Fine iron powder transfer material shed

By designing a combination of feeding box, feeding chute, moving component and pushing component, the problem of iron concentrate accumulating in the transport vehicle was solved, and uniform distribution and efficient transfer of iron concentrate were achieved.

CN224002442UActive Publication Date: 2026-03-17ZUNHUA JINSHI MINING CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-04
Publication Date
2026-03-17

AI Technical Summary

Technical Problem

In the existing iron concentrate transfer shed, the fixed discharge pipe causes the iron concentrate to accumulate in the same part of the transport vehicle, requiring manual shoveling, which is inefficient and labor-intensive.

Method used

An iron concentrate transfer shed was designed, comprising a feeding box, a feeding chute, a moving component, a lifting component, a feeding component, and a pushing component. The position of the feeding box is adjusted by the moving component and the lifting component, the feeding component controls the feeding, and the pushing component achieves uniform distribution of iron concentrate and avoids accumulation.

Benefits of technology

This method achieves uniform distribution of iron concentrate within the transport vehicle, reduces manual intervention, and improves transfer efficiency.

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Abstract

The utility model relates to the technical field of transferring sheds, and provides a fine iron powder transferring shed which comprises a discharging box, a discharging groove, a moving assembly, a lifting assembly, a discharging assembly and a pushing assembly, the discharging box is arranged in a transferring shed body, the discharging groove is arranged to be in a U shape and is formed in the bottom end of the discharging box, and the moving assembly is arranged in the discharging groove. The moving assembly is arranged in the operation shed body and used for driving the discharging box to move above the transport vehicle, so that discharging is uniform, the two lifting assemblies are arranged on the moving assembly, the discharging box is arranged on the lifting assemblies, the discharging assembly is arranged on the side face of the discharging box, and the discharging assembly is arranged on the side face of the discharging box. The pushing assembly is arranged at the top end of the discharging box and used for pushing the fine iron powder in the discharging box to the discharging groove. By means of the technical scheme, the problem that in the prior art, when fine iron powder is conveyed to a transport vehicle, due to the fact that the discharging pipe is fixedly placed, the fine iron powder is accumulated on the same portion of the transport vehicle is solved.
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Description

Technical Field

[0001] This utility model relates to the field of material transfer shed technology, specifically to an iron concentrate material transfer shed. Background Technology

[0002] Iron concentrate is mineral powder produced from iron ore through crushing, grinding, and beneficiation. After production, iron concentrate has a certain degree of hygroscopicity, so it must be protected from moisture during storage. It is generally stored in a closed shed. When needed, it is transported and transferred. When storing iron concentrate, most of it is piled up in the transfer shed. When transportation and transfer are required, the iron concentrate needs to be manually shoveled into the transport vehicle, which is laborious and inefficient.

[0003] To address the aforementioned issues, a search revealed a proposed iron concentrate transfer shed, such as the one disclosed in CN221219893U. This transfer shed involves installing a transfer box inside the shed, a conveying auger inside the transfer box, and a discharge pipe connected to the side of the transfer box. When transportation is required, the iron concentrate inside the transfer box is released through the discharge pipe via the conveying auger, and then a transport vehicle is driven to the area below the discharge pipe for collection and transfer.

[0004] However, because the discharge pipe of the device is difficult to move, when the iron concentrate is transported to the transport vehicle through the discharge pipe, the iron concentrate will accumulate in the same part of the transport vehicle's bucket. Then, it is still necessary to manually shovel the iron concentrate into the bucket of the transport vehicle with hand tools so that the iron concentrate is evenly transported in the bucket of the transport vehicle, which is still quite troublesome. Utility Model Content

[0005] This utility model proposes an iron concentrate transfer shed, which solves the problem in the prior art where iron concentrate accumulates in the same part of the transport vehicle due to the fixed placement of the discharge pipe when it is transported to the transport vehicle.

