A prefabricated aluminum alloy warehouse industrial tent for port container terminal logistics.

CN224621220UActive Publication Date: 2026-08-11SUZHOU WT TENT CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-05
Publication Date
2026-08-11

AI Technical Summary

Technical Problem

[0004]本实用新型的目的是提供一种港口集装箱码头物流用铝合金装配式仓储工业篷房,以解决现有技术中的上述不足之处

Benefits of technology

1、在搭建过程中,组装人员仅需先完成框架主体搭建、安置及篷布初步覆盖,之后通过操作驱动组件,转动螺丝槽块就能轻松控制伸展架的升高与顶架的翻转,自动完成篷布撑起形成完整空间结构的过程,无需人工后期上盖篷布,这种自动化的搭建方式极大地简化了搭建流程,减少了人工操作环节,降低了人力成本,同时提高了搭建效率,能够在更短的时间内完成篷房搭建投入使用;且在实际使用后若需要拆除篷房,仅需优先拆卸顶架,再反向转动螺丝槽块,各部件就能按相反动作顺序复位,伸展架降低,篷布回落至初始状态,整个拆卸过程快速且有序,方便人员拆解篷布。

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Abstract

This utility model discloses an aluminum alloy prefabricated warehousing industrial tent for port container terminal logistics, relating to the field of logistics and warehousing technology. It includes a frame body covered with a tarpaulin, and further includes: multiple sets of extension frames located at the corners of the frame body; a drive assembly located on the side of the extension frames; and a lifting rod, including a rod sleeve and a sliding rod. When a screw on one side of the rod sleeve is rotated under force, the threaded plate connected to the lower part of the screw engages to drive the connected sliding rod to slide down against the inner wall of the rod sleeve. Assembly personnel only need to complete the frame body construction, placement, and initial tarpaulin covering. Then, by operating the drive assembly and rotating the screw slot, they can easily control the raising of the extension frames and the flipping of the top frame, automatically completing the process of the tarpaulin being raised to form a complete spatial structure. No manual tarpaulin covering is required later. This automated construction method greatly simplifies the construction process and reduces manual operation.
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Description

Technical Field

[0001] This utility model relates to the field of logistics and warehousing technology, specifically to an aluminum alloy prefabricated warehousing industrial tent for port container terminal logistics. Background Technology

[0002] In the field of port container terminal logistics, warehousing facilities play a crucial role in the storage, transshipment, and management of goods. Aluminum alloy prefabricated industrial storage tents, as a modern warehousing solution, have attracted widespread attention due to their numerous advantages. The lightweight, high strength, and corrosion resistance of aluminum alloy materials allow the tents to maintain structural stability while better adapting to the complex environmental conditions of ports. The prefabricated design concept enables rapid assembly and disassembly of the tents, significantly shortening the construction cycle and meeting the needs of rapid development and flexible layout in port logistics operations. These tents provide safe and reliable storage space for containerized cargo, effectively improving logistics efficiency, reducing operating costs, and playing a positive role in enhancing the overall logistics service level of ports.

[0003] However, when traditional prefabricated warehouse industrial tents are erected, the process of covering the tent with tarpaulin often requires manual operation with the help of external tools. Workers need to perform meticulous covering and securing work at a high position, which is not only difficult to operate, but also consumes a lot of time and manpower, resulting in increased labor costs, low construction efficiency, and difficulty in quickly completing the construction and putting it into use in the port. Utility Model Content

[0004] The purpose of this utility model is to provide an aluminum alloy prefabricated warehouse industrial tent for port container terminal logistics, so as 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 aluminum alloy prefabricated warehousing industrial tent for port container terminal logistics, comprising a frame body covered with a tarpaulin, and further comprising: Multiple sets of extension frames are installed at the corners of the main frame; The drive assembly is located on the side of the extension frame; The lifting rod includes a rod sleeve and a sliding rod. When the screw on one side of the rod sleeve is rotated under force, the threaded plate connected to the lower part of the screw drives the sliding rod connected to it to slide down against the inner wall of the rod sleeve. At the same time, the worm gear fixed at the top of the screw rotates synchronously and drives the worm wheel set at the top of the rod sleeve. The top frame connected to the worm wheel flips accordingly. The tops of the two sets of extension frames in opposite positions engage with each other and are fixed with bolts.

