A shock absorbing structure and container thereof

CN224740037UActive Publication Date: 2026-09-11SHENGSHI CONTAINER MANAGEMENT SHANGHAI +1
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Patent Information

Application Number
CN202521911235.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-05
Publication Date
2026-09-11
Estimated Expiration
2035-09-05

AI Technical Summary

Technical Problem

但现有集装箱大多为刚性结构,在受到震动时无法通过变形来吸收和分散荷载,直接将震动传递到箱内的装载物上,对装载的货物和设备产生影响

Benefits of technology

[0011]有益效果:与现有技术相比,本实用新型具有以下显著优点:本实用新型不影响集装箱刚性结构的前提下,在集装箱角柱内部增加减震阻尼器以帮助集装箱在受到冲击震动时吸收消耗一部分能量,从而达到减震的目的;同时结构简单,不会对集装箱内部空间及承载能力产生影响。

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a kind of shock-absorbing structure and its container, including outer corner column, inner corner column, shock-absorbing damping structure and reinforcing plate;The outer corner column, inner corner column are located on container, and reinforcing plate is equidistantly arranged in outer corner column, inner corner column, and reinforcing plate provides fixed point for shock-absorbing damping structure;The shock-absorbing damping structure is located between reinforcing plate, and shock-absorbing damping structure includes middle shock-absorbing damping block and shock-absorbing spring at both ends.The utility model increases shock absorber in container corner column interior to help container absorb and consume part of energy when being impacted and vibrated, to reach the purpose of shock absorption;Simple structure, and it will not affect container internal space and bearing capacity.
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Description

Technical Field

[0001] This utility model relates to the field of containers, and in particular to a shock-absorbing structure and its container. Background Technology

[0002] With the development of the container industry, containers are required to carry an increasingly wide range of goods, and a large number of precision instruments and equipment need to reduce vibration and ensure stability during transportation. However, most existing containers are rigid structures, which cannot absorb and disperse the load through deformation when subjected to vibration, and directly transmit the vibration to the cargo inside the container, affecting the loaded goods and equipment.

[0003] Therefore, it is necessary to develop new shock-absorbing structures to achieve the purpose of shock absorption for containers. Utility Model Content

[0004] Purpose of the utility model: In view of the shortcomings and defects of the existing technology, this utility model provides a shock-absorbing structure and its container. The shock-absorbing damper is added inside the corner column of the container to help the container absorb and dissipate some of the energy when it is subjected to impact and vibration, thereby achieving the purpose of shock absorption. The structure is simple and will not affect the internal space and load-bearing capacity of the container.

[0005] Technical solution: The present invention provides a shock-absorbing structure, characterized in that it includes outer corner posts, inner corner posts, a shock-absorbing damping structure, and reinforcing plates; the outer corner posts and inner corner posts are located on a container, and reinforcing plates are equidistantly arranged inside the outer corner posts and inner corner posts, the reinforcing plates providing fixing points for the shock-absorbing damping structure; the shock-absorbing damping structure is located between the reinforcing plates, and the shock-absorbing damping structure includes a middle shock-absorbing damping block and shock-absorbing springs at both ends.

[0006] The outer corner posts and inner corner posts are connected to the top corner pieces and bottom corner pieces of the container.

[0007] The outer corner posts, inner corner posts, and corner fittings of the container are connected by a welded structure.

[0008] The reinforcing plate is installed inside the outer and inner corner pillars via a welded structure.

[0009] The reinforcing plate is connected by a welded structure damping spring.

[0010] The present invention relates to a container, characterized by the use of the shock-absorbing structure of the present invention.

[0011] Beneficial effects: Compared with the prior art, the present invention has the following significant advantages: Without affecting the rigid structure of the container, the present invention adds a shock-absorbing damper inside the corner column of the container to help the container absorb and dissipate some energy when subjected to impact and vibration, thereby achieving the purpose of shock absorption; at the same time, the structure is simple and will not affect the internal space and load-bearing capacity of the container. Attached Figure Description

[0012] Figure 1 This is a schematic diagram of the structure of this utility model;

[0013] Figure 2 This is a schematic diagram of the structure of the shock-absorbing damping block of this utility model;

[0014] Figure 3 This is a schematic diagram of the structure of the inner and outer corner pillars of this utility model;

[0015] In the diagram, 1 is the top corner piece; 2 is the reinforcing plate; 3 is the shock-absorbing damping block; 4 is the bottom corner piece; 5 is the shock-absorbing spring; 6 is the outer corner post; and 7 is the inner corner post. Detailed Implementation

[0016] The technical solution of this utility model will be further described below with reference to the accompanying drawings and specific embodiments.

