Anti-collision storage device for artistic design samples
By combining the design of the blowing airbag and the clamping mechanism, the problem of unstable clamping of irregularly shaped bottles in the storage device is solved, and the all-round support and anti-collision effect are improved, making it suitable for storage devices for art design samples.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- KUNMING UNIV OF SCI & TECH
- Filing Date
- 2024-01-23
- Publication Date
- 2026-04-28
AI Technical Summary
Existing art design sample storage devices do not hold irregularly shaped bottles securely, resulting in poor anti-collision performance.
The design combines a blow-up airbag and a clamping mechanism. When the blow-up airbag is not inflated, it contracts into a vortex-like structure to place the bottle into the box and is then fixed by the clamping mechanism. When inflated, the blow-up airbag extends and presses against the bottle body, providing all-round support and adapting to irregularly shaped bottles.
It provides stable support for irregularly shaped bottles, improves anti-collision performance and practicality, and prevents bottles from being damaged by collisions during storage and transportation.
Smart Images

Figure CN224171584U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of art and design tools technology, and more specifically, to a collision-proof storage device for art and design samples. Background Technology
[0002] Art design applies the aesthetic beauty of art to designs closely related to daily life, giving them not only aesthetic and practical functions. Art design samples need to be stored in storage devices. Existing storage devices are simple in structure and only serve a storage function. Collisions can occur during transport, causing the samples inside to tilt and collide with the inner walls of the storage box, resulting in damage and economic losses.
[0003] The prior art publication CN215157036U provides an anti-collision storage device for art design samples. This device, by setting up a connecting mechanism, an elastic mechanism, a transmission mechanism and a driving mechanism, can use a motor to drive the rotating shaft to rotate, thereby realizing the rotation of the threaded rod. The nut on the threaded rod drives the ring to descend and surround the sample to maintain its stability. Then, two arc-shaped clamps are used to hold and fix it, ensuring that the sample will not tilt or break due to impact with the storage box, thus improving the safety of the sample.
[0004] Although the existing technical solutions described above can achieve the relevant beneficial effects through the existing technical structure, they still have the following defects: When the device is in use, it clamps the sample head of the bottle with two arc-shaped clamps, but the device can only clamp a part of the bottle. When the head of the bottle has an irregular shape, the arc-shaped clamps cannot be centered, resulting in an unreliable clamping and poor overall anti-collision effect.
[0005] Regarding the aforementioned related technologies, the inventor believes that when the device is in use, it uses two arc-shaped clamps to hold the sample head of the bottle. However, the device can only hold a portion of the bottle, and when the head of the bottle has an irregular shape, the arc-shaped clamps cannot be centered, resulting in an unreliable clamping and poor overall anti-collision effect.
[0006] In view of this, we propose a collision-proof storage device for art and design samples. Summary of the Invention
[0007] 1. Technical problems to be solved
[0008] The purpose of this application is to provide a collision-proof storage device for art design samples, which solves the technical problems in the background art, realizes adaptive protection for irregularly shaped bottles, improves practicality, and enhances the overall collision-proof technical effect by protecting the bottle body.
[0009] 2. Technical Solution
[0010] This application provides a collision-proof storage device for art design samples, including: a box body, a cover plate that is detachable from the box body, a clamping mechanism fixed between the box body and the cover plate, and multiple air-blowing airbags. The multiple air-blowing airbags arranged in a ring form a group. Multiple groups of air-blowing airbags are fixedly installed inside the box body from top to bottom. The air-blowing airbags are interconnected, and the opposite end of the air-blowing airbags has a "vortex spring" structure.
[0011] By adopting the above technical solution, when the blowing airbag is not inflated, it contracts into a "vortex spring" structure. The bottle is placed into the box, the cover is fixed to the box, and then the two ends of the bottle are pressed and fixed between the box and the cover by the clamping mechanism. Finally, by inflating multiple blowing airbags at the same time, the "vortex spring" section of the blowing airbag extends outward and abuts against the bottle body. At this time, the inflated blowing airbag supports the bottle body, which can provide airbag support around the bottle body. Furthermore, the retractable blowing airbag can abut against and support irregularly shaped bottles, improving practicality and anti-collision effect.
