Single-wing expansion box supporting structure convenient to adjust

By introducing components such as movable plates, telescopic blocks and hydraulic rods into the container support structure, the problem of unstable container support is solved, stable support for containers of different sizes and heights is achieved, and transportation safety and flexibility of use are improved.

CN223356456UActive Publication Date: 2025-09-19WEIFANG WANLONG STEEL STRUCTURE CO LTD
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Patent Information

Application Number
CN202422030050.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-21
Publication Date
2025-09-19
Estimated Expiration
2034-08-21

AI Technical Summary

Technical Problem

During use, the existing single-wing expansion box support structure is difficult to adapt to different sizes, resulting in unstable support, increasing safety risks during transportation or support, and limiting the use scenarios of the container.

Method used

The movable plate is telescopically adjusted along the inner side of the load-bearing plate, and combined with components such as telescopic blocks, fixing screws, cylinder-connected hydraulic rods and auxiliary springs, automatic adjustment of support length and height is achieved, ensuring the stability and safety of containers of different sizes and heights.

Benefits of technology

It achieves stable support for containers of different sizes and heights, reduces the risk of tipping, prevents accidental displacement, improves transportation safety and flexibility of use, saves manpower, and adapts to different load requirements.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of expansion boxes, in particular to a single-wing expansion box supporting structure convenient to adjust. The technical problems that according to an existing container supporting structure, a positioning block is combined with a bearing plate to form a connecting structure to support a container body, due to the fact that containers have different lengths and sizes, the connecting structure is difficult to carry out adaptive supporting according to different sizes, supporting of the containers is unstable, and the supporting effect is poor are solved. Meanwhile, the supporting structure needs to be replaced or adjusted according to different sizes, the use scene of the container is limited, and the safety risk in the transportation or supporting process is increased. According to the technical scheme, the single-wing expansion box supporting structure convenient to adjust comprises a container, a supporting assembly, a stabilizing assembly and an auxiliary assembly; the movable plate is adopted for telescopic adjustment along the interior of the bearing plate, the supporting length is adjusted according to the size of the container, the supporting requirements of containers of different sizes are met, and stability and safety of the container in the transportation or using process are guaranteed.
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Description

Technical Field

[0001] The utility model relates to the technical field of expansion boxes, in particular to a single-wing expansion box support structure which is easy to adjust. Background Art

[0002] A single-wing expansion box is a specially designed container that can expand or contract one wing independently without fully opening the entire container, thereby increasing or reducing the loading and unloading space for cargo. This design is usually used in situations where cargo needs to be loaded and unloaded frequently, or where loading and unloading is required in irregular locations. When the container is in use, a support structure is required for support and fixation. The existing container support structure usually uses positioning blocks combined with load-bearing plates to form a connecting structure to support the box body during use. Since containers have different lengths and sizes, it is difficult to use the connecting structure to adapt the support to different sizes, resulting in unstable support for the container. At the same time, different sizes require replacement or adjustment of the support structure, which limits the use scenarios of the container and increases safety risks during transportation or support. Therefore, we propose a single-wing expansion box support structure that is easy to adjust to solve the above problems. Utility Model Content

[0003] In order to overcome the existing container support structure, positioning blocks are usually combined with load-bearing plates to form a connecting structure to support the box. Since containers come in different lengths and sizes, it is difficult to use the connecting structure to adapt the support according to different sizes, resulting in unstable support for the container. At the same time, different sizes require replacement or adjustment of the support structure, which limits the use scenarios of the container and increases safety risks during transportation or support.

[0004] The technical solution of the utility model is: an easily adjustable single-wing expansion box support structure, including a container, a support assembly, a stabilization assembly and an auxiliary assembly; a support assembly for supporting and fixing the entire part of the box is installed under the container, a stabilization assembly for ensuring auxiliary support after the single wing of the box is closed is installed at one end of the container, and an auxiliary assembly for auxiliary supporting the box is installed on the upper end of the support assembly.

[0005] Preferably, a movable plate is telescopically adjusted along the inside of the load-bearing plate to adjust the support length according to the size of the container to adapt to the support requirements of containers of different sizes. The telescopic block is used to fine-tune the height of the support required for the container, and the support height is accurately adjusted to ensure the stability and safety of the container during transportation or use. When there is a specific height requirement inside the container, the internal items are properly placed to reduce the risk of tipping due to unstable support. At the same time, the fixing screws are used to assist in fixing the container after supporting it, effectively preventing the container from accidental displacement when it is vibrated during transportation, ensuring that the container always maintains the correct position and improving the overall stability. After the single wing of the container is closed, the pressure plate is used to press and fix it to avoid accidental opening of the single wing during transportation, ensuring the use and transportation safety of the container. The cylinder is connected to the hydraulic rod to drive the adjustment plate to adjust according to the height of the container, so as to realize automatic adjustment of the height of the support plate, save a lot of manpower, and realize auxiliary fixation of the single wing of the container. Auxiliary springs are used to connect the support plate to assist in supporting the container to provide additional supporting force. At the same time, the weight and shape of the container may be different, and the auxiliary spring rebounds to adapt to the requirements of different loads.

