Channel steel feeding device

By designing an automated channel steel feeding device, which utilizes the lifting drive mechanism and the pushing module to work together, the problems of low efficiency and safety hazards of manual feeding are solved, and efficient automated conveying of channel steel is achieved.

CN224030088UActive Publication Date: 2026-03-24ZHEJIANG FUGANG MASCH TOOL CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-17
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

In existing technologies, channel steel feeding mainly relies on manual operation, which is inefficient and poses safety hazards.

Method used

A channel steel feeding device including a material transfer component and a material lifting component was designed. Through the coordinated work of the material lifting drive mechanism and the material pushing module, the automated conveying and pushing of channel steel is realized, avoiding human fatigue.

Benefits of technology

It improves the feeding efficiency of channel steel, avoids safety hazards caused by human fatigue, and realizes an automated and efficient feeding process.

✦ Generated by Eureka AI based on patent content.

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  • Figure CN224030088U_ABST
    Figure CN224030088U_ABST
Patent Text Reader

Abstract

The utility model discloses a channel steel feeding device. Comprising a material moving assembly and a material lifting assembly, the material lifting assembly comprises a first material pushing module, a material lifting module and a material lifting frame, the material lifting frame is arranged in the front-back direction, a first conveying belt used for conveying channel steel is arranged on the material lifting frame, and the first conveying belt is arranged in the front-back direction; the material lifting module comprises a material lifting driving mechanism and two material lifting blocks, the two material lifting blocks are symmetrically arranged on the front side and the rear side of the first conveying belt, the material lifting driving mechanism is used for driving the two material lifting blocks to ascend / descend at the same time, and the first material pushing module is used for pushing out single channel steel lifted by the two material lifting blocks. The material moving assembly is used for conveying the single channel steel to the first conveying belt. According to the feeding device, the feeding efficiency of channel steel can be improved, and potential safety hazards caused by manual fatigue can be avoided.
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Description

TECHNICAL FIELD

[0001] The utility model relates to channel steel feeding technical field especially relates to a channel steel feeding device. BACKGROUND

[0002] Channel steel is very extensive in the application in the existing society, and before processing, a single channel steel needs to be extracted from a channel steel stack and then transported to a processing device for processing, the method of the prior art is to complete the whole feeding action of the channel steel by manual operation, manual feeding is not only low in efficiency, but also causes safety hazards due to manual fatigue after long time work, thereby reducing the processing efficiency. SUMMARY

[0003] The utility model discloses in order to solve the above -mentioned technical problem, provides a kind of channel steel feeding device, can speed up the feeding efficiency of channel steel, and can avoid the safety hazard due to manual fatigue.

[0004] In order to solve the above problems, the utility model adopts the following technical scheme to realize:

[0005] The utility model discloses a kind of channel steel feeding device, including material moving assembly and lifting material assembly, the lifting material assembly includes first push material module, lifting material module and lifting material frame, the lifting material frame is set in front and back direction, first conveying belt for transporting channel steel is equipped on the lifting material frame, the first conveying belt is set in front and back direction, the lifting material module includes lifting material drive mechanism and two lifting material blocks, two lifting material blocks are symmetrically set in the front and back sides of first conveying belt, the lifting material drive mechanism is used to drive two lifting material blocks to rise / descend simultaneously, the first push material module is used to push single channel steel lifted by two lifting material blocks, the material moving assembly is used to deliver single channel steel to first conveying belt.

[0006] In the scheme, after material moving assembly delivers single channel steel to first conveying belt, lifting material drive mechanism drives two lifting material blocks to rise simultaneously, two lifting material blocks rise and contact with the bottom of the front and back ends of single channel steel, drive single channel steel to move upwards, when single channel steel moves upwards to preset position, lifting material drive mechanism stops driving two lifting material blocks to move upwards, single channel steel stops moving upwards, and first push material module pushes channel steel lifted by two lifting material blocks to processing device for processing. The feeding efficiency of channel steel is high, and safety hazards due to manual fatigue can be avoided.

[0007] As preferred, the lifting mechanism comprises a frame, a rotating shaft and a first driver, the frame is located at the left side of the lifting frame, the frame is symmetrically provided with a sprocket assembly in front and back, the sprocket assembly comprises a driven sprocket and a driving sprocket above the driven sprocket, the driven sprocket and the driving sprocket are connected by a chain, the lifting block is in one-to-one correspondence with the chain and is fixedly connected with the corresponding chain, the rotating shaft is arranged in front and back, the two driving sprockets are respectively sleeved on the front and back ends of the rotating shaft, and the first driver is used to drive the rotating shaft to rotate.

