Wind-resistant port aluminum alloy factory and warehouse integrated movable structure

CN224605731UActive Publication Date: 2026-08-07SUZHOU WT TENT CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SUZHOU WT TENT CO LTD
Filing Date
2025-09-12
Publication Date
2026-08-07

AI Technical Summary

Technical Problem

[0003]然而,现有的港口铝合金厂房及仓储一体化可移动式结构在实际应用中仍存在一些问题,传统结构在安装过程中,缺乏有效手段对可移动结构的滚轮进行预先锁止,在移动到指定位置后,无法迅速稳定结构,容易出现意外滑动或晃动,导致安装过程反复调整位置,耗费大量时间和人力,操作效率低下

Benefits of technology

该抗风型港口铝合金厂房及仓储一体化可移动式结构,在安装过程中,通过驱动组件带动螺杆旋转,能预先对可移动结构的滚轮进行锁止,具体而言,螺杆带动与之螺纹连接的Z型杆,在导杆的导向作用下,使Z型杆底端的锁杆迅速横向插入滚轮内侧轮毂,实现滚轮滚动的锁止,防止结构在安装过程中意外移动,与此同时,在螺杆旋转时,与之通过锥齿轮传动的另一螺杆同步转动,带动升降块沿着螺杆直线运动,使插杆插入固定架的竖槽,并且通过活动连轴带动推块,使另一插杆插入固定架的横槽,从而实现对结构整体安装的精准定位,整体操作效率高;且架体下部的螺栓组接片与固定架贴合并用螺栓旋紧固定,多道稳固措施相结合,极大地增强了结构的整体稳定性,特别是在港口这种风力较大的环境中,能够有效抵抗强风,保障厂房及仓储结构的安全可靠运行。

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Abstract

This utility model discloses a wind-resistant port aluminum alloy factory and warehouse integrated mobile structure, relating to the field of port warehousing technology. It includes a frame with multiple sets of rollers fixed to its lower end, and further includes: a locking assembly mounted on the front and rear roller mounting blocks of the frame; a positioning assembly mounted on one end of the locking assembly; and a driving assembly mounted on the upper part of the roller mounting blocks. When the driving assembly drives a screw connected to its side to rotate, a locking rod connected to the end of the screw horizontally inserts into the inner hub of the roller, locking and limiting the roller's rolling. Simultaneously, a screw connected to the side of the driving assembly rotates, and two insert rods mounted on the screw rotate into the vertical and horizontal slots on the fixed frame, respectively. This solves the problem that traditional structures lack effective means to pre-lock the rollers during installation, making it difficult to quickly stabilize the structure after moving to a designated position, easily leading to accidental sliding or shaking.
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Description

Technical Field

[0001] This utility model relates to the field of port warehousing technology, specifically a wind-resistant port aluminum alloy plant and warehousing integrated mobile structure. Background Technology

[0002] In the modern port logistics industry, factory buildings and warehousing facilities are the key foundation for ensuring the efficient flow and storage of goods. Aluminum alloys, due to their lightweight and corrosion-resistant properties, are widely used in port construction, greatly satisfying the port facilities' demands for durability and ease of maintenance. Meanwhile, with the continuous expansion and diversification of port operations, mobile factory and warehousing facilities, due to their high flexibility and adaptability to different operational layouts, are gradually becoming an important direction for industry development. This integrated, mobile structure can quickly change its location and layout according to changes in port cargo throughput, adjustments in cargo types, and optimization of terminal operation processes, effectively improving the utilization efficiency of port resources and reducing operating costs.

[0003] However, existing port aluminum alloy plant and warehouse integrated mobile structures still have some problems in practical applications. During the installation process, traditional structures lack effective means to pre-lock the rollers of the mobile structure. After moving to the designated position, the structure cannot be stabilized quickly and is prone to accidental sliding or shaking, resulting in repeated position adjustments during the installation process, which consumes a lot of time and manpower and has low operating efficiency. Utility Model Content

[0004] The purpose of this utility model is to provide a wind-resistant port aluminum alloy factory and warehouse integrated mobile structure to solve the above-mentioned shortcomings in the prior art.

[0005] To achieve the above objectives, this utility model provides the following technical solution: an integrated mobile storage structure, including a frame, with multiple sets of rollers fixed to the lower end of the frame, and further comprising: The locking assembly is mounted on the front and rear roller mounting blocks of the frame. A positioning component is located at one end of the locking component; The drive assembly is located on the upper part of the roller mounting block. When the drive assembly drives the screw connected to its side to rotate, the locking rod connected to the end of the screw is inserted laterally into the inner hub of the roller to lock and limit the rolling of the roller. At the same time, the screw connected to the side of the drive assembly rotates, and the insertion rods mounted on the screws are respectively inserted into the vertical slot and the horizontal slot on the fixing frame.

