Hydraulic damping bracket for photovoltaic glass transportation

The bracket structure composed of hydraulic shock absorbers and rubber shock-absorbing pads solves the problem of breakage of photovoltaic glass caused by uneven road surface during transportation, thereby reducing the breakage rate and improving transportation stability.

CN223328165UActive Publication Date: 2025-09-12TUNGHSU TECH GRP CO LTD
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Patent Information

Application Number
CN202422595579.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-25
Publication Date
2025-09-12
Estimated Expiration
2034-10-25

AI Technical Summary

Technical Problem

Photovoltaic glass is easily damaged during transportation within the factory due to uneven road conditions, and existing technologies are difficult to effectively reduce the breakage rate.

Method used

The bracket structure adopts a combination of hydraulic shock absorbers and rubber shock pads. Through the setting of hydraulic shock absorbers and rubber shock pads, the bracket's anti-bumping ability is improved and the breakage rate of glass during transportation is reduced.

Benefits of technology

It effectively reduces the breakage rate of photovoltaic glass during transportation within the factory and improves the stability and safety of transportation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of photovoltaic glass transportation, and particularly relates to a photovoltaic glass transportation hydraulic damping bracket which comprises a lower bracket body, hydraulic dampers are fixedly connected to the four end corners of the lower bracket body, and an upper bracket body located on the upper side of the lower bracket body is fixedly connected to the upper sides of the four hydraulic dampers. The upper side of the lower bracket is fixedly connected with a plurality of rubber shock pads located on the lower side of the upper bracket, shock absorber guide holes with openings in the upper sides are formed in the four end corners of the lower bracket correspondingly, and the lower half portions of the hydraulic shock absorbers are fixedly connected into the shock absorber guide holes. Shock absorber guide pipes located on the outer sides of the hydraulic shock absorbers are fixedly connected to the four end corners of the lower side of the upper bracket correspondingly, and the shock absorber guide pipes are vertically connected into the shock absorber guide holes in a sliding mode. The device can be used for in-plant transportation and carrying of photovoltaic glass finished products and semi-finished products, and the breakage rate of the glass during forklift transportation in a plant area is reduced.
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Description

Technical Field

[0001] The utility model belongs to the technical field of photovoltaic glass transportation, and in particular relates to a hydraulic shock-absorbing bracket for photovoltaic glass transportation. Background Art

[0002] In the photovoltaic industry, the transportation of photovoltaic glass is a crucial link. As an important component of solar cell modules, the quality and integrity of photovoltaic glass have a key impact on the performance and quality of the entire photovoltaic product.

[0003] During the production process of photovoltaic glass, semi-finished and finished glass products need to be frequently transported and moved within the factory to complete the flow between various production processes and the final product delivery.

[0004] For example, Chinese patent application number CN219115993U discloses a glass transfer bracket device, which uses a screw block to move a rubber rod to press against the photovoltaic glass, thereby providing a positioning operation for the photovoltaic glass.

[0005] However, the transportation of photovoltaic glass within the factory is often completed by forklifts. In the process of transporting the brackets and the photovoltaic glass on the brackets by forklifts, the transportation environment within the factory is often more complicated, and the ground may be uneven and have potholes. The forklifts will inevitably encounter bumpy roads during driving, which may damage the glass products in transportation and cause breakage and loss of the glass products. Utility Model Content

[0006] The purpose of the utility model is to provide a hydraulic shock-absorbing bracket for transporting photovoltaic glass, which can be used for the in-factory transportation and handling of finished and semi-finished photovoltaic glass products, thereby reducing the breakage rate of glass during forklift transportation within the factory.

[0007] The technical solutions adopted by this utility model are as follows:

[0008] The photovoltaic glass transportation hydraulic shock-absorbing bracket includes a lower bracket, the four end corners of the lower bracket are fixedly connected to hydraulic shock absorbers, the upper sides of the four hydraulic shock absorbers are fixedly connected to the upper bracket located on the upper side of the lower bracket, and the upper side of the lower bracket is fixedly connected to multiple rubber shock-absorbing pads located on the lower side of the upper bracket.

[0009] In some embodiments, shock absorber guide holes with upper openings are provided at the four end corners of the lower bracket, and the lower half of the hydraulic shock absorber is fixedly connected inside the shock absorber guide holes.

