A tempered glass transport buffer device

By using damping spring shock absorbers and flexible clamping components in tempered glass transport devices, the problem of poor adaptability of traditional devices is solved, achieving stable clamping and buffer protection for glass of different sizes, and improving transport safety.

CN224278250UActive Publication Date: 2026-05-26INNER MONGOLIA JIAXIN BUILDING MATERIALS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
INNER MONGOLIA JIAXIN BUILDING MATERIALS CO LTD
Filing Date
2025-06-30
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

Traditional tempered glass transport devices are difficult to adapt to glass of different sizes and thicknesses, especially irregularly shaped glass. They are prone to local stress concentration and breakage due to uneven clamping, and their cushioning and protection effects are limited.

Method used

The damping spring shock absorber absorbs vibration energy, and the flexible clamping assembly adapts to different sizes of glass through the elastic force of the damping spring and the clamping plate. The adjustable clamping assembly and positioning structure ensure stable clamping and reduce vibration stress and slippage risk during transportation.

Benefits of technology

It improves compatibility and cushioning protection for glass of various sizes, reduces the risk of breakage during transportation, and ensures the stability and safety of glass during transport.

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Abstract

This utility model relates to the field of tempered glass transportation technology, specifically a tempered glass transportation buffer device. It includes a transport block, with damping spring shock absorbers installed at the four corners of the bottom surface of the transport block. Multiple support blocks are fixed to the top surface of the transport block, and triangular frames are fixed to the top surface of each support block. The multiple triangular frames are fixedly connected by connecting blocks. Multiple clamping components are installed on the transport block, each including an L-shaped block with mounting blocks snapped onto both ends. Fasteners are threaded onto the mounting blocks. Multiple threaded holes are formed on the outer walls of both ends of the transport block. The damping spring shock absorbers absorb and dissipate vibration energy through their own elastic deformation, reducing the vibration amplitude of the transport block and decreasing the transmission of vibration stress to the glass. The first spring, when compressed, generates elastic force, pushing the clamping plates to hold the glass with flexible force, reducing the rigid contact effect and minimizing breakage of the tempered glass during transportation due to sliding or tilting, thus enhancing the buffering protection effect.
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Description

Technical Field

[0001] This utility model relates to the field of tempered glass transportation technology, and in particular to a tempered glass transportation buffer device. Background Technology

[0002] During the transportation of tempered glass, vibration and impact and clamping and fixing effects are key factors affecting the safety of the glass. Although tempered glass has high strength, it is prone to vibration stress or stress concentration at the clamping points due to road bumps, sudden braking and turning during transportation, which can lead to edge damage, surface scratches or even overall breakage.

[0003] A search revealed Chinese patent CN220163965U, which provides a buffer device for transporting tempered glass. Multiple tempered glass panes can be placed horizontally simultaneously using multiple placement blocks, reducing the impact of bumps on the tempered glass and providing excellent buffer protection, thus improving the protective effect of the tempered glass.

[0004] However, during use, it was found that traditional clamping structures are mostly fixed designs, which are difficult to adapt to tempered glass of different sizes and thicknesses. In particular, they have poor compatibility with irregularly shaped glass, and are prone to local stress concentration due to uneven contact surfaces. They may even break during transportation due to tilting or sliding, and the cushioning and protection effect is limited, which is not conducive to the transportation and cushioning use of tempered glass. Utility Model Content

[0005] To address the shortcomings of existing technologies, this utility model provides a tempered glass transport buffer device. The damping spring shock absorber absorbs and dissipates vibration energy through its own elastic deformation, reducing the vibration amplitude of the transport block and reducing the transmission of vibration stress to the glass. The first spring generates elastic force when compressed, pushing the clamping plate to hold the glass with flexible force, reducing the rigid hard contact effect, improving the compatibility of glass of various sizes, reducing the breakage of tempered glass caused by sliding or tilting during transportation, and enhancing the buffer protection effect.

