Aluminum material processing cutting equipment

CN224795239UActive Publication Date: 2026-09-25ZHEJIANG XINHE POWDER METALLURGY PROD CO LTD
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Patent Information

Application Number
CN202521890643.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-03
Publication Date
2026-09-25
Estimated Expiration
2035-09-03

AI Technical Summary

Technical Problem

[0005]针对现有技术的不足,本实用新型提供了一种铝材加工切割设备,解决了该装置在将较长铝材进行分段切割时,需要人工进行推动其前进,而通过人力推动较为费时费力,且人工在推动铝材时会使铝材歪斜,需要不断进行调整从而降低工作效率,其二,该装置在切割铝材时会产生较多的碎屑,微小碎屑散落在空气中被人吸入会对人体造成损害,且碎屑在工作台上积累不易进行处理,致使作业安全具有一定的隐患的问题

Benefits of technology

[0011]本方案能够,使得驱动电机对驱动丝杆驱动时更加稳定。

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to aluminium material processing equipment technical field discloses an aluminium material processing cutting equipment, including cutting machine base, be provided with cutting mechanism on the cutting machine base, the one end of cutting machine base is provided with cutting feeding assembly, the other end of cutting machine base is provided with scrap processing subassembly, the utility model discloses setting up cutting feeding assembly and scrap processing subassembly on cutting machine base, wherein the two clamping connecting plates in cutting feeding assembly can be limited to the aluminium material end portion on the feeding support plate after the drive adjustment of drive screw, and the bottom of feeding pushboard is connected with drive silk cover through fixed connecting rod and limiting slide block, can drive the aluminium material board on feeding support plate to be cut and be processed in cutting mechanism and be pushed steadily straight, guarantees the feeding stability of aluminium material board, and the worker does not need to come back and forth to the aluminium material board correction adjustment, effectively improves its cutting efficiency.
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Description

Technical Field

[0001] This utility model relates to the technical field of aluminum processing equipment, specifically to an aluminum processing and cutting device. Background Technology

[0002] Aluminum cutting equipment is a mechanical tool specifically used for cutting and processing aluminum materials. The cutting tool of the aluminum cutting machine is a circular saw blade with carbide inserts. The spindle speed of the saw blade is 2000-5000 revolutions. The aluminum cutting machine is used to cut aluminum rods, aluminum plates, aluminum tubes, and aluminum profiles.

[0003] When cutting aluminum materials, an aluminum cutting machine is required. An aluminum cutting machine is a mechanical device specifically designed for cutting aluminum profiles, aluminum plates, or other aluminum materials. Generally, the whole machine includes a frame, a feeding mechanism, a clamping mechanism, a circular saw cutting unit, and a control unit. The aluminum cutting machine is characterized by high cutting precision, small burrs on the cut, and high efficiency.

[0004] However, there are still some shortcomings in the actual use of aluminum cutting machines. Firstly, when cutting long aluminum materials into sections, the machine needs to be manually pushed forward, which is time-consuming and labor-intensive. Moreover, the aluminum material may be tilted when pushed manually, requiring constant adjustment and reducing work efficiency. Secondly, the machine generates a lot of debris when cutting aluminum materials. These tiny debris, scattered in the air, can be inhaled and cause harm to the human body. Furthermore, the debris accumulates on the worktable and is not easy to handle, posing a certain safety hazard to the operation. Utility Model Content

[0005] To address the shortcomings of existing technologies, this utility model provides an aluminum processing and cutting device. This solves the problems of the previous method requiring manual pushing of long aluminum sections during segmented cutting, which is time-consuming and labor-intensive. Furthermore, manual pushing can cause the aluminum to tilt, requiring constant adjustments and reducing work efficiency. Secondly, the device generates a large amount of debris during cutting, and these tiny debris, scattered in the air, can be inhaled and cause harm. Moreover, the debris accumulates on the worktable and is difficult to handle, posing a safety hazard.