[0006] As a further description of the above technical solution: the locking assembly also includes a Z-shaped rod that is threadedly connected to the screw, the bottom end of the Z-shaped rod is fixed to the locking rod, and a guide rod is fixed to the rear of the roller mounting block, passing through the Z-shaped rod and slidably connected thereto.

[0007] As a further description of the above technical solution: the positioning component also includes a lifting block that is threadedly connected to the screw two, and the side end of the lifting block is connected to the insertion rod one.

[0008] As a further description of the above technical solution: the lower end of the lifting block is connected to a push block via a movable coupling, the lower end of the roller mounting block is fixed with an L-shaped plate, and a guide rod two fixed to the L-shaped plate is slidably connected through the push block, and the side end of the push block is connected to the insertion rod two.

[0009] As a further description of the above technical solution: the drive assembly includes a protective shell fixed to the upper end of the roller mounting block, and both screw one and screw two extend into the interior of the protective shell and are rotatably connected thereto.

[0010] As a further description of the above technical solution: a bevel gear is fixed to the inner end of the screw one located inside the protective shell, and a bevel gear is fixed to the inner end of the screw two located inside the protective shell. The bevel gear one and the bevel gear two mesh with each other for transmission.

[0011] As a further description of the above technical solution: the side of the fixing frame is integrally formed with a threaded block that connects to the pre-embedded bolts in the ground, and the lower part of the frame is provided with multiple sets of bolt assembly plates, and the bolt assembly plates are attached to the fixing frame and tightened with bolts.

[0012] A wind-resistant port aluminum alloy factory building, including an integrated mobile structure for warehousing.

[0013] In the above technical solution, the present invention has the following beneficial effects: This wind-resistant, port-integrated, mobile aluminum alloy factory and warehouse structure utilizes a drive assembly to rotate a screw during installation. This screw pre-locks the rollers of the mobile structure. Specifically, the screw drives a threaded Z-shaped rod, which, guided by a guide rod, quickly inserts a locking rod at the bottom of the Z-shaped rod laterally into the inner hub of the roller, locking the roller and preventing accidental movement during installation. Simultaneously, as the screw rotates, another screw, driven by a bevel gear, rotates synchronously, causing a lifting block to move linearly along the screw. This inserts a rod into the vertical slot of the fixed frame, and a movable coupling drives a push block to insert another rod into the horizontal slot of the fixed frame. This achieves precise positioning of the overall structure during installation, resulting in high overall operational efficiency. Furthermore, the bolted joints at the bottom of the frame are attached to the fixed frame and tightened with bolts. This combination of multiple stabilizing measures greatly enhances the overall stability of the structure, effectively resisting strong winds, especially in windy environments like ports, ensuring the safe and reliable operation of the factory and warehouse structure. Attached Figure Description

[0014] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this utility model. For those skilled in the art, other drawings can be obtained based on these drawings.

[0015] Figure 1 A three-dimensional structural schematic diagram provided for an embodiment of this utility model; Figure 2 A first-view schematic diagram of the locking and positioning components provided in an embodiment of this utility model; Figure 3 A second-view schematic diagram of the locking and positioning components provided in an embodiment of this utility model; Figure 4 A schematic diagram of the transmission structure of the locking and positioning component provided in an embodiment of this utility model; Figure 5 This is a schematic diagram of the structure of the fixing frame provided in an embodiment of the present utility model.

[0016] Explanation of reference numerals in the attached figures: Frame 1; Roller 2; Locking assembly 3; Locking rod 31; Z-shaped rod 32; Guide rod 1 33; Positioning assembly 4; Insert rod 1 41; Insert rod 2 42; Lifting block 43; Movable coupling shaft 44; Push block 45; L-shaped plate 46; Guide rod 2 47; Drive assembly 5; Protective shell 51; Bevel gear 1 52; Bevel gear 2 53; Screw 1 6; Screw 2 7; Fixing bracket 8; Threaded block 9. Detailed Implementation

[0017] To enable those skilled in the art to better understand the technical solution of this utility model, the present utility model will be further described in detail below with reference to the accompanying drawings.