[0006] The technical solution of this utility model is as follows:

[0007] An iron concentrate transfer shed includes a rotating shed body and further includes: a discharge box, a discharge chute, a moving component, a lifting component, a discharge component, and a pushing component. The discharge box is disposed inside the rotating shed body. The discharge chute is U-shaped and located at the bottom of the discharge box. The moving component is disposed inside the rotating shed body and is used to move the discharge box above a transport vehicle to ensure uniform discharge. Two lifting components are provided, both mounted on the moving component, and the discharge box is mounted on the lifting component to adjust its height according to the height of the transport vehicle. The discharge component is located on the side of the discharge box and is used to open the discharge chute, allowing the iron concentrate in the discharge box to fall into the transport vehicle. The pushing component is located at the top of the discharge box and is used to push the iron concentrate in the discharge box to the discharge chute.

[0008] Furthermore, the moving assembly includes: a support cover, a screw, a slide rod, a motor, and a moving plate. Two support covers are provided, each fixedly installed on one of the inner sidewalls of the operating shed perpendicular to the opening. The screw is rotatably installed inside one of the support covers, and the slide rod is fixedly installed inside the other support cover. The motor is installed on the outside of the operating shed, and its output end is coaxially connected to the screw. Two moving plates are provided, one threadedly connected to the screw, and the other slidably installed on the slide rod.

[0009] Furthermore, the lifting assembly includes: an electric cylinder and a mounting plate. There are two electric cylinders, both of which are mounted on the side of the moving plate. The mounting plate is fixedly connected to the output ends of the two electric cylinders, and the feeding box is fixedly mounted between the two mounting plates.

[0010] Furthermore, the feeding assembly includes: a second electric cylinder, a sliding plate, a rotating shaft, a second motor, a connecting rod, and a feeding plate. Two second electric cylinders are provided, each mounted on the side of the feeding box. Two sliding plates are provided, each fixedly connected to the output end of one of the two second electric cylinders and slidably mounted on the side of the feeding box. The rotating shaft is rotatably mounted between the two sliding plates. The second motor is mounted on the side of one of the sliding plates and coaxially connected to the rotating shaft. Two connecting rods are provided, fixedly mounted on the rotating shaft. The feeding plate is U-shaped, matching the shape of the feeding trough, and fixedly mounted on the connecting rod.

[0011] Furthermore, the pushing assembly includes: electric cylinder three, connecting plate and pushing plate. There are two electric cylinder two, both of which are installed at the top of the feeding box. There are two connecting plates, each of which is fixedly connected to the output end of the two electric cylinder three. The pushing plate is fixedly installed at the bottom end of the two connecting plates and is disposed inside the feeding box. The size of the pushing plate is consistent with the size of the inner sidewall of the feeding box.

[0012] Furthermore, a baffle plate is fixedly installed at the top of the feeding box, and the baffle plate is placed opposite to the pusher plate.

[0013] Furthermore, two baffles are fixedly installed inside the feeding box, and the two baffles are respectively located on both sides of the feeding trough.

[0014] The working principle and beneficial effects of this utility model are as follows:

[0015] In this invention, when transferring iron concentrate, the feeding box is first moved to a higher position by the lifting component. Then, the transport vehicle is driven to a position below the feeding box. The feeding component and the pushing component push the iron concentrate in the feeding box through the feeding chute and into the transport hopper of the transport vehicle. The feeding chute is U-shaped, which allows the iron concentrate to fall simultaneously on both sides of the feeding box perpendicular to the sides when it is pushed down. This prevents the iron concentrate on both sides from slowly accumulating and overflowing the feeding box when the pushing component pushes it down. Finally, during feeding, the moving component moves the feeding box back and forth above the transport hopper of the transport vehicle to distribute it evenly on the transport vehicle. Attached Figure Description

[0016] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments.

[0017] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0018] Figure 2 This is a structural diagram showing the disassembly and assembly of the material feeding box, lifting assembly, and moving assembly of this utility model.

[0019] Figure 3 This is an exploded structural diagram of the feeding assembly of this utility model;

[0020] Figure 4 This is a schematic diagram of the structure of the material pushing component, the material discharging box, the baffle plate, and the baffle plate assembly of this utility model.

