Anti-vibration and anti-shake type material carrying device

By designing a vibration-resistant and shock-absorbing material handling device, and utilizing buffer and compression components to absorb vibration, the problem of mineral spillage by mining vehicles in rugged terrain has been solved, thus improving transportation efficiency and safety.

CN224211109UActive Publication Date: 2026-05-08CHANGSHU TONGRUI LOGISTICS EQUIP CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
CHANGSHU TONGRUI LOGISTICS EQUIP CO LTD
Filing Date
2025-05-09
Publication Date
2026-05-08

AI Technical Summary

Technical Problem

When mining vehicles operate on rugged terrain, the minerals in the truck bed are easily spilled due to violent shaking, resulting in resource waste, safety hazards, and reduced transportation efficiency.

Method used

A vibration-resistant and shock-proof material handling device was designed, comprising a buffer component, a squeezing component, and a pulling component. The buffer component absorbs vibration, the squeezing component reduces the vibration amplitude of the storage box, and the pulling component facilitates unloading.

Benefits of technology

It effectively reduces the loss of minerals during transportation, improving transportation efficiency and safety.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224211109U_ABST
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Abstract

The utility model discloses an anti-vibration and anti-shake material carrying device, which relates to the technical field of carrying devices and comprises a bottom plate and a storage component. The right end of the upper side of the bottom plate is provided with an extrusion assembly and two corresponding buffering assemblies, the extrusion assembly is located between the two buffering assemblies and matched with the two buffering assemblies, and the left ends of the front side and the rear side of the bottom plate are provided with two corresponding pulling assemblies; the storage assembly comprises base plates, first springs, a storage box and a baffle, the two corresponding base plates are fixed to the left end of the upper side of the bottom plate, the first springs are fixed to the upper ends of the base plates, the storage box is fixed to the upper ends of the two first springs, an opening is formed in the left side of the storage box, and a guide groove is formed in the left end of the interior of the storage box; and the interior of the guide groove is slidably connected with a baffle, and the extrusion assembly is connected with the right end of the storage box, so that the minerals can be prevented from falling off during transportation.
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Description

Technical Field

[0001] This utility model relates to the field of material handling device technology, specifically to a vibration-resistant and anti-shaking material handling device. Background Technology

[0002] A mine is a production unit that independently engages in ore extraction within a specific mining area. It typically consists of one or more mining workshops (such as mine shafts or open-pit mines) and supporting auxiliary facilities. Most mines also have ore dressing plants. Depending on the type of ore, mines can be classified as coal mines, gold mines, and non-gold mines. In mining operations, engineering vehicles are the main means of material transportation, responsible for transporting the extracted minerals from the mining area to the outside. However, the complex terrain of mining environments often presents numerous challenges to transportation operations.

[0003] When existing mining vehicles operate on rugged terrain, the minerals in the truck bed are easily spilled due to severe jolting, which not only wastes resources but may also cause safety hazards. These technical shortcomings restrict the efficiency of mining transportation and urgently need to be improved. To address this, we propose a vibration-resistant and anti-shaking material handling device. Utility Model Content

[0004] The technical problem to be solved by this utility model is to overcome the existing defects and provide a vibration-resistant and anti-shaking material handling device that can prevent minerals from falling during transportation and can effectively solve the problems in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a vibration-resistant and anti-shaking material handling device, comprising a base plate and a storage component;

[0006] Base plate: A compression component and two corresponding buffer components are installed on the upper right side. The compression component is located between the two buffer components and cooperates with the two buffer components. Two corresponding tension components are installed on the left side of the front and rear sides of the base plate.

[0007] Storage assembly: includes a chassis, a first spring, a storage box, and a baffle. Two corresponding chassis are fixed to the upper left end of the chassis. A first spring is fixed to the upper end of the chassis. A storage box is fixed to the upper end of the two first springs. An opening is provided on the left side of the storage box. A guide groove is provided on the left end of the storage box. A baffle is slidably connected inside the guide groove. The extrusion assembly is connected to the right end of the storage box. The upper ends of two pulling assemblies are fixed to the left ends of the front and rear sides of the storage box, respectively. The mineral is stored by setting up the storage assembly.

