Rock debris conveying system
By designing a rock cuttings conveying system and utilizing structures such as vacuum conveying components and support frames, the problem of long-distance transportation of dried rock cuttings was solved, achieving fast, safe, and low-cost rock cuttings transportation to meet large-scale demands.
Patent Information
- Application Number
- CN202423198858.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-24
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2034-12-24
AI Technical Summary
Traditional transportation methods cannot meet the needs of effectively transporting dried rock cuttings over long distances, especially in scenarios where there is a long distance between the drying and storage locations and frequent crossings are not possible.
A rock cuttings conveying system was designed, including a conveying frame, a vacuum conveying component, and a conveying pipeline. It utilizes the vacuum principle for long-distance conveying and improves the stability and flexibility of the system through structures such as support frames and guide pipes, ensuring the safe and efficient conveying of rock cuttings.
It enables rapid, well-sealed transport of rock cuttings, reduces leakage and dust, lowers labor intensity and costs, improves transport efficiency, ensures the quality and quantity of rock cuttings, and meets the needs of large-scale transport.
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Figure CN223575637U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of rock debris transportation, and in particular to a rock debris transportation system. BACKGROUND
[0002] In various geological exploration, mining and drilling engineering, a large amount of rock debris will be produced. How to effectively transport these rock debris over a long distance has been an important challenge faced by the relevant field.
[0003] The traditional rock debris needs to be uniformly transferred and stored after being collected and dried, but there is a long distance between the drying and storage positions, and the rock debris cannot be frequently crossed, so other conveying methods need to be used to ensure that the rock debris does not accumulate in the drying section for a long time and affect production. SUMMARY
[0004] The utility model provides a kind of rock debris transportation system, solve the problem that rock debris needs to be transferred to another storage site in the related art and cannot be frequently crossed.
[0005] The technical scheme of the utility model is as follows:
[0006] A rock debris transportation system is used to transport dried rock debris from the drying position to the storage tank, comprising:
[0007] A conveying frame is arranged on one side of the storage tank.
[0008] A vacuum conveying member is arranged on the drying section, and the vacuum conveying member is used to convey the processed rock debris.
[0009] A conveying pipeline is connected to the vacuum conveying member at one end and connected to the storage tank after being laid across the road at the other end.
[0010] As a further technical solution, the storage tank has a feed inlet at the top, and the conveying pipeline is arranged on the conveying frame after passing through the road.
[0011] As a further technical solution, it further comprises:
[0012] A first support frame is arranged on the conveying pipeline, and the first support frame is used to improve the strength of the conveying pipeline.
[0013] As a further technical solution, the storage tank comprises:
[0014] A tank body has a receiving cavity inside.
[0015] A spiral feeding member is rotatably arranged at the bottom of the tank body, and the spiral feeding member is used to feed the rock debris into the receiving cavity.
[0016] A rotating driving member is arranged on the tank body, and is used to drive the screw feeding member to rotate.
[0017] As a further technical solution, it further comprises:
[0018] A flow guide pipe is arranged on the conveying pipeline close to one end of the storage tank, and is used to guide the cuttings into the tank body.
[0019] As a further technical solution, the storage tank has two, and the two storage tanks are arranged side by side, and the two storage tanks are used to store cuttings.
[0020] As a further technical solution, the two storage tanks are arranged adjacent to each other, and the flow guide pipe is located directly above the two feeding ports, and the flow guide pipe is used to feed the two storage tanks.
[0021] As a further technical solution, it further comprises:
[0022] A material blocking plate is rotatably arranged in the flow guide pipe, and when the material blocking plate rotates, it blocks or unblocks one of the feeding ports.
[0023] As a further technical solution, it further comprises:
[0024] A connecting rod is rotatably arranged on the flow guide pipe, the connecting rod penetrates through the flow guide pipe, and the material blocking plate is arranged on the flow guide pipe.
[0025] An operating rod is arranged on one end of the connecting rod away from the flow guide pipe, and the operating rod is used to facilitate the user to rotate the material blocking plate.