[0021] In the diagram: 1. Operating shed; 2. Feeding box; 3. Baffle plate; 4. Baffle; 101. Support cover; 102. Screw; 103. Sliding rod; 104. Motor 1; 105. Moving plate; 201. Electric cylinder 1; 202. Mounting plate; 301. Electric cylinder 2; 302. Sliding plate; 303. Rotating shaft; 304. Motor 2; 305. Connecting rod; 306. Feeding plate; 401. Electric cylinder 3; 402. Connecting plate; 403. Pushing plate. Detailed Implementation

[0022] The technical solutions of this utility model will be clearly and completely described below with reference to the embodiments of this utility model. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this utility model.

[0023] like Figures 1-4 As shown in the figure, this embodiment proposes an iron concentrate transfer shed, including a rotating shed body 1, a discharge box 2, a discharge chute, a moving component, a lifting component, a discharge component, and a pushing component. The discharge box 2 is located inside the rotating shed body 1. The discharge chute is U-shaped and located at the bottom of the discharge box 2. The moving component is located inside the rotating shed body 1 and is used to move the discharge box 2 above the transport vehicle to ensure uniform discharge. There are two lifting components, both of which are mounted on the moving component and the discharge box 2 is mounted on the lifting component. The lifting component is used to adjust the height of the discharge box 2 according to the height of the transport vehicle. The discharge component is located on the side of the discharge box 2 and is used to open the discharge chute so that the iron concentrate in the discharge box 2 falls into the transport vehicle. The pushing component is located at the top of the discharge box 2 and is used to push the iron concentrate in the discharge box 2 to the discharge chute.

[0024] During the transfer of iron concentrate, the lifting assembly first moves the discharge box 2 to a higher position. Then, the transport vehicle moves to a position below the discharge box 2. The feeding and pushing assemblies then push the iron concentrate from the discharge box 2 through the feeding chute into the transport vehicle's hopper. The feeding chute is U-shaped, allowing the iron concentrate to fall simultaneously from both sides of the discharge box 2, preventing it from accumulating and overflowing due to the pushing assembly. Finally, during discharge, the moving assembly moves the discharge box 2 back and forth above the transport vehicle's hopper, ensuring even distribution of the iron concentrate on the transport vehicle.

[0025] In this embodiment, as Figure 2As shown, the moving assembly includes a support cover 101, a screw 102, a slide rod 103, a motor 104, and a moving plate 105. Two support covers 101 are provided, each fixedly installed on one of the inner side walls of the operating shed 1 perpendicular to the opening. The screw 102 is rotatably installed inside one of the support covers 101, and the slide rod 103 is fixedly installed inside the other support cover 101. The motor 104 is installed on the outside of the operating shed 1, and its output end is coaxially connected to the screw 102. Two moving plates 105 are provided; one is threadedly connected to the screw 102, and the other is slidably installed on the slide rod 103. Through the moving assembly, the material discharge box 2 can be moved back and forth above the transport vehicle, thus evenly distributing the iron concentrate on the transport hopper of the transport vehicle during material discharge, eliminating the need for manual dispersion of the iron concentrate on the transport vehicle using a shovel.

[0026] In this embodiment, as Figure 2 As shown, the lifting assembly includes an electric cylinder 201 and a mounting plate 202. There are two electric cylinders 201, both of which are installed on the side of the moving plate 105. The mounting plate 202 is fixedly connected to the output ends of the two electric cylinders 201, and the feeding box 2 is fixedly installed between the two mounting plates 202. When iron concentrate is placed into the feeding box 2, the lifting assembly can move the feeding box 2 down to the bottom of the inner side of the operating shed 1, making it convenient for manual placement of iron concentrate into the feeding box 2. When operation is required, the lifting assembly can move the feeding box 2 up to the top of the transport vehicle according to the height of the transport vehicle.