[0008] Furthermore, the buffer assembly includes a fixed plate, a groove, a damping block, a connecting rod, a connecting block, a second spring, an anti-slip block, and an anti-slip plate. Two corresponding fixed plates are fixed to the upper right end of the base plate. A groove is formed on the right side of the fixed plate, and a damping block is slidably connected inside the groove. A connecting rod is fixed to the right side of the damping block, and a connecting block is fixed to the right end of the connecting rod. A second spring is fixed to the left side of the connecting block, and the left end of the second spring is fixed to the right side of the fixed plate. An anti-slip block is fixed to the lower side of the connecting block. Two corresponding anti-slip plates are fixed to the upper right end of the base plate, and the two anti-slip plates fit into the two anti-slip blocks. The buffer assembly buffers the vibrations generated during mineral transportation.

[0009] Furthermore, the extrusion assembly includes a support plate, a rotating shaft, a connecting disc, an extrusion block, and a connecting ring. Two corresponding support plates are fixed to the right end of the upper side of the base plate. A rotating hole is opened in the middle of the support plate, and a rotating shaft is rotatably connected inside the rotating hole. Two corresponding connecting discs are fixed to the front and rear ends of the rotating shaft. The connecting block fits into its corresponding connecting disc. An extrusion block is fixed to the upper end of the circumferential surface of the connecting disc. Two corresponding connecting rings are fixed to the circumferential surface of the rotating shaft. The two connecting rings are fixed to the right end of the lower side of the storage box. The extrusion assembly is used to extrude the connecting block.

[0010] Furthermore, the pulling assembly includes a limiting frame, a threaded post, a pull rope, and a fixing block. Two corresponding limiting frames are fixed to the left ends of the front and rear sides of the base plate. The upper side of the limiting frame is provided with a threaded hole, and the threaded post is threadedly connected to the inside of the threaded hole. A pull rope is fixed to the upper end of the threaded post, and a turntable is fixed to the upper end of the pull rope. A fixing block is rotatably connected to the upper end of the turntable. The two fixing blocks are respectively fixed to the left ends of the front and rear sides of the storage box. The pulling assembly facilitates unloading.

[0011] Furthermore, four corresponding casters are installed on the underside of the base plate, and brake plates are installed on the sides of the casters. The casters and brake plates facilitate the movement of the base plate.

[0012] Furthermore, a fixing strip is fixed to the right side of the base plate, and two corresponding handles are fixed to the right ends of the front and rear sides of the fixing strip, allowing the user to move the base plate by pushing the handles.

[0013] Compared with the prior art, the beneficial effects of this utility model are as follows: This vibration-resistant and anti-shaking material handling device has the following advantages:

[0014] By incorporating a buffer assembly, the storage box, during use, will compress two primary springs as the road undulates, causing the rotating shaft to rotate. This rotation of the shaft drives two connecting discs, which in turn rotate two compression blocks, moving the connecting blocks. After compression, the two connecting blocks will move two anti-slip blocks along two anti-slip plates, initially absorbing the vibrations. Simultaneously, as the connecting blocks move, they will also move two damping blocks along the inner walls of two sliding grooves, further absorbing the vibrations. This effectively reduces the vibration amplitude of the storage box, preventing minerals inside from falling out. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the front structure of this utility model;

[0016] Figure 2 This is a schematic diagram of the buffer component structure of this utility model;

[0017] Figure 3 This is a schematic diagram of the tension component structure of this utility model.

[0018] In the diagram: 1. Base plate, 2. Storage assembly, 21. Chassis, 22. First spring, 23. Storage box, 24. Baffle, 3. Buffer assembly, 31. Fixing plate, 32. Slide groove, 32. Damping block, 34. Connecting rod, 35. Connecting block, 36. Second spring, 37. Anti-slip block, 38. Anti-slip plate, 4. Extrusion assembly, 41. Support plate, 42. Rotary shaft, 43. Connecting disc, 44. Extrusion block, 45. Connecting ring, 5. Pulling assembly, 51. Limiting bracket, 52. Threaded column, 53. Pull rope, 54. Fixing block, 6. Caster wheel, 7. Brake plate, 8. Fixing strip, 9. Handle. Detailed Implementation

[0019] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0020] Please see Figure 1-3 This embodiment provides a technical solution: a vibration-resistant and anti-shaking material handling device, including a base plate 1 and a storage component 2;

