Photovoltaic panel mounting bracket

By designing slidable support rods and movable mounting plates, flexible adjustment of photovoltaic panel mounting brackets is achieved, and the cumbersome installation problem of photovoltaic panels of different sizes is solved, improving installation efficiency and applicability.

CN223141847UActive Publication Date: 2025-07-22THREE GORGES NEW ENERGY POWER GENERATION (YANGZHOU JIANGDU) CO LTD +1
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Patent Information

Application Number
CN202422095228.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-27
Publication Date
2025-07-22
Estimated Expiration
2034-08-27

AI Technical Summary

Technical Problem

When facing photovoltaic panel mounting brackets with different sizes, they need to be disassembled and reinstalled, resulting in cumbersome installation process and affecting efficiency.

Method used

A photovoltaic panel mounting bracket is designed, including a support rod, a connecting frame, a mounting plate and a limit groove. The angle is adjusted by sliding the support rod in the support sleeve. The second mounting plate is moved on the connecting frame and fixed by the limit groove. The first connecting plate slides in the sliding groove to adjust the size, so that photovoltaic panels of different sizes can be adapted to without disassembly.

Benefits of technology

It improves the efficiency and applicability of photovoltaic panel installation, enables flexible adjustment of bracket size and angle, and does not need to disassemble brackets, simplifying the operation process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a photovoltaic panel mounting bracket, and relates to the technical field of photovoltaic modules. The photovoltaic panel mounting bracket comprises a supporting rod, a connecting frame, a first mounting plate, a second mounting plate, a supporting sleeve and a supporting rod, one end of each supporting rod is connected with one end of each connecting frame, the other end of each supporting rod is connected with one end of each supporting sleeve, the other end of each supporting sleeve is in sliding connection with one end of each supporting rod, and the other end of each supporting rod is connected with the other end of each connecting frame; the two ends of the first mounting plate are connected with one ends of the two connecting frames; a plurality of limiting grooves are formed in the two connecting frames, and the two ends of the second mounting plate are connected with the two connecting frames through the limiting grooves; and each supporting rod slides in the corresponding supporting sleeve. By adjusting the position of the limiting groove connected with the second mounting plate and the position of the first connecting plate, photovoltaic panel mounting supports of different sizes can be obtained, when photovoltaic panels of different sizes are mounted, the photovoltaic panel mounting supports do not need to be disassembled, and the mounting efficiency of the photovoltaic panels is improved.
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Description

Technical Field

[0001] This application relates to the technical field of photovoltaic modules, and in particular to a mounting bracket for photovoltaic panels. Background Art

[0002] A photovoltaic panel is a semiconductor device that directly converts solar energy into electrical energy using the photovoltaic effect. A mounting bracket for photovoltaic panels is a device that fixes photovoltaic panels to the ground, roof or other structures. The mounting bracket for photovoltaic panels can not only ensure that the photovoltaic panels can be stably installed in the preset position, but also adjust the orientation and angle of the photovoltaic panels to capture solar energy to the greatest extent and improve the power generation efficiency of the photovoltaic system.

[0003] In the prior art, the mounting brackets for photovoltaic panels are usually fixedly installed. Before installing a photovoltaic panel, it is necessary to first determine the size of this photovoltaic panel and configure a mounting bracket for photovoltaic panels with a corresponding size. When it is necessary to install another photovoltaic panel with a different size, it is necessary to disassemble the existing mounting bracket for photovoltaic panels and then install a mounting bracket for photovoltaic panels with a different size.

[0004] However, in the prior art, during the installation process of photovoltaic panels, the mounting brackets for photovoltaic panels are usually installed in a fixed manner, which leads to cumbersome operations when installing or disassembling photovoltaic panels with different sizes and affects the installation efficiency of photovoltaic panels. Summary of the Utility Model

[0005] This application provides a mounting bracket for photovoltaic panels to solve the problem in the prior art that the operations of installing or disassembling photovoltaic panels with different sizes are cumbersome and affect the installation efficiency of photovoltaic panels.

[0006] In a first aspect, this application provides a mounting bracket for photovoltaic panels, and the device includes: two support rods, two connecting frames, a first mounting plate, a second mounting plate, two support sleeves and two support bars;

[0007] One end of each of the support rods is respectively connected to one end of each of the connecting frames, the other end of each of the support rods is respectively connected to one end of each of the support sleeves, the other end of each of the support sleeves is respectively slidably connected to one end of each of the support bars, and the other end of each of the support bars is respectively connected to the other end of each of the connecting frames;

[0008] Both ends of the first mounting plate are respectively connected to one end of the two connecting frames;

[0009] A plurality of limiting grooves are provided on the two connecting frames, and both ends of the second mounting plate are respectively connected to the two connecting frames through the limiting grooves;

[0010] Each of the struts slides in the corresponding support sleeve, and the strut is used to adjust the installation angle of the photovoltaic panel mounting bracket according to the sliding position; when the photovoltaic panel is placed on the connecting frame, the second mounting plate is connected to the connecting frame through the limiting groove, so that the second mounting plate and the first mounting plate clamp the photovoltaic panel.

