A feeding platform for aluminum alloy forgings

CN224701244UActive Publication Date: 2026-09-01JIANGSU YIHE ALLOY TECH CO LTD
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Patent Information

Application Number
CN202521730324.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-14
Publication Date
2026-09-01
Estimated Expiration
2035-08-14

AI Technical Summary

Technical Problem

[0003]现有的铝合金锻件切割设备通常通过吊具将铝合金锻件吊起,再手动调整铝合金锻件的位置状态,使得切割下的小锻件的长度符合要求,然而,吊具将铝合金锻件吊起时,铝合金锻件为悬空状态,手动调整需配合尺寸测量,调整费时费力,导致铝合金锻件的分切效率大大降低

Benefits of technology

[0018]通过使用本实用新型所述的一种铝合金锻件送料平台,切割设备对铝合金锻件每完成一次分切后,输送组件带动夹持组件和铝合金锻件向靠近切割槽的方向移动预设距离,从而自动完成铝合金锻件的位置调节,且调节省时省力,从而提高了铝合金锻件的分切效率。

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Abstract

This utility model relates to the field of aluminum alloy forging processing technology, and discloses an aluminum alloy forging feeding platform and a worktable. A conveying assembly is installed on the worktable, and a clamping assembly is connected to the conveying assembly. The clamping assembly includes a support plate connected to the conveying assembly, a mounting part connected to the support plate, a driving part connected to the mounting part, and a clamping part connected to the driving part. The clamping part clamps the end of the aluminum alloy forging away from the cutting groove. A cutting groove is provided on the worktable. By using the aluminum alloy forging feeding platform of this utility model, after each slitting of the aluminum alloy forging by the cutting equipment, the conveying assembly drives the clamping assembly and the aluminum alloy forging to move a preset distance closer to the cutting groove, thereby automatically completing the position adjustment of the aluminum alloy forging. This adjustment is time-saving and labor-saving, thus improving the slitting efficiency of the aluminum alloy forging.
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Description

Technical Field

[0001] This utility model relates to the field of aluminum alloy forging technology, and more specifically, to an aluminum alloy forging feeding platform. Background Technology

[0002] Aluminum alloy forgings are metal parts made by plastically deforming aluminum alloy billets through forging processes. Aluminum alloy forgings have the characteristics of being lightweight and high-strength, having good corrosion resistance, and good processing adaptability. They are widely used in aerospace, automotive industry, rail transportation, shipbuilding and other fields. Aluminum alloy forgings are usually large forgings. By rationally planning the cutting scheme, large forgings can be cut into multiple smaller forgings, which can effectively reduce the waste of scrap materials and facilitate the processing of multiple smaller forgings into parts of the required shape and size.

[0003] Existing aluminum alloy forging cutting equipment typically uses a lifting device to suspend the aluminum alloy forging, and then manually adjusts the position of the aluminum alloy forging to ensure that the length of the cut small forging meets the requirements. However, when the aluminum alloy forging is suspended in the air, manual adjustment requires dimensional measurement, which is time-consuming and labor-intensive, resulting in a significant reduction in the cutting efficiency of aluminum alloy forging. Utility Model Content

[0004] The purpose of this invention is to overcome the defects in the existing technology and provide an aluminum alloy forging feeding platform that can automatically adjust the position of aluminum alloy forgings.

[0005] To achieve the above objectives, the present invention provides an aluminum alloy forging feeding platform, comprising: a worktable, on which a conveying assembly is mounted, the conveying assembly being connected to a clamping assembly, the clamping assembly including a support plate connected to the conveying assembly, a mounting portion connected to the support plate, a driving portion connected to the mounting portion, and a clamping portion connected to the driving portion, the clamping portion clamping the end of the aluminum alloy forging away from the cutting groove, the worktable being provided with a cutting groove, and the conveying direction of the conveying assembly being perpendicular to the length direction of the cutting groove.

[0006] By using the aluminum alloy forging feeding platform described in this utility model, after each slitting of the aluminum alloy forging by the cutting equipment, the conveying component can automatically adjust the position of the aluminum alloy forging, which is time-saving and labor-saving, thereby improving the slitting efficiency of the aluminum alloy forging.

[0007] Preferably, the support plate is provided with multiple sets of positioning holes spaced apart along its length. The mounting part includes two mounting plates symmetrically distributed about a first symmetrical plane of the support plate. The mounting plates are detachably mounted on the support plate by bolts and nuts. The first symmetrical plane is a vertical plane, and the length direction of the support plate is perpendicular to the first symmetrical plane. This design improves the applicability of the clamping assembly by adjusting the installation position of the mounting plates, facilitating the clamping and fixing of aluminum alloy forgings of different sizes.