[0008] As preferred, the first pushing module comprises first pushing mechanisms arranged side by side in front and back, the first pushing mechanisms are located between the two sprocket assemblies, the first pushing mechanism comprises a first pushing block and a second driver, the first pushing block is located below the rotating shaft, and the second driver is used to drive the first pushing block to move left and right.

[0009] The first driver drives the rotating shaft to rotate, the rotating shaft drives the two driving sprockets to rotate synchronously, the two driving sprockets cooperate with the corresponding driven sprockets to drive the two chains to move synchronously, so that the two lifting blocks ascend synchronously, the two lifting blocks contact the bottom of the corresponding end of the single groove steel and lift the single groove steel upward, when the two lifting blocks lift the single groove steel to the preset position, the first driver stops driving the rotating shaft, so that the two lifting blocks stop ascending, at this time, the single groove steel is located at the right side of the first pushing block, the second driver drives the corresponding first pushing block to move right, so that the two first pushing blocks push the single groove steel to the right to the machining device for machining.

[0010] As preferred, the front side of the lifting frame is provided with a first groove steel blocking block for blocking the groove steel, the first groove steel blocking block is vertically arranged, and a gap for the lifting block on the side to pass through is formed between the first groove steel blocking block and the lifting frame.

[0011] As preferred, the material moving assembly comprises two material moving frames arranged symmetrically left and right, the material moving frames are arranged in front and back, the material moving frames are provided with a second conveying belt for conveying the groove steel, the second conveying belt is arranged in front and back, the second conveying belt on the right side is arranged at the rear side of the first conveying belt, a material passing temporary storage module is arranged between the two material moving frames, the material moving frame corresponding to one side of the material passing temporary storage module is provided with an extension plate, the material moving frame on the left side is provided with a second pushing module, the second pushing module is used to push the groove steel on the second conveying belt on the left side to the material passing temporary storage module, and the material passing temporary storage module is used to temporarily store the groove steel and push the temporarily stored groove steel to the second conveying belt on the right side.

[0012] As preferred, the front side of the material moving frame on the left side is provided with a second groove steel blocking block for blocking the groove steel.

[0013] The single channel steel is placed on the second conveying belt on the left material moving frame, and the second conveying belt drives the single channel steel to move forward until the front end of the single channel steel abuts against the second channel steel stopper, preventing the single channel steel from being moved by the second conveying belt to the outside.

[0014] Preferably, the second pushing mechanism module comprises second pushing mechanism modules arranged side by side in front and back, and the second pushing mechanism modules are arranged above the left side of the second conveying belt on the left side.

[0015] Preferably, the material passing temporary storage module comprises temporary storage frames arranged symmetrically in front and back, and the temporary storage frames are arranged in a left-right direction.

[0016] Preferably, the third pushing mechanism comprises a base arranged outside the right end of the temporary storage frame, a first sliding rail, a sliding rail platform and a sixth driver arranged on the base, the first sliding rail is arranged in a front-rear direction, the sliding rail platform is slidable along the first sliding rail, the sixth driver is used for driving the sliding rail platform to move along the first sliding rail, and a pushing structure is arranged on the sliding rail platform.

[0017] Preferably, the pushing structure comprises a second sliding rail, a sliding block and a fourth driver, the second sliding rail is arranged in a left-right direction, the sliding block is slidable along the second sliding rail, and the fourth driver is used for driving the sliding block to slide along the second sliding rail.

[0018] When the single channel steels on the two third conveying belts move to the rightmost ends of the two temporary storage frames, the sixth driver drives the corresponding sliding rail platforms to slide inwards along the corresponding first sliding rails, so that the driving pushing blocks on the sliding rail platforms move inwards until the two driving pushing blocks move to the inside of the single channel steels on the rightmost side, and then the fourth driver drives the corresponding driving sliding blocks to move rightwards along the corresponding second sliding rails, so that the corresponding second sliding rails drive the corresponding driving pushing blocks to push the single channel steels on the rightmost side rightwards through the two extension plates to the second conveying belt on the material moving frame on the right side.