[0006] Preferably, the support assembly includes a load-bearing plate, a movable plate, a limiting rod, a hammering block, a sleeve block, a telescopic block, a limiting bolt, a fixing screw, a sub-plate and a sleeve frame. A movable plate is provided at one end of the load-bearing plate, and hammering blocks are symmetrically provided on the outer side of the load-bearing plate. A limiting rod is provided between the hammering block and the load-bearing plate. The movable plate is fixedly connected to the load-bearing plate through the limiting rod. A sub-plate is provided at the end of the load-bearing plate away from the movable plate. By adopting the movable plate to telescopically adjust along the inside of the load-bearing plate, the support length is adjusted according to the size of the container to adapt to the support requirements of containers of different sizes, thereby improving the applicability of the equipment.

[0007] Preferably, a sleeve block is provided at the upper corner of the load-bearing plate and the movable plate, a telescopic block is provided inside the sleeve block, and a limit bolt is provided at the outer end of the sleeve block. The telescopic block is fixedly connected to the sleeve block by the limit bolt. By using the telescopic block to perform fine-tuning according to the required support height of the container, the support height can be accurately adjusted to ensure the stability and safety of the container during transportation or use. When there is a specific height requirement inside the container, the internal items can be properly placed to reduce the risk of tipping due to unstable support.

[0008] Preferably, a sleeve is provided at the lower corner of the container, and the telescopic block extends into the interior through the sleeve. A fixing screw is provided at the outer end of the telescopic block, and the telescopic block is threadedly fixed to the sleeve by the fixing screw. By using the fixing screw to assist in fixing the container after supporting it, the container can be effectively prevented from accidental displacement when it is vibrated during transportation, ensuring that the container always maintains the correct position and improving the overall stability.

[0009] Preferably, the stabilization assembly includes a sleeve plate, an adjustment plate, a pressure plate, a connecting rod, a fixing frame, a cylinder, a hydraulic rod, a connecting block and an auxiliary rod. The sleeve plate is located at the upper end of the sub-plate, an adjustment plate is provided inside the sleeve plate, a connecting rod is provided at one end of the adjustment plate, and a pressure plate is provided on the outer wall of the connecting rod. After the single wing of the container is closed, the pressure plate is used to press and fix it to prevent the single wing from opening accidentally during transportation, thereby ensuring the safe use and transportation of the container.

[0010] Preferably, the outer wall of the adjustment plate is symmetrically provided with connecting blocks, a fixing frame is provided below the connecting block, a cylinder is provided inside the fixing frame, a hydraulic rod is provided between the cylinder and the connecting block, and an auxiliary rod is provided on the side of the connecting block away from the hydraulic rod. By using the cylinder to connect the hydraulic rod to drive the adjustment plate to adjust according to the height of the container, the height of the support plate can be automatically adjusted, which saves a lot of manpower and realizes auxiliary fixation of the single wing of the container.

[0011] Preferably, the auxiliary component includes a support plate and an auxiliary spring. The support plate is located at the upper end of the load-bearing plate, and the support plate is fixed to the lower end of the container. A plurality of groups of auxiliary springs are provided at the lower end of the support plate. The support plate is fixedly connected to the load-bearing plate through the auxiliary springs. A damper is provided inside the auxiliary spring. The support plate is connected with the auxiliary spring to assist in supporting the container and provide additional supporting force. At the same time, the weight and shape of the container may vary, and the auxiliary spring rebounds to adapt to different load requirements to improve the overall stability.

[0012] Beneficial effects of the utility model:

[0013] 1. Compared with traditional containers, the movable plate is telescopically adjusted along the internal load-bearing plate, and the support length is adjusted according to the size of the container to meet the support requirements of containers of different sizes. The telescopic block is used to fine-tune the height of the support required by the container, and the support height is accurately adjusted to ensure the stability and safety of the container during transportation or use. When there are specific height requirements inside the container, the internal items are properly placed to reduce the risk of tipping due to unstable support. At the same time, the fixing screws are used to assist in fixing the container after supporting it. When it is subjected to vibration during transportation, it effectively prevents the container from accidentally moving, ensures that the container always maintains the correct position, and improves overall stability.