[0017] This invention helps reduce impact and vibration during container transportation, without occupying internal space or affecting the original load-bearing structure of the container.

[0018] The shock-absorbing structure of this utility model includes an outer corner post 6, an inner corner post 7, a shock-absorbing damping structure, and a reinforcing plate 2. The outer corner post 6 and the inner corner post 7 are located on the container. The reinforcing plates 2 are equidistantly arranged inside the outer corner post 6 and the inner corner post 7. The reinforcing plates 2 provide fixing points for the shock-absorbing damping structure. The shock-absorbing damping structure is located between the reinforcing plates 2. The shock-absorbing damping structure includes a shock-absorbing damping block 3 in the middle and shock-absorbing springs 5 ​​at both ends.

[0019] The outer corner posts 6 and inner corner posts 7 of this utility model are connected to the top corner piece 1 and bottom corner piece 4 of the container. The outer corner posts 6 and inner corner posts 7 are connected to the corner pieces of the container through a welding structure. The reinforcing plate 2 is installed inside the outer corner posts 6 and inner corner posts 7 through a welding structure. The reinforcing plate 2 is connected to the container through a shock-absorbing spring 5 via a welding structure.

[0020] Example:

[0021] As shown in the figure, the shock-absorbing structure in this embodiment mainly includes three parts: inner and outer corner posts, a shock-absorbing damping structure, and reinforcing plates. The inner and outer corner posts are the corner post structures on the container, with the upper and lower parts of the corner posts welded to the corner fittings. The reinforcing plates are welded equidistantly inside the inner and outer corner posts, increasing the strength of the corner posts while providing fixed points for the shock-absorbing damping structure. The shock-absorbing damping structure has a central shock-absorbing damping block and shock-absorbing springs at both ends, with the ends of the shock-absorbing springs welded and fixed to the reinforcing plates. When the container is stationary, the damping block inside the corner posts is also in an inhibited state; when the container receives a momentary reverse impact, the internal damping block, due to inertia, will convert part of the kinetic energy of the container into the elastic potential energy of the springs, thereby reducing the vibration of the container itself and the contents inside.

[0022] This invention adds shock-absorbing dampers inside the corner posts of the container without affecting the rigid structure of the container, so as to help the container absorb and dissipate some of the energy when it is subjected to impact and vibration, thereby achieving the purpose of shock reduction; at the same time, the structure is simple and will not affect the internal space and load-bearing capacity of the container.

Claims

1. A shock absorbing structure, characterized by: It includes an outer corner post (6), an inner corner post (7), a shock-absorbing damping structure, and a reinforcing plate (2); the outer corner post (6) and the inner corner post (7) are located on the container, and the reinforcing plate (2) is equidistantly arranged inside the outer corner post (6) and the inner corner post (7), and the reinforcing plate (2) provides a fixing point for the shock-absorbing damping structure; the shock-absorbing damping structure is located between the reinforcing plates (2), and the shock-absorbing damping structure includes a shock-absorbing damping block (3) in the middle and shock-absorbing springs (5) at both ends.

2. The shock absorbing structure of claim 1, wherein: The outer corner post (6) and inner corner post (7) are connected to the top corner piece (1) and bottom corner piece (4) of the container.

3. The shock absorbing structure of claim 2, wherein: The outer corner posts (6) and inner corner posts (7) are connected to the corner fittings of the container through a welded structure.

4. The damping structure according to claim 1, characterized in that: The reinforcing plate (2) is installed inside the outer corner post (6) and the inner corner post (7) by means of a welding structure.

5. The damping structure according to claim 1, characterized in that: The reinforcing plate (2) is connected by a welded structure damping spring (5).

6. A container characterized by: Use the damping structure as described in any one of claims 1-5.