[0012] As an optional solution to the technical solution of this application, the housing includes an outer shell and an inner shell and a side air nozzle fitted inside the outer shell. A cavity is formed between the outer shell and the inner shell. The blowing air bag is fixed to the inner wall of the inner shell, and the side air nozzle is fixed to the bottom side of the outer shell. The cover plate is threadedly connected to the outer shell.
[0013] By adopting the above technical solution, the cover plate is connected to the top opening of the outer shell by a threaded connection, so that the cover plate and the box can be disassembled and assembled. The blowing air bag is connected to the inner shell. Air is inflated into the cavity through the side air nozzle. The gas in the cavity is then transported into the blowing air bag. After the air is inflated, the curled end of the blowing air bag extends and abuts against the bottle body. After the air is released from the side air nozzle, the gas in the blowing air bag is discharged. The blowing air bag is then rolled up again into a "vortex spring" shape. At this time, the bottle can be taken out from the inner shell.
[0014] As an optional solution to the technical solution of this application, the clamping mechanism includes a base fixed to the bottom wall inside the inner shell, a telescopic cylinder fixed to the lower surface of the cover plate, a pressure cover fixed to the lower end of the telescopic cylinder, and an upper air nozzle fixed to the cover plate, wherein the upper air nozzle is in communication with the telescopic cylinder.
[0015] By adopting the above technical solution, the bottle is placed on the base inside the inner shell, and then the cover is threaded to the outer shell, so that the pressure cover is placed on the upper end of the bottle. Then, air is injected into the telescopic cylinder through the air inlet, so that the telescopic cylinder expands after being inflated, and the pressure cover presses on the upper end of the bottle. At this time, under the action of the inflated telescopic cylinder, the head of the bottle can be protected against collision.
[0016] As an optional solution to the technical solution of this application, a side groove is provided on one side of the bottom of the housing, the side air nozzle is placed in the side groove, and a plug is threaded into the side groove.
[0017] By adopting the above technical solution, the side air nozzle is placed in the side groove to avoid accidental contact with the side air nozzle and resulting air leakage. At the same time, the side groove is sealed with a plug to improve the sealing performance of the side groove.
[0018] As an optional solution to the technical solution of this application, the top of the cover plate is provided with a top groove, the upper air nozzle is placed in the top groove, and a plug is threaded into the top groove.
[0019] By adopting the above technical solution, the upper air nozzle is fixed in the top groove to avoid accidental contact with the upper air nozzle and resulting air leakage. At the same time, the top groove is sealed with a plug to improve the sealing performance of the top groove.
[0020] As an optional solution to the technical solution of this application, the opposite sides of the base and the pressure cover are both concave structures, and sponge pads are fixedly installed on the opposite sides of the base and the pressure cover.
[0021] By adopting the above technical solution, the concave structure of the base and the pressure cover can protect the upper and lower ends of the bottle. At the same time, the sponge fixed by the concave surface can improve the protection when the pressure cover is against the head of the bottle and when the bottom of the bottle is against the base.
[0022] 3. Beneficial effects
[0023] One or more technical solutions provided in the embodiments of this application have at least the following technical effects or advantages:
[0024] 1. This application utilizes a method where, when the blow-blowing airbag is not inflated, it contracts into a "vortex spring" structure. A bottle is placed inside a box, and the cap is fixed to the box. A clamping mechanism then presses both ends of the bottle firmly between the box and the cap. Finally, multiple blow-blowing airbags are simultaneously inflated, causing the "vortex spring" sections of the airbags to extend outwards and abut against the bottle body. The inflated airbags support the bottle body, providing airbag support around the bottle. Furthermore, the retractable airbags can abut against irregularly shaped bottles, improving practicality and anti-collision performance. Attached Figure Description
[0025] Figure 1 This is a schematic diagram of the box and blowing airbag structure of an anti-collision storage device for art design samples disclosed in a preferred embodiment of this application;
[0026] Figure 2 This is a schematic diagram of a cover plate structure for an anti-collision storage device for art design samples, as disclosed in a preferred embodiment of this application.
[0027] Figure 3 This is a schematic diagram of the bottom structure of a cover plate for an anti-collision storage device for art design samples, as disclosed in a preferred embodiment of this application.