[0027] In this embodiment, as Figure 3 As shown, the feeding assembly includes a second electric cylinder 301, a sliding plate 302, a rotating shaft 303, a second motor 304, a connecting rod 305, and a feeding plate 306. Two second electric cylinders 301 are provided, each mounted on the side of the feeding box 2. Two sliding plates 302 are provided, each fixedly connected to the output end of one of the two second electric cylinders 301, and slidably mounted on the side of the feeding box 2. The rotating shaft 303 is rotatably mounted between the two sliding plates 302, and the second motor 304 is mounted therebetween. A sliding plate 302 is located on the side, and the motor 304 is coaxially connected to the rotating shaft 303. Two connecting rods 305 are provided, and the two connecting rods 305 are fixedly installed on the rotating shaft 303. The feeding plate 306 is set to a U-shape consistent with the feeding trough, and the feeding plate 306 is fixedly installed on the connecting rods 305. When the iron concentrate is not needed to be processed, the feeding plate 306 is moved to the feeding trough to block the feeding trough. When feeding is needed, the feeding assembly drives the feeding plate 306 to detach from the feeding trough, so that the iron concentrate falls through the feeding trough.

[0028] In this embodiment, as Figure 4 As shown, the feeding assembly includes an electric cylinder 301, a connecting plate 402, and a feeding plate 403. Two electric cylinders 301 are provided, both mounted on the top of the feeding box 2. Two connecting plates 402 are provided, each fixedly connected to the output end of one of the two electric cylinders 401. The feeding plate 403 is fixedly mounted on the bottom of the two connecting plates 402 and is disposed inside the feeding box 2. The size of the feeding plate 403 matches the size of the inner wall of the feeding box 2. A baffle plate 3 is fixedly mounted on the top of the feeding box 2, and the baffle plate 3 is placed opposite the feeding plate 403. Two feeding plates 403 are fixedly mounted inside the feeding box 2. Two baffles 4 are located on both sides of the feeding trough. When pushing the material, the two baffles 4 can block the sides of the through grooves at both ends of the feeding trough. Since the length of the feeding trough is less than the length of the feeding box 2, the two baffles 4 can block the sides of the feeding trough, preventing the iron concentrate from being pushed to the feeding box 2 on the side of the feeding trough and making it difficult to fall. The baffle 3 is installed in the relative position of the feeding box 2 relative to the pushing plate 403. When the pushing plate 403 pushes the iron concentrate, it can prevent the pushing force from being too large or the iron concentrate from accumulating and overflowing. The baffle 3 can block the iron concentrate and is located on the opening of the feeding trough, so that the iron concentrate can fall continuously.

[0029] Working Principle: Before operating the iron concentrate, the iron concentrate can be placed in the feeding box 2. When operation is required, electric cylinder 201 is started. The output end of electric cylinder 201 drives the mounting plate 202 to move upward, which in turn drives the feeding box 2 to move upward. Then, the transport vehicle is driven into the operating shed 1, positioning it below the feeding box 2. Then, electric cylinder 301 is started. Electric cylinder 301 drives the sliding plate 302 to slide downward on the side of the feeding box 2, thereby driving the rotating shaft 303, connecting rod 305, and discharge plate 306 downward, so that the discharge plate 306 is disengaged from the discharge trough. Then, motor 304 is started. The output end of motor 304 drives the rotating shaft 303 between the two sliding plates 302. The rotation of the feed chute causes the connecting rod 305 and the feed plate 306 to rotate, rotating the feed plate 306 to a vertical position, thus fully opening the feed chute. After opening, the electric cylinder 401 is activated. The output end of the electric cylinder 401 drives the connecting plate 402 and the pusher plate 403 to move, allowing the iron concentrate to fall through the feed chute into the transport hopper of the transport vehicle. At the same time, the motor 104 is activated. The output end of the motor 104 drives the screw 102 to rotate inside the support cover 101, thereby driving one of the moving plates 105 to move on the screw 102. Simultaneously, the discharge box 2 and the other moving plate 105 slide on the slide rod 103, causing the discharge box 2 to move back and forth above the transport vehicle, so that the iron concentrate falls evenly into the transport hopper of the transport vehicle.