[0006] This utility model provides the following technical solution: an aluminum material processing and cutting equipment, including a cutting machine base, a cutting mechanism is provided on the cutting machine base, a cutting and feeding component is provided at one end of the cutting machine base, and a chip handling component is provided at the other end of the cutting machine base;

[0007] The cutting and feeding assembly includes a feeding support plate fixed to the end of the cutting machine base. A drive screw is rotatably mounted at the center of the bottom end of the feeding support plate, and a drive sleeve is fitted onto the drive screw. The end of the drive screw rotatably passes through the feeding support plate. A drive motor is mounted on the side of the feeding support plate, and the drive shaft of the drive motor is fixedly connected to the end of the drive screw. A limiting slide is formed at the center of the top end of the feeding support plate, and a limiting slider is fixed to the top end of the drive sleeve. The limiting slider is slidably embedded in the limiting slide. A feeding push plate is provided on the top side of the plate end. The bottom end of the feeding push plate is fixedly connected to the limiting slider through a fixed connecting rod. Two adjusting grooves are symmetrically opened on both sides of the fixed connecting rod. A driving screw is rotatably inserted into each adjusting groove. The end of the driving screw rotatably passes through the adjusting groove. A movable sliding slot is opened on the top side of the adjusting groove. An adjusting screw sleeve is fitted on the driving screw. A movable limiting block is fixed at the top of the adjusting screw sleeve. The movable limiting block is slidably inserted into the movable sliding slot. A clamping connecting plate is fixed on the side of the adjusting screw sleeve.

[0008] Preferred technical solution 1: The debris handling component includes a debris collection chamber located on the top side of the end of the cutting machine base. A closed top plate is provided on the debris collection chamber. A plurality of debris collection holes are evenly provided on the closed top plate. The closed top plate is fixedly connected to the cutting machine base on all four sides by fastening screws. An exhaust fan is provided on the side of the cutting machine base. An exhaust pipe is connected to the input end of the exhaust fan.

[0009] Preferred technical solution 2: The end of the exhaust pipe extends through the base of the cutting machine into the debris collection chamber. The end of the exhaust pipe is provided with a filter protective cover. The side of the debris collection chamber is provided with a discharge opening. The side of the discharge opening is rotatably provided with an opening closing plate. The end of the cutting machine base is provided with a locking screw. A locking abutment plate is movably inserted on the locking screw. A locking nut is sleeved on the end of the locking screw.

[0010] Preferred technical solution 3: The bottom of the drive motor is fixedly connected to the feeding support plate via a connecting plate.

[0011] This solution enables the drive motor to drive the lead screw more stably.

[0012] Preferred technical solution four: The bottom end of the exhaust fan is connected to the outer wall of the cutting machine base through a fixing plate.

[0013] This solution can make the exhaust fan run more stably.

[0014] Preferred technical solution five: A rubber sealing block is provided on the side of the opening closing plate.

[0015] This solution enables the opening and closing plate to achieve a more tight seal after closing the discharge opening.

[0016] Compared with the prior art, the present invention provides an aluminum material processing and cutting equipment with the following advantages: The present invention provides a cutting and feeding assembly and a chip handling assembly on the base of the cutting machine. The two clamping connecting plates in the cutting and feeding assembly can limit and abut the ends of the aluminum material placed on the feeding support plate after being driven and adjusted by the drive screw. The bottom end of the feeding push plate is connected to the drive screw sleeve through a fixed connecting rod and a limiting slider. Under the drive of the drive motor to the drive screw, the aluminum material plate on the feeding support plate can be pushed smoothly and straight into the cutting mechanism for cutting and processing, which ensures the stability of the aluminum material plate feeding and eliminates the need for workers to correct and adjust the aluminum material plate back and forth, thus effectively improving the cutting efficiency.