[0010] In some embodiments, the four end corners of the lower side of the upper bracket are fixedly connected to the shock absorber guide tube located outside the hydraulic shock absorber, and the shock absorber guide tube is vertically slidably connected to the inside of the shock absorber guide hole.

[0011] In some embodiments, the lower bracket includes three lower cross beams arranged in parallel, and two adjacent lower cross beams are fixedly connected by three upper connecting beams. The plurality of rubber shock-absorbing pads are respectively fixedly connected to the upper sides of the three lower cross beams. The shock absorber guide holes are opened at the ends of the two lower cross beams located at the edges. The lower ends of the hydraulic shock absorbers are connected to the lower cross beam screws via the shock absorber base fixing bolts.

[0012] The upper bracket includes an outer ring beam, a cross connecting beam is fixedly connected to the inside of the outer ring beam, the shock absorber guide tube is fixedly connected to the end corner of the lower side of the outer ring beam, a shock absorber fixing hole is opened at the end corner of the outer ring beam, a fixing bolt hole is opened on the upper side of the hydraulic shock absorber, and a locking screw threadedly connected to the inside of the fixing bolt hole is inserted into the inside of the shock absorber fixing hole.

[0013] In some embodiments, a forklift front insertion port is provided on the upper connecting beam.

[0014] In some embodiments, the horizontal dimensions of the lower bracket and the upper bracket are both 1200 mm×800 mm.

[0015] In some embodiments, the lower cross beam is a 100mm×100mm×6mm square steel tube, the upper connecting beam includes two connecting steel plates overlapping each other, the two ends of the connecting steel plates are respectively welded to the square steel tube, the two connecting steel plates are 10mm thick and 150mm wide, the forklift front socket is the space between the two connecting steel plates, the shock absorber guide hole is a circular hole opened on the upper side of the square steel tube, the diameter of the circular hole is 75mm, the outer ring beam and the cross connecting beam are both welded with 10# channel steel, the diameter of the shock absorber guide tube is 60mm, and the length is 150~200mm.

[0016] The technical effects achieved by this utility model are:

[0017] The photovoltaic glass transportation hydraulic shock-absorbing bracket of the utility model can improve the anti-bumping ability of the hydraulic shock-absorbing bracket in transporting glass semi-finished products through the arrangement of hydraulic shock absorbers and rubber shock-absorbing pads. It is used for the in-factory transportation and handling of photovoltaic glass finished products and semi-finished products, and reduces the breakage rate of glass during forklift transportation within the factory. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 It is a structural diagram of the utility model;

[0019] Figure 2 It is a structural schematic diagram of the lower bracket of the utility model;

[0020] Figure 3 It is a structural schematic diagram of the upper bracket of the utility model.

[0021] In the accompanying drawings, the components represented by the reference numerals are as follows:

[0022] 100, lower bracket; 101, lower crossbeam; 102, upper connecting beam; 103, forklift front socket; 200, upper bracket; 201, outer ring beam; 202, cross connecting beam; 203, shock absorber fixing hole; 300, hydraulic shock absorber; 301, fixing bolt hole; 302, shock absorber base fixing bolt; 400, shock absorber guide hole; 500, rubber shock-absorbing pad; 600, shock absorber guide tube. DETAILED DESCRIPTION

[0023] In order to make the purpose and advantages of the present invention more clearly understood, the present invention is described in detail below with reference to the following embodiments. It should be understood that the following text is only used to describe one or several specific embodiments of the present invention and does not strictly limit the scope of protection of the present invention.

[0024] like Figure 1 As shown, the photovoltaic glass transport hydraulic shock-absorbing bracket includes a lower bracket 100, and the four end corners of the lower bracket 100 are fixedly connected to hydraulic shock absorbers 300. The upper sides of the four hydraulic shock absorbers 300 are fixedly connected to the upper bracket 200 located on the upper side of the lower bracket 100. The provision of the hydraulic shock absorbers 300 can improve the anti-bumping ability of the hydraulic shock-absorbing bracket in transporting semi-finished glass products, thereby reducing product breakage rate and cost.

[0025] In addition, the upper side of the lower bracket 100 is fixedly connected with a plurality of rubber shock-absorbing pads 500 located on the lower side of the upper bracket 200. The rubber shock-absorbing pads 500 are used for buffering and shock-absorbing between the lower bracket 100 and the upper bracket 200. When the lower bracket 100 and the upper bracket 200 collide, the rubber shock-absorbing pads 500 can absorb the force and reduce the deformation that may occur due to the collision between the lower bracket 100 and the upper bracket 200. It can also play a supporting role for the upper bracket 200, which can reduce the damage and noise caused by the collision between the upper bracket 200 and the lower bracket 100 during bumps, further improving the anti-bumping ability of the hydraulic shock-absorbing bracket for transporting glass semi-finished products, and reducing product breakage rate and cost.