[0026] As a further technical solution, it further comprises:
[0027] A limiting rod is detachably arranged on the storage tank, and the limiting rod is used to limit the rotation of the operating rod.
[0028] The working principle and beneficial effects of the utility model are as follows:
[0029] The utility model discloses a conveying frame is arranged at one side of storage tank, provides stable support structure for whole conveying system, ensures the stability and safety of conveying process. The vacuum conveying piece can efficiently convey the processed rock debris by vacuum principle, has the advantages of fast conveying speed, good sealing, reducing rock debris leakage and dust raising, and is favorable for keeping the working environment clean. One end of the conveying pipeline is connected with the vacuum conveying piece, the other end is connected with the storage tank, and is laid over the road, realizes long-distance conveying of rock debris from the airing position to the storage tank, breaks through the space limit, improves the flexibility and applicability of conveying. The system design reduces the labor intensity and cost of manual handling, improves the conveying efficiency, and can meet the demand of large-scale rock debris conveying. The whole conveying system adopts a closed conveying mode, reduces the risk of rock debris being polluted and lost in the conveying process, and guarantees the quality and quantity of rock debris. BRIEF DESCRIPTION OF DRAWINGS
[0030] The above-mentioned characteristics, technical features, advantages and implementation modes of the utility model will be further described in a clear and understandable manner in combination with the preferred embodiments and the accompanying drawings.
[0031] Fig. 1 It is a structure schematic view of the utility model;
[0032] Fig. 2 It is another structure schematic view of the utility model from another perspective;
[0033] Fig. 3 It is an internal structure schematic view of the utility model.
[0034] In the drawing: 1, storage tank, 2, conveying frame, 3, vacuum conveying piece, 4, conveying pipeline, 5, feed inlet, 6, first support frame, 7, tank body, 8, containing cavity, 9, spiral feeding piece, 10, rotary driving piece, 11, flow guide pipe, 12, baffle, 13, connecting rod, 14, operating rod, 15, limiting rod. DETAILED DESCRIPTION
[0035] In order to more clearly illustrate the technical scheme in the embodiments of the utility model or prior art, the specific implementation mode of the utility model will be described below with reference to the drawings. Obviously, the drawings in the following description only some embodiments of the utility model, for those skilled in the art, without creating labor, further technical scheme can be understood, in some drawings, the same structure or function of the component, only one is shown, or only one is marked. In this paper, "one" not only indicates "only one", but also can indicate "more than one" situation, "several" includes "two" and "more than two".
[0036] It should be noted that, unless otherwise explicitly specified and limited, the terms "mounting", "connecting", "connecting" should be understood broadly, for example, it can be fixedly connected, or it can be detachably connected, or integrally connected; it can be mechanically connected, or it can be electrically connected; it can be directly connected, or it can be indirectly connected through an intermediate medium, or it can be connected inside two elements. For those skilled in the art, the specific meaning of the above terms in the utility model can be understood according to the specific circumstances.
[0037] In addition, in the description of the present application, the terms "first", "second" and the like are only used to distinguish the description, and cannot be understood as indicating or implying relative importance.
[0038] Reference Figs. 1-3 For the first embodiment of the utility model, a rock debris conveying system is proposed for conveying the dried rock debris from the drying position to the storage tank 1, comprising: a conveying frame 2 is arranged on one side of the storage tank 1; a vacuum conveying part 3 is arranged on the drying section, and the vacuum conveying part 3 is used for conveying the processed rock debris; a conveying pipeline 4 is connected with the vacuum conveying part 3 at one end, and is connected with the storage tank 1 after laying over the road at the other end.
[0039] In the embodiment, the conveying frame 2 is arranged on one side of the storage tank 1, which provides a stable support structure for the entire conveying system, ensuring the stability and safety of the conveying process. The vacuum conveying part 3 can efficiently convey the processed rock debris by using the principle of vacuum, has the advantages of fast conveying speed, good sealing, reducing rock debris leakage and dust, and is beneficial to maintaining the cleanliness of the working environment. The conveying pipeline 4 is connected with the vacuum conveying part 3 at one end, and is connected with the storage tank 1 at the other end, and is laid over the road, realizing long-distance conveying of rock debris from the drying position to the storage tank 1, breaking through the space limitation, and improving the flexibility and applicability of the conveying. This system design reduces the labor intensity and cost of manual handling, improves the conveying efficiency, and can meet the demand of large-scale rock debris conveying. The entire conveying system adopts a closed conveying mode, reducing the risk of rock debris being polluted and lost in the conveying process, and ensuring the quality and quantity of the rock debris.
