An assembly mechanism for internals of large containers

By designing the combination of support table and stable components, the problems of low accuracy and poor safety during the assembly of internal parts of large containers are solved, and efficient and stable assembly effects are achieved to meet the needs of internal parts of different sizes and shapes.

CN119635230BActive Publication Date: 2025-07-08GUANGDONG LINTON INTELLIGENT EQUIP CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202510073402.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-01-17
Publication Date
2025-07-08
Estimated Expiration
2045-01-17

AI Technical Summary

Technical Problem

The prior art has problems of low assembly accuracy, poor safety and insufficient adaptability in the assembly process of large container internal components. Especially in the chemical, petroleum, electricity and other industries, traditional methods are difficult to meet the efficient assembly needs of modern industries.

Method used

An assembly mechanism including a support table, a load-bearing assembly, a lifting assembly and a stabilizing assembly is designed, and an adjustable extension table on both sides of the support table and a multi-point symmetrical distribution load-bearing assembly. Combining the combination frame, adjustment rod, support rod and stabilizing plate of the stabilizing assembly, ensures the stability and precise adjustment of the inner part during the lifting process.

Benefits of technology

It realizes efficient and stable assembly of internal parts of large containers, improves assembly accuracy and safety, adapts to internal parts of different sizes and shapes, reduces the risk of shaking and tilting, and improves assembly efficiency and safety.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN119635230B_ABST
    Figure CN119635230B_ABST
Patent Text Reader

Abstract

The present invention application relates to an assembly mechanism for large container internals, including: a support platform, with extendable platforms adjustably arranged on both sides of the support platform; a plurality of load-bearing components, symmetrically arranged in pairs on the tops of the support platform and the extendable platforms, and the load-bearing components carry the internals for assembly; a lifting component, arranged on the top of the support platform; a stabilizing component, including a combined frame, adjusting rods, a plurality of adjusting frames, support rods and a stabilizing disc, the top of the combined frame is connected to the connecting part of the lifting component, the adjusting rods respectively penetrate and are fixedly arranged on both sides of the combined frame, the adjusting frames are slidably connected to the adjusting rods, a plurality of the support rods are respectively arranged on the combined frame and the adjusting frames, and one side of the top of the stabilizing disc is rotatably connected to the bottom of the support rod. This application can flexibly adapt to internals of different sizes and shapes, improving the versatility and flexibility of the assembly platform.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application relates to the technical field of large container assembly, and particularly to an assembly mechanism for internal components of large containers. Background Art

[0002] At present, the assembly of internal components of large containers is an important link in industrial production. Especially in industries such as chemical engineering, petroleum, and electric power, large containers are widely used. These containers usually have complex internal structures and require precise assembly of various internal components, such as heating tubes, cooling devices, etc. In order to ensure assembly accuracy and efficiency, traditional assembly methods can no longer meet the needs of modern industry. Therefore, it is particularly important to develop efficient assembly tools and technologies.

[0003] To solve the assembly problems of internal components of large containers, various different technologies and equipment have been adopted in the industry. Common methods include using lifting equipment and special assembly tools. Manual lifting equipment is operated by manpower to lift the internal components to the specified position. However, during the lifting process of the internal components, due to the lack of effective stabilization measures, the internal components are prone to shaking or tilting, which in turn affects the assembly accuracy and safety. In addition, existing assembly platforms and tools often cannot be adjusted flexibly and cannot adapt to internal components of different specifications and types, restricting their application in various scenarios.

[0004] In view of the above related technologies, it is necessary to propose an assembly mechanism for internal components of large containers to solve one of the above technical problems. Summary of the Invention

[0005] To solve one of the above technical problems, this application provides an assembly mechanism for internal components of large containers.