[0006] As a further description of the above technical solution: a housing is fixed to one side of the outer wall of the sleeve, and a screw passes through the housing and is rotatably connected to it.

[0007] As a further description of the above technical solution: the housing is provided with a bevel gear 1 and a bevel gear 2 that mesh with each other, wherein the bevel gear 1 is connected to the screw, and the axle connected to the bevel gear 2 extends to the outside of the housing and is fixed with a screw groove block.

[0008] As a further description of the above technical solution: a limiting protrusion is provided at the bottom of the screw. When the threaded plate abuts against the limiting protrusion, the lifting rod extends to its limit length.

[0009] As a further description of the above technical solution: a second housing is fixed to the top of the sleeve, and the worm and worm wheel are rotatably installed inside the second housing, with the central axis of the worm wheel extending to the outside of the second housing and fixed to the top frame.

[0010] As a further description of the above technical solution: the extension frames are assembled with mounting rods by bolts, and the mounting rods are composed of multiple sets of modular rods connected by bolts.

[0011] In the above technical solution, the aluminum alloy prefabricated warehouse industrial tent for port container terminal logistics provided by this utility model has the following beneficial effects: 1. During the setup process, assemblers only need to complete the main frame construction, placement, and initial covering of the tarpaulin. Then, by operating the drive components and rotating the screw slots, they can easily control the raising of the extension frame and the flipping of the top frame, automatically completing the process of the tarpaulin being erected to form a complete spatial structure. There is no need for manual tarpaulin covering afterward. This automated setup method greatly simplifies the setup process, reduces manual operation, lowers labor costs, and improves setup efficiency, enabling the tent to be set up and put into use in a shorter time. Furthermore, if the tent needs to be dismantled after actual use, only the top frame needs to be dismantled first, and then the screw slots need to be rotated in the opposite direction. The components will then reset in the reverse order, the extension frame will lower, and the tarpaulin will fall back to its initial state. The entire dismantling process is quick and orderly, making it convenient for personnel to dismantle the tarpaulin. Attached Figure Description

[0012] 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.

[0013] Figure 1 A schematic diagram of the overall structure provided for an embodiment of this utility model; Figure 2 A schematic diagram of the main frame structure provided in an embodiment of this utility model; Figure 3 A schematic diagram of the extension frame structure provided in an embodiment of this utility model; Figure 4 This is a schematic diagram of the extension frame transmission structure provided in an embodiment of the present utility model.

[0014] Explanation of reference numerals in the attached figures: Frame body 1; tarpaulin 2; extension frame 3; lifting rod 31; rod sleeve 311; slide rod 312; top frame 32; drive assembly 4; screw 41; threaded plate 42; worm gear 43; worm wheel 44; housing one 45; bevel gear one 46; bevel gear two 47; screw slot block 48; housing two 49; assembly rod 5; module rod 6. Detailed Implementation

[0015] 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.

[0016] Please see Figures 1-4 This utility model provides a technical solution for an aluminum alloy prefabricated warehousing industrial tent for port container terminal logistics: it includes a frame body 1, with a tarpaulin 2 covering the outside of the frame body 1, and also includes: multiple sets of extension frames 3, set at the corners of the frame body 1; a drive assembly 4, set on the side of the extension frame 3; and a lifting rod 31, including a rod sleeve 311 and a sliding rod 312. When the screw 41 on one side of the rod sleeve 311 is rotated under force, the threaded plate 42 connected to the lower part of the screw 41 cooperates to drive the sliding rod 312 connected to it to slide down against the inner wall of the rod sleeve 311. At the same time, the worm gear 43 fixed at the top of the screw 41 rotates synchronously and drives the worm gear 43 set at the top of the rod sleeve 311. The top frame 32 connected to the wheel 44 and the worm gear 44 flips accordingly, and the tops of the two sets of extension frames 3 in opposite positions are joined together and fixed with bolts. At the installation site, the frame body 1 is first built, and multiple sets of extension frames 3 are installed at the corners of the frame body 1. Then, when the tent needs to be unfolded, the drive screw 41 is rotated, the screw 41 drives the threaded plate 42 to move, and then the slide rod 312 slides down along the inner wall of the sleeve 311 to realize the raising action of the extension frame 3. At the same time, the worm gear 43 at the top of the screw 41 drives the worm gear 44 to rotate, so that the top frame 32 flips, and the tops of the two sets of extension frames 3 in opposite positions come closer to each other and are fixed with bolts to provide a support structure for the tent 2.

