Non-driven self-returning type transportation device for side slope

By designing a non-driven self-return transportation device for slopes, using inclined mounting seats and conveying components, the problem of difficult transportation of materials to the slope is solved in traditional transportation methods, and the effect of reducing labor intensity, improving work efficiency and safety is achieved, and energy-saving and environmentally friendly.

CN223031988UActive Publication Date: 2025-06-27ANHUI SURVEY & DESIGN INST OF WATER CONSERVANCY & HYDROPOWER
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Patent Information

Application Number
CN202422106384.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-29
Publication Date
2025-06-27
Estimated Expiration
2034-08-29

AI Technical Summary

Technical Problem

During slope protection construction, due to geographical factors, environmental factors and transportation road restrictions, traditional vehicle transportation methods are difficult to transport materials to the slope, resulting in manual transportation, increasing labor intensity and danger and reducing work efficiency.

Method used

A non-driven self-returning transport device for slopes is designed, including two sets of mounting seats and conveying components arranged in an upward and downward inclined manner. The conveying assembly consists of a conveying cylinder rotatably connected by a bearing, a sliding circulation rope and a support frame arranged between the mounting seats. The support frame has a U-shaped frame and a limiting wheel. The circulating rope is arranged on the surface of the limiting wheel, and the suspension fixing mechanism is arranged up and down along the circulation rope.

Benefits of technology

Through this transportation device, no manual handling is required, labor intensity is reduced, work efficiency is improved, safety is increased, and external driving is not required, which can achieve energy-saving effects and improve the practicality of the device.

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Abstract

The utility model relates to the technical field of transportation devices, and discloses a non-driven self-returning type transportation device for a side slope, which comprises two groups of mounting seats which are arranged in an up-down inclined manner, and a conveying assembly is arranged between the two groups of mounting seats. The conveying assembly comprises conveying cylinders rotationally connected to the mounting bases through bearings, a circulating rope arranged between the two conveying cylinders in a winding and sliding mode and a supporting frame arranged between the two mounting bases, a U-shaped frame is arranged in the supporting frame, and limiting wheels which are symmetrically arranged are rotationally connected to the surface of the U-shaped frame through bearings. Manual carrying is not needed through the conveying assembly, the labor intensity of workers is relieved, the problem that the slope slips due to manual carrying is solved, the safety of the workers is improved, the working efficiency is improved, external driving is not needed, the energy-saving effect is achieved, the practicability of the device is improved, and the actual use requirement is met.
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Description

Technical Field

[0001] The utility model relates to the technical field of transportation devices, in particular to a slope non-driven self-return transportation device. Background Technique

[0002] During the slope protection construction process, due to geographical factors, environmental factors, and transportation road restrictions, traditional vehicle transportation methods often have difficulty transporting the required materials to the slope. Currently, the common practice is generally manual handling, which undoubtedly increases the labor intensity of workers, reduces work efficiency, and when the slope is relatively steep, it is easy to cause workers to slip, increasing the degree of danger and making it difficult to meet the actual use requirements. Therefore, we propose a slope non-driven self-return transportation device to solve the above existing problems. Content of the Utility Model

[0003] Aiming at the deficiencies of the prior art, the utility model provides a slope non-driven self-return transportation device, which solves the problem that during the slope protection construction process, materials are generally transported by manual handling, undoubtedly increasing the labor intensity of workers and reducing work efficiency.

[0004] To achieve the above objectives, the utility model is realized through the following technical solutions: A slope non-driven self-return transportation device includes two sets of mounting seats arranged obliquely up and down. A conveying component is installed between the two sets of mounting seats. The conveying component includes a conveying cylinder rotatably connected to the mounting seat through a bearing, a circulating rope wound and sliding between the two conveying cylinders, and a support frame arranged between the two sets of mounting seats. A U-shaped frame is arranged inside the support frame. Symmetrically arranged limiting wheels are rotatably connected to the surface of the U-shaped frame through bearings. The circulating rope is arranged in a circular closed shape and is wound around the surfaces of the two limiting wheels. Two sets of suspension fixing mechanisms are installed on the circulating rope, and the two sets of suspension fixing mechanisms are arranged obliquely up and down along the circulating rope.