[0014] 2. After the container's single wing is closed, it is fixed with a pressure plate to prevent the wing from opening accidentally during transportation, thereby ensuring the safe use and transportation of the container. The cylinder is connected to the hydraulic rod to drive the adjustment plate to adjust according to the height of the container, thereby automatically adjusting the height of the support plate, saving a lot of manpower and achieving auxiliary fixation of the container's single wing. Auxiliary springs are used to connect the support plate to assist in supporting the container and provide additional supporting force. At the same time, the weight and shape of the container may vary, and the auxiliary spring rebounds to adapt to different load requirements. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 It is a schematic diagram of the overall structure of the utility model;

[0016] Figure 2 This is a schematic diagram of the support assembly structure of the utility model;

[0017] Figure 3 This is a schematic diagram of the structure of the stabilizing component of the present utility model;

[0018] Figure 4 This is a schematic diagram of the auxiliary component structure of the present utility model.

[0019] Explanation of the accompanying drawings: 1. Container; 2. Support assembly; 201. Load-bearing plate; 202. Movable plate; 203. Limit rod; 204. Hammering block; 205. Sleeve block; 206. Telescopic block; 207. Limit bolt; 208. Fixing screw; 209. Sub-plate; 210. Sleeve frame; 3. Stabilizing assembly; 301. Sleeve plate; 302. Adjusting plate; 303. Pressing plate; 304. Connecting rod; 305. Fixed frame; 306. Cylinder; 307. Hydraulic rod; 308. Connecting block; 309. Auxiliary rod; 4. Auxiliary assembly; 401. Support plate; 402. Auxiliary spring. DETAILED DESCRIPTION

[0020] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0021] See also Figure 1-4 The utility model provides an embodiment: an adjustable single-wing expansion box support structure, comprising a container 1, a support assembly 2, a stabilizing assembly 3 and an auxiliary assembly 4; a support assembly 2 for supporting and fixing the entire box body is installed at the bottom of the container 1, a stabilizing assembly 3 for ensuring auxiliary support after the single wing of the box body is closed is installed at one end of the container 1, and an auxiliary assembly 4 for auxiliary supporting the box body is installed at the upper end of the support assembly 2.

[0022] See also Figure 1-2In this embodiment, the support assembly 2 includes a load-bearing plate 201, a movable plate 202, a limiting rod 203, a hammering block 204, a sleeve block 205, a telescopic block 206, a limiting bolt 207, a fixing screw 208, a sub-plate 209 and a sleeve frame 210. A movable plate 202 is provided at one end of the load-bearing plate 201, and hammering blocks 204 are symmetrically provided on the outer side of the load-bearing plate 201. A limiting rod 203 is provided between the hammering block 204 and the load-bearing plate 201. The movable plate 202 is fixedly connected to the load-bearing plate 201 through the limiting rod 203. A sub-plate 209 is provided at one end of the load-bearing plate 201 away from the movable plate 202. By adopting the movable plate 202 to telescope along the inside of the load-bearing plate 201, according to the container 1 The support length can be adjusted according to the size to meet the support requirements of containers 1 of different sizes, thereby improving the applicability of the equipment. A sleeve block 205 is provided at the upper corner of the load-bearing plate 201 and the movable plate 202. A telescopic block 206 is provided inside the sleeve block 205. A limiting bolt 207 is provided at the outer end of the sleeve block 205. The telescopic block 206 is fixedly connected to the sleeve block 205 through the limiting bolt 207. The telescopic block 206 is used to perform fine-tuning according to the required support height of the container 1, and the support height is accurately adjusted to ensure the stability and safety of the container 1 during transportation or use. When there is a specific height requirement inside the container 1, the internal items can be properly placed to reduce the risk of tipping due to unstable support.

[0023] See also Figure 1-3 In this embodiment, a sleeve 210 is provided at the corner of the lower end of the container 1, and the telescopic block 206 extends to the inside through the sleeve 210. A fixing screw 208 is provided at the outer end of the telescopic block 206. The telescopic block 206 is threadedly fixed to the sleeve 210 by the fixing screw 208. By using the fixing screw 208 to assist in fixing after supporting the container 1, the container 1 is effectively prevented from accidentally moving when it is vibrated during transportation, ensuring that the container 1 always maintains the correct position and improving the overall stability. The stabilizing component 3 includes a sleeve plate 3 01, adjustment plate 302, pressure plate 303, connecting rod 304, fixing frame 305, cylinder 306, hydraulic rod 307, connecting block 308 and auxiliary rod 309, the sleeve plate 301 is located at the upper end of the sub-plate 209, the sleeve plate 301 is provided with an adjustment plate 302 inside, one end of the adjustment plate 302 is provided with a connecting rod 304, and the outer wall of the connecting rod 304 is provided with a pressure plate 303. After the single wing of the container 1 is closed, the pressure plate 303 is used to press and fix it to avoid accidental opening of the single wing during transportation, thereby ensuring the use and transportation safety of the container 1.