[0026] The hydraulic shock absorber 300 has a load-bearing capacity of 500 kg, so that the hydraulic shock absorber bracket can be designed to have a load capacity of 1000 kg.

[0027] Among them, such as Figure 1-2 As shown, shock absorber guide holes 400 with upper openings are provided at the four end corners of the lower bracket 100, and the lower half of the hydraulic shock absorber 300 is fixedly connected to the inside of the shock absorber guide hole 400. At this time, by fixing the lower half of the hydraulic shock absorber 300 to the inside of the shock absorber guide hole 400, the thickness of the lower bracket 100 and the upper bracket 200 combination can be effectively reduced.

[0028] like Figure 1-3 As shown, the four end corners on the lower side of the upper bracket 200 are fixedly connected with a shock absorber guide tube 600 located on the outside of the hydraulic shock absorber 300, and the shock absorber guide tube 600 is vertically slidably connected to the inside of the shock absorber guide hole 400. Through the cooperation of the shock absorber guide tube 600 and the shock absorber guide hole 400, shock absorption guidance can be performed on the stroke of the hydraulic shock absorber 300, so that the hydraulic shock absorber 300 can move flexibly and without obstruction, thereby further improving the anti-bumping ability of the transported photovoltaic glass and reducing glass breakage.

[0029] Among them, such as Figure 1-3 As shown, the lower bracket 100 includes three lower cross beams 101 arranged in parallel, and two adjacent lower cross beams 101 are fixedly connected by three upper connecting beams 102. A plurality of rubber shock-absorbing pads 500 are respectively fixedly connected to the upper sides of the three lower cross beams 101. The shock absorber guide holes 400 are opened at the ends of the two lower cross beams 101 located at the edges, and the lower end of the hydraulic shock absorber 300 is screwed to the lower cross beam 101 through the shock absorber base fixing bolts 302.

[0030] At the same time, the upper bracket 200 includes an outer ring beam 201, and the interior of the outer ring beam 201 is fixedly connected to a cross connecting beam 202, the shock absorber guide tube 600 is fixedly connected to the end corner of the lower side of the outer ring beam 201, and the end corner of the outer ring beam 201 is provided with a shock absorber fixing hole 203, and the upper side of the hydraulic shock absorber 300 is provided with a fixing bolt hole 301, and the interior of the shock absorber fixing hole 203 is inserted with a locking screw threadedly connected to the interior of the fixing bolt hole 301, so that the hydraulic shock absorber 300 and the outer ring beam 201 can be connected together. At this time, by improving the structure of the lower bracket 100 and the upper bracket 200, the hydraulic shock absorber bracket structure is simple and has good stability.

[0031] A forklift front insertion port 103 is provided on the upper connecting beam 102 , thereby facilitating the connection between the forklift and the lower bracket 100 .

[0032] Among them, the horizontal dimensions of the lower bracket 100 and the upper bracket 200 are both designed with a standard size of 1200mm×800mm, so that the hydraulic shock-absorbing bracket structure can be fully compatible with the needs of transporting photovoltaic glass semi-finished products within the factory by forklifts, electric vehicles, manual trucks, etc.

[0033] Here, the specific structure of the lower bracket 100 and the upper bracket 200 is described. The lower crossbeam 101 is a square steel tube of 100mm×100mm×6mm, that is, the width and height of the square steel tube are both 100mm, the thickness is 6mm, and the length is 800mm.

[0034] The upper connecting beam 102 includes two connecting steel plates arranged in an overlapping manner, and the two ends of the connecting steel plates are welded to the square steel pipes respectively. The two connecting steel plates are 10 mm thick and 150 mm wide. The forklift front socket 103 is the space between the two connecting steel plates. The shock absorber guide hole 400 is a circular hole opened on the upper side of the square steel pipe. The diameter of the circular hole is 75 mm. The base of the hydraulic shock absorber 300 is fixed to the lower part of the square steel pipe facing the shock absorber guide hole 400, and ensure that the gap between the hydraulic shock absorber 300 and the shock absorber guide hole 400 is uniform.