[0006] The assembly mechanism for internal components of large containers provided by this application adopts the following technical solutions:

[0007] An assembly mechanism for internal components of large containers includes:

[0008] A support platform, with extensible platforms adjustably arranged on both sides of the support platform;

[0009] A plurality of load-bearing components, symmetrically arranged in pairs on the tops of the support platform and the extensible platforms, and the load-bearing components carry the internal components for assembly;

[0010] A lifting component, used to transfer and assemble the internal components from the load-bearing components, and the lifting component is arranged on the top of the support platform; and

[0011] A stabilizing component is used for stabilizing the inner part during the lifting process. The stabilizing component includes a combined frame, adjusting rods, a plurality of adjusting frames, support rods, and a stabilizing plate. The top of the combined frame is connected to the connecting part of the lifting component. The adjusting rods are respectively fixedly arranged through both sides of the combined frame. The adjusting frames are slidably connected to the adjusting rods. A plurality of the support rods are respectively arranged on the combined frame and the adjusting frames, and two support rods are symmetrically arranged on the combined frame and the adjusting frames. One side of the top of the stabilizing plate is rotatably connected to the bottom of the support rod, forming a stable support for the bottom of the inner part.

[0012] By adopting the above technical solutions, the assembly mechanism can achieve efficient and stable assembly operations for the inner parts of large containers. Specifically, the design of the adjustable extension platforms on both sides of the support table makes the whole device have good adaptability and flexibility, and can be applicable to inner parts of different sizes and shapes. The multi-point symmetric distribution of the bearing components ensures the uniform force on the inner part during the assembly process, avoiding deformation or damage caused by local stress concentration. The setting of the lifting component not only facilitates the lifting of the inner part, but also effectively guarantees the stability of the inner part during the lifting process through the stabilizing component, preventing potential safety hazards caused by shaking.

[0013] Optionally, the bearing component includes a plurality of rotating seats, support plates, limit cylinders, and limit plates. A plurality of the rotating seats are respectively rotatably arranged on the support table and the extension platform. A plurality of the support plates are symmetrically arranged on the tops of the rotating seats. The limit cylinders are arranged inside the support plates. The rear end of the limit plate is connected to the output end of the limit cylinder.

[0014] By adopting the above technical solutions, it can achieve the stable placement and precise adjustment of the inner part on the support table and the extension platform. Specifically, the design of the rotating seats enables the inner part to rotate flexibly to meet the assembly requirements at different angles. The support plates are symmetrically arranged on the tops of the rotating seats to ensure the balance of the inner part during rotation. The coordinated use of the limit cylinders and the limit plates can quickly lock the inner part after it is placed in place, preventing position deviation caused by external interference, thereby improving the assembly accuracy and efficiency.

[0015] Optionally, adjustment grooves are respectively arranged through both sides of the support table. Adjustment cylinders are arranged in the adjustment grooves. Adjustment blocks are slidably connected in the adjustment grooves. One end of the adjustment block is connected to one side of the extension platform, and the other end is connected to the output end of the adjustment cylinder.

[0016] By adopting the above technical solutions, the adjustment grooves and adjustment cylinders on both sides of the support table can achieve the rapid adjustment of the extension platform, making the assembly mechanism applicable to inner parts of large containers with different sizes. The coordinated use of the adjustment blocks and the adjustment cylinders ensures the smooth movement and precise positioning of the extension platform, improving the assembly efficiency and stability.

[0017] Optionally, a driving motor is provided inside the support platform and the extension platform and corresponding to the lower part of the rotating base, and the output end of the driving motor is connected to the bottom of the rotating base.

[0018] By adopting the above technical solution, the loading and unloading efficiency and flexibility of the inner part are improved, the complexity and intensity of manual operation are reduced, and the safety and reliability of the assembly operation are further enhanced.

[0019] Optionally, the lifting assembly includes a lifting frame, a moving frame, a winding and unwinding cylinder and a lifting rope. The lifting frame is arranged on the top of the support platform. One side of the bottom of the moving frame is arranged on the top of the lifting frame. The winding and unwinding cylinder is rotatably arranged on one side of the top of the moving frame. A moving groove is arranged through the middle of the moving frame. One end of the lifting rope is wound around the winding and unwinding cylinder, and the other end passes through the moving groove and is connected to the top of the combined frame as the connecting part of the lifting assembly.