[0040] As a further technical solution, the storage tank 1 has a feeding port 5 at the top, and the conveying pipeline 4 is arranged on the conveying frame 2 after passing through the road.
[0041] In this embodiment, the feed inlet 5 at the top of the storage tank 1 facilitates the direct falling of rock debris into the tank, making the feeding process smoother and reducing obstacles and blockages during feeding. The conveying pipeline 4 is erected on the conveying frame 2 after passing through the road, ensuring the stability and safety of the pipeline, and avoiding damage to the pipeline due to vehicle crushing or other external factors. The reasonable pipeline erection method saves space, avoids interference with ground transportation and the surrounding environment, and also facilitates pipeline inspection and maintenance. This design ensures stable flow of rock debris during transportation, reduces energy loss, and improves transportation efficiency. The conveying frame 2 provides good support and protection for the conveying pipeline 4, prolonging the service life of the conveying pipeline 4 and reducing equipment maintenance costs.
[0042] As a further technical solution, it also includes: the first support frame 6 is arranged on the conveying pipeline 4, and the first support frame 6 is used to improve the strength of the conveying pipeline 4.
[0043] In this embodiment, the first support frame 6 is arranged on the conveying pipeline 4, which can effectively disperse the pressure and weight borne by the pipeline, improve the overall strength of the conveying pipeline 4, and reduce the risk of deformation and damage of the pipeline due to its own gravity and internal rock debris pressure. The stability of the conveying pipeline 4 is enhanced, making it less likely to sway and vibrate during rock debris transportation, ensuring smooth transportation process and reducing rock debris blockage or leakage problems caused by unstable pipeline. The durability of the conveying pipeline 4 is improved, prolonging its service life and reducing the cost of frequent maintenance and replacement due to pipeline damage.
[0044] As a further technical solution, the storage tank 1 includes: the tank body 7 has a containing cavity 8 inside; the screw feeding member 9 is rotationally arranged at the bottom of the tank body 7, and is used to feed out the rock debris entering the containing cavity 8; and the rotation driving member 10 is arranged on the tank body 7 and is used to drive the screw feeding member 9 to rotate.
[0045] In this embodiment, the containing cavity 8 inside the tank body 7 provides sufficient storage space for rock debris, meeting the temporary storage needs of a large amount of rock debris. The screw feeding member 9 is rotationally arranged at the bottom of the tank body 7, which can uniformly and stably feed out the rock debris entering the containing cavity 8, avoiding the accumulation and blockage of rock debris in the tank. The rotation driving member 10 drives the screw feeding member 9 to rotate, realizing the automation of the feeding process, reducing manual operation, and improving feeding efficiency and accuracy. This screw feeding method can accurately control the feeding speed and quantity, and flexibly adjust the output of rock debris according to actual needs, facilitating the connection with subsequent processing or transportation links. The screw feeding member 9 is closely matched with the tank body 7, which can effectively reduce the leakage and dust of rock debris during the feeding process, maintaining the cleanliness and safety of the working environment.
[0046] As a further technical solution, the flow guide pipe 11 is arranged at one end of the conveying pipeline 4 close to the storage tank 1, and the flow guide pipe 11 is used to guide the cuttings into the tank body 7.
[0047] In this embodiment, the flow guide pipe 11 is arranged at one end of the conveying pipeline 4 close to the storage tank 1, which can effectively guide the cuttings about to enter the tank body 7, making them flow into the tank body 7 more accurately and smoothly, and reducing the splashing and scattering of cuttings at the inlet. It helps to control the flow direction and speed of the cuttings, avoids damage to the inside of the tank body 7 or affects the storage effect due to excessive impact force, improves the efficiency of the cuttings entering the tank body 7, reduces the energy loss and resistance in the conveying process, and ensures the stable operation of the whole conveying system. The flow guide pipe 11 can play a certain buffering role, reduce the impact of cuttings on the tank body 7, and prolong the service life of the tank body 7. It can better adapt to the connection angle and position difference between the conveying pipeline 4 and the tank body 7, and ensure the continuity and reliability of the cuttings conveying.