[0008] Preferably, the drive unit includes a threaded rod, a drive plate, and a rotating handle. The threaded rod is rotatably connected to the mounting plate, and the threaded section of the drive plate and the threaded rod are threadedly driven together. The rotating handle is fixedly connected to the end of the threaded rod away from the mounting plate, and the clamping part is fixedly connected to the drive plate and slidably connected to the mounting plate. This design results in a simple structure, convenient adjustment, and low production cost for the drive unit.

[0009] Preferably, the outer ring of the threaded rod near the mounting plate is provided with a raised ring, and a limiting sleeve is installed on the side of the mounting plate near the raised ring. The limiting sleeve is provided with a limiting hole that is rotatably connected to the raised ring, and the limiting sleeve is provided with a through hole that is rotatably connected to the non-threaded section of the threaded rod. This design ensures that the threaded rod and the mounting plate can only rotate relative to each other, and the threaded rod will not detach from the mounting plate.

[0010] Preferably, the clamping part includes a clamping plate and a guide rod. The mounting plate has a guide hole that slides through the guide rod. One end of the guide rod is fixedly connected to the clamping plate, and the other end of the guide rod is connected to the drive plate by screws. This design helps to ensure the stable operation of the drive part.

[0011] Preferably, an elastic block is fixedly connected to the side of the clamping plate away from the guide rod. This design ensures the stability of the clamping part in holding the aluminum alloy forging.

[0012] Preferably, the clamping plate and the elastic block are arranged vertically along their length. This design helps to further improve the applicability of the clamping assembly.

[0013] Preferably, the conveying assembly includes a slide fixedly connected to the worktable, a slide table slidably connected to the slide, a lead screw rotatably connected to the slide, and a servo motor driven by the lead screw. The lead screw is threadedly connected to the slide table, the servo motor is fixedly mounted on the slide, and the support plate is fixedly mounted on the slide table. With this design, the servo motor drives the lead screw to rotate, which in turn drives the slide to move the clamping assembly.

[0014] Preferably, the slide block is provided with a slide rail, and the slide table is provided with a slider that is slidably connected to the slide rail. This design helps to improve the stability of the aluminum alloy forging conveying.

[0015] Preferably, a support assembly is fixedly mounted on the worktable. The support assembly is located on the side of the support plate near the cutting groove. The support assembly includes a bracket, a rotating shaft, and support rollers. The bracket is fixedly mounted on the worktable, the rotating shaft is fixedly mounted on the bracket, and the support rollers are rotatably mounted on the rotating shaft. The plane containing the top surface of the support plate is tangent to the outer edge of the support rollers. This design ensures that the aluminum alloy forging remains horizontal, guarantees cutting accuracy, and helps reduce wear on the clamping assembly caused by the aluminum alloy forging, thus reducing the maintenance cost of the clamping assembly.

[0016] Preferably, a servo electric cylinder is also installed on the worktable. The servo electric cylinder is located on the side of the cutting groove away from the conveying assembly, and the end face of the output end of the servo electric cylinder is in contact with the end face of the aluminum alloy forging. This design ensures that the length of the small forgings cut in the first slitting also meets the requirements and helps to improve the slitting efficiency of aluminum alloy forgings.

[0017] The beneficial effects of this utility model are as follows:

[0018] By using the aluminum alloy forging feeding platform described in this utility model, after each slitting of the aluminum alloy forging by the cutting equipment, the conveying component drives the clamping component and the aluminum alloy forging to move a preset distance toward the cutting groove, thereby automatically completing the position adjustment of the aluminum alloy forging. The adjustment is time-saving and labor-saving, thus improving the slitting efficiency of the aluminum alloy forging. Attached Figure Description

[0019] Figure 1 This is a schematic diagram of the overall structure of the aluminum alloy forging feeding platform;

[0020] Figure 2 This is a three-dimensional structural diagram of an aluminum alloy forging feeding platform;

[0021] Figure 3 This is a right-side schematic diagram of an aluminum alloy forging feeding platform;

[0022] Figure 4 This is a three-dimensional structural diagram of the clamping component;

[0023] Figure 5 This is a partial front sectional view of the clamping component;

[0024] Figure 6 This is a schematic diagram of the three-dimensional structure of the support plate;

[0025] Figure 7This is a three-dimensional structural diagram of the mounting plate;

[0026] Figure 8 This is a three-dimensional structural diagram of the drive unit and the clamping unit;

[0027] Figure 9 This is a schematic diagram of the three-dimensional structure of the limiting sleeve;

[0028] Figure 10 This is a three-dimensional structural diagram of the conveying component;

[0029] Figure 11 This is a schematic diagram of the three-dimensional structure of the supporting components.

