Shock-absorbing and noise-reducing pipe bundle container
By employing a protective mechanism of springs and damping fluid and a bottom shock absorber in the tubular container, combined with the design of worm gears, worm wheels, threaded rods and moving columns, multiple vibration reduction and noise reduction effects are achieved, solving the problems of large vibration and noise pollution of traditional tubular containers on bumpy roads, and improving the stability and quietness of the transportation process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SINOMA SCI & TECHSUZHOU
- Filing Date
- 2025-07-10
- Publication Date
- 2026-08-04
AI Technical Summary
Traditional tubular containers experience significant vibrations when traveling on bumpy roads, making it difficult to stabilize quickly and effectively dissipate vibration energy. This results in a high risk of tubular damage and severe noise pollution.
The protective mechanism employs a combination of springs and damping fluid, along with a bottom shock absorber, forming a multi-layered synergistic damping mechanism. The side plates open and close rapidly through the cooperation of a worm gear, worm wheel, threaded rod, and moving column, utilizing elastic deformation and damping force to dissipate vibration energy.
It significantly reduces the risk of pipe damage due to vibration, improves the stability and safety of the transportation process, reduces noise pollution during transportation, and meets the requirements for quiet operation.
Smart Images

Figure CN224589837U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of container technology, and in particular to a shock-absorbing and noise-reducing tubular container. Background Technology
[0002] In the field of modern industrial transportation, tubular containers are widely used for the transportation and storage of various fluid media.
[0003] Traditional tubular containers often rely on a single shock-absorbing element. When traveling on bumpy roads, the container vibrates significantly, making it difficult to stabilize quickly and effectively. Furthermore, the vibration energy cannot be effectively dissipated, causing the vibration to continue acting on the tubular body, increasing the risk of damage. At the same time, a single shock-absorbing element cannot effectively suppress the noise generated by the vibration, resulting in serious noise pollution during transportation. To solve the above problems, this application proposes a shock-absorbing and noise-reducing tubular container. Utility Model Content
[0004] The purpose of this invention is to address the shortcomings of existing technologies by proposing a shock-absorbing and noise-reducing tubular container. It employs a protective mechanism that combines springs and damping fluid, along with bottom shock absorbers to form a multi-layered synergistic shock absorption mechanism. This reduces the risk of damage to the tubular body due to vibration, ensuring stability and safety during transportation. The multi-layered shock absorption structure significantly reduces noise generated by vibration during transportation, minimizing the impact on the transportation environment and the lives of surrounding residents.
[0005] To achieve the above objectives, the present invention adopts the following technical solution:
[0006] A shock-absorbing and noise-reducing tubular container includes a tubular container body with a bottom plate underneath. Multiple shock absorbers are fixedly connected to both the tubular container body and the bottom plate. Multiple grooves are formed at opposite ends of both the tubular container body and the bottom plate, and a protective mechanism is provided in each pair of grooves. Two symmetrically arranged side plates are rotatably connected to the tubular container body. Each side plate has a limiting mechanism, including a worm gear that penetrates the side plate and is rotatably connected thereto. A handle is fixedly connected to the end of the worm gear away from the side plate. The worm gear meshes with a worm wheel, and threaded rods are coaxially fixedly connected to both ends of the worm wheel. Both threaded rods are rotatably connected to the side plates. A movable column threadedly connected to the outer wall of each threaded rod is sleeved thereto. Both movable columns penetrate the side plates and are slidably connected thereto. Two slots are formed on the tubular container body, and the two movable columns are inserted into their respective slots.
[0007] Preferably, the protective mechanism includes a hollow column fixedly connected to the inner wall of the lower groove, a sliding column fixedly connected to the inner wall of the upper groove, the sliding column passing through the hollow column and being slidably connected thereto in a sealed manner, a sealing block fixedly connected to the bottom of the sliding column, the sealing block being located inside the hollow column and being slidably connected thereto in a sealed manner, a plurality of damping holes being opened through the sealing block, a spring being fixedly connected to the bottom of the sealing block and the inner bottom of the hollow column, and the hollow column being filled with damping fluid.
[0008] Preferably, the outer wall of the side plate is fixedly connected to two rotating shafts, and the ends of the two rotating shafts are rotatably connected to the tube bundle container body.
[0009] Preferably, the outer wall of the handle is provided with a protective sleeve, and the protective sleeve is made of rubber.
[0010] Preferably, the two threaded rods are arranged in opposite directions, the outer wall of the threaded rod is provided with external threads, the movable column is provided with threaded grooves, and the inner wall of the threaded grooves is provided with internal threads that cooperate with the external threads.
[0011] Preferably, the cross-section of the movable column is rectangular.
[0012] Compared with the prior art, the advantages of this utility model are as follows:
[0013] 1. Through the cooperation of worm gear, worm wheel, threaded rod and moving column, the side plate can be quickly opened and fixed by simply rotating the handle; the operation process of lifting and unloading pipe body is simplified, greatly reducing manpower and time consumption, and significantly improving work efficiency.