[0006] To solve the above technical problems, the present invention provides the following technical solution: a tempered glass transport buffer device, comprising a transport block, damping spring shock absorbers installed at the four corners of the bottom surface of the transport block, a plurality of support blocks fixedly provided on the top surface of the transport block, a tripod fixedly provided on the top surface of the support blocks, the plurality of tripods being fixedly connected by connecting blocks, and a plurality of clamping components installed on the transport block;

[0007] The clamping assembly includes an L-shaped block, with mounting blocks respectively snapped onto both ends of the L-shaped block. Fasteners are threaded onto the mounting blocks. Multiple threaded holes are respectively opened on the outer walls of both ends of the transport block. The threaded ends of the fasteners are threadedly connected to the threaded holes. Two moving blocks are slidably connected to the L-shaped block. A clamping plate is provided at the inner end of the moving blocks. Multiple first springs are fixed between the moving blocks and the L-shaped block.

[0008] Preferably, rubber anti-slip pads are embedded in the outer walls at both ends of the tripod and the top surfaces at both ends of the support block, the two ends of the tripod are inclined, and the height at both ends of the support block is greater than the height at the middle of the support block.

[0009] Through the above technical solution, the rubber anti-slip pad increases the friction between the glass and the supporting surface, restricts the glass from sliding, and achieves initial stable positioning.

[0010] Preferably, a fixed block is fixed in the middle of the L-shaped block, and a bidirectional lead screw is rotatably connected to the fixed block. The outer peripheral walls of both ends of the bidirectional lead screw are respectively inserted into the mounting block, and the lower ends of the two moving blocks are respectively threaded to the bidirectional lead screw.

[0011] Through the above technical solution, the moving block can slide along the L-shaped block to adjust the spacing, adapting to tempered glass of different widths and thicknesses, including irregularly shaped glass. Compared with the traditional fixed clamping structure, it can be quickly adjusted without disassembly and reset, improving the compatibility of multi-size glass.

[0012] Preferably, a plurality of T-shaped inserts are slidably connected to the movable block, and the inner ends of the plurality of T-shaped inserts are respectively fixedly connected to the outer wall of the clamping plate. The end of the T-shaped insert near the clamping plate is located inside the first spring, and the movable block and the clamping plate are inclined.

[0013] Preferably, a Z-shaped rocker arm is installed at one end of the bidirectional lead screw.

[0014] The above technical solution involves rotating a Z-shaped rocker arm to drive a bidirectional lead screw. The rotation of the bidirectional lead screw causes the moving block to slide along the L-shaped block in opposite directions, quickly adjusting the distance between the two clamping plates to accommodate different sizes of glass.

[0015] Preferably, a positioning wheel is fitted on the outer peripheral wall of one end of the bidirectional lead screw, and the outer peripheral wall of the positioning wheel has multiple positioning grooves.

[0016] Preferably, a pin is fixedly connected to the outer peripheral wall of one of the mounting blocks, and an L-shaped locking block is rotatably connected to the outer peripheral wall of the pin. One end of the L-shaped locking block is provided with a locking part, which engages with the positioning groove.

[0017] Through the above technical solution, the locking part is re-locked into the corresponding positioning groove of the positioning wheel, locking the rotation position of the bidirectional lead screw and preventing the clamping distance from shifting due to vibration during transportation.

[0018] Preferably, a second spring is fixedly connected to the L-shaped locking block, and a positioning block is fixedly connected to the end of the second spring away from the L-shaped locking block. The positioning block is fixedly connected to one of the mounting blocks.

[0019] Through the above technical solution, the locking part of the L-shaped block is compressed by external force to release the second spring, disengage from the positioning groove of the positioning wheel, and allow the bidirectional lead screw to rotate freely.

[0020] The beneficial effects of this utility model are:

[0021] 1. The damping spring shock absorber absorbs and dissipates vibration energy through its own elastic deformation, reducing the vibration amplitude of the transport block and reducing the transmission of vibration stress to the glass. When the clamping plate at the inner end of the moving block contacts the outer surface of the glass, the first spring is compressed to generate elastic force, pushing the clamping plate to hold the glass with flexible force, reducing the rigid hard contact effect. The moving block can slide along the L-shaped block to adjust the spacing, adapting to tempered glass of different widths and thicknesses, including irregularly shaped glass. Compared with the traditional fixed clamping structure, it can be quickly adjusted without disassembly and reset, improving the compatibility of multi-size glass, ensuring uniform force on the contact surface, reducing the breakage of tempered glass caused by sliding or tilting during transportation, and enhancing the buffer protection effect.