[0048] As a further technical solution, the storage tank 1 has two, and the two storage tanks 1 are arranged side by side, and the two storage tanks 1 are used to store cuttings.
[0049] In this embodiment, there are two storage tanks 1 arranged side by side, which greatly increases the total storage capacity and can meet the storage needs of more cuttings, especially suitable for cases where the yield of cuttings is large. When one storage tank 1 is unloading, maintaining or full, the other storage tank 1 can continue to receive and store cuttings, ensuring the continuity and stability of the whole conveying system, and reducing the production interruption caused by insufficient capacity or failure of the storage tank 1. The design of two storage tanks 1 side by side facilitates classification storage.
[0050] As a further technical solution, the two storage tanks 1 are arranged side by side, and the two storage tanks 1 are arranged side by side, and the two storage tanks 1 are used to store cuttings.
[0051] In this embodiment, the two storage tanks 1 are arranged side by side, so that the flow guide pipe 11 can be located directly above and feed two storage tanks 1 at the same time, simplifying the feeding structure and reducing equipment cost and installation complexity. This layout allows cuttings to be more evenly distributed to the two storage tanks 1, avoiding the situation of too much or too little feeding of a single storage tank 1, and ensuring the balance of storage. The flow guide pipe 11 is located directly above the feeding port 5, reducing the deviation and loss of cuttings during conveying, improving the accuracy and efficiency of feeding. When the feeding port 5 of one storage tank 1 fails or is blocked, the cuttings can be temporarily conveyed to the other storage tank 1 by adjusting the angle or valve of the flow guide pipe 11, enhancing the fault tolerance and emergency handling capacity of the system.
[0052] As a further technical solution, it further comprises: the blocking plate 12 is rotationally arranged in the flow guide pipe 11, and when the blocking plate 12 rotates, one of the feeding ports 5 is shielded or unshielded.
[0053] In this embodiment, the blocking plate 12 is rotationally arranged in the flow guide pipe 11, which can flexibly control the flow direction of the rock debris. When it is needed to deliver the rock debris to a specific one of the storage tanks 1, the other feeding port 5 can be shielded by rotating the blocking plate 12, so as to ensure that the rock debris accurately enters the target storage tank 1. This design makes the use of the two storage tanks 1 selective and flexible. For example, when one of the storage tanks 1 is full or needs to be repaired, the rock debris can be guided to the other storage tank 1 through the blocking plate 12, which improves the adaptability of the system. The blocking plate 12 can effectively prevent the rock debris from entering both feeding ports 5 at the same time, avoid uneven distribution of the rock debris and possible confusion, and ensure the orderly delivery and storage.
[0054] As a further technical solution, it further comprises: the connecting rod 13 is rotationally arranged on the flow guide pipe 11, the connecting rod 13 penetrates the flow guide pipe 11, and the blocking plate 12 is arranged on the flow guide pipe 11; the operating rod 14 is arranged at one end of the connecting rod 13 away from the flow guide end, and the operating rod 14 is used for conveniently rotating the blocking plate 12 by the user.
[0055] In this embodiment, the connecting rod 13 provides stable rotational support and connection for the blocking plate 12, ensuring that the blocking plate 12 can flexibly and accurately rotate in the flow guide pipe 11, and realizing effective shielding and opening control of the feeding port 5. The operating rod 14 is installed at one end of the connecting rod 13 away from the flow guide end, providing a convenient operating part for the user, which facilitates the user to easily rotate the connecting rod 13 externally, thereby driving the blocking plate 12 to act, greatly reducing the difficulty and labor intensity of operation. This design makes the control of the blocking plate 12 more intuitive and easy to operate, and the user does not need to directly touch the inside of the flow guide pipe 11, improving the safety of operation.