[0030] The above are merely preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model shall be included within the protection scope of the present utility model.

Claims

1. A transport shed for iron ore fines, comprising a shed body (1), characterized in that, Also include: The discharge box (2), the discharge chute, the moving assembly, the lifting assembly, the discharging assembly and the pushing assembly, the discharge box (2) is arranged in the inside of the operation shed body (1), the discharge chute is arranged to U type, and the discharge chute is opened in the bottom end of the discharge box (2), the moving assembly is arranged in the inside of the operation shed body (1), for driving the discharge box (2) moves above the transport vehicle, makes the discharging uniform, the lifting assembly is provided with two, two lifting assemblies are arranged on the moving assembly, and the discharge box (2) is arranged on the lifting assembly, for adjusting the height of the discharge box (2) according to the height of the transport vehicle, the discharging assembly is arranged on the side of the discharge box (2), for opening the discharge chute, so that the iron concentrate powder in the discharge box (2) falls into the transport vehicle, the pushing assembly is arranged on the top end of the discharge box (2), for pushing the iron concentrate powder in the discharge box (2) to the discharge chute.

2. An iron ore concentrate transfer shed according to claim 1, characterised in that, The moving assembly includes: support cover (101), screw (102), slide bar (103), motor one (104) and moving plate (105), the support cover (101) is provided with two, two support covers (101) are respectively fixedly installed on the two inner side walls of the operation shed body (1) and opening is perpendicular, the screw (102) is rotatably installed in one of the support covers (101), the slide bar (103) is fixedly installed in the other support cover (101), the motor one (104) is installed on the outside of the operation shed body (1), and the output end of the motor one (104) is coaxially connected with the screw (102), the moving plate (105) is provided with two, one of the moving plates (105) is threadedly connected on the screw (102), and the other moving plate (105) is slidably installed on the slide bar (103).

3. An iron ore fines transfer shed as claimed in claim 2 wherein, The lifting assembly includes: electric cylinder one (201) and mounting plate (202), the electric cylinder one (201) is provided with two, two electric cylinder ones (201) are installed on the side of the moving plate (105), the mounting plate (202) is fixedly connected with the output end of two electric cylinder ones (201), and the discharge box (2) is fixedly installed between two mounting plates (202).

4. An iron ore concentrate transfer shed according to claim 3, characterised in that, The blanking assembly comprises two electric cylinders 301, two sliding plates 302, a rotating shaft 303, an electric motor 304, two connecting rods 305 and a blanking plate 306, the two electric cylinders 301 are arranged on the side of the feeding tank 2, the two sliding plates 302 are arranged on the side of the feeding tank 2, the rotating shaft 303 is rotatably arranged between the two sliding plates 302, the electric motor 304 is coaxially connected with the rotating shaft 303, the two connecting rods 305 are fixedly arranged on the rotating shaft 303, and the blanking plate 306 is fixedly arranged on the connecting rods 305.

5. An iron ore concentrate transfer shed according to claim 4, characterised in that, The pushing assembly comprises two electric cylinders 401, two connecting plates 402 and a pushing plate 403, the two electric cylinders 401 are arranged on the top end of the feeding tank 2, the two connecting plates 402 are fixedly connected with the output ends of the two electric cylinders 401, and the pushing plate 403 is fixedly arranged on the bottom end of the two connecting plates 402.

6. An iron ore concentrate transfer shed according to claim 5, characterised in that, The top end of the feeding tank 2 is fixedly provided with a blocking plate 3, and the blocking plate 3 is opposite to the pushing plate 403.

7. An iron ore fines transfer shed as claimed in claim 6 wherein, Two blocking plates 4 are fixedly arranged in the feeding tank 2, and the two blocking plates 4 are arranged on the two sides of the blanking groove.

Citation Information

Patent Citations

  • Fine iron powder transfer material shed

    CN221219893U