[0017] The top of the debris collection chamber in the debris handling component is closed by a closed top plate. Several debris collection holes are evenly distributed on the closed top plate. The exhaust fan draws airflow into the debris collection chamber through the exhaust pipe, so that the debris that falls onto the closed top plate can be quickly sucked into the debris collection chamber through the debris collection holes for centralized collection and storage, which achieves the effect of debris cleaning and greatly reduces the amount of debris flying into the air during the cutting process, ensuring greater safety for workers during cutting operations. Attached Figure Description

[0018] Figure 1 This is a three-dimensional structural schematic diagram of the present invention;

[0019] Figure 2 For the present utility model Figure 1 Exploded view of the structure of the cutting and feeding assembly;

[0020] Figure 3 This is a side view of the structure of this utility model;

[0021] Figure 4 For the present utility model Figure 3 Enlarged view of the structure of the medium debris collection chamber.

[0022] In the diagram: 1. Cutting machine base; 2. Cutting mechanism; 3. Cutting and feeding assembly; 4. Debris handling assembly;

[0023] 301. Feeding support plate; 302. Drive screw; 303. Drive sleeve; 304. Drive motor; 305. Limiting slide; 306. Limiting slider; 307. Feeding push plate; 308. Fixed connecting rod; 309. Adjusting groove; 310. Drive screw; 311. Moving slide; 312. Adjusting sleeve; 313. Moving limit block; 314. Clamping connecting plate;

[0024] 401. Debris collection bin; 402. Closed top plate; 403. Debris collection hole; 404. Fastening screw; 405. Exhaust fan; 406. Exhaust duct; 407. Filter cover; 408. Discharge opening; 409. Opening closing plate; 410. Locking screw; 411. Locking contact plate; 412. Locking nut. Detailed Implementation

[0025] Please see Figure 1-4 ,

[0026] Example 1: An aluminum material processing and cutting equipment includes a cutting machine base 1, a cutting mechanism 2 is provided on the cutting machine base 1, a cutting and feeding component 3 is provided at one end of the cutting machine base 1, and a chip handling component 4 is provided at the other end of the cutting machine base 1.

[0027] The cutting and feeding assembly 3 includes a feeding support plate 301 fixed to the end of the cutting machine base 1. A drive screw 302 is rotatably mounted at the middle of the bottom end of the feeding support plate 301. A drive sleeve 303 is sleeved on the drive screw 302. The end of the drive screw 302 rotatably passes through the feeding support plate 301. A drive motor 304 is mounted on the side of the feeding support plate 301. The drive shaft of the drive motor 304 is fixedly connected to the end of the drive screw 302. A limiting slide 305 is opened at the middle of the top end of the feeding support plate 301. A limiting slider 306 is fixed at the top of the drive sleeve 303. The limiting slider 306 is slidably embedded in the limiting slide 305. A feeding push plate 307 is mounted on the top side of the end of the feeding support plate 301.

[0028] The bottom end of the feeding push plate 307 is fixedly connected to the limiting slider 306 via a fixed connecting rod 308. Two adjusting grooves 309 are symmetrically opened on both sides of the fixed connecting rod 308. A driving screw 310 is rotatably inserted into each adjusting groove 309. The end of the driving screw 310 rotatably passes through the adjusting groove 309. A movable sliding slot 311 is opened on the top side of the adjusting groove 309. An adjusting screw sleeve 312 is sleeved on the driving screw 310. A movable limiting block 313 is fixed at the top of the adjusting screw sleeve 312. The movable limiting block 313 is slidably inserted into the movable sliding slot 311. A clamping connecting plate 314 is fixed on the side of the adjusting screw sleeve 312.

[0029] The chip handling assembly 4 includes a chip collection chamber 401 located on the top side of the end of the cutting machine base 1. A closed top plate 402 is provided on the chip collection chamber 401. Several chip collection holes 403 are evenly provided on the closed top plate 402. The closed top plate 402 is fixedly connected to the cutting machine base 1 around its perimeter by fastening screws 404. An exhaust fan 405 is provided on the side of the cutting machine base 1. An exhaust pipe 406 is connected to the input end of the exhaust fan 405.