[0011] In a possible design, grooves are provided at both ends of the second mounting plate;

[0012] A push rod is slidably connected in the groove. One end of the push rod is connected to a circular plate, and the other end of the push rod is connected to a transmission block. The circular plate is used to push the transmission block to move in a first direction through the push rod. The first direction refers to a direction parallel to the direction where the second mounting plate is located;

[0013] A limiting rod is slidably connected in the groove, and one end of the limiting rod is connected to a force-bearing block;

[0014] When the transmission block moves in the first direction to a first position where it abuts against the top of the force-bearing block, the transmission block is used to push the limiting rod to move in a second direction through the force-bearing block. The second direction refers to a direction perpendicular to both the direction where the connecting frame is located and the first direction;

[0015] When the transmission block moves in the first direction to a second position where it abuts against the top of the force-bearing block, the transmission block is used to push the limiting rod into the limiting groove through the force-bearing block to fix the second mounting plate.

[0016] In a possible design, the top of the force-bearing block and the bottom of the transmission block are both arc-shaped.

[0017] In a possible design, a first spring is sleeved on the surface of the push rod. One end of the first spring is connected to the transmission block, and the other end of the first spring is connected to the inside of the groove. The first spring is used to push the transmission block to move in the first direction.

[0018] In a possible design, a second spring is sleeved on the surface of the limiting rod. One end of the second spring is connected to the force-bearing block, and the other end of the second spring is connected to the inside of the groove;

[0019] When the transmission block does not move to the first position, the second spring is used to reset the force-bearing block;

[0020] When the transmission block moves to the first position or the second position, the second spring is used to make the force-bearing block and the transmission block in close contact.

[0021] In a possible design, the photovoltaic panel mounting bracket further includes: a first slider;

[0022] At the top end inside the groove, there is a first sliding groove, one end of the first slider is slidably connected inside the first sliding groove, the other end of the first slider is connected to the transmission block, the first sliding groove is used to provide a stable sliding track for the first slider, and the first slider is used to provide a stable moving path for the transmission block.

[0023] In a possible design, the photovoltaic panel mounting bracket further includes: a second slider;

[0024] On both sides inside the groove, there are second sliding grooves, one end of the second slider is slidably connected inside the second sliding grooves, the other end of the second slider is connected to the force-receiving block, the second sliding grooves are used to provide a stable sliding track for the second slider, and the second slider is used to provide a stable moving path for the force-receiving block.

[0025] In a possible design, a plurality of first threaded holes are formed on the surfaces of the support rod and the support sleeve, and bolts connect the support rod and the support sleeve through the first threaded holes.

[0026] In a possible design, the second mounting plate includes: a first mounting block, a first connecting plate, and a second mounting block;

[0027] One end of the first mounting block is connected to one end of the first connecting plate, one end of the second mounting block is connected to the other end of the first connecting plate, and the other ends of the first mounting block and the second mounting block are respectively connected to the two connecting frames;

[0028] A third sliding groove is provided inside the first mounting block, and one end of the first connecting plate is slidably connected inside the third sliding groove;

[0029] A plurality of second threaded holes are formed on the surfaces of the first mounting block and the first connecting plate, and the second threaded holes are used to fix the first connecting plate after the first connecting plate slides to the target position.

[0030] In a possible design, scales are provided on both the support sleeve and the support rod, and the scales are used to show the position of the support rod in the support sleeve.

[0031] The present application provides a photovoltaic panel mounting bracket, which includes: two support rods, two connecting frames, a first mounting plate, a second mounting plate, two support sleeves and two support bars; one end of each support rod is respectively connected to one end of each connecting frame, the other end of each support rod is respectively connected to one end of each support sleeve, the other end of each support sleeve is respectively slidably connected to one end of each support bar, and the other end of each support bar is respectively connected to the other end of each connecting frame; both ends of the first mounting plate are respectively connected to one end of the two connecting frames; a plurality of limiting grooves are provided on the two connecting frames, and both ends of the second mounting plate are respectively connected to the two connecting frames through the limiting grooves; each support bar slides in the corresponding support sleeve; when the photovoltaic panel is placed on the connecting frame, the second mounting plate is connected to the connecting frame through the limiting groove, so that the second mounting plate and the first mounting plate clamp the photovoltaic panel. In the photovoltaic panel mounting bracket according to the embodiment of the present application, the mounting angle of the photovoltaic panel mounting bracket can be adjusted by the support bars sliding in the support sleeves, and the size of the photovoltaic panel mounting bracket can be adjusted by connecting the second mounting plate to different positions of the limiting grooves on the connecting frame and the sliding of the first connecting plate in the third sliding groove. Therefore, when mounting photovoltaic panels of different sizes, only the limiting grooves connected to the second mounting plate and the position of the first connecting plate need to be adjusted to obtain photovoltaic panel mounting brackets of different sizes. When mounting photovoltaic panels of different sizes, only the size of the photovoltaic panel mounting bracket needs to be adjusted according to the size of the photovoltaic panel, and there is no need to disassemble the photovoltaic panel mounting bracket, which improves the installation efficiency of the photovoltaic panel. BRIEF DESCRIPTION OF THE DRAWINGS

[0032] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are some embodiments of the present application. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0033] Figure 1 is a schematic structural diagram of the photovoltaic panel mounting bracket provided by the embodiment of the present application Figure 1 ;

[0034] Figure 2 is a schematic structural diagram of the photovoltaic panel mounting bracket provided by the embodiment of the present application Figure 2 ;

[0035] Figure 3 is Figure 2 a schematic structural diagram of part A in

[0036] Figure 4 is a schematic structural diagram of the photovoltaic panel mounting bracket provided by the embodiment of the present applicationFigure 3 ;

[0037] Figure 5 is Figure 4 a schematic structural diagram of part B in

[0038] Figure 6 a schematic structural diagram of the photovoltaic panel mounting bracket provided by the embodiment of the present application Figure 4 .