[0021] Base plate 1: A compression assembly 4 and two corresponding buffer assemblies 3 are installed on the upper right side. The compression assembly 4 is located between the two buffer assemblies 3 and cooperates with the two buffer assemblies 3. Two corresponding tension assemblies 5 are installed on the left side of the front and rear sides of the base plate 1. The buffer assembly 3 includes a fixed plate 31, a slide 32, a damping block 32, a connecting rod 34, a connecting block 35, a second spring 36, an anti-slip block 37, and an anti-slip plate 38. Two corresponding fixed plates 31 are fixed on the upper right side of the base plate 1. A slide 32 is opened on the right side of the fixed plate 31. The internal sliding connection includes a damping block 32. A connecting rod 34 is fixed to the right side of the damping block 32. A connecting block 35 is fixed to the right end of the connecting rod 34. A second spring 36 is fixed to the left side of the connecting block 35. The left end of the second spring 36 is fixed to the right side of the fixing plate 31. An anti-slip block 37 is fixed to the lower side of the connecting block 35. Two corresponding anti-slip plates 38 are fixed to the upper right side of the base plate 1. The two anti-slip plates 38 are in contact with the two anti-slip blocks 37. The extrusion assembly 4 includes a support plate 41, a rotating shaft 42, a connecting plate 43, an extrusion block 44, and a connecting ring 45. The upper side of the base plate 1... Two corresponding support plates 41 are fixed at the right end. A rotating hole is opened in the middle of the support plate 41. A rotating shaft 42 is rotatably connected inside the rotating hole. Two corresponding connecting discs 43 are fixed at the front and rear ends of the rotating shaft 42. A connecting block 35 fits into its corresponding connecting disc 43. A pressing block 44 is fixed at the upper end of the circumferential surface of the connecting disc 43. Two corresponding connecting rings 45 are fixed on the circumferential surface of the rotating shaft 42. The two connecting rings 45 are fixed at the right end of the lower side of the storage box 23. The pulling assembly 5 includes a limiting frame 51, a threaded column 52, a pull rope 53, and a fixing block 54. The base plate Two corresponding limiting frames 51 are fixed on the left end of the front and rear sides. The upper side of the limiting frame 51 is provided with a threaded hole. The threaded hole is connected to a threaded post 52. The upper end of the threaded post 52 is fixed with a pull rope 53. The upper end of the pull rope 53 is fixed with a turntable. The upper end of the turntable is rotatably connected with a fixing block 54. The two fixing blocks 54 are respectively fixed on the left end of the front and rear sides of the storage box 23. The pulling component 5 is set to facilitate unloading. The squeezing component 4 is set to squeeze the connecting block 35. The buffer component 3 is set to buffer the vibration generated during the mineral transportation process.

[0022] Storage component 2 includes a chassis 21, a first spring 22, a storage box 23, and a baffle 24. Two corresponding chassis 21 are fixed to the upper left end of the chassis 1. The upper end of the chassis 21 is fixed with a first spring 22. The upper end of the two first springs 22 is fixed with a storage box 23. An opening is provided on the left side of the storage box 23. A guide groove is provided on the left end of the storage box 23. The baffle 24 is slidably connected inside the guide groove. The extrusion component 4 is connected to the right end of the storage box 23. The upper ends of the two pulling components 5 are respectively fixed to the left ends of the front and rear sides of the storage box 23. The mineral is stored by setting up the storage component 2.

[0023] Among them: four corresponding casters 6 are installed on the lower side of the base plate 1, and brake plates 7 are installed on the side of the casters 6. The casters 6 and brake plates 7 facilitate the movement of the base plate 1.

[0024] Among them: a fixing strip 8 is fixed on the right side of the base plate 1, and two corresponding handles 9 are fixed on the right ends of the front and rear sides of the fixing strip 8. The user can push the base plate 1 to move by using the handles 9.

[0025] The working principle of the anti-vibration and anti-shaking material handling device provided by this utility model is as follows: First, the mineral is injected into the storage box 23 for storage. Then, the bottom plate 1 is moved by the handle 9, which moves the storage box 23 to handle the mineral. During the handling process, the storage box 23 will squeeze the two first springs 22 as the road undulates, causing the rotating shaft 42 to rotate. The rotation of the rotating shaft 42 drives the two connecting discs 43 to rotate. The rotation of the two connecting discs 43 drives the two extrusion blocks 44 to rotate, which moves the two connecting blocks 35. After extrusion, the two connecting blocks 35 will drive the two anti-slip blocks 37. Moving along the two anti-slip plates 38 initially absorbs the vibrations. At the same time, as the two connecting blocks 35 move, they also drive the two damping blocks 32 to move along the inner walls of the two sliding grooves 32, which further absorbs the vibrations. After absorption, the vibration amplitude of the storage box 32 can be effectively reduced, preventing the minerals inside the storage box 23 from falling out. After the minerals are moved to the appropriate position, the two threaded columns 52 are rotated at the same time, causing the two pull ropes 42 to move downward, driving the two fixing blocks 54 downward, so that the left end of the storage box 23 tilts. After tilting, the baffle 24 can be pulled out for quick unloading.

