gear telescopic rod (101c); a square protrusion and two T-shaped slide grooves are provided below the storage plate (101a); two of the clamping members (101b) are provided and symmetrically distributed on both sides of the storage plate (101a); one end of the gear telescopic rod (101c) is fixedly connected to the square protrusion of the storage plate (101a); the gear telescopic rod (101c) is arranged below one of the clamping members (101b); and the gear telescopic rod (101c) and the clamping member (101b) are in the same vertical plane.

3. The photovoltaic panel splicing and installation auxiliary tool according to claim 2, characterized in that: The clamping member (101b) comprises a first sleeve (101b-1), a second sleeve (101b-2), a clamping spring (101b-3) and a clamping plate (101b-4); one end of the first sleeve (101b-1) is fixedly connected to the storage plate (101a); the second sleeve (101b-2) is arranged outside the first sleeve (101b-1); one end of the second sleeve (101b-2) is fixedly connected to the clamping plate (101b-4); the clamping spring (101b-3) is arranged inside the first sleeve (101b-1) and the second sleeve (101b-2); one end of the clamping spring (101b-3) is fixedly connected to the storage plate (101a); and the other end of the clamping spring (101b-3) is fixedly connected to the clamping plate (101b-4).

4. The photovoltaic panel splicing and installation auxiliary tool according to claim 3, characterized in that: The gear telescopic rod (101c) comprises a first section gear telescopic rod (101c-1), a second section gear telescopic rod (101c-2) and a third section gear telescopic rod (101c-3); the first section gear telescopic rod (101c-1) is configured as a hollow cylinder; the first section gear telescopic rod (101c-1) is fixedly connected to the square protrusion of the storage plate (101a); two symmetrically distributed racks (101c-11) are arranged in the first section gear telescopic rod (101c-1); the second section gear telescopic rod (101c-2) is arranged in the first section gear telescopic rod (101c-1); the second section gear telescopic rod (101c-2) is configured as a hollow cylinder; two symmetrically distributed gears (101c-21) are arranged at one end of the second section gear telescopic rod (101c-2); the gears (101c-21) are rotatably connected to the second section gear telescopic rod (101c-2); the second section gear telescopic rod (101c-2) is rotatably connected to the second section gear telescopic rod (101c-2); the second section gear telescopic rod (101c-3) is rotatably connected to the second section gear telescopic rod (101c-3 ... The gear (101c-2) is meshed with the rack of the first gear telescopic rod (101c-1), and the other end of the second gear telescopic rod (101c-2) is respectively provided with two symmetrically distributed L-shaped grooves and L-shaped protrusions, and the L-shaped groove of the second gear telescopic rod (101c-2) and the L-shaped protrusion of the second gear telescopic rod (101c-2) are slidably matched, and the third gear telescopic rod (101c-3) is arranged on the second gear telescopic rod (101c -2), the third section gear telescopic rod (101c-3) is set as a solid cylinder, one end of the third section gear telescopic rod (101c-3) is provided with a rectangular bar (101c-31), both sides of the rectangular bar (101c-31) are provided with tooth grooves, the tooth grooves of the rectangular bar (101c-31) are meshed with the gear (101c-21), and the lower end of the clamping plate (101b-4) and the upper end of the second section gear telescopic rod (101c-2) are in the same horizontal plane.

5. The photovoltaic panel splicing and installation auxiliary tool according to claim 4, characterized in that: The fixed frame (102) comprises a first frame (102a), a second frame (102b), a belt telescopic rod (102c) and a positioning member (102d); the first frame (102a) is configured as two rectangular parallelepipeds parallel to the clamping member (101b); two sides of the rectangular parallelepiped of the first frame (102a) are provided with sliding grooves respectively; the sliding grooves of the first frame (102a) are slidably matched with the T-shaped sliding grooves of the storage plate (101a); the second frame (102b) is configured as two rectangular parallelepipeds perpendicular to the first frame (102a); the second frame (102b) Spherical protrusions are respectively provided below the cuboid; the lower end of the first frame (102a) is fixedly connected to the upper end of the second frame (102b); one end of the belt telescopic rod (102c) is fixedly connected to the second frame (102b); the belt telescopic rod (102c) is arranged below the gear telescopic rod (101c); the belt telescopic rod (102c) and the gear telescopic rod (101c) are in the same vertical plane; and the positioning member (102d) is respectively fixedly connected to the other end of the belt telescopic rod (102c) and the other end of the gear telescopic rod (101c).