[0030] The end of the exhaust pipe 406 extends through the base 1 of the cutting machine and into the chip collection chamber 401. The end of the exhaust pipe 406 is provided with a filter protective cover 407. The side of the chip collection chamber 401 is provided with a discharge opening 408. The side of the discharge opening 408 is rotatably provided with an opening closing plate 409. The end of the base 1 of the cutting machine is provided with a locking screw 410. A locking contact plate 411 is movably inserted on the locking screw 410. The end of the locking screw 410 is fitted with a locking nut 412.

[0031] Example 2: The difference between this example and Example 1 is that the bottom of the drive motor 304 is fixedly connected to the feeding support plate 301 through a connecting plate.

[0032] This makes the drive motor 304 more stable when driving the lead screw 302.

[0033] Example 3: The difference between this example and Example 1 is that the bottom end of the exhaust fan 405 is connected to the outer wall of the cutting machine base 1 through a fixing plate.

[0034] This makes the operation of the 405 exhaust fan more stable.

[0035] Example 4: The difference between this example and Example 1 is that a rubber sealing block is provided on the side of the opening closing plate 409.

[0036] This makes the seal more tight after the opening closing plate 409 closes the discharge opening 408.

[0037] In this embodiment, when the aluminum cutting machine cuts long aluminum materials into segments, it requires manual pushing to move them forward. However, manual pushing is time-consuming and labor-intensive. Furthermore, manually pushing the aluminum material can cause it to tilt, requiring constant adjustments and reducing work efficiency. Secondly, the device generates a lot of debris when cutting aluminum materials. These tiny debris, scattered in the air, can be inhaled and cause harm to the human body. Moreover, the debris accumulates on the worktable and is difficult to handle, posing a certain safety hazard to the operation.

[0038] In summary, in practical implementation, when a user needs to cut a single long aluminum material into segments, the user can place the aluminum material on the top of the feeding support plate 301 on the cutting feeding assembly 3 at the end of the cutting machine base 1. The user can rotate the drive screw 310, which is rotatably arranged in the adjusting groove 309. The end of the drive screw 310 is provided with a rotating block, and an adjusting screw sleeve 312 is sleeved on the drive screw 310. The top side of the adjusting screw sleeve 312 is slidably inserted into the moving slide slit 311 through the moving limit block 313. This allows the drive screw 310 to move the adjusting sleeve 312. The clamping connecting plate 314 on the adjusting sleeve 312 limits and abuts the two sides of the aluminum material end placed on the top of the feeding support plate 301, ensuring that it is placed more stably on the feeding support plate 301. After the drive motor 304 is powered on, it starts and drives the drive screw 302 to rotate. The drive screw 302 is fitted with a drive sleeve 303. The top of the drive sleeve 303 slides in the limiting slide gap 305 through the limiting slider 306.

[0039] This allows the drive screw sleeve 303 to move left and right on the drive screw 302, while the limiting slider 306 is fixedly connected to the bottom end of the feeding push plate 307 via the fixed connecting rod 308. This causes the feeding push plate 307 to move left and right on the feeding support plate 301, so that the aluminum plate, which has been limited by the two clamping connecting plates 314, can be pushed to the cutting mechanism 2 on the cutting machine base 1 for stable cutting under the smooth push of the feeding push plate 307. This makes the aluminum plate enter the cutting mechanism 2 more straight and cut without the need for workers to repeatedly correct and adjust the aluminum plate, making the operation more convenient.

[0040] The cutting machine base 1 is also equipped with a chip processing component 4. The chip collection chamber 401 in the chip processing component 4 is located at the end of the cutting machine base 1, so that the tiny chips cut by the cutting mechanism 2 can fall onto the closed top plate 402 and fall into the chip collection chamber 401 through a number of chip collection holes 403 evenly opened on the closed top plate 402. In order to increase the chip collection efficiency, an exhaust fan 405 is also provided on the side of the cutting machine base 1. When the exhaust fan 405 is started, the exhaust fan 405 will draw the airflow inside the chip collection chamber 401 through the exhaust pipe 406.