[0018] Please see Figures 1-5 This utility model provides a warehousing integrated mobile structure technical solution: including a frame 1, with multiple sets of rollers 2 fixed at the lower end of the frame 1, and further including: a locking component 3, which is disposed on the front and rear end roller 2 mounting blocks of the frame 1; a positioning component 4, which is disposed at one end of the locking component 3; and a driving component 5, which is disposed on the upper part of the roller 2 mounting block. When the driving component 5 drives the screw 6 connected to its side to rotate, the locking rod 31 connected to the end of the screw 6 is inserted laterally into the inner hub of the roller 2 to lock and limit the rolling of the roller 2. At the same time, the screw 7 connected to the side of the driving component 5 rotates, and the insertion rod 41 and insertion rod 42 mounted on the screw 7 are respectively inserted into the vertical groove and horizontal groove on the fixed frame 8.

[0019] In another embodiment of the present invention, preferably, the locking assembly 3 further includes a Z-shaped rod 32 threadedly connected to the screw 6. The bottom end of the Z-shaped rod 32 is fixed to the locking rod 31, and a guide rod 33 is fixed to the rear of the roller 2 mounting block, passing through the Z-shaped rod 32 and slidably connected thereto. When the driving assembly 5 drives the screw 6 to rotate, the Z-shaped rod 32 threadedly connected to the screw 6 can only move linearly along the guide rod 33 due to the guiding effect of the guide rod 33, thereby driving the locking rod 31 fixed at the bottom end to be inserted laterally into the inner hub of the roller 2, thereby locking the roller 2 from rolling.

[0020] In another embodiment of this utility model, preferably, the positioning component 4 further includes a lifting block 43 threadedly connected to the screw 7. The side end of the lifting block 43 is connected to the insertion rod 41. The lower end of the lifting block 43 is connected to a push block 45 via a movable coupling 44. The lower end of the roller 2 mounting block is fixed with an L-shaped plate 46, and a guide rod 47 fixed to the L-shaped plate 46 is slidably connected through the push block 45. The side end of the push block 45 is connected to the insertion rod 42. When the driving component 5 drives the screw 7 to rotate, the lifting block 43 threadedly connected to the screw 7 moves linearly along the screw 7. The insertion rod 41 connected to the side end of the lifting block 43 moves accordingly and inserts into the vertical slot on the fixing frame 8. At the same time, the lower end of the lifting block 43 drives the push block 45 via the movable coupling 44. The push block 45 slides under the guidance of the guide rod 47 fixed to the L-shaped plate 46, thereby pushing the insertion rod 42 connected to the side end into the horizontal slot on the fixing frame 8 to complete the positioning.

[0021] In another embodiment of the present invention, preferably, the driving assembly 5 includes a protective shell 51 fixed to the upper end of the roller 2 mounting block, and both screw 6 and screw 7 extend into the protective shell 51 and are rotatably connected thereto. A bevel gear 52 is fixed to the inner end of screw 6 located in the protective shell 51, and a bevel gear 53 is fixed to the inner end of screw 7 located in the protective shell 51. The bevel gear 52 and the bevel gear 53 mesh with each other for transmission. When the driving assembly 5 is working, the protective shell 51 protects the screw 6 and screw 7 inside. When an external force drives screw 6 to rotate, the bevel gear 52 located at the inner end of screw 6 in the protective shell 51 rotates accordingly. Since the bevel gear 52 and the bevel gear 53 mesh with each other for transmission, they drive screw 7 to rotate, providing power for the operation of the locking assembly 3 and the positioning assembly 4.

[0022] In another embodiment of this utility model, preferably, the side of the fixing frame 8 is integrally formed with a threaded block 9 that connects to the pre-embedded bolts in the ground, and the lower part of the frame body 1 is provided with multiple sets of bolt assembly plates, and the bolt assembly plates are attached to the fixing frame 8 and tightened with bolts; by connecting and fixing the fixing frame 8 to the pre-embedded bolts in the ground through the threaded block 9 integrally formed on the side, and then moving the frame body 1 to a suitable position so that the bolt assembly plates at the lower part of the frame body 1 are attached to the fixing frame 8, and then tightening with bolts, the connection stability between the frame body 1 and the fixing frame 8 is further enhanced.

[0023] A wind-resistant port aluminum alloy factory building includes an integrated mobile structure for storage, which allows the factory building to be easily moved during use.