[0022] 2. Manually rotate the Z-shaped rocker to drive the bidirectional lead screw to rotate. At this time, the locking part of the L-shaped locking block is compressed by external force, disengaging from the positioning groove of the positioning wheel, allowing the bidirectional lead screw to rotate freely. After adjusting to the target spacing, release the Z-shaped rocker, the second spring returns to its original position, and pushes the L-shaped locking block to rotate around the pin. The locking part re-engages into the corresponding positioning groove of the positioning wheel, locking the rotation position of the bidirectional lead screw. This prevents the clamping spacing from shifting due to vibration during transportation, ensuring stable clamping force of the clamping plate on the glass, avoiding edge stress concentration or glass slippage caused by loosening, and improving the safety of glass transportation. Attached Figure Description

[0023] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0024] Figure 2 This is a schematic diagram of the tripod structure of this utility model;

[0025] Figure 3 This is a schematic diagram of the assembly of the movable block structure of this utility model;

[0026] Figure 4 This is a schematic diagram of the positioning wheel structure of this utility model.

[0027] In the diagram: 100, transport block; 101, damping spring shock absorber; 102, support block; 103, tripod; 104, connecting block; 105, rubber anti-slip pad; 106, threaded hole;

[0028] 200. Clamping assembly; 201. L-shaped block; 202. Mounting block; 203. Fastener; 204. Positioning block; 205. Moving block; 206. Clamping plate; 207. First spring; 208. Fixing block; 209. Bidirectional lead screw; 210. T-shaped insert; 211. Z-shaped rocker arm; 212. Positioning wheel; 213. Positioning groove; 214. Pin; 215. L-shaped locking block; 216. Locking part; 217. Second spring. Detailed Implementation

[0029] To make the above-mentioned objectives, features and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings.

[0030] Example 1: As Figure 1-4 As shown, this embodiment provides a tempered glass transport buffer device, including a transport block 100. Damping spring shock absorbers 101 are installed at the four corners of the bottom surface of the transport block 100. Multiple support blocks 102 are fixedly provided on the top surface of the transport block 100. Tripods 103 are fixedly provided on the top surface of the support blocks 102. Multiple tripods 103 are fixedly connected to each other by connecting blocks 104. Multiple clamping components 200 are installed on the transport block 100.

[0031] The clamping assembly 200 includes an L-shaped block 201, with mounting blocks 202 respectively clamped at both ends of the L-shaped block 201. Fasteners 203 are threadedly connected to the mounting blocks 202. Multiple threaded holes 106 are respectively opened on the outer walls of both ends of the transport block 100. The threaded ends of the fasteners 203 are threadedly connected to the threaded holes 106. Two moving blocks 205 are slidably connected to the L-shaped block 201. A clamping plate 206 is provided at the inner end of the moving block 205. Multiple first springs 207 are fixed between the moving block 205 and the L-shaped block 201.

[0032] Rubber anti-slip pads 105 are embedded in the outer walls at both ends of the tripod 103 and the top surfaces at both ends of the support block 102. The two ends of the tripod 103 are inclined, and the height at both ends of the support block 102 is greater than the height at the middle of the support block 102. The rubber anti-slip pads 105 increase the friction between the glass and the support surface, restrict the glass from sliding, and achieve initial stable positioning.

[0033] A fixed block 208 is fixedly installed in the middle of the L-shaped block 201. A bidirectional lead screw 209 is rotatably connected to the fixed block 208. The outer peripheral walls of both ends of the bidirectional lead screw 209 are respectively inserted into the mounting block 202. The lower ends of the two moving blocks 205 are respectively threaded to the bidirectional lead screw 209. The moving blocks 205 can slide along the L-shaped block 201 to adjust the spacing, adapting to tempered glass of different widths and thicknesses, including irregularly shaped glass. Compared with the traditional fixed clamping structure, it can be quickly adjusted without disassembly and reset, improving the compatibility of multi-size glass.

[0034] Multiple T-shaped inserts 210 are slidably connected to the movable block 205. The inner ends of the multiple T-shaped inserts 210 are fixedly connected to the outer wall of the clamping plate 206. The end of the T-shaped insert 210 near the clamping plate 206 is located inside the first spring 207. The movable block 205 and the clamping plate 206 are inclined. A Z-shaped rocker arm 211 is installed at one end of the bidirectional lead screw 209. By rotating the Z-shaped rocker arm 211, the bidirectional lead screw 209 is driven to rotate. The rotation of the bidirectional lead screw 209 will cause the movable block 205 to slide towards or away from the L-shaped block 201, quickly adjusting the distance between the two clamping plates 206 to accommodate glass of different sizes.