[0020] By adopting the above technical solution, the lifting assembly can achieve precise positioning and flexible adjustment of the inner part; specifically, the lifting frame is arranged on the top of the support platform, ensuring the stability of the lifting assembly; one side of the bottom of the moving frame is arranged on the top of the lifting frame, so that the moving frame can move horizontally along the lifting frame to adapt to the inner part assembly requirements at different positions; the winding and unwinding cylinder is rotatably arranged on one side of the top of the moving frame, and the length of the lifting rope can be adjusted by controlling the rotation of the winding and unwinding cylinder to achieve height adjustment.

[0021] Optionally, the lifting frame includes a fixed disk, a rotating column, a lifting cylinder and a connecting column. The fixed disk is fixedly connected to the top of the support platform. The rotating column is rotatably connected to the fixed disk. The bottom of the lifting cylinder is arranged on the top of the rotating column. The connecting column is arranged on the output end of the lifting cylinder. The top of the connecting column is connected to one side of the bottom of the moving frame.

[0022] By adopting the above technical solution, multi-degree-of-freedom adjustment of the adjusting frame can be achieved, which not only improves the flexibility of the lifting assembly, but also enhances the ability of the equipment to adapt to operations at different heights and positions, ensuring the stability and safety of the inner part during lifting.

[0023] Optionally, a slider is arranged in the moving groove, and a pulley is arranged on the slider to support the outer surface of the lifting rope.

[0024] By adopting the above technical solution, the pulley on the slider can effectively reduce the friction of the lifting rope in the moving groove, improve the service life and operation efficiency of the lifting rope, ensure the lifting process is more stable and reliable, and can cooperate with the extended length of the lifting rope to change the horizontal position of the combined frame for lifting and assembling inner parts in different horizontal directions.

[0025] Optionally, a moving cylinder is provided on the moving frame, a connecting plate is provided at the output end of the moving cylinder, and the connecting plate is connected to the slider.

[0026] By adopting the above technical solution, the position of the slider is horizontally moved, so as to change the horizontal length of the suspension rope on the moving frame and adjust the position of the combined frame.

[0027] Optionally, a buffer assembly is provided on the tops of the support table and the extension table. The buffer assembly includes a plurality of telescopic rods, springs and buffer seats. The tail ends of the telescopic rods are connected to the bottoms of the support table and the extension table. The springs are sleeved on the telescopic ends of the telescopic rods, and the buffer seats are connected to the telescopic ends of the telescopic rods.

[0028] By adopting the above technical solution, it can effectively absorb and disperse the impact force generated during the handling of the inner part, improve the stability of the inner part, reduce the risk of damage caused by vibration or impact, and thus ensure the safety and assembly accuracy of the inner part; at the same time, the design of the buffer assembly can also extend the service life of the equipment and reduce the maintenance cost.

[0029] Optionally, a plurality of driving wheels are provided at the bottom of the buffer seat, and the plurality of driving wheels are arranged at equal intervals at the bottom of the buffer seat.

[0030] By adopting the above technical solution, it can ensure that the entire assembly mechanism moves more smoothly.

[0031] In summary, the present application includes at least one of the following beneficial technical effects:

[0032] 1. The extension tables on both sides of the support table are adjustable through the cooperation of the adjusting cylinder and the adjusting block, enabling the assembly mechanism to flexibly adapt to inner parts of different sizes and shapes, improving the versatility and flexibility of the assembly platform, and cooperating with the bearing assembly to maintain the stability of the inner part during the assembly and transportation process and adapt to the bearing of inner parts of different sizes;

[0033] 2. The stabilizing assembly ensures the stability of the inner part during the lifting process through multiple fixing mechanisms of the combined frame, adjusting rod, adjusting frame, support rod and stabilizing disc, prevents the inner part from shaking or tilting, and significantly improves the assembly accuracy and safety. BRIEF DESCRIPTION OF THE DRAWINGS

[0034] Figure 1 is a three-dimensional view of an assembly mechanism for inner parts of a large container in the present application.

[0035] Figure 2 is a partial side sectional view of an assembly mechanism for inner parts of a large container in the present application.