[0039] Explanation of reference numerals:

[0040] 100 - support rod;

[0041] 200 - connecting frame;

[0042] 2001 - limiting groove;

[0043] 300 - first mounting plate;

[0044] 400 - second mounting plate;

[0045] 4001 - first mounting block;

[0046] 4002 - first connecting plate;

[0047] 4003 - second mounting block;

[0048] 4004 - groove;

[0049] 4005 - push rod;

[0050] 4006 - circular plate;

[0051] 4007 - transmission block;

[0052] 4008 - limiting rod;

[0053] 4009 - force - receiving block;

[0054] 4010 - first spring;

[0055] 4011 - second spring;

[0056] 4012 - first chute;

[0057] 4013 - first slider;

[0058] 4014 - second chute;

[0059] 4015 - second slider;

[0060] 4016 - third chute;

[0061] 4017 - second threaded hole;

[0062] 500 - support sleeve;

[0063] 600 - strut Detailed implementation manners

[0064] Here, exemplary embodiments will be described in detail, and examples thereof are shown in the accompanying drawings. When the following description refers to the accompanying drawings, unless otherwise indicated, the same numbers in different drawings represent the same or similar elements. The implementation manners described in the following exemplary embodiments do not represent all implementation manners consistent with the present application. On the contrary, they are merely examples of devices and apparatuses consistent with some aspects of the present application as detailed in the appended claims.

[0065] In the embodiments of the present application, terms such as "first" and "second" are used to distinguish identical or similar items with basically the same functions and roles. For example, the first chip and the second chip are only used to distinguish different chips, and do not limit their sequence. Those skilled in the art can understand that terms such as "first" and "second" do not limit the quantity and execution order, and "first", "second", etc. do not necessarily mean different. It should be noted that in the embodiments of the present application, words such as "exemplary" or "for example" are used to represent examples, illustrations or explanations. Any embodiment or design solution described as "exemplary" or "for example" in the present application should not be construed as being more preferred or having more advantages than other embodiments or design solutions. Rather, the use of words such as "exemplary" or "for example" is intended to present relevant concepts in a specific manner. In the embodiments of the present application, "at least one" means one or more, and "a plurality" means two or more.

[0066] It should be noted that "when... " in the embodiments of the present application can be at the instant when a certain situation occurs, or within a period of time after a certain situation occurs. The embodiments of the present application do not make specific limitations on this. In addition, the access network switching device provided in the embodiments of the present application is only an example, and the access network switching device may also include more or less content.

[0067] To facilitate a clear description of the technical solutions in the embodiments of the present application, the following briefly introduces some terms and technologies involved in the embodiments of the present application:

[0068] Photovoltaic panel: A device that can convert solar energy into electrical energy, consisting of a series of closely arranged solar cells that can convert sunlight into direct current. Photovoltaic panels are used to capture solar energy and convert it into electrical energy.

[0069] Photovoltaic panel mounting bracket: It is a special bracket that needs to be customized according to the size and shape of the photovoltaic panel to meet the installation requirements in different environments. The function of the mounting bracket is to fix and support the photovoltaic panel to ensure that the photovoltaic panel can receive sunlight and improve the energy conversion efficiency.

[0070] Connecting frame: It is a mechanical connecting piece used to fix and position two or more components to ensure that each component can operate in a preset manner.

[0071] Support rod: It is a support rod connecting different components or structures, used to connect and support different components in a mechanical system to ensure the stability and reliability of the entire system.

[0072] Limit groove: It is a groove or boss designed on a mechanical component to limit or control the movement range or angle of other components.

[0073] Limit rod: It is a mechanical transmission component, usually used to control the movement range of a certain component in a linkage mechanism to prevent the component from exceeding the safe range or causing damage.

[0074] Here, the exemplary embodiments will be described in detail, and the examples are shown in the drawings. When the following description refers to the drawings, unless otherwise indicated, the same numbers in different drawings represent the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with the present application. On the contrary, they are merely examples of devices and methods consistent with some aspects of the present application as detailed in the appended claims.

[0075] The technical solution of the present application will be described in detail below with specific embodiments. These several specific embodiments below can be combined with each other, and the same or similar concepts or processes may not be repeated in some embodiments. The embodiments of the present application will be described below with reference to the drawings.

[0076] To clearly understand the technical solution of this application, the solutions of the prior art will be introduced in detail first. A photovoltaic panel is a semiconductor material panel that can directly convert solar energy into electrical energy and is widely used in solar power generation systems to provide clean and renewable electricity for households, enterprises, and the power grid. During the installation process of the photovoltaic panel, the photovoltaic panel mounting bracket plays a crucial role. It is a metal or composite material structure that supports and fixes the photovoltaic panel, ensuring that the photovoltaic panel receives sunlight, thereby improving the power generation efficiency and guaranteeing the long-term stable operation of the photovoltaic system. When installing the photovoltaic panel, it is necessary to first configure a photovoltaic panel mounting bracket of the corresponding size according to the size of the photovoltaic panel, and use special tools and fasteners to ensure that each connection point of the components such as the columns and crossbeams of the photovoltaic panel mounting bracket is firm and reliable. After the photovoltaic panel mounting bracket is built, precise position and angle adjustments will be carried out to ensure that the photovoltaic panel can receive sunlight maximally. After the bracket is installed and adjusted in place, the photovoltaic panel is placed on the photovoltaic panel mounting bracket and fixed using special clamps or bolts to ensure the installation quality and operation efficiency of the entire photovoltaic system.