[0017] In another embodiment of this utility model, preferably, a housing 45 is fixed to one outer wall of the sleeve 311. The screw 41 passes through the housing 45 and is rotatably connected to it. Inside the housing 45, there are bevel gears 46 and 47 that mesh with each other. The bevel gear 46 is connected to the screw 41. The axle connected to the bevel gear 47 extends to the outside of the housing 45 and is fixed with a screw slot block 48. When the screw slot block 48 is driven by an external electric screwdriver, the screw slot block 48 drives the axle connected to it to rotate. The axle drives the bevel gear 47 to rotate. Since the bevel gears 46 and 47 mesh with each other, the rotation of the bevel gear 46 drives the screw 41 to rotate inside the housing 45, providing a power source for the movement of the lifting rod 31.

[0018] In another embodiment of the present invention, preferably, a limiting protrusion is provided at the bottom of the screw 41. When the threaded plate 42 abuts against the limiting protrusion, the lifting rod 31 extends to its maximum length. During the process of the screw 41 rotating and driving the threaded plate 42 to move, when the threaded plate 42 moves to contact the limiting protrusion, it indicates that the lifting rod 31 has been extended to its maximum extent, thus preventing the slide rod 312 from continuing to slide down and causing the structure to detach.

[0019] In another embodiment of the present invention, preferably, a housing 49 is fixed to the top of the sleeve 311, and the worm 43 and the worm wheel 44 are rotatably installed inside the housing 49. The central axis of the worm wheel 44 extends to the outside of the housing 49 and is fixed to the top frame 32. When the screw 41 rotates, the worm 43 at the top rotates synchronously inside the housing 49. The worm 43 and the worm wheel 44 mesh with each other, thereby driving the worm wheel 44 to rotate. The worm wheel 44 drives the external top frame 32 to rotate through the central axis.

[0020] In another embodiment of this utility model, preferably, the extension frames 3 are assembled with assembly rods 5 by bolts. The assembly rods 5 are composed of multiple sets of modular rods 6 connected by bolts. During the installation process, the multiple sets of modular rods 6 are connected by bolts to form the assembly rods 5, and then the assembly rods 5 are installed between the extension frames 3 by bolts, thereby enhancing the stability and integrity of the entire structure.

[0021] During the work, the assembly personnel first set up the main frame 1 and placed it in the predetermined position. Then, the tarpaulin 2 was initially covered on the main frame 1. At this time, the tarpaulin 2 was in a flat state and had not yet been fully supported to form an effective spatial structure. Meanwhile, the assembly rods 5, which are composed of multiple sets of modular rods 6 connected by bolts, were assembled between the extension frames 3 by bolts, so that the entire structure was initially connected into a whole. At this time, the multiple sets of extension frames 3 were respectively set at the corners of the main frame 1. When the tarpaulin needs to be erected to form a complete tent space, the drive assembly 4 is operated, specifically by using an external electric screwdriver to drive the screw slot block 48, which in turn drives the axle connected to the screw slot block 48 to rotate. The bevel gear 47 fixed on the axle rotates accordingly. Since the bevel gear 46 and the bevel gear 47 mesh with each other, the bevel gear 46 begins to rotate, which in turn drives the screw 41 to rotate relative to the housing 45. The housing 45 is fixed to the outer wall of one side of the sleeve 311, which can provide rotational support for the screw 41. As the screw 41 rotates, the threaded plate 42 connected to the lower part of the screw 41, under the action of the screw 41 rotation, interacts with the screw 41. The relative displacement in the vertical direction, when the threaded plate 42 moves downward relative to the screw 41, causes the slide rod 312 to move downward relative to the sleeve 311 at the same time. However, since the bottom of the slide rod 312 is supported on the ground and cannot move downward, the effect is that the distance between the sleeve 311 and the ground increases, that is, the sleeve 311 gradually rises, which in turn causes the length of the lifting rod 31 to gradually increase and the top of the extension frame 3 to gradually rise. The bottom of the screw 41 is provided with a limiting protrusion. When the threaded plate 42 abuts against the limiting protrusion, when the lifting rod 31 extends to its limit length, it can prevent the slide rod 312 from sliding down excessively to ensure the safety and stability of the structure. As the screw 41 rotates, the worm 43 fixed at its top rotates synchronously. The worm 43 and the worm wheel 44 are both rotatably installed inside the housing 49 fixed at the top of the sleeve 311 and mesh with each other. As the worm 43 rotates, the worm wheel 44 begins to rotate. Since the central axis of the worm wheel 44 extends to the outside of the housing 49 and is fixed to the top frame 32, the rotation of the worm wheel 44 drives the top frame 32 to flip. The two sets of extension frames 3 in opposite positions continuously flip and approach each other through the above operation, and finally join together and are fixed to the top with bolts to form a triangular structure. As the extension frame 3 gradually rises and the top triangular structure is formed, the tarpaulin 2, which was originally laid flat on the frame body 1, is gradually lifted up and stretched to form a complete tent space structure. Through the above operations, there is no need for manual later covering of the tarpaulin, thus completing the entire process from initial construction to complete structural formation of an aluminum alloy prefabricated warehouse industrial tent for port container terminal logistics. In actual use, if the tent needs to be dismantled, only the top frame 32 needs to be dismantled first, and the components can be reset in the reverse order by driving the reverse screw slot block 48 with an external electric screwdriver. The screw 41 reverses and drives the threaded plate 42 to move upward. At the same time, the slide bar 312 retracts and the worm gear 43 drives the worm wheel 44 to reverse so that the top frame 32 returns to its original position. The extension frame 3 lowers the tent cloth back to its initial state, making it convenient for personnel to dismantle the tent cloth 2.