[0035] The outer ring beam 201 and the cross connecting beam 202 are both welded with 10# channel steel. The diameter of the shock absorber guide tube 600 is 60 mm and the length is 150-200 mm.

[0036] The photovoltaic glass transportation hydraulic shock-absorbing bracket of the present invention is used for the in-factory transportation and handling of finished and semi-finished photovoltaic glass products, thereby reducing the breakage rate of the glass during forklift transportation within the factory.

[0037] The above description is merely a preferred embodiment of the present invention. It should be noted that those skilled in the art may make various improvements and modifications without departing from the principles of the present invention, and such improvements and modifications should be considered within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described or explained in this invention shall, unless otherwise specified or limited, be implemented in accordance with conventional means in the art.

Claims

1. Photovoltaic glass transport hydraulic shock-absorbing bracket, characterized by: The invention comprises a lower bracket (100), wherein the four end corners of the lower bracket (100) are fixedly connected to hydraulic shock absorbers (300), the upper sides of the four hydraulic shock absorbers (300) are fixedly connected to an upper bracket (200) located on the upper side of the lower bracket (100), and the upper side of the lower bracket (100) is fixedly connected to a plurality of rubber shock-absorbing pads (500) located on the lower side of the upper bracket (200).

2. The photovoltaic glass transport hydraulic shock-absorbing bracket according to claim 1, characterized in that: Shock absorber guide holes (400) with upper openings are provided at the four end corners of the lower bracket (100), and the lower half of the hydraulic shock absorber (300) is fixedly connected inside the shock absorber guide holes (400).

3. The photovoltaic glass transport hydraulic shock-absorbing bracket according to claim 2, characterized in that: The four end corners of the lower side of the upper bracket (200) are fixedly connected to a shock absorber guide tube (600) located outside the hydraulic shock absorber (300), and the shock absorber guide tube (600) is vertically slidably connected to the inside of the shock absorber guide hole (400).

4. The photovoltaic glass transport hydraulic shock-absorbing bracket according to claim 3, characterized in that: The lower bracket (100) includes three lower cross beams (101) arranged in parallel, and two adjacent lower cross beams (101) are fixedly connected by three upper connecting beams (102). A plurality of rubber shock-absorbing pads (500) are respectively fixedly connected to the upper sides of the three lower cross beams (101). The shock absorber guide holes (400) are opened at the ends of the two lower cross beams (101) located at the edges. The lower end of the hydraulic shock absorber (300) is screwed to the lower cross beam (101) via a shock absorber base fixing bolt (302). The upper bracket (200) includes an outer ring beam (201), a cross connecting beam (202) is fixedly connected to the interior of the outer ring beam (201), the shock absorber guide tube (600) is fixedly connected to the end corner of the lower side of the outer ring beam (201), a shock absorber fixing hole (203) is opened at the end corner of the outer ring beam (201), a fixing bolt hole (301) is opened on the upper side of the hydraulic shock absorber (300), and a locking screw threadedly connected to the interior of the fixing bolt hole (301) is inserted into the interior of the shock absorber fixing hole (203).

5. The photovoltaic glass transport hydraulic shock-absorbing bracket according to claim 4, characterized in that: The upper connecting beam (102) is provided with a forklift front insertion opening (103).

6. The photovoltaic glass transport hydraulic shock-absorbing bracket according to claim 1, characterized in that: The horizontal dimensions of the lower bracket (100) and the upper bracket (200) are both 1200 mm×800 mm.

7. The photovoltaic glass transport hydraulic shock-absorbing bracket according to claim 5, characterized in that: The lower cross beam (101) is a square steel tube with a size of 100 mm × 100 mm × 6 mm. The upper connecting beam (102) includes two connecting steel plates arranged in an upper and lower overlapping manner. The two ends of the connecting steel plates are respectively welded to the square steel tube. The two connecting steel plates are 10 mm thick and 150 mm wide. The forklift front socket (103) is the space between the two connecting steel plates. The shock absorber guide hole (400) is a circular hole opened on the upper side of the square steel tube. The diameter of the circular hole is 75 mm. The outer ring beam (201) and the cross connecting beam (202) are both welded with 10# channel steel. The diameter of the shock absorber guide tube (600) is 60 mm and the length is 150 to 200 mm.

Citation Information

Patent Citations

  • Glass transfer bracket device

    CN219115993U