Modular logistics storage equipment for low-altitude logistics

CN122561422APending Publication Date: 2026-08-14SICHUAN YUXIANG WISDOM LOGISTICS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-04-03
Publication Date
2026-08-14

AI Technical Summary

Technical Problem

当风速较大时,设备易受侧向力影响而产生晃动或偏移,现有设备缺乏对风向风速的实时感知与主动应对机制,无法根据环境变化及时强化侧面支撑,可能导致拼接结构松动、整体稳定性下降,甚至引发安全隐患

Benefits of technology

1、本发明借助倾角传感器对设备倾斜状态进行实时监测,一旦检测到倾斜,即触发第一电动推杆主动调节底板水平度。球头轴承具备多角度自适应能力,配合缓冲组件的减振作用,可有效化解传统设备在复杂地形下放置不稳的难题。此设计既能防止货物因设备倾斜而晃动倾倒,又能降低空投或放置过程中产生的冲击对货物造成的损伤,有力保障了货物存储的安全性以及与无人机对接的可靠性。

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Abstract

This invention discloses a modular logistics storage device for low-altitude logistics, comprising a base plate, a first electric push rod, two first side plates, and two second side plates. An angle sensor is mounted on the base plate. A ball bearing is connected to the output end of the first electric push rod. A buffer assembly is provided between the ball bearing and the base plate. First connecting plates are provided on the two first and two second side plates. A locking mechanism for engaging the two first side plates is mounted on the base plate, and the two first side plates engage between the second side plates. A cover is connected to one of the first side plates via a rotating assembly. A wind direction and speed meter is mounted on the cover. Support assemblies for lateral support are installed on both first and second side plates. This invention uses the angle sensor to monitor the tilt state of the device in real time, triggering the first electric push rod to actively adjust the levelness of the base plate, combined with the multi-angle adaptive capability of the ball bearing and the vibration reduction effect of the buffer assembly.
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Description

Technical Field

[0001] This invention relates to the field of logistics equipment technology, specifically to a modular logistics storage device for low-altitude logistics. Background Technology

[0002] With the rapid development of low-altitude logistics technology, drones and other aerial transport vehicles are increasingly used in scenarios such as material delivery and instant distribution. Ground storage equipment, as a key node connecting air transport and last-mile delivery, directly impacts the efficiency and stability of the logistics chain. However, existing logistics storage equipment still faces many unresolved issues when adapted to low-altitude logistics scenarios: In terms of terrain adaptability, traditional storage equipment often has a fixed support structure, making it difficult to cope with uneven ground environments such as mountains, hills, and complex outdoor sites. When the equipment is placed on an inclined surface, the lack of an effective automatic leveling mechanism can easily cause the internal cargo to shake or tip over, and even affect the docking accuracy of drones. At the same time, the impact vibrations generated during airdrop or placement may also damage the equipment structure or the internal cargo due to the lack of cushioning design.

[0003] Regarding modular assembly and structural stability, existing modular equipment relies heavily on manual operation for assembly, resulting in insufficient connection strength and low disassembly efficiency, making it difficult to quickly and flexibly adjust storage capacity according to cargo volume. When the assembled structure is subjected to external forces, parts such as side panels are prone to deformation due to a lack of targeted support, affecting the equipment's sealing and safety. This structural stability issue is particularly prominent in multi-unit assembly scenarios.

[0004] In terms of environmental adaptability, outdoor low-altitude logistics scenarios often encounter interference from meteorological factors such as wind. When the wind speed is high, the equipment is easily affected by lateral forces, causing it to sway or shift. Existing equipment lacks real-time perception and proactive response mechanisms for wind direction and speed, and cannot promptly strengthen lateral support according to environmental changes. This may lead to loosening of the splicing structure, decreased overall stability, and even safety hazards. Therefore, we need to propose a splicable logistics storage device for low-altitude logistics. Summary of the Invention

[0005] The purpose of this invention is to provide a modular logistics storage device for low-altitude logistics, in order to solve the problems mentioned in the background art.

[0006] To achieve the above objectives, the present invention provides the following technical solution: Modular logistics storage equipment for low-altitude logistics includes: A base plate and a first electric push rod, wherein an angle sensor is installed on the base plate, and a ball bearing is connected to the output end of the first electric push rod, and a buffer assembly is provided between the ball bearing and the base plate; Two first side plates and two second side plates are provided with first connecting plates. A connecting groove is provided on the bottom plate. The first connecting plates are engaged in the connecting groove. A engaging mechanism for engaging connection is installed on the bottom plate. The two first side plates are engaged between the second side plates. One of the first side plates is connected to a cover via a rotating assembly, and a wind direction and anemometer is mounted on the cover. Support assemblies for lateral support are mounted on both first side plates and both second side plates.