[0035] Working principle: The transport block 100 is connected to the transport vehicle through the damping spring shock absorbers 101 at the four corners of the bottom surface. When encountering road bumps or sudden braking during transport, the damping spring shock absorbers 101 absorb and dissipate vibration energy through their own elastic deformation, reducing the vibration amplitude of the transport block 100 and reducing the transmission of vibration stress to the glass. The support block 102 and the tripod 103 on the top surface of the transport block 100 provide support for the tempered glass. The inclined structure of the tripod 103 and the design of the support block 102, which is low in the middle and high at both ends, can initially limit the sliding of the glass and achieve stable positioning in conjunction with the clamping assembly 200.

[0036] The L-shaped block 201 of the clamping assembly 200 is fixed to the threaded hole 106 of the transport block 100 by the mounting block 202 and the fastener 203. The two moving blocks 205 slide on the L-shaped block 201 to adjust the distance. When the clamping plate 206 at the inner end of the moving block 205 contacts the outer surface of the glass, the first spring 207 is compressed to generate elastic force, which pushes the clamping plate 206 to clamp the glass with flexible force, reducing the rigid hard contact effect. The moving block 205 can slide along the L-shaped block 201 to adjust the distance, which can adapt to tempered glass of different widths and thicknesses, including irregularly shaped glass. Compared with the traditional fixed clamping structure, it can be quickly adjusted without disassembly and reset, which improves the compatibility of multi-size glass, ensures uniform force on the contact surface, reduces the breakage of tempered glass caused by sliding or tilting during transportation, and enhances the buffer protection effect.

[0037] The rubber anti-slip pad 105 increases the friction between the glass and the support surface, restricts the glass from sliding, and achieves initial stable positioning; by rotating the Z-shaped rocker arm 211, the bidirectional lead screw 209 is driven to rotate. Since the lower ends of the two moving blocks 205 are threadedly connected to the bidirectional lead screw 209, the rotation of the bidirectional lead screw 209 will cause the moving blocks 205 to slide towards or away from each other along the L-shaped block 201, quickly adjusting the distance between the two clamping plates 206 to adapt to different sizes of glass;

[0038] When the clamping plate 206 is adjusted to contact the outer wall of the glass, the clamping plate 206 compresses the first spring 207 through the T-shaped insert 210. The first spring 207 generates elastic force due to deformation, which pushes the clamping plate 206 to hold the glass with flexible force, reducing rigid hard contact.

[0039] Example 2: Figure 1 , Figure 3 and Figure 4 As shown, based on Embodiment 1, a positioning wheel 212 is sleeved on the outer peripheral wall of one end of the bidirectional lead screw 209. The outer peripheral wall of the positioning wheel 212 has multiple positioning grooves 213. A pin 214 is fixedly connected to the outer peripheral wall of one of the mounting blocks 202. An L-shaped locking block 215 is rotatably connected to the outer peripheral wall of the pin 214. One end of the L-shaped locking block 215 has a locking part 216, which engages with the positioning groove 213. The locking part 216 re-engages into the corresponding positioning groove 213 of the positioning wheel 212, locking the rotation position of the bidirectional lead screw 209 and preventing the clamping gap from shifting due to vibration during transportation.

[0040] A second spring 217 is fixedly connected to the L-shaped locking block 215. A positioning block 204 is fixedly connected to the end of the second spring 217 away from the L-shaped locking block 215. The positioning block 204 is fixedly connected to one of the mounting blocks 202. When the locking part 216 of the L-shaped locking block 215 is subjected to external force, it compresses the second spring 217 and disengages from the positioning groove 213 of the positioning wheel 212, allowing the bidirectional lead screw 209 to rotate freely.