[0028] Figure 4 This is a schematic diagram of the overall structure of a collision-proof storage device for art design samples disclosed in a preferred embodiment of this application;
[0029] Figure 5 This is a schematic diagram of the overall cross-sectional structure of a collision-proof storage device for art design samples disclosed in a preferred embodiment of this application;
[0030] The following are the labels in the diagram: 1. Box body; 101. Outer shell; 1011. Side groove; 102. Inner shell; 103. Cavity; 104. Side air nozzle; 2. Cover plate; 201. Top groove; 3. Pressing mechanism; 301. Telescopic cylinder; 302. Pressure cover; 303. Base; 304. Upper air nozzle; 4. Blowing air bag; 5. Plug. Detailed Implementation
[0031] The present application will be further described in detail below with reference to the accompanying drawings.
[0032] A collision-proof storage device for art design samples includes: a box body 1, a cover plate 2 detachably mounted to the box body 1, a clamping mechanism 3 fixed between the box body 1 and the cover plate 2, and multiple air-blowing bags 4. The multiple air-blowing bags 4 arranged in a ring form a group. Multiple groups of air-blowing bags 4 are fixedly installed inside the box body 1 from top to bottom. The air-blowing bags 4 are connected to each other. The opposite end of the air-blowing bags 4 has a "vortex spring" structure.
[0033] Reference Figure 1 - Figure 5 When the blow-blowing airbag 4 is not inflated, it contracts into a "vortex spring" structure. The bottle is placed into the box 1, and the cover plate 2 is fixed to the box 1. Then, the two ends of the bottle are pressed and fixed between the box 1 and the cover plate 2 by the clamping mechanism 3. Finally, by inflating multiple blow-blowing airbags 4 at the same time, the "vortex spring" section of the blow-blowing airbag 4 extends outward and abuts against the bottle body. At this time, the inflated blow-blowing airbag 4 supports the bottle body, providing airbag support around the bottle body. Furthermore, the retractable blow-blowing airbag 4 can abut against irregularly shaped bottles, improving practicality and anti-collision effect.
[0034] The housing 1 includes an outer shell 101, an inner shell 102 fitted inside the outer shell 101, and a side air nozzle 104. A cavity 103 is formed between the outer shell 101 and the inner shell 102. The blowing air bag 4 is fixed to the inner wall of the inner shell 102. The side air nozzle 104 is fixed to the bottom side of the outer shell 101. The cover plate 2 is threadedly connected to the outer shell 101.
[0035] Reference Figure 5 The cover plate 2 is threadedly connected to the top opening of the outer shell 101 to facilitate the assembly and disassembly of the cover plate 2 and the box 1. The blowing air bag 4 is connected to the inner shell 102. Air is injected into the cavity 103 through the side air nozzle 104. The gas in the cavity 103 is then delivered into the blowing air bag 4. After the air is inflated, the curled end of the blowing air bag 4 extends and abuts against the bottle body. After the side air nozzle 104 releases the air, the gas in the blowing air bag 4 is discharged. The blowing air bag 4 then retracts into a "vortex spring" shape. At this time, the bottle can be removed from the inner shell 102.
[0036] The pressing mechanism 3 includes a base 303 fixed to the bottom wall inside the inner shell 102, a telescopic cylinder 301 fixed to the lower surface of the cover plate 2, a pressure cover 302 fixed to the lower end of the telescopic cylinder 301, and an upper air nozzle 304 fixed to the cover plate 2. The upper air nozzle 304 is in communication with the telescopic cylinder 301.
[0037] Reference Figure 3 and Figure 5 Place the bottle onto the base 303 inside the inner shell 102, then thread the cover 2 onto the outer shell 101 so that the pressure cover 302 is placed on the upper end of the bottle. Then inflate the telescopic cylinder 301 through the air inlet 304 so that the telescopic cylinder 301 extends after being inflated and the pressure cover 302 presses on the upper end of the bottle. At this time, under the action of the inflated telescopic cylinder 301, the head of the bottle can be protected against collision.
[0038] A side groove 1011 is provided on one side of the bottom of the outer casing 101, and a side air nozzle 104 is placed in the side groove 1011. A plug 5 is threaded into the side groove 1011.