[0024] During operation, the fixed frame 8 is connected to the pre-embedded bolts in the ground via the threaded block 9 integrally formed on the side. The staff can push it to the installation position with the help of the rollers 2 at the bottom of the frame 1. One end of the screw 6 connected to the bevel gear 52 extends out of the protective shell 51 and has a screw hole on the side wall. By inserting an electric screwdriver into the screw hole and rotating the screw 6 as a whole, the drive assembly 5 starts to work. Since the screw 6 is threadedly connected to the Z-shaped rod 32 and the bottom end of the Z-shaped rod 32 is fixed to the locking rod 31, the rear part of the roller 2 mounting block is fixed with a guide rod 33 that passes through the Z-shaped rod 32 and is slidably connected to it. Under the threaded transmission and the guiding action of the guide rod 33, the Z-shaped rod 32 drives the locking rod 31 to be inserted laterally into the inner hub of the roller 2, thereby locking and limiting the rolling of the roller 2. While screw 6 is rotating, screw 7, which is driven by bevel gear 52 and bevel gear 53, also begins to rotate. Screw 7 is threadedly connected to lifting block 43. Under the action of threaded transmission, lifting block 43 moves linearly along screw 7. The side end of lifting block 43 is connected to insertion rod 41. Therefore, insertion rod 41 is inserted into the vertical groove on the fixed frame 8 as lifting block 43 moves. Meanwhile, the lower end of the lifting block 43 is connected to the push block 45 through the movable coupling 44. The lower end of the roller 2 mounting block is fixed with an L-shaped plate 46. The push block 45 is slidably connected with a guide rod 47 fixed to the L-shaped plate 46. The side end of the push block 45 is connected to the insertion rod 42. As the lifting block 43 moves, the movable coupling 44 drives the push block 45 to slide along the guide rod 47. The push block 45 pushes the insertion rod 42 into the horizontal groove on the fixed frame 8. Through the above operation, the positioning of the entire movable structure is achieved. At this time, the multiple sets of bolt joint plates set at the lower part of the frame 1 are aligned and fitted with the fixed frame 8 one by one. Multiple sets of bolts are screwed in and fixed in sequence to ensure the overall stability and wind resistance of the structure.

[0025] The foregoing description only illustrates certain exemplary embodiments of the present invention. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the above drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.

Claims

1. A mobile integrated storage structure, comprising a frame (1), wherein multiple sets of rollers (2) are fixed to the lower end of the frame (1), characterized in that, Also includes: Locking component (3) is mounted on the front and rear end roller (2) mounting blocks of the frame (1); The positioning component (4) is located at one end of the locking component (3); The drive assembly (5) is located on the upper part of the roller (2) mounting block. When the drive assembly (5) drives the screw 1 (6) connected to its side to rotate, the locking rod (31) connected to the end of the screw 1 (6) is inserted laterally into the inner hub of the roller (2) to lock and limit the rolling of the roller (2). At the same time, the screw 2 (7) connected to the side of the drive assembly (5) rotates, and the insertion rod 1 (41) and insertion rod 2 (42) mounted on the screw 2 (7) are respectively inserted into the vertical groove and horizontal groove on the fixing frame (8).

2. The integrated mobile warehousing structure according to claim 1, characterized in that, The locking assembly (3) also includes a Z-shaped rod (32) that is threadedly connected to the screw (6). The bottom end of the Z-shaped rod (32) is fixed to the locking rod (31), and a guide rod (33) that passes through the Z-shaped rod (32) and is slidably connected to it is fixed at the rear of the roller (2) mounting block.

3. The integrated mobile warehousing structure according to claim 1, characterized in that, The positioning component (4) also includes a lifting block (43) that is threadedly connected to the screw (7), and the side end of the lifting block (43) is connected to the insertion rod (41).

4. The integrated mobile warehousing structure according to claim 3, characterized in that, The lower end of the lifting block (43) is connected to a push block (45) via a movable coupling (44). The lower end of the roller (2) mounting block is fixed with an L-shaped plate (46), and a guide rod (47) fixed to the L-shaped plate (46) is slidably connected through the push block (45). The side end of the push block (45) is connected to the insertion rod (42).

5. The integrated mobile warehousing structure according to claim 1, characterized in that, The drive assembly (5) includes a protective shell (51) fixed to the upper end of the roller (2) mounting block, and screw one (6) and screw two (7) both extend into the protective shell (51) and are rotatably connected thereto.

6. The integrated mobile warehousing structure according to claim 5, characterized in that, The screw one (6) is fixed with bevel gear one (52) at the inner end of the protective shell (51), and the screw two (7) is fixed with bevel gear two (53) at the inner end of the protective shell (51). Bevel gear one (52) and bevel gear two (53) mesh with each other for transmission.

7. The integrated mobile warehousing structure according to claim 1, characterized in that, The fixed frame (8) has a threaded block (9) integrally formed on the side to connect with the pre-embedded bolts on the ground. The lower part of the frame (1) is provided with multiple sets of bolt assembly plates, and the bolt assembly plates are attached to the fixed frame (8) and tightened with bolts.

8. A wind-resistant port aluminum alloy factory building, characterized in that, Includes the integrated mobile warehousing structure as described in any one of claims 1 to 7.