[0026] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made based on the content of this utility model specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.

Claims

1. A vibration-resistant and shock-proof material handling device, characterized in that: Includes a base plate (1) and a storage assembly (2); Base plate (1): A compression component (4) and two corresponding buffer components (3) are installed on the upper right side. The compression component (4) is located between the two buffer components (3). The compression component (4) cooperates with the two buffer components (3). Two corresponding tension components (5) are installed on the left side of the front and rear sides of the base plate (1). Storage component (2): includes a chassis (21), a first spring (22), a storage box (23) and a baffle (24). Two corresponding chassis (21) are fixed on the upper left side of the chassis (1). The upper end of the chassis (21) is fixed with a first spring (22). The upper end of the two first springs (22) is fixed with a storage box (23). An opening is provided on the left side of the storage box (23). A guide groove is opened on the left end of the storage box (23). A baffle (24) is slidably connected inside the guide groove. The squeezing component (4) is connected to the right end of the storage box (23). The upper ends of the two pulling components (5) are fixed on the left ends of the front and rear sides of the storage box (23) respectively.

2. The anti-vibration and anti-shaking material handling device according to claim 1, characterized in that: The buffer assembly (3) includes a fixed plate (31), a slide groove (32), a damping block (32), a connecting rod (34), a connecting block (35), a second spring (36), an anti-slip block (37), and an anti-slip plate (38). Two corresponding fixed plates (31) are fixed to the right side of the upper side of the base plate (1). A slide groove (32) is provided on the right side of the fixed plate (31). A damping block (32) is slidably connected inside the slide groove (32). The right side of the damping block (32) is... A connecting rod (34) is fixed to the side, and a connecting block (35) is fixed to the right end of the connecting rod (34). A second spring (36) is fixed to the left side of the connecting block (35). The left end of the second spring (36) is fixed to the right side of the fixing plate (31). An anti-slip block (37) is fixed to the lower side of the connecting block (35). Two corresponding anti-slip plates (38) are fixed to the right end of the upper side of the base plate (1). The two anti-slip plates (38) are in contact with the two anti-slip blocks (37).

3. The anti-vibration and anti-shaking material handling device according to claim 2, characterized in that: The extrusion assembly (4) includes a support plate (41), a rotating shaft (42), a connecting plate (43), an extrusion block (44), and a connecting ring (45). Two corresponding support plates (41) are fixed on the right side of the upper side of the base plate (1). A rotating hole is opened in the middle of the support plate (41). The rotating shaft (42) is rotatably connected inside the rotating hole. Two corresponding connecting plates (43) are fixed at the front and rear ends of the rotating shaft (42). The connecting block (35) fits against the corresponding connecting plate (43). The extrusion block (44) is fixed at the upper end of the circumferential surface of the connecting plate (43). Two corresponding connecting rings (45) are fixed on the circumferential surface of the rotating shaft (42). The two connecting rings (45) are fixed at the right side of the lower side of the storage box (23).

4. The anti-vibration and anti-shaking material handling device according to claim 1, characterized in that: The pulling assembly (5) includes a limiting frame (51), a threaded post (52), a pull rope (53), and a fixing block (54). Two corresponding limiting frames (51) are fixed on the left ends of the front and rear sides of the base plate (1). The upper side of the limiting frame (51) is provided with a threaded hole. The threaded post (52) is threaded inside the threaded hole. The upper end of the threaded post (52) is fixed with a pull rope (53). The upper end of the pull rope (53) is fixed with a turntable. The upper end of the turntable is rotatably connected with a fixing block (54). The two fixing blocks (54) are respectively fixed on the left ends of the front and rear sides of the storage box (23).

5. The anti-vibration and anti-shaking material handling device according to claim 1, characterized in that: Four corresponding casters (6) are installed on the lower side of the base plate (1), and brake plates (7) are installed on the side of the casters (6).

6. The anti-vibration and anti-shaking material handling device according to claim 1, characterized in that: A fixing strip (8) is fixed on the right side of the base plate (1), and two corresponding handles (9) are fixed on the right ends of the front and rear sides of the fixing strip (8).