[0077] Currently, during the installation process of the photovoltaic panel, the photovoltaic panel mounting bracket is usually installed in a fixed manner. Although this fixed installation method can ensure the stability and safety of the photovoltaic panel after installation, it also brings certain limitations. Since the structure and size of the bracket are fixed, when facing photovoltaic panels of different sizes, it is necessary to disassemble the existing-sized photovoltaic panel mounting bracket and then install the photovoltaic panel mounting bracket of the corresponding size, making the replacement process of the photovoltaic panel mounting bracket cumbersome. This cumbersome operation not only affects the work efficiency of the staff but also may increase human errors during the installation process, thereby potentially affecting the overall performance and stability of the photovoltaic system. Therefore, the current photovoltaic panel mounting bracket has the problem of being unable to flexibly adjust its size according to actual needs.

[0078] Therefore, aiming at the problem that the photovoltaic panel mounting bracket in the prior art cannot flexibly adjust its size according to actual needs, it is found in the research that to solve this problem, a photovoltaic panel mounting bracket that can flexibly adjust its size needs to be designed: ① In order to enable the photovoltaic panel mounting bracket to flexibly adjust its size, some components on the photovoltaic panel mounting bracket must be movable. ② A corresponding connection mechanism needs to be set for this movable component and other components. ③ In order to enable this movable component to move orderly on the photovoltaic panel mounting bracket, a fixed moving track needs to be set for this component. ④ Corresponding structures need to be set for this component and this moving track to make the connection between this component and this moving track tight.

[0079] Specifically:

[0080] According to the installation size of the photovoltaic panel, the size of the photovoltaic panel installation bracket is obtained. The movable component is moved on the moving track, and when the movable component moves to the target position, the position of the movable component is fixed through the corresponding structure.

[0081] For the photovoltaic panel installation bracket of the embodiment of the present application, a plurality of limit slots are provided on the connecting frame. The second mounting plate can move on the connecting frame. When the second mounting plate moves to the target position, by pushing the round plates at both ends of the second mounting plate, the limit rod is inserted into the limit slot to fix the second mounting plate. At the same time, the first connecting plate can move in the third sliding slot. After the first connecting plate moves to the target position, the position of the first mounting plate is fixed through the bolt holes on the first connecting plate. Through such a setting, when installing photovoltaic panels of different sizes, only the limit slots connected to the second mounting plate and the position of the first connecting plate need to be adjusted, and different sizes of photovoltaic panel installation brackets can be obtained without disassembling the photovoltaic panel installation bracket, improving the installation efficiency of the photovoltaic panel.

[0082] Based on the above creative discovery, the technical solution of the present application is proposed.

[0083] The embodiments of the present application will be introduced below with reference to the accompanying drawings of the specification.

[0084] Figure 1 is a structural schematic of the photovoltaic panel installation bracket provided by the embodiment of the present application Figure 1 . As Figure 1 shown, in this embodiment, the photovoltaic panel installation bracket includes: two support rods 100, two connecting frames 200, a first mounting plate 300, a second mounting plate 400, two support sleeves 500 and two support rods 600.

[0085] Specifically, the support rod 100 is used to connect the connecting frame 200 and the support sleeve 500 to provide a basic support function. The connecting frame 200 is used to connect the support rod 100, the support rod 600, the first mounting plate 300 and the second mounting plate 400 to form the main structure of the photovoltaic panel installation bracket. The first mounting plate 300 is used to connect with the connecting frame 200 and jointly clamp the photovoltaic panel with the second mounting plate 400 to fix the photovoltaic panel. The second mounting plate 400 is used to connect with the connecting frame 200 through the limit slot 2001 and jointly clamp the photovoltaic panel with the first mounting plate 300. The support sleeve 500 is used to connect the support rod 100 and the support rod 600 and allow the support rod 600 to slide inside it to adjust the installation angle. The support rod 600 is used to slide in the support sleeve 500 to adjust the installation angle of the photovoltaic panel installation bracket according to the sliding position.

[0086] One end of each support rod 100 is respectively connected to one end of each connecting frame 200, the other end of each support rod 100 is respectively connected to one end of each support sleeve 500, the other end of each support sleeve 500 is respectively slidably connected to one end of each support bar 600, and the other end of each support bar 600 is respectively connected to the other end of each connecting frame 200.

[0087] Specifically, by connecting the support rod 100, the support sleeve 500 and the support bar 600 together, a stable support structure is formed to ensure that the photovoltaic panel mounting bracket can bear the weight of the photovoltaic panel and the influence of the external environment. The support bar 600 is slidably connected in the support sleeve 500, allowing the support bar 600 to adjust its position as needed, thereby changing the installation angle of the photovoltaic panel mounting bracket. These connection relationships ensure the stability, adjustability and integrity of the photovoltaic panel mounting bracket, enabling it to effectively support and fix the photovoltaic panel, while allowing the installation angle to be adjusted to optimize the performance of the photovoltaic panel.

[0088] Both ends of the first mounting plate 300 are respectively connected to one end of two connecting frames 200.

[0089] Specifically, both ends of the first mounting plate 300 are respectively connected to one end of two connecting frames 200, which is used to fix the first mounting plate 300 and clamp the photovoltaic panel together with the second mounting plate 400 to achieve the fixation of the photovoltaic panel.

[0090] A plurality of limiting grooves 2001 are provided on the two connecting frames 200, and both ends of the second mounting plate 400 are respectively connected to the two connecting frames 200 through the limiting grooves 2001.