[0024] See also Figure 2-4In this embodiment, the outer wall of the adjustment plate 302 is symmetrically provided with a connecting block 308, a fixing frame 305 is provided below the connecting block 308, a cylinder 306 is provided inside the fixing frame 305, a hydraulic rod 307 is provided between the cylinder 306 and the connecting block 308, and an auxiliary rod 309 is provided on the side of the connecting block 308 away from the hydraulic rod 307. By adopting the cylinder 306 to connect the hydraulic rod 307 to drive the adjustment plate 302 to adjust according to the height of the container 1, the height of the support plate 401 is automatically adjusted, saving a lot of manpower, and realizing the auxiliary fixation of the single wing of the container 1. The auxiliary component 4 includes a support Plate 401 and auxiliary spring 402, the support plate 401 is located at the upper end of the load-bearing plate 201, the support plate 401 is fixed to the lower end of the container 1, and multiple groups of auxiliary springs 402 are provided at the lower end of the support plate 401. The support plate 401 is fixedly connected to the load-bearing plate 201 through the auxiliary spring 402. A damper is provided inside the auxiliary spring 402. The auxiliary spring 402 is used to connect the support plate 401 to assist in supporting the container 1 and provide additional supporting force. At the same time, the weight and shape of the container 1 may be different. The auxiliary spring 402 rebounds to adapt to the requirements of different loads and improve the overall stability.

[0025] When working, first adjust the telescopic block 206 according to the support height of the container 1, and use the telescopic block 206 to fine-tune the height of the container 1 required to support it, and accurately adjust the support height to ensure the stability and safety of the container 1 during transportation or use. When there is a specific height requirement inside the container 1, the internal items can be properly placed to reduce the risk of tipping due to unstable support. After the telescopic block 206 is adjusted, use the tool to dock the limit bolt 207 to fix the telescopic block 206 first, and then adjust the movable plate 202 according to the required length of the container 1. Use the movable plate 202 to adjust its overall length along the inside of the load-bearing plate 201 to adapt to containers of different sizes. The support requirements of the box 1 are increased, and the scope of application of the equipment is increased. When the movable plate 202 is adjusted to the specified length, the limit rod 203 is inserted into the load-bearing plate 201, and the hammering block 204 is repeatedly struck with a tool for tightening. After the load-bearing plate 201 is preparatory adjusted, the container 1 is moved to the upper end of the load-bearing plate 201 by using the equipment, and is mounted on the outer wall of the telescopic block 206 through the bottom sleeve 210 of the container 1. Then, the fixing screw 208 is inserted into the internal thread of the sleeve 210 to connect the telescopic block 206 and the container 1 for fixation to prevent accidental displacement of the container 1, ensure that the container 1 always maintains the correct position, and realize preliminary support and positioning of the container 1.

[0026] When the container 1 is in use, the single wing of the container 1 is opened to place the required items. After the items are assembled, the single wing of the container 1 is opened and closed, and the cylinder 306 is started to connect the hydraulic rod 307 to drive the adjustment plate 302 to adjust to the specified position according to the height of the container 1, so as to automatically adjust the height of the support plate 401, saving a lot of manpower. Secondly, the pressure plate 303 is driven to rotate along the outer wall of the connecting rod 304 to be parallel to the upper end of the container 1. The cylinder 306 is started again to stretch and fit the pressure plate 303 to achieve auxiliary fixation of the single wing of the container 1, so as to avoid accidental opening of the single wing during transportation, and ensure the safety of use and transportation of the container 1. During the use or transportation of the container 1, the auxiliary spring 402 at the upper end of the load-bearing plate 201 is connected to the support plate 401 to assist in supporting the container 1 and provide additional supporting force. At the same time, the weight and shape of the container 1 may be different. The auxiliary spring 402 rebounds to adapt to the requirements of different loads, increases a certain buffering effect, and ensures the stability of the overall structure of the container 1.