[0022] 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. An aluminum alloy prefabricated warehousing industrial tent for port container terminal logistics, comprising a frame body (1), wherein the frame body (1) is covered with a tarpaulin (2), characterized in that, Also includes: Multiple sets of extension frames (3) are set at the corners of the main frame (1); The drive assembly (4) is located on the side of the extension frame (3); The lifting rod (31) includes a rod sleeve (311) and a sliding rod (312). When the screw (41) on one side of the rod sleeve (311) is rotated under force, the threaded plate (42) connected to the lower part of the screw (41) cooperates to drive the sliding rod (312) connected to it to slide down against the inner wall of the rod sleeve (311). At the same time, the worm (43) fixed at the top of the screw (41) rotates synchronously and drives the worm wheel (44) set at the top of the rod sleeve (311). The top frame (32) connected to the worm wheel (44) flips accordingly. The tops of the two sets of extension frames (3) in opposite positions are engaged with each other and fixed with bolts.

2. The aluminum alloy prefabricated warehousing and industrial tent for port container terminal logistics as described in claim 1, characterized in that, The outer wall of one side of the sleeve (311) is fixed with a housing (45), and the screw (41) passes through the housing (45) and is rotatably connected to it.

3. The aluminum alloy prefabricated warehousing and industrial tent for port container terminal logistics as described in claim 2, characterized in that, Inside the housing (45) are a bevel gear (46) and a bevel gear (47) that mesh with each other. The bevel gear (46) is connected to the screw (41), and the axle connected to the bevel gear (47) extends to the outside of the housing (45) and is fixed with a screw groove block (48).

4. The aluminum alloy prefabricated warehousing and industrial tent for port container terminal logistics as described in claim 3, characterized in that, The bottom of the screw (41) is provided with a limiting protrusion. When the threaded plate (42) abuts against the limiting protrusion, the lifting rod (31) extends to its limit length.

5. The aluminum alloy prefabricated warehousing and industrial tent for port container terminal logistics as described in claim 2, characterized in that, The top of the sleeve (311) is fixed with a housing (49). The worm (43) and the worm wheel (44) are rotatably installed inside the housing (49), and the central axis of the worm wheel (44) extends to the outside of the housing (49) and is fixed to the top frame (32).

6. The aluminum alloy prefabricated warehousing and industrial tent for port container terminal logistics as described in claim 1, characterized in that, The extension frames (3) are assembled with mounting rods (5) by bolts, and the mounting rods (5) are composed of multiple sets of modular rods (6) connected by bolts.