[0007] Preferably, the buffer assembly includes a piezoelectric ceramic vibration damper, a damper, and a mounting plate. The piezoelectric ceramic vibration damper and the damper are connected at both ends to the base plate and the mounting plate, respectively, and the output end of the first electric push rod is connected to the mounting plate.

[0008] Preferably, the cylinder end of the first electric push rod is fixedly connected to the first support plate, and the first support plate is provided with a first rubber layer.

[0009] Preferably, the two first side plates are provided with T-shaped locking plates at both ends, and the two second side plates are provided with T-shaped grooves for the T-shaped locking plates to engage. A first sealing layer is provided between the two first side plates and the two second side plates and the bottom plate, and a second sealing layer is provided between the two first side plates and the two second side plates.

[0010] Preferably, the engaging mechanism includes a first drive motor, a turntable, four engaging plates, and four connecting rods. The base plate has an installation groove, the first drive motor is installed in the installation groove, and the output end of the first drive motor is connected to the turntable. The two ends of the connecting rods are rotatably connected to the turntable and the engaging plates, respectively. The first connecting plate has an engaging groove, and the engaging plate passes through the installation groove and engages in the engaging groove.

[0011] Preferably, the locking plate is provided with a limiting block, and the bottom plate is provided with a limiting groove for the limiting block to slide.

[0012] Preferably, the rotating assembly includes a second drive motor, a rotating plate, and two second connecting plates. The two second connecting plates are connected to one of the first side plates. The rotating plate is connected to the cover. The second drive motor is mounted on one of the second connecting plates. The rotating plate is rotatably connected between the second connecting plates via a rotating rod. The output end of the second drive motor is connected to the extension end of the rotating rod that passes through the second connecting plate.

[0013] Preferably, the support assembly includes a third drive motor, a second electric push rod, two rotating blocks, two first side blocks, two second side blocks, and a second support plate. The rotating blocks are rotatably connected to the first and second side blocks respectively via rotating rods. The two first side blocks are respectively connected to the first and second side plates. The two second side blocks are connected to the second support plate. The two rotating blocks are respectively connected to the output end and the cylinder end of the second electric push rod. The second support plate is provided with a second rubber layer.

[0014] Preferably, the base plate is an aluminum alloy or carbon fiber honeycomb panel, and the base plate is provided with several transverse reinforcing ribs, and the first side plate and the second side plate are both polyurethane foam sandwich panels.

[0015] Preferably, a controller is installed in the mounting slot, and the controller is electrically connected to the first electric push rod, the tilt sensor, the wind direction and speed meter, the piezoelectric ceramic vibration damper, the first drive motor, the second drive motor, the third drive motor, and the second electric push rod.

[0016] Compared with the prior art, the beneficial effects of the present invention are: 1. This invention utilizes a tilt sensor to monitor the equipment's tilt status in real time. Once tilt is detected, the first electric push rod is triggered to actively adjust the base plate's levelness. The ball bearing has multi-angle adaptive capability, and combined with the vibration damping effect of the buffer assembly, it effectively solves the problem of instability when placing traditional equipment in complex terrain. This design not only prevents goods from shaking and tipping over due to equipment tilting, but also reduces damage to goods caused by impacts during airdrop or placement, effectively ensuring the safety of goods storage and the reliability of docking with drones.

[0017] 2. This invention employs a snap-fit ​​structure between the first connecting plate and the connecting groove, and utilizes the locking function of the snap-fit ​​mechanism to achieve rapid assembly of the side plate and the bottom plate, significantly improving the convenience of modular expansion of the equipment. Simultaneously, an anemometer installed on the cover monitors the ambient wind force and direction in real time. When the wind speed is high, the support components are driven to provide targeted support to the side plate, establishing a dynamic wind-resistant reinforcement mechanism. This mechanism effectively enhances the overall structure's resistance to lateral forces after assembly, avoiding structural deformation or loosening caused by strong winds, and ensuring the stability of the equipment in complex outdoor environments. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the structure of the present invention; Figure 2 This is a cross-sectional structural diagram of the present invention; Figure 3 for Figure 2 Enlarged view of point A in the middle; Figure 4 This is a schematic diagram of the exploded structure of the base plate of the present invention; Figure 5 This is a schematic diagram of the exploded structure of the first and second side plates of the present invention.