[0036] Figure 3 This is the front view (with a buffer component) of an assembly mechanism for large container internals in the present application.

[0037] Figure 4 is Figure 1 The enlarged schematic diagram of the structure at position A in

[0038] In the figure: 1. Support platform; 11. Extension platform; 12. Adjustment groove; 13. Adjustment cylinder; 14. Adjustment block; 2. Bearing component; 21. Rotating seat; 22. Support plate; 23. Limit cylinder; 24. Limit plate; 3. Lifting component; 31. Lifting frame; 311. Fixed disk; 312. Rotating column; 313. Lifting cylinder; 314. Connecting column; 32. Moving frame; 321. Moving groove; 322. Slide block; 323. Pulley; 324. Moving cylinder; 325. Connecting plate; 33. Take-up reel; 34. Suspension rope; 4. Stabilizing component; 41. Combined frame; 42. Adjusting rod; 43. Adjusting frame; 44. Support rod; 45. Stabilizing disk; 5. Driving motor; 6. Buffer component; 61. Telescopic rod; 62. Spring; 63. Buffer seat; 64. Driving wheel. Detailed implementation manners

[0039] The following further describes the present application in detail Figures 1 - 4 in conjunction with the accompanying drawings.

[0040] Refer to Figure 1 This application embodiment discloses an assembly mechanism for large container internals, including: a support platform 1, a bearing component 2, a lifting component 3, and a stabilizing component 4.

[0041] On both sides of the support platform 1, extension platforms 11 are adjustably arranged; several bearing components 2 are provided and are symmetrically arranged in pairs on the top of the support platform 1 and the extension platforms 11, and the bearing components 2 carry the internals for assembly; the lifting component 3 is used to transfer and assemble the internals from the bearing components 2, and the lifting component 3 is arranged on the top of the support platform 1; the stabilizing component 4 is used to stabilize the internals during lifting, and the stabilizing component 4 includes a combined frame 41, adjusting rods 42, several adjusting frames 43, support rods 44, and a stabilizing disk 45. The top of the combined frame 41 is connected to the connecting part of the lifting component 3. The adjusting rods 42 respectively penetrate and are fixedly arranged on both sides of the combined frame 41. The adjusting frames 43 are slidably connected to the adjusting rods 42. Several support rods 44 are respectively arranged on the combined frame 41 and the adjusting frames 43, and the two support rods 44 are symmetrically arranged on the combined frame 41 and the adjusting frames 43. One side of the top of the stabilizing disk 45 is rotatably connected to the bottom of the support rods 44 to form a stable support for the bottom of the internals.

[0042] The assembly mechanism can realize efficient and stable assembly operations on internal parts of large containers; specifically, the design of the adjustable extension platform 11 on both sides of the support platform 1 makes the entire device have good adaptability and flexibility, and can be used for internal parts of different sizes and shapes; the multi-point symmetrical distribution of the load-bearing component 2 ensures that the internal parts are evenly stressed during the assembly process, avoiding deformation or damage due to local stress concentration; the setting of the lifting component 3 not only facilitates the lifting of the internal parts, but also effectively ensures the stability of the internal parts during the lifting process through the stabilizing component 4, that is, a number of adjustment frames 43 of the stabilizing component 4 are evenly distributed on the adjusting rod 42 corresponding to the size of the internal parts, so that a plurality of stabilizing plates 45 can be distributed in multiple positions, thereby improving the stable support for the internal parts, avoiding position displacement of the internal parts during the lifting, transfer and assembly process, and preventing safety hazards caused by shaking.

[0043] refer to Figure 1 In the present embodiment, more specifically, the bearing assembly 2 comprises a plurality of rotating seats 21, supporting plates 22, limiting cylinders 23 and limiting plates 24, wherein the plurality of rotating seats 21 are rotatably arranged on the supporting platform 1 and the extension platform 11 respectively, the plurality of supporting plates 22 are symmetrically arranged on the top of the rotating seat 21, the limiting cylinders 23 are arranged on the inner side of the supporting plate 22, and the rear end of the limiting plate 24 is connected to the output end of the limiting cylinder 23, so as to realize the stable placement and precise adjustment of the internal parts on the supporting platform 1 and the extension platform 11; specifically, the design of the rotating seat 21 enables the internal parts to rotate flexibly to meet the assembly requirements at different angles; the supporting plates 22 are symmetrically arranged on the top of the rotating seat 21 to ensure that the internal parts remain balanced during the rotation process; the coordinated use of the limiting cylinders 23 and the limiting plates 24 can quickly lock the internal parts after they are placed in place to prevent position displacement caused by external interference, thereby improving assembly accuracy and efficiency.