[0019] The material passing temporary storage module can temporarily store and transport the channel steels, and the single channel steels can be transported out when needed for machining. BRIEF DESCRIPTION OF DRAWINGS

[0020] Figure 1 This is a schematic diagram of the structure of this utility model;

[0021] Figure 2 This is a schematic diagram of the material lifting assembly in this utility model;

[0022] Figure 3 yes Figure 2 A magnified view of a section at point A in the middle;

[0023] Figure 4 This is a schematic diagram of the material transfer component in this utility model;

[0024] Figure 5 yes Figure 4 A magnified view of a section at point B in the middle;

[0025] Figure 6 yes Figure 4 A magnified view of a section at point C.

[0026] In the diagram: 1. Material transfer assembly, 11. Material transfer frame, 111. Second channel steel stop block, 12. Second conveyor belt, 13. Extension plate, 14. Channel steel, 2. Material lifting assembly, 21. Material lifting frame, 22. First conveyor belt, 23. Material lifting block, 24. Frame body, 241. Driven wheel, 242. Drive wheel, 243. Chain, 25. Rotating shaft, 26. First driver, 27. First pusher block, 28. Second driver, 29. First channel steel stop block, 3. Second pusher mechanism, 31. Second pusher block, 32. Third driver, 4. Temporary storage rack, 41. Third conveyor belt, 5. Base, 51. First slide rail, 52. Slide rail platform, 53. Sixth driver, 7. Fourth driver, 71. Second slide rail, 72. Slider, 73. Drive pusher block. Detailed Implementation

[0027] The technical solution of this utility model will be further described in detail below through embodiments and in conjunction with the accompanying drawings.

[0028] Example: A channel steel feeding device according to this example, such as Figures 1 to 6 As shown, it includes a material transfer component 1 and a material lifting component 2. The material lifting component 2 includes a first material pushing module, a material lifting module, and a material lifting frame 21. The material lifting frame 21 is arranged in a front-to-back direction. The material lifting frame 21 is provided with a first conveyor belt 22 for transporting the channel steel 14. The first conveyor belt 22 is arranged in a front-to-back direction. The material lifting module includes a material lifting drive mechanism and two material lifting blocks 23. The two material lifting blocks 23 are symmetrically arranged on the front and rear sides of the first conveyor belt 22.

[0029] The lifting driving mechanism comprises a frame body 24, a rotating shaft 25 and a first driver 26. The frame body 24 is located on the left side of the lifting frame 21. A chain wheel assembly is symmetrically arranged on the frame body 24. The chain wheel assembly comprises a driven wheel 241 and a driving wheel 242 arranged above the driven wheel 241. The driven wheel 241 and the driving wheel 242 are connected by a chain 243. The lifting blocks 23 are in one-to-one correspondence with the chain 243 and are fixedly connected with the corresponding chain 243. The rotating shaft 25 is arranged in a front-to-back direction. The two driving wheels 242 are respectively sleeved on the front and rear ends of the rotating shaft 25. The first driver 26 is used to drive the rotating shaft 25 to rotate.

[0030] The first pushing module comprises first pushing mechanisms arranged side by side in front and back. The first pushing mechanisms are located between the two chain wheel assemblies. The first pushing mechanisms comprise first pushing blocks 27 and a second driver 28. The first pushing blocks 27 are located below the rotating shaft 25. The second driver 28 is used to drive the first pushing blocks 27 to move left and right.

[0031] The front side of the lifting frame 21 is provided with a first channel steel block 29 for blocking the channel steel 14. The first channel steel block 29 is vertically arranged. There is a gap between the first channel steel block 29 and the lifting frame 21 for the lifting blocks 23 on this side to pass through.

[0032] The material moving assembly 1 comprises two material moving frames 11 arranged symmetrically left and right. The material moving frames 11 are arranged in a front-to-back direction. The material moving frames 11 are provided with second conveying belts 12 for conveying the channel steel 14. The second conveying belts 12 are arranged in a front-to-back direction. The second conveying belt 12 on the right side is arranged on the rear side of the first conveying belt 22. A material passing temporary storage module is arranged between the two material moving frames 11. The material moving frames 11 are provided with extension plates 13 corresponding to one side of the material passing temporary storage module. The material moving frame 11 on the left side is provided with a second pushing module. The front side of the material moving frame 11 on the left side is provided with a second channel steel block 111 for blocking the channel steel 14.

[0033] The second pushing module comprises second pushing mechanisms 3 arranged side by side in front and back. The second pushing mechanisms 3 are arranged above the left side of the second conveying belt 12 on the left side. The second pushing mechanisms 3 comprise second pushing blocks 31 and a third driver 32. The third driver 32 is used to drive the second pushing blocks 31 to move left and right.