[0019] In the diagram: 1. Base plate; 2. First electric actuator; 3. Tilt sensor; 4. Ball bearing; 5. First side plate; 6. Second side plate; 7. First connecting plate; 8. Connecting groove; 9. Cover; 10. Wind direction and speed meter; 11. Piezoelectric ceramic vibration damper; 12. Damper; 13. Mounting plate; 14. First support plate; 15. First rubber layer; 16. T-shaped locking plate; 17. T-slot; 18. First sealing layer; 19. Second sealing layer; 20. First drive motor; 21. Rotary rotor. 21. Disc; 22. Engaging plate; 23. Connecting rod; 24. Mounting groove; 25. Engaging groove; 26. Limiting block; 27. Limiting groove; 28. Second drive motor; 29. ​​Rotating plate; 30. Second connecting plate; 31. Third drive motor; 32. Second electric push rod; 33. Rotating block; 34. First side block; 35. Second side block; 36. Second support plate; 37. Second rubber layer; 38. Transverse reinforcing rib; 39. Controller; 40. Battery; 41. Flexible solar panel. Detailed Implementation

[0020] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0021] Please see Figures 1-5 The present invention provides a technical solution: Modular logistics storage equipment for low-altitude logistics includes: The base plate 1 and the first electric push rod 2 are provided. An angle sensor 3 is installed on the base plate 1. The output end of the first electric push rod 2 is connected to a ball bearing 4. A buffer assembly is provided between the ball bearing 4 and the base plate 1. The buffer assembly includes a piezoelectric ceramic damper 11, a damper 12 and a mounting plate 13. The two ends of the piezoelectric ceramic damper 11 and the damper 12 are respectively connected to the base plate 1 and the mounting plate 13. The output end of the first electric push rod 2 is connected to the mounting plate 13. The cylinder end of the first electric push rod 2 is fixedly connected to the first support plate 14. The first support plate 14 is provided with a first rubber layer 15. The tilt sensor 3 is mounted on the base plate 1 to monitor the tilt angle of the base plate 1 in real time. When the equipment tilts during transportation or placement, the tilt sensor 3 will transmit the detected tilt signal to the controller 39; The cylinder end of the first electric actuator 2 is fixedly connected to the first support plate 14. The first support plate 14 is provided with a first rubber layer 15, which plays a certain role in buffering and anti-slip. The output end of the first electric actuator 2 is connected to a ball bearing 4. The buffer assembly between the ball bearing 4 and the base plate 1 includes a piezoelectric ceramic vibration damper 11, a damper 12, and a mounting plate 13. The piezoelectric ceramic vibration damper 11 and the damper 12 are respectively connected to the base plate 1 and the mounting plate 13. The output end of the first electric actuator 2 is connected to the mounting plate 13. When the tilt sensor 3 detects that the tilt angle of the base plate 1 is greater than 5°, the controller 39 controls the first electric actuator 2 to work according to the tilt signal. The first electric actuator 2 adjusts the angle of the base plate 1 through the ball bearing 4 to restore it to a horizontal state. During this process, the piezoelectric ceramic vibration damper 11 and damper 12 in the buffer assembly can absorb and reduce the vibration generated during the adjustment of the equipment, ensuring the stability of the equipment. When the wind direction and speed meter 10 detects strong wind, the controller 39 can immediately increase the damping force of the piezoelectric ceramic vibration damper 11 to enhance the stability of the side plate support.