[0044] refer to Figure 2 In the present embodiment, more specifically, both sides of the support platform 1 are penetrated with adjustment grooves 12, and an adjustment cylinder 13 is arranged in the adjustment grooves 12. An adjustment block 14 is slidably connected in the adjustment grooves 12, and one end of the adjustment block 14 is connected to one side of the extension platform 11, and the other end is connected to the output end of the adjustment cylinder 13. The adjustment grooves 12 and the adjustment cylinder 13 on both sides of the support platform 1 can realize the rapid adjustment of the extension platform 11, so that the assembly mechanism is suitable for large container internals of different sizes; the coordinated use of the adjustment block 14 and the adjustment cylinder 13 ensures the smooth movement and precise positioning of the extension platform 11, and improves the assembly efficiency and stability.

[0045] refer to Figure 2, in this embodiment, more specifically, a driving motor 5 is provided inside the support platform 1 and the extension platform 11 and corresponding to the lower side of the rotating base 21. The output end of the driving motor 5 is connected to the bottom of the rotating base 21, which improves the loading and unloading efficiency and flexibility of the internal components, reduces the complexity and intensity of manual operations, and further enhances the safety and reliability of the assembly operation.

[0046] In this embodiment, more specifically, the lifting assembly 3 includes a lifting frame 31, a moving frame 32, a winding drum 33 and a lifting rope 34. The lifting frame 31 is arranged on the top of the support platform 1. One side of the bottom of the moving frame 32 is arranged on the top of the lifting frame 31. The winding drum 33 is rotatably arranged on one side of the top of the moving frame 32. Driving motors 5 are arranged on the moving frame 32, and the output end of the driving motor 5 is connected to one side of the winding drum 33 for driving the winding drum 33 to rotate. A moving groove 321 is arranged through the middle of the moving frame 32. One end of the lifting rope 34 is wound around the winding drum 33, and the other end passes through the moving groove 321 and is connected to the top of the combined frame 41 as the connecting part of the lifting assembly 3. This lifting assembly 3 can achieve precise positioning and flexible adjustment of the internal components; specifically, the adjusting frame 43 is arranged on the top of the support platform 1, ensuring the stability of the lifting assembly 3; one side of the bottom of the moving frame 32 is arranged on the top of the lifting frame 31, so that the moving frame 32 can move horizontally along the lifting frame 31 to adapt to the internal component assembly requirements at different positions; the winding drum 33 is rotatably arranged on one side of the top of the moving frame 32, and the length of the lifting rope 34 can be adjusted by controlling the rotation of the winding drum 33 to achieve height adjustment.

[0047] Reference Figure 2 , in this embodiment, more specifically, the lifting frame 31 includes a fixed disk 311, a rotating column 312, a lifting cylinder 313 and a connecting column 314. The fixed disk 311 is fixedly connected to the top of the support platform 1. The rotating column 312 is rotatably connected to the fixed disk 311. Driving motors 5 are arranged at the fixed disk 311, and the output end of the driving motor 5 is connected to the bottom of the rotating column 312 to drive the rotating column 312 to rotate. The bottom of the lifting cylinder 313 is arranged on the top of the rotating column 312. The connecting column 314 is arranged on the output end of the lifting cylinder 313. The top of the connecting column 314 is connected to one side of the bottom of the moving frame 32, which can achieve multi-degree-of-freedom adjustment of the adjusting frame 43, not only improving the flexibility of the lifting assembly 3, but also enhancing the ability of the equipment to adapt to operations at different heights and positions, and ensuring the stability and safety of the internal components during lifting.