[0014] 2. A protection mechanism combining springs and damping fluid, along with bottom shock absorbers, forms a multi-layered synergistic shock absorption mechanism. The springs buffer vibration impacts through elastic deformation, while the damping fluid flowing through the damping holes generates damping force to consume vibration energy, rapidly attenuating the container's vibration amplitude, reducing the risk of pipe damage due to vibration, and ensuring the stability and safety of the transportation process.
[0015] 3. The multi-layered shock absorption structure significantly reduces noise generated by vibration during transportation, minimizing the impact on the transportation environment and the lives of surrounding residents, and meeting the requirements of modern transportation for quietness.
[0016] In summary, the protective mechanism employing a combination of springs and damping fluid, along with a bottom shock absorber, forms a multi-layered synergistic damping mechanism. This reduces the risk of pipe damage due to vibration, ensuring stability and safety during transportation. Furthermore, the multi-layered damping structure significantly reduces noise generated by vibration during transportation, minimizing the impact on the transportation environment and the lives of surrounding residents. Attached Figure Description
[0017] Figure 1This is a structural schematic diagram of a shock-absorbing and noise-reducing tubular container proposed in this utility model;
[0018] Figure 2 This is a schematic diagram of the first cross-section of a shock-absorbing and noise-reducing tubular container proposed in this utility model;
[0019] Figure 3 This is a schematic diagram of the second cross-section structure of a shock-absorbing and noise-reducing tubular container proposed in this utility model;
[0020] Figure 4 for Figure 2 Enlarged view of the structure at point A in the middle.
[0021] In the diagram: 1. Tube bundle container body, 2. Bottom plate, 3. Shock absorber, 4. Hollow column, 5. Sealing block, 6. Sliding column, 7. Damping hole, 8. Damping fluid, 9. Spring, 10. Side plate, 11. Worm gear, 12. Handle, 13. Worm wheel, 14. Threaded rod, 15. Moving column, 16. Slot. Detailed Implementation
[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0023] Reference Figures 1-4 A shock-absorbing and noise-reducing tubular container includes a tubular container body 1, a bottom plate 2 is provided below the tubular container body 1, and multiple shock absorbers 3 are fixedly connected to the tubular container body 1 and the bottom plate 2. The shock absorbers 3 are used to absorb vibration energy and work with the protection mechanism to achieve shock absorption of the tubular container body 1.
[0024] Multiple grooves are provided at opposite ends of the tubular container body 1 and the bottom plate 2. Each pair of grooves is equipped with a protective mechanism. The protective mechanism includes a hollow column 4 fixedly connected to the inner wall of the lower groove. The hollow column 4 provides sliding guide space for the sliding column 6. The sliding column 6 is fixedly connected to the inner wall of the upper groove. The sliding column 6 passes through the hollow column 4 and is slidably connected to it in a sealed manner. A sealing block 5 is fixedly connected to the bottom of the sliding column 6. The sealing block 5 is located inside the hollow column 4 and is slidably connected to it in a sealed manner, dividing the interior of the hollow column 4 into upper and lower cavities. Multiple damping holes 7 are provided through the sealing block 5. The damping holes 7 allow damping fluid 8 to pass through to generate damping force. A spring 9 is fixedly connected to the bottom of the sealing block 5 and the inner bottom of the hollow column 4. The spring 9 provides buffering force through elastic deformation. The spring 9 and the damping fluid 8 work together to achieve double buffering of vibration. The hollow column 4 is filled with damping fluid 8. The damping fluid 8 consumes vibration energy by flowing through the damping holes 7.
[0025] The tubular container body 1 is rotatably connected to two symmetrically arranged side plates 10. The side plates 10 are rotatably opened and closed relative to the tubular container body 1 via rotating shafts. Two rotating shafts are fixedly connected to the outer wall of the side plates 10, and the ends of the two rotating shafts are rotatably connected to the tubular container body 1. Each side plate 10 is provided with a limiting mechanism, which includes a worm gear 11 that passes through the side plate 10 and is rotatably connected to it. A handle 12 is fixedly connected to the end of the worm gear 11 away from the side plate 10. The outer wall of the handle 12 is provided with a protective sleeve made of rubber. The worm gear 11 is engaged with a worm wheel 13, which converts the rotational motion of the worm gear 11 into its own rotation. Both ends of the worm wheel 13 are coaxially fixedly connected to threaded rods 14, and both threaded rods 14 are rotatably connected to the side plates 10. The outer wall of each threaded rod 14 is fitted with a threaded connection. Connecting to the movable column 15, the threaded rod 14 engages with the internal thread of the movable column 15 via its external thread, converting the rotational motion into the linear motion of the movable column 15. The threads of the two threaded rods 14 are arranged in opposite directions, allowing the two movable columns 15 to move relative to or away from each other. The outer wall of the threaded rod 14 is provided with an external thread, and the movable column 15 is provided with a threaded groove. The inner wall of the threaded groove is provided with an internal thread that engages with the external thread. Both movable columns 15 penetrate the side plate 10 and are slidably connected to it. The cross-section of the movable column 15 is rectangular to prevent rotation during movement and ensure the accuracy of linear motion. Two slots 16 are provided on the tube bundle container body 1, and the two movable columns 15 are respectively inserted into the corresponding slots 16. The rotation of the side plate 10 is restricted by the engagement of the movable column 15 and the slots 16, thereby achieving the limiting and fixing of the side plate 10.