[0056] As a further technical solution, it further comprises: the limiting rod 15 is detachably arranged on the storage tank, and the limiting rod 15 is used for limiting the rotation of the operating rod 14.
[0057] In this embodiment, the limiting rod 15 is detachably arranged on the storage tank, which can play a role when it is needed to fix the position of the blocking plate 12 and limit the rotation of the operating rod 14, ensuring that the blocking plate 12 remains in the required state and preventing accidental rotation of the blocking plate 12 from changing the rock debris conveying path. When the conveying direction of the rock debris is determined and no further adjustment is needed, the limiting rod 15 can effectively lock the operating rod 14, avoiding the rotation of the blocking plate 12 due to misoperation or external factors, and improving the stability and reliability of the system. The detachable design makes it convenient to remove the limiting rod 15 for operation when it is needed to adjust the position of the blocking plate 12, and flexibility and stability are taken into account.
[0058] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present application and are not limiting. Although the present application has been described in detail with reference to the preferred embodiments, it should be understood by those skilled in the art that the technical solutions of the present application can be modified or replaced equivalently without departing from the spirit and scope of the technical solutions of the present application, and all should be covered in the scope of the claims of the present application.
Claims
1. A cuttings transport system for transporting dried cuttings from a drying location to a storage tank (1), characterized in that, The utility model relates to a kind of rock debris storage and conveying device, including: Transport frame (2) is arranged in one side of the storage tank (1); Vacuum conveying part (3) is arranged on the drying section, and the vacuum conveying part (3) is used to convey the rock debris of processing completion; Conveying pipeline (4) is connected with the vacuum conveying part (3) at one end, and is connected with the storage tank (1) after laying over the road at the other end.
2. A cuttings transport system according to claim 1, wherein, The storage tank (1) has feed inlet (5) on top, and the conveying pipeline (4) is erected on the transport frame (2) after passing through the road.
3. A cuttings transport system according to claim 1, wherein, Further including: First support frame (6) is arranged on the conveying pipeline (4), and the first support frame (6) is used to enhance the strength of the conveying pipeline (4).
4. A cuttings transport system according to claim 2, wherein, The storage tank (1) includes: Tank body (7) has containing cavity (8) in the tank body (7); Screw feeder (9) is rotationally arranged at the bottom of the tank body (7), and the screw feeder (9) is used to send the rock debris into the containing cavity (8); Rotary drive (10) is arranged on the tank body (7), and the rotary drive (10) is used to drive the screw feeder (9) to rotate.
5. A cuttings transport system according to claim 4, wherein, Further including: Flow guide pipe (11) is arranged at the end of the conveying pipeline (4) close to the storage tank (1), and the flow guide pipe (11) is used to guide the rock debris into the tank body (7).
6. A cuttings transport system according to claim 1 wherein, The storage tank (1) has two, and the two storage tanks (1) are arranged side by side, and the two storage tanks (1) are used to store rock debris.
7. A cuttings transport system as defined in claim 5, wherein, The feed inlet (5) of the two storage tanks (1) is arranged adjacent to each other, and the flow guide pipe (11) is located directly above the two feed inlets (5), and the flow guide pipe (11) is used to feed into the two storage tanks (1).
8. A cuttings transport system as defined in claim 5, wherein, Further including: Material baffle (12) is rotationally arranged in the flow guide pipe (11), and the material baffle (12) is shielded or unshielded when rotating one of the feed inlets (5).
9. A cuttings transport system according to claim 8, wherein, Further including: Connecting rod (13) is rotationally arranged on the flow guide pipe (11), and the connecting rod (13) penetrates the flow guide pipe (11), and the material baffle (12) is arranged on the flow guide pipe (11); Operating rod (14) is arranged at the end of the connecting rod (13) away from the flow guide pipe (11), and the operating rod (14) is used to facilitate the user to rotate the material baffle (12).
10. A cuttings transport system according to claim 9, wherein, Further including: Limiting rod (15) is detachably arranged on the storage tank (1), and the limiting rod (15) is used to limit the rotation of the operating rod (14).