6. The photovoltaic panel splicing and installation auxiliary tool according to claim 5, characterized in that: The belt telescopic rod (102c) comprises a first section of the belt telescopic rod (102c-1), a second section of the belt telescopic rod (102c-2) and a third section of the belt telescopic rod (102c-3), the first section of the belt telescopic rod (102c-1) being configured as a hollow cylinder, a square hole being provided above the first section of the belt telescopic rod (102c-1), a ball being provided in the square hole of the first section of the belt telescopic rod (102c-1), the second section of the belt telescopic rod (102c-2) being arranged in the first section of the belt telescopic rod (102c-1), the second section of the belt telescopic rod (102c-2) being configured as a hollow cylinder, and the second section of the belt telescopic rod (102c-3) being configured as a hollow cylinder. One end of the belt telescopic rod (102c-2) is provided with two rollers (102c-21), the rollers (102c-21) are rotatably connected with the second belt telescopic rod (102c-2), a belt (102c-22) is provided on the side of the roller (102c-21), the belt (102c-22) and the roller (102c-21) are slidably matched, a limiting connection block (102c-23) is provided above the belt (102c-22), one end of the limiting connection block (102c-23) is slidably matched with the belt (102c-22), and the limiting connection block (102c-23) includes a sliding block and a limit block, the limit block of the limit connection block (102c-23) is arranged in the sliding block of the limit connection block (102c-23), the other end of the sliding block of the limit connection block (102c-23) is fixedly connected to the first section belt telescopic rod (102c-1), a groove is arranged on the side of the limit block of the limit connection block (102c-23), the other end of the limit block of the limit connection block (102c-23) passes through the square hole of the first section belt telescopic rod (102c-1) and is arranged on the outside of the first section belt telescopic rod (102c-1), and the ball in the square hole of the first section belt telescopic rod (102c-1) is connected with the limit block The position connection block (102c-23) cooperates with the groove on the side of the limit block, and a driven connection block (102c-24) is provided under the belt (102c-22), one end of the driven connection block (102c-24) is fixedly connected to the belt (102c-22), and the other end of the driven connection block (102c-24) is fixedly connected to one end of the third section belt telescopic rod (102c-3), and the third section belt telescopic rod (102c-3) is arranged in the second section belt telescopic rod (102c-2), and the other end of the third section belt telescopic rod (102c-3) is fixedly connected to the second frame (102b).

7. The photovoltaic panel splicing and installation auxiliary tool according to claim 6, characterized in that: The positioning member (102d) comprises a positioning plate (102d-1), a semi-annular groove (102d-2) and a bolt (102d-3); the positioning plate (102d-1) is provided with a circular hole; one end of the bolt (102d-3) is provided with a semi-annular protrusion; the semi-annular protrusion of the bolt (102d-3), the semi-annular groove (102d-2), the gear telescopic rod (101c) and the belt telescopic rod (102c) are all arranged on the positioning plate (102d-1) and are arranged on the same On one side, the other end of the bolt (102d-3) is arranged on the other side of the positioning plate (102d-1) through the circular hole of the positioning plate (102d-1), and nuts adapted to the bolt (102d-3) are provided on both sides of the positioning plate (102d-1), the other end of the third section gear telescopic rod (101c-3) is fixedly connected to the positioning piece (102d), and one end of the first section belt telescopic rod (102c-1) is fixedly connected to the positioning piece (102d).

8. The photovoltaic panel splicing and installation auxiliary tool according to any one of claims 5 to 7, characterized in that: The telescopic support (103) comprises a first support (103a) and a second support (103b), wherein the first support (103a) is configured as a solid cylinder, and the second support (103b) is configured as a hollow cylinder, and the second support (103b) is arranged outside the first support (103a), and the first support (103a) and the second support (103b) are slidably matched.

9. The photovoltaic panel splicing and installation auxiliary tool according to claim 8, characterized in that: The first pillar (103a) is provided with a spherical groove (103a-1), an annular groove (103a-2), a threaded sleeve (103a-3) and a square groove (103a-4); the spherical groove (103a-1) is arranged above the first pillar (103a); the spherical groove (103a-1) is set to be a groove larger than the hemisphere size of the spherical protrusion of the second frame (102b); the diameter of the spherical protrusion of the second frame (102b) is larger than the diameter of the spherical groove (103a-1). a-1) notch diameter, the spherical protrusion of the second frame (102b) is movably connected to the spherical groove (103a-1), the annular groove (103a-2) is arranged on the side of the first pillar (103a), the threaded sleeve (103a-3) is rotatably connected to the annular groove (103a-2), the square groove (103a-4) is arranged on one side of the first pillar (103a), and a plurality of the square grooves (103a-4) are provided and arranged in a linear array.

10. The photovoltaic panel splicing and installation auxiliary tool according to claim 9, characterized in that: The second pillar (103b) is provided with a pillar spring (103b-1), a thread groove (103b-2) and a rotating block (103b-3); the pillar spring (103b-1) is arranged in the second pillar (103b); one end of the pillar spring (103b-1) is fixedly connected to the first pillar (103a); the other end of the pillar spring (103b-1) is fixedly connected to the second pillar (103b); the thread groove (103b-2) is arranged in the second pillar (103b); the thread groove (103b-2) is slidably matched with the thread sleeve (103a-3); the rotating block (103b-3) is arranged on one side of the upper end of the second pillar (103b); one end of the rotating block (103b-3) is rotatably connected to the second pillar (103b); the other end of the rotating block (103b-3) is matched with the square groove (103a-4).