[0041] This allows external airflow to enter the debris collection chamber 401 only through the debris collection hole 403, thereby accelerating the process of debris falling from the closed top plate 402 quickly entering the debris collection chamber 401 through the debris collection hole 403 and being collected. The discharge opening 408 on the side of the debris collection chamber 401 is rotatably equipped with an opening closing plate 409. By rotating the opening closing plate 409, the debris collected in the debris collection chamber 401 can be removed, making it more convenient for users to clean up and greatly reducing the amount of debris flying into the air during the cutting process.

Claims

1. An aluminum material processing and cutting device, comprising a cutting machine base (1), wherein a cutting mechanism (2) is provided on the cutting machine base (1), characterized in that: One end of the cutting machine base (1) is provided with a cutting and feeding assembly (3), and the other end of the cutting machine base (1) is provided with a chip handling assembly (4). The cutting and feeding assembly (3) includes a feeding support plate (301) fixed to the end of the cutting machine base (1). A drive screw (302) is rotatably mounted at the middle of the bottom end of the feeding support plate (301). A drive sleeve (303) is fitted on the drive screw (302). The end of the drive screw (302) rotatably passes through the feeding support plate (301). A drive motor (304) is mounted on the side of the feeding support plate (301). The drive shaft of the drive motor (304) is fixedly connected to the end of the drive screw (302). A limiting slide (305) is opened at the middle of the top end of the feeding support plate (301). A limiting slider (306) is fixed at the top end of the drive sleeve (303). The limiting slider (306) is slidably embedded in the limiting slide (305). The end of the feeding support plate (301) A feeding push plate (307) is provided on the top side of the part. The bottom end of the feeding push plate (307) is fixedly connected to the limiting slider (306) through a fixed connecting rod (308). Two adjusting grooves (309) are symmetrically opened on both sides of the fixed connecting rod (308). A driving screw (310) is rotatably inserted in each adjusting groove (309). The end of the driving screw (310) rotatably passes through the adjusting groove (309). A movable sliding slot (311) is opened on the top side of the adjusting groove (309). An adjusting screw sleeve (312) is sleeved on the driving screw (310). A movable limiting block (313) is fixed at the top of the adjusting screw sleeve (312). The movable limiting block (313) is slidably inserted in the movable sliding slot (311). A clamping connecting plate (314) is fixed on the side of the adjusting screw sleeve (312).

2. The aluminum processing and cutting equipment according to claim 1, characterized in that: The debris handling assembly (4) includes a debris collection chamber (401) located on the top side of the end of the cutting machine base (1). A closed top plate (402) is provided on the debris collection chamber (401). A plurality of debris collection holes (403) are evenly provided on the closed top plate (402). The closed top plate (402) is fixedly connected to the cutting machine base (1) around its perimeter by fastening screws (404). An exhaust fan (405) is provided on the side of the cutting machine base (1). An exhaust pipe (406) is connected to the input end of the exhaust fan (405).

3. The aluminum material processing and cutting equipment according to claim 2, characterized in that: The end of the exhaust pipe (406) extends through the cutting machine base (1) into the debris collection bin (401). The end of the exhaust pipe (406) is provided with a filter protective cover (407). The side of the debris collection bin (401) is provided with a discharge opening (408). The side of the discharge opening (408) is rotatably provided with an opening closing plate (409). The end of the cutting machine base (1) is provided with a locking screw (410). A locking contact plate (411) is movably inserted on the locking screw (410). The end of the locking screw (410) is fitted with a locking nut (412).

4. The aluminum processing and cutting equipment according to claim 3, characterized in that: The bottom of the drive motor (304) is fixedly connected to the feeding support plate (301) via a connecting plate.

5. The aluminum processing and cutting equipment according to claim 4, characterized in that: The bottom end of the exhaust fan (405) is connected to the outer wall of the cutting machine base (1) via a fixing plate.

6. The aluminum material processing and cutting equipment according to claim 5, characterized in that: A rubber sealing block is provided on the side of the opening closing plate (409).