[0022] Two first side plates 5 and two second side plates 6 are provided, and a first connecting plate 7 is provided on the two first side plates 5 and two second side plates 6. A connecting groove 8 is provided on the bottom plate 1, and the first connecting plate 7 is engaged in the connecting groove 8. A engaging mechanism for engaging connection is installed on the bottom plate 1. The engaging mechanism includes a first drive motor 20, a turntable 21, four engaging plates 22 and four connecting rods 23. An installation groove 24 is provided on the bottom plate 1, and the first drive motor 20 is installed in the installation groove 24. The output end of the first drive motor 20 is connected to the turntable 21, and the two ends of the connecting rods 23 are rotatably connected to the turntable 21 and the engaging plates 22 respectively. The first connecting plate 7 has a locking groove 25, the locking plate 22 passes through the mounting groove 24 and is locked in the locking groove 25, the locking plate 22 has a limiting block 26, the bottom plate 1 has a limiting groove 27 for the limiting block 26 to slide, the two first side plates 5 are locked between the second side plates 6, the two first side plates 5 have T-shaped locking plates 16 at both ends, the two second side plates 6 have T-shaped grooves 17 for the T-shaped locking plates 16 to lock in, the two first side plates 5 and the two second side plates 6 are provided with a first sealing layer 18 between the bottom plate 1 and the bottom plate 1, and the two first side plates 5 and the two second side plates 6 are provided with a second sealing layer 19. When connecting the first side plate 5, the second side plate 6, and the base plate 1, T-shaped locking plates 16 are provided at both ends of the two first side plates 5, and T-shaped grooves 17 are provided on the two second side plates 6 for the T-shaped locking plates 16 to engage. During equipment assembly, the T-shaped locking plates 16 of the first side plates 5 are inserted into the T-shaped grooves 17 of the second side plates 6, achieving a preliminary connection between the first side plates 5 and the second side plates 6. Simultaneously, a first sealing layer 18 is provided between the two first side plates 5 and the two second side plates 6 and the base plate 1, and a second sealing layer 19 is provided between the two first side plates 5 and the two second side plates 6. These sealing layers effectively prevent rainwater, dust, etc., from entering the equipment, protecting the stored goods. Two first side plates 5 and two second side plates 6 are provided with first connecting plates 7, and a connecting groove 8 is provided on the base plate 1. The first connecting plates 7 are engaged in the connecting groove 8. A engaging mechanism for engaging connection is installed on the base plate 1. The engaging mechanism includes a first drive motor 20, a turntable 21, four engaging plates 22, and four connecting rods 23. An installation groove 24 is provided on the base plate 1. The first drive motor 20 is installed in the installation groove 24, and the output end of the first drive motor 20 is connected to the turntable 21. The two ends of the connecting rods 23 are rotatably connected to the turntable 21 and the engaging plates 22, respectively. An engaging groove 25 is provided on the first connecting plate 7. When the first connecting plate 7 is engaged in the connecting groove 8, the controller 39 controls the first drive motor 20 to work. The first drive motor 20 drives the turntable 21 to rotate. The turntable 21 drives the engaging plates 22 to move through the connecting rods 23, so that the engaging plates 22 pass through the installation groove 24 and engage in the engaging groove 25 of the first connecting plate 7, thereby realizing a firm connection between the side plates and the base plate 1. To ensure the accuracy of the movement of the locking plate 22, a limiting block 26 is provided on the locking plate 22, and a limiting groove 27 is provided on the base plate 1 for the limiting block 26 to slide in. The limiting block 26 slides in the limiting groove 27 to limit the range of movement of the locking plate 22.

[0023] A cover 9 is connected to one of the first side plates 5 via a rotating assembly. The rotating assembly includes a second drive motor 28, a rotating plate 29, and two second connecting plates 30. The two second connecting plates 30 are connected to one of the first side plates 5, and the rotating plate 29 is connected to the cover 9. The second drive motor 28 is mounted on one of the second connecting plates 30. The rotating plate 29 is rotatably connected between the second connecting plates 30 via a rotating rod, and the output end of the second drive motor 28 is connected to the extension end of the rotating rod that passes through the second connecting plate 30. A wind direction and speed meter 10 is mounted on the cover 9. At the same time, the device is equipped with a signal receiving module for communication with the UAV. This module can receive the proximity signal sent by the UAV. When the signal receiving module receives the proximity signal sent by the UAV within a preset distance (such as 10 meters), it will transmit this signal to the controller 39. When the cover 9 is fastened, one of the first side plates 5 is connected to the cover 9 via a rotating assembly. The rotating assembly includes a second drive motor 28, a rotating plate 29, and two second connecting plates 30. The two second connecting plates 30 are connected to one of the first side plates 5, the rotating plate 29 is connected to the cover 9, the second drive motor 28 is mounted on one of the second connecting plates 30, and the rotating plate 29 is rotatably connected between the second connecting plates 30 via a rotating rod. The output end of the second drive motor 28 is connected to the extension end of the rotating rod that passes through the second connecting plate 30. When the controller 39 receives a drone approach signal, it immediately controls the second drive motor 28 to operate. The second drive motor 28 drives the rotating rod to rotate, and the rotating rod drives the rotating plate 29 and the cover 9 to rotate around the rotating rod, realizing the automatic opening of the cover 9, preparing for the drone to drop or retrieve cargo. When the cargo drop or retrieval is completed, and no drone approach signal is received again within a preset time, the controller 39 controls the second drive motor 28 to rotate in the opposite direction, so that the cover 9 automatically closes. A wind direction and speed meter 10 is installed on the cover 9 to detect the wind speed and direction in the environment in real time and transmit the detected signal to the controller 39.