[0005] Preferably, symmetrically arranged fixing pins are fixed on one side of the mounting seat, and a guiding and limiting rope is fixed between the two obliquely up and down fixing pins.

[0006] Preferably, a limiting rod is fixed on the surface of the U-shaped frame. The limiting rod is located above the two limiting wheels and is used to limit the circulating rope. The guiding and limiting rope is fixedly connected to the limiting rod.

[0007] Preferably, the suspension fixing mechanism includes a rectangular plate arranged on one side of the guiding and limiting rope. A sliding wheel is rotatably connected to one side of the rectangular plate through a rotating shaft. The sliding wheel slides on the surface of the guiding and limiting rope. The rectangular plate is fixedly connected to the circulating rope through a fixing seat.

[0008] Preferably, two groups of fixed pins arranged symmetrically are fixed at the bottom end of the support frame.

[0009] Preferably, a fixing plate is fixed inside the support frame. A threaded rod is threadedly connected inside the fixing plate through a threaded hole opened therein. The top end of the threaded rod is rotatably connected to a U-shaped frame through a bearing, and a rotating block is fixed at the bottom end of the threaded rod. The rotating block is designed in an equilateral hexagon structure.

[0010] Preferably, a moving groove adapted to the U-shaped frame is opened at the top of the support frame. The U-shaped frame and the support frame are slidably connected through this moving groove.

[0011] Beneficial effects

[0012] The utility model provides a slope non-driven self-return transportation device. Compared with the prior art, the following beneficial effects are achieved:

[0013] For the slope non-driven self-return transportation device, through the conveying component, it is not necessary to carry by manual labor, which reduces the labor intensity of the staff. Moreover, it solves the problem of slipping due to manual carrying on steep slopes, increases the safety of the staff, improves the work efficiency, and does not require external drive, thus achieving an energy-saving effect, improving the practicability of the device, and meeting the actual use requirements. Description of the drawings

[0014] Figure 1 is a schematic diagram of the overall structure of the utility model;

[0015] Figure 2 is a schematic diagram of the suspension fixing mechanism of the utility model;

[0016] Figure 3 is a schematic diagram of the connecting parts such as the support frame and the fixing plate of the utility model.

[0017] In the figure: 1, mounting seat; 2, conveying component; 201, conveying cylinder; 202, circulating rope; 203, support frame; 204, fixed pin; 205, U-shaped frame; 206, rotating block; 207, threaded rod; 208, limiting wheel; 209, limiting rod; 210, fixing plate; 211, fixing pin; 212, guiding and limiting rope; 3, suspension fixing mechanism; 301, rectangular plate; 302, sliding wheel; 303, hook. Detailed implementation manners

[0018] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.

[0019] As Figure 1 shown:

[0020] A slope non-driven self-return transportation device includes two sets of mounting seats 1 arranged obliquely up and down.

[0021] In this implementation: To solve the technical problems existing in this prior art, as disclosed in the background art above, "During the slope protection construction process, due to geographical factors, environmental factors, and the limitations of transportation roads, traditional vehicle transportation methods often have difficulty transporting the required materials to the slope. Currently, the common practice is generally manual handling, which undoubtedly increases the labor intensity of the staff, reduces work efficiency, and when the slope is relatively steep, it is easy to cause the staff to slip and increase the degree of danger." In combination, this problem is obviously a real and relatively difficult problem to solve. In view of this, to solve this technical problem, a conveying component 2 is added to this application document.

[0022] As Figures 1 - 3 shown:

[0023] A conveying component 2 is installed between the two sets of mounting seats 1. The conveying component 2 includes a conveying cylinder 201 rotatably connected to the mounting seat 1 through a bearing, a circulating rope 202 wound and sliding between the two conveying cylinders 201, and a support frame 203 arranged between the two sets of mounting seats 1. A U-shaped frame 205 is arranged inside the support frame 203. Symmetrically arranged limiting wheels 208 are rotatably connected to the surface of the U-shaped frame 205 through bearings. The circulating rope 202 is arranged in a circular closed shape and is wound around the surfaces of the two limiting wheels 208. Two sets of suspension fixing mechanisms 3 are installed on the circulating rope 202. The two sets of suspension fixing mechanisms 3 are arranged obliquely up and down along the circulating rope 202. A symmetrically arranged fixing pin 211 is fixed on one side of the mounting seat 1. A guiding and limiting rope 212 is fixed between the two obliquely up and down fixing pins 211;