[0091] Specifically, both ends of the second mounting plate 400 are respectively connected to the two connecting frames 200 through the limiting grooves 2001, which is used to fix the second mounting plate 400. When the photovoltaic panel is placed on the connecting frame 200, the second mounting plate 400 is connected to the connecting frame 200 through the limiting grooves 2001 and acts together with the first mounting plate 300 to clamp the photovoltaic panel, thereby improving the firmness and stability of the installation of the photovoltaic panel.

[0092] Each support bar 600 slides in the corresponding support sleeve 500, and the support bar 600 is used to adjust the installation angle of the photovoltaic panel mounting bracket according to the sliding position; when the photovoltaic panel is placed on the connecting frame 200, the second mounting plate 400 is connected to the connecting frame 200 through the limiting groove 2001 so that the second mounting plate 400 and the first mounting plate 300 clamp the photovoltaic panel.

[0093] A photovoltaic panel mounting bracket provided in this embodiment is provided with a plurality of limiting grooves on the connecting frame. The second mounting plate can move on the connecting frame. After the connecting frame moves to the target position, by pushing the round plates at both ends of the connecting frame, the limiting rods are inserted into the limiting grooves to fix the second mounting plate. At the same time, the first connecting plate can move in the third chute. After the first connecting plate moves to the target position, the position of the first connecting plate is fixed through the bolt holes on the first connecting plate. The photovoltaic panel mounting bracket achieves the following technical effects: By moving the second mounting plate on the connecting frame and the first connecting plate in the third chute, photovoltaic panel mounting brackets of different sizes can be obtained. When installing photovoltaic panels of different sizes, only the limiting grooves connected to the second mounting plate and the position of the first connecting plate need to be adjusted to obtain photovoltaic panel mounting brackets of different sizes, without disassembling the photovoltaic panel mounting bracket again, improving the installation efficiency of the photovoltaic panel.

[0094] Figure 2 Schematic structure of the photovoltaic panel mounting bracket provided in the embodiment of the present application Figure 2 As Figure 2 shown, on the basis of the Figure 1 embodiment, the photovoltaic panel mounting bracket is described in detail.

[0095] The second mounting plate 400 includes: a first mounting block 4001, a first connecting plate 4002, and a second mounting block 4003.

[0096] Specifically, the second mounting plate 400 includes a first mounting block 4001, a first connecting plate 4002, and a second mounting block 4003, which are used to enhance the structural flexibility of the second mounting plate 400 to adapt to photovoltaic panels of different sizes or installation requirements.

[0097] One end of the first mounting block 4001 is connected to one end of the first connecting plate 4002, one end of the second mounting block 4003 is connected to the other end of the first connecting plate 4002, and the other ends of the first mounting block 4001 and the second mounting block 4003 are respectively connected to two connecting frames 200.

[0098] Specifically, by sliding the first connecting plate 4002 in the third chute 4016, the size of the second mounting plate 400 can be adjusted, so that the photovoltaic panel mounting bracket can more flexibly adapt to photovoltaic panels of different specifications, improving the applicability of photovoltaic panel installation.

[0099] The first mounting block 4001 is provided with a third chute 4016, and one end of the first connecting plate 4002 is slidably connected in the third chute 4016.

[0100] Specifically, the third chute 4016 is used to provide a sliding track for the first connecting plate 4002. By sliding the first connecting plate 4002 within the third chute 4016, the size of the second mounting plate 400 can be adjusted.

[0101] A plurality of second threaded holes 4017 are provided on the surfaces of the first mounting block 4001 and the first connecting plate 4002. The second threaded holes 4017 are used to fix the first connecting plate 4002 after it slides to the target position.

[0102] Specifically, the second threaded holes 4017 are used to fix the first connecting plate 4002 at a specific position of the first mounting block 4001 by means of fasteners such as screws after adjusting the length of the second mounting plate 400, so as to ensure the stability and firmness of the photovoltaic panel mounting bracket.

[0103] The technical effect of this embodiment is that: by the sliding connection of the first connecting plate within the third chute, the length of the second mounting plate can be adjusted to adapt to photovoltaic panels of different sizes or installation requirements. After the first connecting plate slides to the target position, it can be fixed by using the second threaded holes, improving the reliability and safety of the photovoltaic panel mounting bracket.

[0104] Figure 3 For Figure 2 the structural schematic diagram of part A in Figure 3 As Figure 1 shown, on the basis of the Figure 2 embodiment, the photovoltaic panel mounting bracket is described in detail.

[0105] Grooves 4004 are provided at both ends of the second mounting plate 400.

[0106] Specifically, grooves 4004 are provided at both ends of the second mounting plate 400, which are used to provide space for the connection mechanism between the second mounting plate 400 and the connecting frame 200.

[0107] A push rod 4005 is slidably connected within the groove 4004. One end of the push rod 4005 is connected to a circular plate 4006, and the other end of the push rod 4005 is connected to a transmission block 4007. The circular plate 4006 is used to push the transmission block 4007 to move in the first direction through the push rod 4005. The first direction refers to the direction parallel to the direction where the second mounting plate 400 is located.

[0108] Specifically, by pushing the push rod 4005 through the circular plate 4006, the transmission block 4007 is driven to move in a direction parallel to the second mounting plate 400. When the transmission block 4007 moves to a specific position, it will push the limiting rod 4008 to insert into the limiting groove 2001 through the force receiving block 4009, thereby fixing the position of the second mounting plate 400.

[0109] A limiting rod 4008 is slidably connected inside the groove 4004, and one end of the limiting rod 4008 is connected to a force-receiving block 4009.