[0026] In this invention, when the tube body needs to be transported, the operator can hold the handle 12 and rotate it to drive the worm gear 11, worm wheel 13, and two threaded rods 14 to rotate. The threaded transmission causes the two movable columns 15 to move relative to each other until the movable columns 15 disengage from the slots 16, allowing one side plate 10 to rotate 180 degrees, thus opening one side of the tube bundle container 1 and facilitating the hoisting and unloading of the tube body. Alternatively, the operator can hold the handle 12 and rotate it in the opposite direction to move the two movable columns 15 back to back until the movable columns 15 are inserted into the slots 16, completing the installation and fixing between the tube bundle container 1 and the side plate 10. The opening and closing control and positioning of the side plate 10 are achieved through a limiting mechanism. During transportation, various issues may arise. On bumpy roads, the tubular container 1 will move up and down. The up and down movement of the tubular container 1 will drive the sliding column 6 and the sealing block 5 to move inside the hollow column 4. During this process, the spring 9 is compressed or stretched, and the deformation of the spring 9 can buffer the vibration. When the sealing block 5 slides inside the hollow column 4, the damping fluid 8 will flow through multiple damping holes 7 to generate damping, which can dampen and buffer the vibration, thereby reducing the vibration of the tubular container 1 and avoiding the noise generated by the vibration. The shock absorber 3 can absorb the force in the vibration and make the tubular container 1 eventually tend to stabilize. The shock absorption and noise reduction of the tubular container 1 and the tube body are realized. The components work together to effectively improve the stability and quietness during transportation.
Claims
1. A shock-absorbing and noise-reducing pipe bundle container comprising a pipe bundle container body (1), characterized in that, The tubular container body (1) is provided with a bottom plate (2) below it. The tubular container body (1) and the bottom plate (2) are fixedly connected to a number of shock absorbers (3). The opposite ends of the tubular container body (1) and the bottom plate (2) are provided with a number of grooves. Each pair of grooves is provided with a protective mechanism. The tubular container body (1) is rotatably connected to two symmetrically arranged side plates (10). Each side plate (10) is provided with a limiting mechanism. The limiting mechanism includes a worm (11) that passes through and is rotatably connected to the side plate (10). A handle (12) is fixedly connected to one end of the worm (11) away from the side plate (10). The worm (11) is engaged with a worm wheel (13). Both ends of the worm wheel (13) are coaxially fixedly connected to threaded rods (14). Both threaded rods (14) are rotatably connected to the side plate (10). Each threaded rod (14) has a movable column (15) threadedly connected to its outer wall. Both movable columns (15) pass through the side plate (10) and are slidably connected to it. Two slots (16) are opened on the tube bundle container body (1). The two movable columns (15) are respectively inserted into the corresponding slots (16).
2. The shock-absorbing and noise-reducing pipe bundle container according to claim 1, characterized in that, The protective mechanism includes a hollow column (4) fixedly connected to the inner wall of the lower groove, and a sliding column (6) fixedly connected to the inner wall of the upper groove. The sliding column (6) passes through the hollow column (4) and is slidably connected to it. A sealing block (5) is fixedly connected to the bottom of the sliding column (6). The sealing block (5) is located inside the hollow column (4) and is slidably connected to it. Multiple damping holes (7) are opened through the sealing block (5). A spring (9) is fixedly connected to the bottom of the sealing block (5) and the inner bottom of the hollow column (4). The hollow column (4) is filled with damping fluid (8).
3. The shock-absorbing and noise-reducing pipe bundle container according to claim 1, characterized in that, The outer wall of the side plate (10) is fixedly connected to two rotating shafts, and the ends of the two rotating shafts are rotatably connected to the tube bundle container body (1).
4. The shock-absorbing and noise-reducing pipe bundle container according to claim 1, characterized by The outer wall of the handle (12) is provided with a protective sleeve, which is made of rubber.
5. The shock-absorbing and noise-reducing pipe bundle container according to claim 1, characterized by The two threaded rods (14) are arranged with opposite thread directions. The outer wall of the threaded rod (14) is provided with external thread. The moving column (15) is provided with a threaded groove. The inner wall of the threaded groove is provided with an internal thread that matches the external thread.
6. The shock-absorbing and noise-reducing pipe bundle container according to claim 1, characterized by The cross-section of the movable column (15) is rectangular.