[0024] A limiting rod 209 is fixed on the surface of the U-shaped frame 205. The limiting rod 209 is located above the two limiting wheels 208 and is used to limit the circulating rope 202. The guiding and limiting rope 212 is fixedly connected to the limiting rod 209;

[0025] The hanging and fixing mechanism 3 includes a rectangular plate 301 arranged on one side of the guiding and limiting rope 212. One side of the rectangular plate 301 is rotatably connected with a sliding wheel 302 through a rotating shaft. The sliding wheel 302 slides on the surface of the guiding and limiting rope 212. The rectangular plate 301 is fixedly connected with the circulating rope 202 through a fixing seat.

[0026] Specifically, two groups of fixing pins 204 arranged symmetrically are fixed at the bottom end of the support frame 203, which is convenient for quickly inserting the support frame 203 into the soil for preliminary support and fixing, and facilitating the subsequent fixing process of the support frame 203.

[0027] Furthermore, a fixing plate 210 is fixed inside the support frame 203. A threaded rod 207 is threadedly connected inside the fixing plate 210 through a threaded hole opened therein. The top end of the threaded rod 207 is rotatably connected with a U-shaped frame 205 through a bearing. A rotating block 206 is fixed at the bottom end of the threaded rod 207. The rotating block 206 is designed in an equilateral hexagon structure. When the circulating rope 202 and the guiding and limiting rope 212 are in a fluffy state and affect the material conveyance, by rotating the threaded rod 207, and there is a rotating block 206 arranged on the threaded rod 207, it is thus convenient to use a tool to hold the rotating block 206 to rotate the threaded rod 207, which is more labor-saving and convenient for rotating the threaded rod 207. Through the rotation of the threaded rod 207, since the threaded rod 207 is threadedly connected with the fixing plate 210, the U-shaped frame 205 is driven to move. As the U-shaped frame 205 moves upward, the limiting wheel 208 and the limiting rod 209 are driven to move upward synchronously, and then the circulating rope 202 and the guiding and limiting rope 212 are driven to move upward. By adjusting the threaded rod 207, the circulating rope 202 and the guiding and limiting rope 212 are always in a taut state, improving the material conveyance effect and preventing the sliding wheel 302 from falling off the guiding and limiting rope 212.

[0028] Furthermore, a moving groove adapted to the U-shaped frame 205 is opened at the top of the support frame 203. The U-shaped frame 205 and the support frame 203 are slidably connected through this moving groove. The U-shaped frame 205 slides in the moving groove opened in the support frame 203. Through this moving groove, a limiting effect can be exerted on the U-shaped frame 205, making the movement of the U-shaped frame 205 more stable.

[0029] For the slope non-driven self-return transportation device, when in use, a set of mounting seats 1 is installed at the top of the slope, and the other end is installed at the bottom of the slope. At the same time, the support frame 203 is installed at a position close to the top of the slope. At this time, the circulating rope 202 is designed in an inclined structure. When it is necessary to transport materials to the bottom of the slope, the materials to be transported are bundled at this time, and then the bundled materials are hung on the hook 303 of the hanging and fixing mechanism 3. At this time, due to the self-gravity of the materials, they slide down on the slope, and at the same time drive the circulating rope 202 to move on the conveying cylinder 201. Due to the friction between the circulating rope 202 and the conveying cylinder 201, the conveying cylinder 201 is driven to rotate. Through the rotation of the conveying cylinder 201, the friction between the conveying cylinder 201 and the circulating rope 202 can be reduced, and the moving effect of the circulating rope 202 can be improved. As the circulating rope 202 moves, the circulating rope 202 drives the rectangular plate 301 to move synchronously through the fixing seat. The rectangular plate 301 drives the sliding wheel 302 to move on the guiding and limiting rope 212. While the sliding wheel 302 moves on the guiding and limiting rope 212, it can limit the suspended materials, making the materials more stable during the moving process;

[0030] While the circulating rope 202 moves, it also moves on the limiting wheel 208, and the limiting rod 209 on the limiting wheel 208 can effectively prevent the circulating rope 202 from falling off on the limiting wheel 208, improving the moving stability of the circulating rope 202;