[0110] Specifically, after the force-receiving block 4009 abuts against the transmission block 4007, it is used to push the limiting rod 4008 so that the limiting rod 4008 is inserted into the limiting groove to fix the second mounting plate 400.

[0111] When the transmission block 4007 moves along the first direction to a first position where it abuts against the top of the force-receiving block 4009, the transmission block 4007 is used to push the limiting rod 4008 to move along a second direction through the force-receiving block 4009. The second direction refers to a direction that is perpendicular to both the direction where the connecting frame 200 is located and the first direction.

[0112] Specifically, when the transmission block 4007 moves to a specific position, the limiting rod 4008 will be pushed into the limiting groove 2001 on the connecting frame 200, thereby fixing the position of the second mounting plate 400.

[0113] When the transmission block 4007 moves along the first direction to a second position where it abuts against the top of the force-receiving block 4009, the transmission block 4007 is used to push the limiting rod 4008 through the force-receiving block 4009 to insert into the limiting groove 2001 to fix the second mounting plate 400.

[0114] The top of the force-receiving block 4009 and the bottom of the transmission block 4007 are both arc-shaped.

[0115] Specifically, the top of the force-receiving block 4009 and the bottom of the transmission block 4007 are both arc-shaped, which is used to increase the contact area between the force-receiving block 4009 and the transmission block 4007, and improve the transmission efficiency and stability between the two.

[0116] A first spring 4010 is sleeved on the surface of the push rod 4005. One end of the first spring 4010 is connected to the transmission block 4007, and the other end of the first spring 4010 is connected to the inside of the groove 4004. The first spring 4010 is used to push the transmission block 4007 to move along the first direction.

[0117] Specifically, the first spring 4010 is installed on the surface of the push rod 4005. The first spring 4010 can use its own elastic force to push the transmission block 4007 to move along the first direction, so that when the transmission block 4007 abuts against the force-receiving block 4009, the transmission block 4007 and the force-receiving block 4009 always maintain close contact.

[0118] A second spring 4011 is sleeved on the surface of the limiting rod 4008. One end of the second spring 4011 is connected to the force-receiving block 4009, and the other end of the second spring 4011 is connected to the inside of the groove 4004.

[0119] Specifically, the limiting rod 4008 can be a long bar-shaped rod, and the second spring 4011 can be a helical spring. The second spring 4011 is sleeved on the surface of the limiting rod 4008. Inside the groove 4004, there is a structure for fixing the spring, such as a card slot or a fixing point, so that one end of the second spring 4011 can be firmly connected inside the groove. The force-bearing block 4009 has a fixing point or a card slot for fixing one end of the second spring 4011. Through this design, the second spring 4011 can provide elastic force when the limiting rod 4008 slides. When the transmission block 4007 pushes the force-bearing block 4009, the force-bearing block 4009 will drive the limiting rod 4008 to move in the second direction, and the second spring 4011 will be compressed or stretched, ensuring that the limiting rod 4008 can accurately insert into the limiting groove 2001 to fix the second mounting plate 400.

[0120] When the transmission block 4007 has not moved to the first position, the second spring 4011 is used to reset the force-bearing block 4009.

[0121] When the transmission block 4007 moves to the first position or the second position, the second spring 4011 is used to make the force-bearing block 4009 and the transmission block 4007 in close contact.

[0122] The photovoltaic panel mounting bracket further includes: a first slider 4013.

[0123] Specifically, one end of the first slider 4013 is slidably connected inside the first chute 4012, and the other end of the first slider 4013 is connected to the transmission block 4007. By sliding the first slider 4013 inside the first chute 4012, the transmission block 4007 runs on a fixed track, reducing the shaking and deviation of the transmission block 4007 during movement and improving the movement accuracy of the transmission block 4007.

[0124] At the top end inside the groove 4004, there is a first chute 4012. One end of the first slider 4013 is slidably connected inside the first chute 4012, and the other end of the first slider 4013 is connected to the transmission block 4007. The first chute 4012 is used to provide a stable sliding track for the first slider 4013, and the first slider 4013 is used to provide a stable movement path for the transmission block 4007.

[0125] Specifically, the first chute 4012 provides a stable sliding track for the first slider 4013, ensuring that the movement path of the first slider 4013 inside the first chute 4012 is not affected by external factors. This design ensures that the transmission block 4007 can move smoothly and accurately during adjustment.

[0126] The technical effects of this embodiment are as follows: A push rod and a limiting rod are arranged in the groove. After the second mounting plate moves to the target position, the push rod is pushed, causing the limiting rod to insert into the limiting groove to fix the second mounting plate. Compared with the method of connecting the second mounting plate and the connecting frame by bolts, this method of connecting the second mounting plate and the connecting frame by the push rod is more convenient, reducing the complexity of the adjustment process of the photovoltaic panel mounting bracket; The arc-shaped design may increase the contact area between the force-bearing block and the transmission block, enabling the force-bearing block to better transmit the force to the transmission block when under pressure, thereby improving the transmission efficiency and stability between the two; The first spring provides an automatic pushing force, enabling the transmission block to move along the first direction. This automatic pushing function reduces the need for manual operation and improves the operational convenience of the photovoltaic panel mounting bracket. The continuous thrust provided by the first spring can ensure that the transmission block remains stable during the adjustment process and will not loosen or shift due to external vibration or other factors, thereby improving the stability and reliability of the entire mounting bracket; When the transmission block moves to the first position or the second position, the second spring can make the force-bearing block and the transmission block in close contact. This close contact ensures a stable connection between the transmission block and the force-bearing block, avoiding loosening or displacement, thereby improving the stability and safety of the entire photovoltaic panel mounting bracket; The first chute provides a stable sliding track for the first slider, ensuring that the movement path of the first slider in the first chute is not affected by external factors. This can ensure that the transmission block can move smoothly and accurately during the adjustment process, ensuring that each component can maintain the correct position and direction during operation, and increasing the structural stability of the entire photovoltaic panel mounting bracket.