[0048] Reference Figure 1, in this embodiment, more specifically, a slider 322 is provided in the moving groove 321, and a pulley 323 is provided on the slider 322. The pulley 323 supports the outer surface of the lifting rope 34. The pulley 323 on the slider 322 can effectively reduce the friction of the lifting rope 34 in the moving groove 321, improve the service life and operating efficiency of the lifting rope 34, and at the same time ensure that the lifting process is more stable and reliable. Moreover, it can cooperate with the extended length of the lifting rope 34 to change the horizontal position of the combined frame 41 so as to lift and assemble the internal parts in different horizontal directions.

[0049] In this embodiment, more specifically, a moving cylinder 324 is provided on the moving frame 32. A connecting plate 325 is provided at the output end of the moving cylinder 324. The connecting plate 325 is connected to the slider 322 to horizontally move the position of the slider 322, thereby changing the horizontal length of the lifting rope 34 on the moving frame 32 and adjusting the position of the combined frame 41.

[0050] Reference Figure 3 , in this embodiment, more specifically, a buffer assembly 6 is provided on the tops of the support table 1 and the extension table 11. The buffer assembly 6 includes a plurality of telescopic rods 61, springs 62 and buffer seats 63. The tail ends of the telescopic rods 61 are connected to the bottoms of the support table 1 and the extension table 11. The springs 62 are sleeved on the telescopic ends of the telescopic rods 61. The buffer seats 63 are connected to the telescopic ends of the telescopic rods 61, which can effectively absorb and disperse the impact force generated during the handling of the internal parts, improve the stability of the internal parts, reduce the risk of damage caused by vibration or impact, and thus ensure the safety and assembly accuracy of the internal parts. At the same time, the design of the buffer assembly 6 can also extend the service life of the equipment and reduce the maintenance cost.

[0051] Reference Figure 3 , in this embodiment, more specifically, a plurality of driving wheels 64 are provided at the bottom of the buffer seat 63. The plurality of driving wheels 64 are arranged at equal intervals at the bottom of the buffer seat 63, which can ensure that the entire assembly mechanism moves more smoothly.

[0052] The implementation principle of an assembly mechanism for large container internal parts in the embodiment of the present application is as follows: Through the combined design of the support table 1 and the extension table 11, it can adapt to internal parts of different sizes and shapes. Through the loading and unloading component 2, the internal parts can be conveniently loaded, unloaded and positioned. The design of the lifting frame 31 and the moving frame 32 of the lifting component 3 enables the lifting rope 34 to flexibly adjust its position to adapt to internal parts of different heights and distances. Through the stabilizing component 4, the internal parts can be effectively prevented from shaking or tilting during the lifting process, ensuring the accuracy and safety of the assembly.

[0053] The above are all the preferred embodiments of the present application. The protection scope of the present application is not limited by this. Therefore, all equivalent changes made according to the structure, shape and principle of the present application should be covered within the protection scope of the present application.

Claims

1. An assembly mechanism for internals of a large container, characterized in that, Including: A support platform (1), with extensible platforms (11) adjustably arranged on both sides of the support platform (1); A plurality of loading components (2), symmetrically arranged in pairs on the top of the support platform (1) and the extensible platforms (11), and the loading components (2) carry internal parts for assembly; A lifting component (3) for transferring and assembling the internal parts from the loading components (2), and the lifting component (3) is arranged on the top of the support platform (1); And A stabilizing component (4) for stabilizing the internal parts during lifting. The stabilizing component (4) includes a combined frame (41), adjusting rods (42), a plurality of adjusting frames (43), support rods (44) and a stabilizing plate (45). The top of the combined frame (41) is connected to the connecting part of the lifting component (3). The adjusting rods (42) respectively penetrate and are fixedly arranged on both sides of the combined frame (41). The adjusting frames (43) are slidably connected to the adjusting rods (42). A plurality of the support rods (44) are respectively arranged on the combined frame (41) and the adjusting frames (43), and two support rods (44) are symmetrically arranged on the combined frame (41) and the adjusting frames (43). One side of the top of the stabilizing plate (45) is rotatably connected to the bottom of the support rod (44) to form a stable support for the bottom of the internal parts.