[0027] Through the above steps, the movable plate 202 is telescopically adjusted along the inside of the load-bearing plate 201, and the support length is adjusted according to the size of the container 1 to adapt to the support requirements of containers 1 of different sizes. The telescopic block 206 is used to fine-tune the height of the support required by the container 1, and the support height is accurately adjusted to ensure the stability and safety of the container 1 during transportation or use. When there is a specific height requirement inside the container 1, the internal items are properly placed to reduce the risk of tipping due to unstable support. At the same time, the fixing screws 208 are used to assist in fixing the container 1 after supporting it, and effectively prevent the container 1 from accidentally moving when it is vibrated during transportation, ensuring The container 1 always maintains the correct position to improve the overall stability. After the single wing of the container 1 is closed, the pressure plate 303 is used to press and fix it to avoid accidental opening of the single wing during transportation, thereby ensuring the safety of use and transportation of the container 1. The cylinder 306 is connected to the hydraulic rod 307 to drive the adjustment plate 302 to adjust according to the height of the container 1, so as to automatically adjust the height of the support plate 401, save a lot of manpower, and realize auxiliary fixation of the single wing of the container 1. The auxiliary spring 402 is connected to the support plate 401 to assist in supporting the container 1 and provide additional supporting force. At the same time, the weight and shape of the container 1 may vary, and the auxiliary spring 402 rebounds to adapt to the requirements of different loads.

[0028] The embodiments of the present invention are described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various changes can be made within the scope of knowledge possessed by those skilled in the art without departing from the purpose of the present invention.

Claims

1. A single-wing expansion box support structure that is easily adjustable, comprising a container (1); characterized in that: The container (1) further comprises a support assembly (2), a stabilizing assembly (3) and an auxiliary assembly (4); a support assembly (2) for supporting and fixing the entire container body is installed below the container (1); a stabilizing assembly (3) for ensuring auxiliary support after the single wing of the container body is closed is installed at one end of the container (1); an auxiliary assembly (4) for auxiliary support of the container body is installed at the upper end of the support assembly (2); the support assembly (2) comprises a bearing plate (201), a movable plate (202), a limiting rod (203), a hammering block (204), a sleeve block (205), a telescopic block (206), a limiting bolt (207), a fixing screw (208), a sub-plate (209) and a sleeve frame (210); a movable plate (202) is provided at one end of the bearing plate (201); hammering blocks are symmetrically provided on the outer side of the bearing plate (201); (204), a limiting rod (203) is provided between the hammering block (204) and the bearing plate (201), the movable plate (202) is fixedly connected to the bearing plate (201) through the limiting rod (203), and an auxiliary plate (209) is provided at one end of the bearing plate (201) away from the movable plate (202). The stabilizing assembly (3) comprises a sleeve plate (301), an adjusting plate (302), a pressing plate (303), a connecting rod (304), a fixing frame (305), a cylinder (306), a hydraulic rod (307), a connecting block (308) and an auxiliary rod (309), the sleeve plate (301) is located at the upper end of the auxiliary plate (209), an adjusting plate (302) is provided inside the sleeve plate (301), one end of the adjusting plate (302) is provided with a connecting rod (304), and the outer wall of the connecting rod (304) is sleeved with a pressing plate (303).

2. The adjustable single-wing expansion box support structure according to claim 1, characterized in that: A sleeve block (205) is provided at the upper corner of the load-bearing plate (201) and the movable plate (202), a telescopic block (206) is provided inside the sleeve block (205), a limiting bolt (207) is provided at the outer end of the sleeve block (205), and the telescopic block (206) is fixedly connected to the sleeve block (205) through the limiting bolt (207).

3. The adjustable single-wing expansion box support structure according to claim 2, characterized in that: A sleeve (210) is provided at the lower corner of the container (1), and the telescopic block (206) passes through the sleeve (210) and extends to the interior. A fixing screw (208) is provided at the outer end of the telescopic block (206), and the telescopic block (206) is threadedly fixed to the sleeve (210) through the fixing screw (208).

4. The easily adjustable single-wing expansion box support structure according to claim 1, characterized in that: The outer wall of the regulating plate (302) is symmetrically provided with a connecting block (308), a fixing frame (305) is provided below the connecting block (308), a cylinder (306) is provided inside the fixing frame (305), a hydraulic rod (307) is provided between the cylinder (306) and the connecting block (308), and an auxiliary rod (309) is provided on a side of the connecting block (308) away from the hydraulic rod (307).

5. The easily adjustable single-wing expansion box support structure according to claim 1, characterized in that: The auxiliary component (4) includes a support plate (401) and an auxiliary spring (402). The support plate (401) is located at the upper end of the load-bearing plate (201). The support plate (401) is fixed to the lower end of the container (1). A plurality of groups of auxiliary springs (402) are provided at the lower end of the support plate (401). The support plate (401) is fixedly connected to the load-bearing plate (201) through the auxiliary springs (402). A damper is provided inside the auxiliary spring (402).