[0127] Figure 4 The structural schematic of the photovoltaic panel mounting bracket provided by the embodiment of the present application Figure 3 . As Figure 4 shown, on the basis of the Figures 1 to 3 embodiment, the photovoltaic panel mounting bracket is described in detail.

[0128] The photovoltaic panel mounting bracket further includes: a second slider 4015.

[0129] Specifically, the second slider 4015 is used to move in the second chute 4014 to ensure that the force-bearing block 4009 can move smoothly and accurately during the adjustment process, avoiding the shaking and deviation of the force-bearing block during the movement, and improving the movement accuracy of the force-bearing block.

[0130] On both sides inside the groove 4004, there are second chutes 4014. One end of the second slider 4015 is slidably connected inside the second chute 4014, and the other end of the second slider 4015 is connected to the force-bearing block 4009. The second chute 4014 is used to provide a stable sliding track for the second slider 4015, and the second slider 4015 is used to provide a stable movement path for the force-bearing block 4009.

[0131] Specifically, the second chute 4014 provides a stable sliding track for the second slider 4015, ensuring that the movement path of the second slider 4015 within the second chute 4014 is not affected by external factors. This design ensures that the force-bearing block 4009 can move smoothly and accurately during adjustment, improving the operational convenience and stability of the photovoltaic panel mounting bracket.

[0132] The technical effect of this embodiment is that the second chute provides a stable sliding track for the second slider, ensuring that the movement path of the second slider within the second chute is not affected by external factors. This can guarantee that the force-bearing block can move smoothly and accurately during adjustment, reducing the swaying and deviation of the force-bearing block during movement, improving the movement accuracy of the force-bearing block, and increasing the structural stability of the entire photovoltaic panel mounting bracket.

[0133] Figure 5 For Figure 4 the structural schematic diagram of part B in Figure 5 As shown, on the basis of the Figures 1 to 4 embodiment, the photovoltaic panel mounting bracket is described in detail.

[0134] Both the support sleeve 500 and the support rod 600 are provided with scales, which are used to display the position of the support rod 600 in the support sleeve 500.

[0135] Specifically, the scales can be engraved on the outer surface of the support rod 600 through processes such as laser engraving, etching, printing, or mechanical scribing. These scales correspond to the scales on the support sleeve 500 and are used to display the insertion depth or position of the support rod 600 in the support sleeve 500.

[0136] The technical effect of this embodiment is that the scales provide an intuitive reference, enabling users to accurately know the specific position of the support rod in the support sleeve. Users can quickly adjust the position of the support rod by reading the scales without having to measure repeatedly, simplifying the operation steps and improving work efficiency.

[0137] Figure 6 For the structural schematic Figure 4 of the photovoltaic panel mounting bracket provided by the embodiment of the present application. As Figure 6 shown, on the basis of the Figures 1 to 5 embodiment, the photovoltaic panel mounting bracket is described in detail.

[0138] Multiple first threaded holes 6001 are provided on the surfaces of the support rod 600 and the support sleeve 500, and the bolts 5001 connect the support rod 600 and the support sleeve 500 through the first threaded holes 6001.

[0139] Specifically, the support rod 600 is a long strip-shaped rod, and a plurality of first threaded holes 6001 are provided on its surface. The support sleeve 500 is a tubular structure, and its inner diameter is slightly larger than the outer diameter of the support rod 600 so that the support rod 600 can slide within the support sleeve 500. A plurality of first threaded holes 6001 corresponding to the threaded holes on the support rod 600 are also provided on the surface of the support sleeve 500. Insert the support rod 600 into the support sleeve 500 and adjust it to the desired position so that the threaded holes on the support rod 600 and the support sleeve 500 are aligned. Then, screw the bolt 5001 into the aligned threaded holes to fix the support rod 600 and the support sleeve 500 together by tightening the bolt 5001. This design allows the support rod 600 to slide within the support sleeve 500 and be fixed by bolts, thereby realizing the adjustment of the angle and height of the photovoltaic panel mounting bracket, providing flexibility and stability.

[0140] The technical effect of this embodiment is that the support rod and the support sleeve are firmly connected together by bolts, ensuring that the support rod does not slide or loosen within the support sleeve, thereby improving the stability of the entire photovoltaic panel mounting bracket. The design of a plurality of first threaded holes allows users to adjust the position of the support rod within the support sleeve as needed. The multiple threaded holes provide a variety of position options, making the adjustment process more flexible and convenient.

[0141] So far, the technical solutions of the present application have been described in conjunction with the preferred embodiments shown in the drawings. However, it is easy for those skilled in the art to understand that the protection scope of the present application is obviously not limited to these specific embodiments. The above embodiments are only used to illustrate the technical solutions of the present application, rather than to limit them. Although the present application has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements on some or all of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the scope of the technical solutions of the embodiments of the present application.