2. The assembly mechanism for large container internals according to claim 1, characterized in that: The loading component (2) includes a plurality of rotating seats (21), support plates (22), limit cylinders (23) and limit plates (24). A plurality of the rotating seats (21) are respectively rotatably arranged on the support platform (1) and the extensible platforms (11). A plurality of the support plates (22) are symmetrically arranged on the top of the rotating seats (21). The limit cylinders (23) are arranged inside the support plates (22). The rear end of the limit plate (24) is connected to the output end of the limit cylinder (23).

3. The assembly mechanism for the internals of a large container according to claim 1, characterized in that: Adjusting grooves (12) are respectively penetrated and arranged on both sides of the support platform (1). Adjusting cylinders (13) are arranged in the adjusting grooves (12). Adjusting blocks (14) are slidably connected in the adjusting grooves (12). One end of the adjusting block (14) is connected to one side of the extensible platform (11), and the other end is connected to the output end of the adjusting cylinder (13).

4. The assembly mechanism for internal components of a large container according to claim 2, characterized in that: Drive motors (5) are arranged inside the support platform (1) and the extensible platforms (11) and corresponding to the lower sides of the rotating seats (21). The output ends of the drive motors (5) are connected to the bottoms of the rotating seats (21).

5. The assembly mechanism for internal parts of a large container according to claim 1, characterized in that: The lifting assembly (3) includes a lifting frame (31), a moving frame (32), a winding cylinder (33) and a lifting rope (34). The lifting frame (31) is arranged on the top of the support platform (1). One side of the bottom of the moving frame (32) is arranged on the top of the lifting frame (31). The winding cylinder (33) is rotatably arranged on one side of the top of the moving frame (32). A moving groove (321) is arranged through the middle of the moving frame (32). One end of the lifting rope (34) is wound around the winding cylinder (33), and the other end passes through the moving groove (321) and is connected to the top of the combined frame (41) as the connecting part of the lifting assembly (3).

6. The assembly mechanism for internal components of a large container according to claim 5, characterized in that: The lifting frame (31) includes a fixed disk (311), a rotating column (312), a lifting cylinder (313) and a connecting column (314). The fixed disk (311) is fixedly connected to the top of the support platform (1). The rotating column (312) is rotatably connected to the fixed disk (311). The bottom of the lifting cylinder (313) is arranged on the top of the rotating column (312). The connecting column (314) is arranged on the output end of the lifting cylinder (313). The top of the connecting column (314) is connected to one side of the bottom of the moving frame (32).

7. An assembly mechanism for large container internals according to claim 5, characterized in that: A slider (322) is arranged in the moving groove (321). A pulley (323) is arranged on the slider (322). The pulley (323) supports the outer surface of the lifting rope (34).

8. The assembly mechanism for the internals of a large container according to claim 7, characterized in that: A moving cylinder (324) is arranged on the moving frame (32). A connecting plate (325) is arranged on the output end of the moving cylinder (324). The connecting plate (325) is connected to the slider (322).

9. The assembly mechanism for internal parts of a large container according to claim 1, characterized in that: A buffer assembly (6) is arranged on the tops of the support platform (1) and the extension platform (11). The buffer assembly (6) includes a plurality of telescopic rods (61), springs (62) and buffer seats (63). The tail ends of the telescopic rods (61) are connected to the bottoms of the support platform (1) and the extension platform (11). The springs (62) are sleeved on the telescopic ends of the telescopic rods (61). The buffer seats (63) are connected to the telescopic ends of the telescopic rods (61).

10. The assembly mechanism for large container internals according to claim 9, characterized in that: A plurality of driving wheels (64) are arranged at the bottom of the buffer seat (63). The plurality of driving wheels (64) are arranged at equal intervals at the bottom of the buffer seat (63).

Citation Information

Patent Citations

  • Supporting platform for boiler auxiliary machine installation

    CN118992899A

  • Parts box taking-out method and device thereof

    JP1995133023A