[0024] Support assemblies for side support are installed on both first side plates 5 and both second side plates 6. The support assemblies include a third drive motor 31, a second electric push rod 32, two rotating blocks 33, two first side blocks 34, two second side blocks 35, and a second support plate 36. The rotating blocks 33 are rotatably connected to the first side blocks 34 and the second side blocks 35 respectively through rotating rods. The two first side blocks 34 are connected to the first side plates 5 and the second side plates 6 respectively. The two second side blocks 35 are connected to the second support plate 36. The two rotating blocks 33 are connected to the output end and the cylinder end of the second electric push rod 32 respectively. A second rubber layer 37 is provided on the second support plate 36.

[0025] The support assembly is used to support the side plates when the wind speed is high, enhancing the stability of the equipment. The support assembly includes a third drive motor 31, a second electric push rod 32, two rotating blocks 33, two first side blocks 34, two second side blocks 35, and a second support plate 36. The rotating blocks 33 are rotatably connected to the first side blocks 34 and the second side blocks 35 respectively via rotating rods. The two first side blocks 34 are connected to the first side plate 5 and the second side plate 6 respectively. The two second side blocks 35 are connected to the second support plate 36. The rotating blocks 33 are connected to the output end and the cylinder end of the second electric push rod 32 respectively. The second support plate 36 is provided with a second rubber layer 37. When the wind direction and speed meter 10 detects a wind speed greater than 10 m / s, the controller 39 controls the third drive motor 31 and the second electric push rod 32 to work. The third drive motor 31 drives the related components to rotate, and the second electric push rod 32 extends and retracts. Through the rotational connection of the rotating block 33, the first side block 34 and the second side block 35, the second support plate 36 moves downward and contacts the ground. The second rubber layer 37 plays the role of buffering and increasing friction, thereby providing stable support for the side plate and preventing the equipment from tilting or being damaged under strong winds.

[0026] Furthermore, the base plate 1 is an aluminum alloy or carbon fiber honeycomb panel, and the base plate 1 is provided with several transverse reinforcing ribs 38. The first side plate 5 and the second side plate 6 are both polyurethane foam sandwich panels.

[0027] The base plate 1 is made of aluminum alloy or carbon fiber honeycomb panel, which is lightweight and high-strength, making it suitable for low-altitude logistics environments. The base plate 1 is equipped with several transverse reinforcing ribs 38, which further enhance its structural strength, ensuring stability under the weight of goods and external forces.

[0028] A battery 40 is also installed in the mounting slot 24, and a flexible solar panel 41 is integrated on the upper surface of the cover 9. Under sunlight conditions, the solar panel 41 converts light energy into electrical energy and charges the main battery 40 through the charging management circuit in the controller 39. The main battery 40 is preferably a lithium iron phosphate battery pack, which has high safety and long cycle life and is suitable for complex outdoor environments.

[0029] In the above embodiment, a controller 39 is installed in the mounting slot 24. The battery 40 and the controller 39 are electrically connected to the flexible solar panel 41, the first electric push rod 2, the tilt sensor 3, the wind direction and speed meter 10, the piezoelectric ceramic vibration damper 11, the first drive motor 20, the second drive motor 28, the third drive motor 31 and the second electric push rod 32, respectively.

[0030] It should be noted that the specific models and specifications of the battery 40, controller 39, flexible solar panel 41, first electric push rod 2, tilt sensor 3, wind direction and speed meter 10, piezoelectric ceramic vibration damper 11, first drive motor 20, second drive motor 28, third drive motor 31 and second electric push rod 32 need to be selected and determined according to the actual specifications of the device. The specific selection calculation method adopts the existing technology in this field, so it will not be described in detail.