[0034] The material passing temporary storage module comprises temporary storage frames 4 arranged symmetrically in front and back. The temporary storage frames 4 are arranged in a left-to-right direction. The temporary storage frames 4 are provided with third conveying belts 41 for conveying the channel steel 14. The third conveying belts 41 are arranged in a left-to-right direction. The right end of the temporary storage frame 4 is provided with a third pushing mechanism.

[0035] The third pushing mechanism comprises a base 5 arranged outside the right end of the temporary storage rack 4, the base 5 is provided with a first sliding rail 51, a sliding rail platform 52 and a sixth driver 53, the first sliding rail 51 is arranged in a front-rear direction, the sliding rail platform 52 is slidable along the first sliding rail 51, the sixth driver 53 is used for driving the sliding rail platform 52 to move along the first sliding rail 51, and the sliding rail platform 52 is provided with a pushing structure.

[0036] The pushing structure comprises a second sliding rail 71, a sliding block 72 and a fourth driver 7, the second sliding rail 71 is arranged in a left-right direction, the sliding block 72 is slidable along the second sliding rail 71, the fourth driver 7 is used for driving the sliding block 72 to slide along the second sliding rail 71, and the top of the sliding block 72 is provided with a driving pushing block 73.

[0037] In the scheme, a single channel steel is placed on the second conveying belt on the left moving rack, the second conveying belt drives the single channel steel to move forward until the front end of the single channel steel abuts against the second channel steel stop block, then the third driver drives the second pushing block to push the single channel steel abutting against the second channel steel stop block to the space between the two temporary storage racks, the single channel steel moves to the third conveying belt on the two temporary storage racks through the extension plates, the third conveying belt drives all the channel steels thereon to move to the moving rack on the right side, when the single channel steels on the two third conveying belts move to the rightmost ends of the two temporary storage racks, the sixth driver drives the corresponding sliding rail platforms to slide inwards along the corresponding first sliding rails, so that the driving pushing blocks on the sliding rail platforms move inwards until the two driving pushing blocks move to the inner sides of the single channel steels on the rightmost side, then the fourth driver drives the corresponding driving sliding blocks to move rightwards along the corresponding second sliding rails, so that the corresponding second sliding rails drive the corresponding driving pushing blocks to push the single channel steels on the rightmost side to the second conveying belt on the moving rack on the right side through the two extension plates.

[0038] After the single channel steel moves to the second conveying belt on the moving rack on the right side, the second conveying belt on the side drives the single channel steel to move forward until the single channel steel moves to the first conveying belt on the lifting rack, when the first conveying belt drives the single channel steel to move forward until the front end of the single channel steel abuts against the first channel steel stop block, at this time, the two lifting blocks are respectively below the front end and the rear end of the single channel steel, the first driver drives the rotating shaft to rotate, the rotating shaft drives the two driving wheels to rotate synchronously, the two driving wheels and the corresponding driven wheels cooperate with each other to drive the two chains to move synchronously, so that the two lifting blocks rise synchronously, the two lifting blocks contact the corresponding one end of the single channel steel and lift the single channel steel upwards, when the two lifting blocks lift the single channel steel to the preset position, the first driver stops driving the rotating shaft, so that the two lifting blocks stop rising, at this time, the single channel steel is on the right side of the first pushing block, the second driver drives the corresponding first pushing block to move rightwards, so that the two first pushing blocks push the single channel steel rightwards to the machining device for machining.

Claims

1. A channel steel feeding device, characterized in that: The assembly includes a material transfer component (1) and a material lifting component (2). The material lifting component (2) includes a first pushing module, a lifting module, and a lifting frame (21). The lifting frame (21) is arranged in a front-to-back direction. The lifting frame (21) is provided with a first conveyor belt (22) for transporting channel steel (14). The first conveyor belt (22) is arranged in a front-to-back direction. The lifting module includes a lifting drive mechanism and two lifting blocks (23). The two lifting blocks (23) are symmetrically arranged on the front and rear sides of the first conveyor belt (22). The lifting drive mechanism is used to drive the two lifting blocks (23) to rise / fall simultaneously. The first pushing module is used to push out a single channel steel (14) lifted by the two lifting blocks (23). The material transfer component (1) is used to transport the single channel steel (14) onto the first conveyor belt (22).