[0039] Reference Figure 5 The side air nozzle 104 is placed inside the side groove 1011 to avoid accidental contact with the side air nozzle 104 and resulting in air leakage. At the same time, the side groove 1011 is sealed by the plug 5 to improve the sealing performance of the side groove 1011.
[0040] The top of the cover plate 2 has a top groove 201, the upper air nozzle 304 is placed in the top groove 201, and a plug 5 is threaded into the top groove 201.
[0041] Reference Figure 5 The upper air nozzle 304 is fixed inside the top groove 201 to prevent accidental contact with the upper air nozzle 304 and resulting air leakage. At the same time, the top groove 201 is sealed by the plug 5 to improve the sealing performance of the top groove 201.
[0042] Both the base 303 and the pressure cover 302 have concave structures on opposite sides, and sponge pads are fixedly installed on opposite sides of both the base 303 and the pressure cover 302.
[0043] Reference Figure 5The concave structure of the base 303 and the pressure cover 302 can protect the upper and lower ends of the bottle. At the same time, the sponge fixed by the concave surface can improve the protection when the pressure cover 302 is against the head of the bottle and when the bottom of the bottle is against the base 303.
[0044] Working principle: The bottle is placed into the inner shell 102, and the bottom of the bottle is placed on the base 303. Then, the cover plate 2 is threaded to the outer shell 101. The air cylinder is inflated through the upper air nozzle 304. After the telescopic cylinder 301 is inflated, it extends, so that the pressure cover 302 presses against the upper end of the bottle. The stopper 5 is threaded to the top groove 201. Then, the air cylinder is inflated through the side air nozzle 104. The gas in the cavity 103 is then delivered to the blowing air bag 4. After the blowing air expands, the curled end of the blowing air bag 4 extends and abuts against the bottle body. The inflated blowing air bag 4 protects the bottle body.
Claims
1. A collision-proof storage device for art design samples, characterized in that: include: The box (1), the cover plate (2) which is detachable from the box (1), the clamping mechanism (3) fixed between the box (1) and the cover plate (2) and multiple blowing airbags (4), the multiple ring-shaped blowing airbags (4) are a group, and multiple groups of blowing airbags (4) are fixedly installed inside the box (1) from top to bottom. The blowing airbags (4) are connected through each other, and the opposite end of the blowing airbags (4) has a "vortex spring" structure.
2. The anti-collision storage device for art design samples according to claim 1, characterized in that: The housing (1) includes an outer shell (101) and an inner shell (102) and a side air nozzle (104) fitted inside the outer shell (101). A cavity (103) is formed between the outer shell (101) and the inner shell (102). The blowing air bag (4) is fixed to the inner wall of the inner shell (102). The side air nozzle (104) is fixed to the bottom side of the outer shell (101). The cover plate (2) is threadedly connected to the outer shell (101).
3. The anti-collision storage device for art design samples according to claim 2, characterized in that: The pressing mechanism (3) includes a base (303) fixed to the bottom wall inside the inner shell (102), a telescopic cylinder (301) fixed to the lower surface of the cover plate (2), a pressure cover (302) fixed to the lower end of the telescopic cylinder (301), and an upper air nozzle (304) fixed to the cover plate (2). The upper air nozzle (304) is in communication with the telescopic cylinder (301).
4. A collision-proof storage device for art design samples according to claim 2, characterized in that: A side groove (1011) is provided on one side of the bottom of the outer casing (101), and the side air nozzle (104) is placed in the side groove (1011). A plug (5) is threaded into the side groove (1011).
5. A collision-proof storage device for art design samples according to claim 3, characterized in that: The top of the cover plate (2) is provided with a top groove (201), the upper air nozzle (304) is placed in the top groove (201), and a plug (5) is threaded into the top groove (201).
6. A collision-proof storage device for art design samples according to claim 3, characterized in that: The base (303) and the pressure cover (302) are both concave structures on opposite sides, and sponge pads are fixedly installed on opposite sides of the base (303) and the pressure cover (302).
Citation Information
Patent Citations
A collision-proof storage device for art and design samples
CN215157036U