[0030] In the diagram: 100, workbench; 110, cutting groove;

[0031] 200. Conveying assembly; 210. Slide block; 211. Slide rail; 220. Slide table; 221. Slider; 230. Lead screw; 240. Servo motor;

[0032] 300. Clamping assembly; 310. Support plate; 311. Positioning hole group; 3111. First through hole; 320. Mounting part; 321. Mounting plate; 3211. Second through hole; 3212. Guide hole; 330. Drive part; 331. Threaded rod; 3311. Protruding ring; 332. Drive plate; 333. Rotary handle; 340. Clamping part; 341. Clamping plate; 342. Guide rod; 343. Elastic block; 350. Limiting sleeve; 351. Limiting hole; 352. Through hole;

[0033] 400. Support component; 410. Bracket; 420. Rotating shaft; 430. Support roller;

[0034] 500, Servo Electric Cylinder;

[0035] 600. Aluminum alloy forgings. Detailed Implementation

[0036] The subject matter described herein will now be discussed with reference to exemplary embodiments. It should be understood that these embodiments are discussed to enable those skilled in the art to better understand and implement the subject matter described herein. Changes may be made to the function and arrangement of the elements discussed without departing from the scope of this specification. Various processes or components may be omitted, substituted, or added as needed in the examples. Furthermore, features described in some examples may be combined in other examples.

[0037] To better understand this utility model, the following is in conjunction with... Figures 1-11 This utility model provides a detailed description of an aluminum alloy forging feeding platform.

[0038] Example 1:

[0039] like Figures 1-3 As shown, an aluminum alloy forging feeding platform includes: a workbench 100, a conveying assembly 200 mounted on the workbench 100, a clamping assembly 300 connected to the conveying assembly 200, the clamping assembly 300 including a support plate 310 connected to the conveying assembly 200, a mounting part 320 connected to the support plate 310, a driving part 330 connected to the mounting part 320, and a clamping part 340 connected to the driving part 330. The clamping part 340 clamps the end of the aluminum alloy forging 600 away from the cutting groove 110. The workbench 100 is provided with a cutting groove 110, and the conveying direction of the conveying assembly 200 is perpendicular to the length direction of the cutting groove 110.

[0040] It should be noted that the support plate 310 is used to support the aluminum alloy forging 600. By adjusting the drive unit 330, the clamping unit 340 is driven to clamp the aluminum alloy forging 600 to prevent the aluminum alloy forging 600 from shifting during the cutting process, which would affect the cutting accuracy. The conveying component 200 can drive the clamping component 300 to move closer to or further away from the cutting groove 110, thereby driving the aluminum alloy forging 600 to move towards the cutting groove 110 or driving the clamping component 300 to reset.

[0041] A cutting device (not shown in the figure) is installed on the workbench 100. The cutting device cuts the aluminum alloy forging 600 by means of a saw blade. The saw blade of the cutting device is set vertically and moves along the length direction of the cutting groove 110, thereby cutting off small forgings from the aluminum alloy forging 600.

[0042] When the conveying component 200 drives the clamping component 300 to move towards the cutting groove 110, the conveying method is intermittent conveying. Every preset time interval (within this preset time interval, the cutting equipment completes one cut of the aluminum alloy forging 600 and completes its own reset), the conveying component 200 drives the clamping component 300 and the aluminum alloy forging 600 to move a preset distance towards the cutting groove 110. This preset distance is the preset length of the aluminum alloy forging 600 cut. For example, when it is necessary to cut the aluminum alloy forging 600 into multiple 30cm long small forgings, after each cut is completed, the cutting equipment resets, and then the conveying component 200 drives the clamping component 300 and the aluminum alloy forging 600 to move 30cm towards the cutting groove 110.

[0043] After the aluminum alloy forging 600 is cut, the clamping part 340 is driven by the adjustment of the drive unit 330 to release the remaining aluminum alloy forging 600. At this time, the length of the remaining aluminum alloy forging 600 is the same as the length of the cut small forging. The remaining aluminum alloy forging 600 is removed, and the conveying component 200 drives the clamping component 300 to reset.

[0044] By using the aluminum alloy forging feeding platform of this utility model, after the cutting equipment completes each slitting of the aluminum alloy forging 600, the conveying component 200 drives the clamping component 300 and the aluminum alloy forging 600 to move a preset distance toward the cutting groove 110, thereby automatically completing the position adjustment of the aluminum alloy forging 600. The adjustment is time-saving and labor-saving, thereby improving the slitting efficiency of the aluminum alloy forging 600.