Claims

1. A photovoltaic panel mounting bracket, characterized in that, Including: Two support rods (100), two connecting frames (200), a first mounting plate (300), a second mounting plate (400), two support sleeves (500) and two support bars (600); One end of each of the support rods (100) is respectively connected to one end of each of the connecting frames (200), the other end of each of the support rods (100) is respectively connected to one end of each of the support sleeves (500), the other end of each of the support sleeves (500) is respectively slidably connected to one end of each of the support bars (600), and the other end of each of the support bars (600) is respectively connected to the other end of each of the connecting frames (200); Both ends of the first mounting plate (300) are respectively connected to one end of the two connecting frames (200); A plurality of limiting grooves (2001) are provided on the two connecting frames (200), and both ends of the second mounting plate (400) are respectively connected to the two connecting frames (200) through the limiting grooves (2001); Each of the support bars (600) slides in the corresponding support sleeve (500), and the support bar (600) is used to adjust the installation angle of the photovoltaic panel mounting bracket according to the sliding position; when the photovoltaic panel is placed on the connecting frame (200), the second mounting plate (400) is connected to the connecting frame (200) through the limiting groove (2001), so that the second mounting plate (400) and the first mounting plate (300) clamp the photovoltaic panel.

2. The photovoltaic panel mounting bracket according to claim 1, characterized in that, Both ends of the second mounting plate (400) are provided with grooves (4004); A push rod (4005) is slidably connected in the groove (4004), one end of the push rod (4005) is connected to a circular plate (4006), the other end of the push rod (4005) is connected to a transmission block (4007), and the circular plate (4006) is used to push the transmission block (4007) to move in a first direction through the push rod (4005), and the first direction refers to a direction parallel to the direction where the second mounting plate (400) is located; A limiting rod (4008) is slidably connected in the groove (4004), and one end of the limiting rod (4008) is connected to a force receiving block (4009); When the transmission block (4007) moves in the first direction to a first position where it abuts against the top of the force receiving block (4009), the transmission block (4007) is used to push the limiting rod (4008) to move in a second direction through the force receiving block (4009), and the second direction refers to a direction perpendicular to both the direction where the connecting frame (200) is located and the first direction; When the transmission block (4007) moves in the first direction to a second position where it abuts against the top of the force receiving block (4009), the transmission block (4007) is used to push the limiting rod (4008) to insert into the limiting groove (2001) through the force receiving block (4009) to fix the second mounting plate (400).

3. The photovoltaic panel mounting bracket according to claim 2, wherein The top of the force receiving block (4009) and the bottom of the transmission block (4007) are both arc-shaped.

4. The photovoltaic panel mounting bracket according to claim 2, characterized in that, A first spring (4010) is sleeved on the surface of the push rod (4005). One end of the first spring (4010) is connected to the transmission block (4007), and the other end of the first spring (4010) is connected to the inside of the groove (4004). The first spring (4010) is used to push the transmission block (4007) to move along the first direction.

5. The photovoltaic panel mounting bracket according to claim 2, characterized in that, A second spring (4011) is sleeved on the surface of the limiting rod (4008). One end of the second spring (4011) is connected to the force-receiving block (4009), and the other end of the second spring (4011) is connected to the inside of the groove (4004); When the transmission block (4007) does not move to the first position, the second spring (4011) is used to reset the force-receiving block (4009); When the transmission block (4007) moves to the first position or the second position, the second spring (4011) is used to make the force-receiving block (4009) and the transmission block (4007) in close contact.

6. The photovoltaic panel mounting bracket according to claim 2, wherein, The photovoltaic panel mounting bracket further includes: a first slider (4013); A first sliding groove (4012) is provided at the top end inside the groove (4004). One end of the first slider (4013) is slidably connected inside the first sliding groove (4012), and the other end of the first slider (4013) is connected to the transmission block (4007). The first sliding groove (4012) is used to provide a stable sliding track for the first slider (4013), and the first slider (4013) is used to provide a stable moving path for the transmission block (4007).

7. The photovoltaic panel mounting bracket according to claim 6, wherein The photovoltaic panel mounting bracket further includes: a second slider (4015); Second sliding grooves (4014) are provided on both sides inside the groove (4004). One end of the second slider (4015) is slidably connected inside the second sliding grooves (4014), and the other end of the second slider (4015) is connected to the force-receiving block (4009). The second sliding grooves (4014) are used to provide a stable sliding track for the second slider (4015), and the second slider (4015) is used to provide a stable moving path for the force-receiving block (4009).

8. The photovoltaic panel mounting bracket according to claim 1, wherein A plurality of first threaded holes (6001) are formed in the surfaces of the support rod (600) and the support sleeve (500), and bolts (5001) connect the support rod (600) and the support sleeve (500) through the first threaded holes (6001).

9. The photovoltaic panel mounting bracket according to claim 1, characterized in that, The second mounting plate (400) includes: a first mounting block (4001), a first connecting plate (4002), and a second mounting block (4003); One end of the first mounting block (4001) is connected to one end of the first connecting plate (4002), and one end of the second mounting block (4003) is connected to the other end of the first connecting plate (4002). The other ends of the first mounting block (4001) and the second mounting block (4003) are respectively connected to the two connecting frames (200); The first mounting block (4001) is provided with a third sliding groove (4016), and one end of the first connecting plate (4002) is slidably connected within the third sliding groove (4016); The surfaces of the first mounting block (4001) and the first connecting plate (4002) are provided with a plurality of second threaded holes (4017), and the second threaded holes (4017) are used to fix the first connecting plate (4002) after the first connecting plate (4002) slides to a target position.

10. The photovoltaic panel mounting bracket according to any one of claims 1 to 9, characterized in that, Both the support sleeve (500) and the support rod (600) are provided with scales, and the scales are used to display the position of the support rod (600) within the support sleeve (500).