[0041] In use, when the clamping distance needs to be adjusted, manually rotate the Z-shaped rocker 211 to drive the bidirectional lead screw 209 to rotate. At this time, the locking part 216 of the L-shaped locking block 215 is compressed by external force to the second spring 217, disengaging from the positioning groove 213 of the positioning wheel 212, allowing the bidirectional lead screw 209 to rotate freely. After adjusting to the target distance, release the Z-shaped rocker 211, the second spring 217 returns to its original position, and pushes the L-shaped locking block 215 to rotate around the pin 214. The locking part 216 re-engages into the corresponding positioning groove 213 of the positioning wheel 212, locking the rotation position of the bidirectional lead screw 209. This prevents the clamping distance from shifting due to vibration during transportation, ensuring that the clamping force of the clamping plate 206 on the glass is stable, avoiding edge stress concentration or glass slippage caused by loosening, and improving the transportation safety of the glass.

[0042] The positioning wheel 212 is coaxially sleeved with the double-acting screw 209 and rotates synchronously with the double-acting screw 209. The positioning groove 213 on its outer peripheral wall is evenly distributed at a preset interval. The L-shaped locking block 215 is used to achieve graded positioning of the clamping interval, ensuring that the clamping plate 206 maintains a stable clamping force during transportation.

[0043] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. A tempered glass transport buffer device, characterized in that, include: A transport block (100) is provided with damping spring shock absorbers (101) installed at the four corners of the bottom surface of the transport block (100). Multiple support blocks (102) are fixedly provided on the top surface of the transport block (100). Tripods (103) are fixedly provided on the top surface of the support blocks (102). Multiple tripods (103) are fixedly connected to each other by connecting blocks (104). Multiple clamping components (200) are installed on the transport block (100). The clamping assembly (200) includes an L-shaped block (201), with mounting blocks (202) respectively clamped at both ends of the L-shaped block (201). Fasteners (203) are threadedly connected to the mounting blocks (202). Multiple threaded holes (106) are respectively opened on the outer walls of both ends of the transport block (100). The threaded end of the fastener (203) is threadedly connected to the threaded hole (106). Two moving blocks (205) are slidably connected on the L-shaped block (201). A clamping plate (206) is provided at the inner end of the moving block (205). Multiple first springs (207) are fixed between the moving block (205) and the L-shaped block (201).

2. The tempered glass transport buffer device as described in claim 1, characterized in that: Rubber anti-slip pads (105) are respectively embedded on the outer walls of both ends of the tripod (103) and the top surfaces of both ends of the support block (102). The two ends of the tripod (103) are inclined, and the height of both ends of the support block (102) is greater than the height of the middle part of the support block (102).

3. The tempered glass transport buffer device as described in claim 2, characterized in that: A fixing block (208) is fixed in the middle of the L-shaped block (201). A bidirectional lead screw (209) is rotatably connected to the fixing block (208). The outer peripheral walls of both ends of the bidirectional lead screw (209) are respectively inserted into the mounting block (202). The lower ends of the two moving blocks (205) are respectively threaded to the bidirectional lead screw (209).

4. The tempered glass transport buffer device as described in claim 3, characterized in that: Multiple T-shaped inserts (210) are slidably connected to the movable block (205). The inner ends of the multiple T-shaped inserts (210) are respectively fixedly connected to the outer wall of the clamping plate (206). The end of the T-shaped insert (210) near the clamping plate (206) is located inside the first spring (207). The movable block (205) and the clamping plate (206) are inclined.

5. The tempered glass transport buffer device as described in claim 4, characterized in that: A Z-shaped rocker arm (211) is installed at one end of the bidirectional lead screw (209).

6. The tempered glass transport buffer device as described in claim 5, characterized in that: The outer peripheral wall of one end of the bidirectional lead screw (209) is fitted with a positioning wheel (212), and the outer peripheral wall of the positioning wheel (212) is provided with multiple positioning grooves (213).

7. The tempered glass transport buffer device as described in claim 6, characterized in that: One of the mounting blocks (202) has a pin (214) fixedly connected to its outer peripheral wall. The pin (214) has an L-shaped locking block (215) rotatably connected to its outer peripheral wall. One end of the L-shaped locking block (215) has a locking part (216) that engages with the positioning groove (213).

8. The tempered glass transport buffer device as described in claim 7, characterized in that: A second spring (217) is fixedly connected to the L-shaped card block (215). A positioning block (204) is fixedly connected to one end of the second spring (217) away from the L-shaped card block (215). The positioning block (204) is fixedly connected to one of the mounting blocks (202).