[0031] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A modular logistics storage device for low-altitude logistics, characterized in that, include: A base plate (1) and a first electric push rod (2), wherein an inclination sensor (3) is installed on the base plate (1), and a ball bearing (4) is connected to the output end of the first electric push rod (2), and a buffer assembly is provided between the ball bearing (4) and the base plate (1); Two first side plates (5) and two second side plates (6) are provided with first connecting plates (7), and a connecting groove (8) is provided on the bottom plate (1). The first connecting plate (7) is engaged in the connecting groove (8). A engaging mechanism for engaging connection is installed on the bottom plate (1). The two first side plates (5) are engaged between the second side plates (6). A cover (9) is connected to one of the first side plates (5) via a rotating assembly. A wind direction and anemometer (10) is installed on the cover (9). Support assemblies for side support are installed on both first side plates (5) and both second side plates (6).

2. The modular logistics storage device for low-altitude logistics according to claim 1, characterized in that: The buffer assembly includes a piezoelectric ceramic damper (11), a damper (12), and a mounting plate (13). The piezoelectric ceramic damper (11) and the damper (12) are connected to the base plate (1) and the mounting plate (13) at both ends, respectively. The output end of the first electric push rod (2) is connected to the mounting plate (13).

3. The modular logistics storage device for low-altitude logistics according to claim 1, characterized in that: The cylinder end of the first electric push rod (2) is fixedly connected to the first support plate (14), and the first support plate (14) is provided with a first rubber layer (15).

4. The modular logistics storage device for low-altitude logistics according to claim 1, characterized in that: The two first side plates (5) are provided with T-shaped locking plates (16) at both ends, and the two second side plates (6) are provided with T-shaped grooves (17) for the T-shaped locking plates (16) to engage. A first sealing layer (18) is provided between the two first side plates (5) and the two second side plates (6) and the bottom plate (1), and a second sealing layer (19) is provided between the two first side plates (5) and the two second side plates (6).

5. The modular logistics storage device for low-altitude logistics according to claim 2, characterized in that: The engaging mechanism includes a first drive motor (20), a turntable (21), four engaging plates (22) and four connecting rods (23). The base plate (1) has an installation groove (24). The first drive motor (20) is installed in the installation groove (24) and the output end of the first drive motor (20) is connected to the turntable (21). The two ends of the connecting rods (23) are rotatably connected to the turntable (21) and the engaging plates (22) respectively. The first connecting plate (7) has an engaging groove (25). The engaging plates (22) pass through the installation groove (24) and engage in the engaging groove (25).

6. The modular logistics storage device for low-altitude logistics according to claim 1, characterized in that: The locking plate (22) is provided with a limiting block (26), and the bottom plate (1) is provided with a limiting groove (27) for the limiting block (26) to slide.

7. The modular logistics storage device for low-altitude logistics according to claim 5, characterized in that: The rotating assembly includes a second drive motor (28), a rotating plate (29), and two second connecting plates (30). The two second connecting plates (30) are connected to one of the first side plates (5). The rotating plate (29) is connected to the cover (9). The second drive motor (28) is mounted on one of the second connecting plates (30). The rotating plate (29) is rotatably connected between the second connecting plates (30) by a rotating rod. The output end of the second drive motor (28) is connected to the extension end of the rotating rod that passes through the second connecting plate (30).

8. The modular logistics storage device for low-altitude logistics according to claim 7, characterized in that: The support assembly includes a third drive motor (31), a second electric push rod (32), two rotating blocks (33), two first side blocks (34), two second side blocks (35), and a second support plate (36). The rotating blocks (33) are rotatably connected to the first side blocks (34) and the second side blocks (35) respectively via rotating rods. The two first side blocks (34) are respectively connected to the first side plate (5) and the second side plate (6). The two second side blocks (35) are connected to the second support plate (36). The two rotating blocks (33) are respectively connected to the output end and the cylinder end of the second electric push rod (32). The second support plate (36) is provided with a second rubber layer (37).

9. The modular logistics storage device for low-altitude logistics according to claim 1, characterized in that: The base plate (1) is an aluminum alloy or carbon fiber honeycomb panel, and the base plate (1) is provided with several transverse reinforcing ribs (38). The first side plate (5) and the second side plate (6) are both polyurethane foam sandwich panels.

10. The modular logistics storage device for low-altitude logistics according to claim 8, characterized in that: The mounting slot (24) is equipped with a controller (39), which is electrically connected to the first electric push rod (2), the tilt sensor (3), the wind direction and speed meter (10), the piezoelectric ceramic vibration damper (11), the first drive motor (20), the second drive motor (28), the third drive motor (31), and the second electric push rod (32).