[0031] While the hanging and fixing mechanism 3 at the top of the slope moves downward to the bottom of the slope, it drives the hanging and fixing mechanism 3 located at the bottom of the slope to move upward. Until the materials on the hanging and fixing mechanism 3 slide to the bottom of the slope, at this time, the hanging and fixing mechanism 3 at the bottom of the slope is in the state of the top of the slope. Then the next group of materials is hung on the hanging and fixing mechanism 3 at the top of the slope. With the self-gravity of the materials, they move downward. At this time, the circulating rope 202 that moves in a cycle drives the hanging and fixing mechanism 3 located at the bottom of the slope to move upward. Repeat this cyclic operation to continuously transport the materials to the bottom of the slope;

[0032] In summary, through this operation, there is no need for manual handling, which reduces the labor intensity of the staff. Moreover, it solves the problem of slipping due to manual handling on steep slopes, increases the safety of the staff, improves work efficiency, and does not require external drive, thus achieving an energy-saving effect, improving the practicability of the device, and meeting the actual use requirements.

[0033] It should be noted that: The circulating rope 202 is in a circular closed shape, forming two ropes, and the guiding and limiting rope 212 is directly above each group of ropes for stable limiting.

[0034] At the same time, the content not described in detail in this specification belongs to the well-known prior art in the art.

Claims

1. A non-driven self-returning transport device for slopes, comprising two sets of mounting seats (1) arranged in an up-and-down tilted manner, characterized in that: A conveying assembly (2) is installed between the two groups of mounting seats (1), and the conveying assembly (2) comprises a conveying cylinder (201) rotatably connected to the mounting seat (1) through a bearing, a circulating rope (202) wound and slid between the two groups of conveying cylinders (201), and a support frame (203) arranged between the two groups of mounting seats (1), a U-shaped frame (205) is arranged inside the support frame (203), and the surface of the U-shaped frame (205) is rotatably connected to symmetrically arranged limiting wheels (208) through a bearing, the circulating rope (202) is arranged in a ring-shaped closed manner, the circulating rope (202) is wound around the surfaces of the two groups of limiting wheels (208), and the circulating rope (202) is installed with two groups of suspension fixing mechanisms (3), and the two groups of suspension fixing mechanisms (3) are arranged in an up-and-down tilted manner along the circulating rope (202).

2. The non-driven self-returning transport device for slopes according to claim 1, characterized in that: One side of the mounting seat (1) is fixed with symmetrically arranged fixing pins (211), and a guide limit rope (212) is fixed between two groups of fixing pins (211) inclined up and down.

3. The non-driven self-returning transport device for slopes according to claim 2, characterized in that: A limiting rod (209) is fixed on the surface of the U-shaped frame (205). The limiting rod (209) is located above the two sets of limiting wheels (208) and is used to limit the circulating rope (202). The guide limiting rope (212) and the limiting rod (209) are fixedly connected.

4. The non-driven self-returning transport device for slopes according to claim 2, characterized in that: The suspension fixing mechanism (3) comprises a rectangular plate (301) arranged on one side of the guide limiting rope (212); one side of the rectangular plate (301) is rotatably connected to a sliding wheel (302) via a rotating shaft; the sliding wheel (302) slides on the surface of the guide limiting rope (212); and the rectangular plate (301) is fixedly connected to the circulating rope (202) via a fixing seat.

5. The non-driven self-returning transport device for slopes according to claim 1, characterized in that: Two groups of symmetrically arranged fixing pins (204) are fixed to the bottom end of the support frame (203).

6. The non-driven self-returning transport device for slopes according to claim 1, characterized in that: A fixing plate (210) is fixed inside the support frame (203), a threaded rod (207) is threadedly connected to the fixing plate (210) through a threaded hole, the top end of the threaded rod (207) is rotatably connected to the U-shaped frame (205) through a bearing, and a rotating block (206) is fixed to the bottom end of the threaded rod (207), and the rotating block (206) is designed to be an equihexagonal structure.

7. The non-driven self-returning transport device for slopes according to claim 6, characterized in that: The top of the support frame (203) is provided with a moving groove matched with the U-shaped frame (205), and the U-shaped frame (205) and the support frame (203) are slidably connected through the moving groove.