2. The channel steel feeding device according to claim 1, characterized in that: The lifting drive mechanism includes a frame (24), a rotating shaft (25), and a first driver (26). The frame (24) is located on the left side of the lifting frame (21). The frame (24) is symmetrically equipped with sprocket assemblies. The sprocket assembly includes a driven wheel (241) and a driving wheel (242) located above the driven wheel. The driven wheel (241) and the driving wheel (242) are connected by a chain (243). The lifting block (23) corresponds one-to-one with the chain (243) and is fixedly connected to the corresponding chain (243). The rotating shaft (25) is arranged in a front-to-back direction. The two driving wheels (242) are respectively sleeved on the front and rear ends of the rotating shaft (25). The first driver (26) is used to drive the rotating shaft (25) to rotate.

3. The channel steel feeding device according to claim 2, characterized in that: The first pushing module includes a first pushing mechanism arranged side by side, the first pushing mechanism is located between two sprocket assemblies, the first pushing mechanism includes a first pushing block (27) and a second driver (28), the first pushing block (27) is located below the rotating shaft (25), and the second driver (28) is used to drive the first pushing block (27) to move left and right.

4. The channel steel feeding device according to claim 1, characterized in that: The front side of the lifting frame (21) is provided with a first channel steel block (29) for blocking the channel steel (14). The first channel steel block (29) is vertically arranged, and there is a gap between the first channel steel block (29) and the lifting frame (21) for the lifting block (23) on this side to pass through.

5. The channel steel feeding device according to claim 1, 2, 3, or 4, characterized in that: The material transfer assembly (1) includes two symmetrically arranged material transfer racks (11). The material transfer racks (11) are arranged in a front-to-back direction. The material transfer racks (11) are provided with a second conveyor belt (12) for conveying the channel steel (14). The second conveyor belt (12) is arranged in a front-to-back direction. The second conveyor belt (12) on the right side is located behind the first conveyor belt (22). A material storage module is provided between the two material transfer racks (11). An extension plate (13) is provided on one side of the material transfer rack (11) corresponding to the material storage module. A second pushing module is provided on the material transfer rack (11) on the left side. The second pushing module is used to push the channel steel (14) on the second conveyor belt (12) on the left side to the material storage module. The material storage module is used to temporarily store the channel steel (14) and push the temporarily stored channel steel (14) onto the second conveyor belt (12) on the right side.

6. The channel steel feeding device according to claim 5, characterized in that: A second channel steel block (111) is provided on the front side of the transfer rack (11) located on the left side to block the channel steel (14).

7. The channel steel feeding device according to claim 5, characterized in that: The second pushing module includes a second pushing mechanism (3) arranged side by side. The second pushing mechanism (3) is located above the left side of the second conveyor belt (12) on the left side. The second pushing mechanism (3) includes a second pushing block (31) and a third driver (32). The third driver (32) is used to drive the second pushing block (31) to move left and right.

8. The channel steel feeding device according to claim 5, characterized in that: The material handling temporary storage module includes temporary storage racks (4) arranged symmetrically front and back, the temporary storage racks (4) are arranged in a left-right direction, the temporary storage racks (4) are provided with a third conveyor belt (41) for conveying channel steel (14), the third conveyor belt (41) is arranged in a left-right direction, the right end of the temporary storage racks (4) is provided with a third pushing mechanism, the third pushing mechanism is used to push the rightmost single channel steel (14) on the third conveyor belt (41) onto the second conveyor belt (12) located on the right.

9. The channel steel feeding device according to claim 8, characterized in that: The third pushing mechanism includes a base (5) located on the outer side of the right end of the temporary storage rack (4). The base (5) is provided with a first slide rail (51), a slide rail platform (52) and a sixth driver (53). The first slide rail (51) is arranged in a front-to-back direction. The slide rail platform (52) can slide along the first slide rail (51). The sixth driver (53) is used to drive the slide rail platform (52) to move along the first slide rail (51). The slide rail platform (52) is provided with a pushing structure. The pushing structure is used to push a single channel steel (14) onto the second conveyor belt (12) located on the right side.

10. The channel steel feeding device according to claim 9, characterized in that: The feeding structure includes a second slide rail (71), a slider (72), and a fourth driver (7). The second slide rail (71) is arranged in a left-right direction. The slider (72) can slide along the second slide rail (71). The fourth driver (7) is used to drive the slider (72) to slide along the second slide rail (71). A driving push block (73) is provided on the top of the slider (72).