[0045] Example 2:

[0046] As an optimization of Example 1, such as Figure 1 , Figure 4 , Figure 5 , Figure 6 and Figure 7 As shown, the support plate 310 is provided with multiple sets of positioning holes 311 spaced apart along its length direction. The mounting part 320 includes two mounting plates 321 symmetrically distributed about a first symmetrical plane of the support plate 310. The mounting plates 321 are detachably mounted on the support plate 310 by bolts and nuts. The first symmetrical plane is a vertical plane, and the length direction of the support plate 310 is perpendicular to the first symmetrical plane.

[0047] It should be noted that the length direction of the support plate 310 is parallel to the length direction of the cutting groove 110. Each set of positioning hole groups 311 includes two first through holes 3111. Each mounting plate 321 has two second through holes 3211 through it. The two second through holes 3211 correspond to the two first through holes 3111 respectively. Each mounting plate 321 is fixed to the mounting plate 321 by two sets of bolts and nuts. The bolts pass through the first through holes 3111 and the corresponding first through holes 3111. With this design, when the mounting plate 321 is severely deformed, only the mounting plate 321 needs to be replaced, which helps to reduce the maintenance and replacement cost of the clamping assembly 300.

[0048] Multiple positioning hole groups 311 on one side of the first symmetry plane are used to cooperate with the installation of one of the mounting plates 321, and multiple positioning hole groups 311 on the other side of the first symmetry plane are used to cooperate with the installation of another mounting plate 321. By adjusting the installation position of the mounting plate 321, the applicability of the clamping assembly 300 can be improved so as to clamp and fix aluminum alloy forgings 600 of different sizes.

[0049] In this embodiment, the mounting plate 321 is L-shaped, and reinforcing ribs are provided at the corners of the mounting plate 321, thereby improving the rigidity and durability of the mounting plate 321.

[0050] Example 3:

[0051] As an optimization of Example 2, such as Figure 1 , Figure 4 , Figure 5and Figure 8 As shown, the drive unit 330 includes a threaded rod 331, a drive plate 332, and a rotating handle 333. The threaded rod 331 is rotatably connected to the mounting plate 321. The threaded section of the drive plate 332 and the threaded rod 331 are threadedly driven connected. The rotating handle 333 is fixedly connected to the end of the threaded rod 331 away from the mounting plate 321. The clamping part 340 is fixedly connected to the drive plate 332 and is slidably connected to the mounting plate 321.

[0052] It should be noted that both the drive unit 330 and the clamping unit 340 are provided in two sets, which are respectively connected to the two mounting plates 321. The length direction of the threaded rod 331 is parallel to the length direction of the support plate 310. The rotating handle 333 is set as a round rod perpendicular to the threaded rod 331. By rotating the rotating handle 333, the threaded rod 331 is driven to rotate, thereby driving the drive plate 332 to move along the length direction of the threaded rod 331, and then pushing the clamping unit 340 to move. By adjusting the drive units 330 on both sides of the aluminum alloy forging 600, the two clamping units 340 can clamp the aluminum alloy forging 600. The drive unit 330 has a simple structure, is easy to adjust, and has low production cost.

[0053] Example 4:

[0054] As an optimization of Example 3, such as Figure 5 , Figure 8 and Figure 9 As shown, a convex ring 3311 is provided on the outer ring of the threaded rod 331 near the mounting plate 321. A limit sleeve 350 is installed on the side of the mounting plate 321 near the convex ring 3311. The limit sleeve 350 is provided with a limit hole 351 that is rotatably connected to the convex ring 3311. The limit sleeve 350 is provided with a through hole 352 that is rotatably connected to the non-threaded section of the threaded rod 331.

[0055] It should be noted that both ends of the threaded rod 331 are non-threaded sections. The limiting sleeve 350 is installed on the mounting plate 321 by screws. The through hole 352 communicates with the limiting hole 351. The depth of the limiting hole 351 is consistent with the width of the convex ring 3311. By setting the convex ring 3311 and the limiting sleeve 350, it can be ensured that the threaded rod 331 and the mounting plate 321 can only rotate relative to each other. The threaded rod 331 will not detach from the mounting plate 321. It is ensured that the drive plate 332 can only be moved by rotating the threaded rod 331, thereby ensuring that the clamping part 340 can clamp the aluminum alloy forging 600.

[0056] In this embodiment, the convex ring 3311 fits against the mounting plate 321, and the limiting hole 351 is provided on the side of the limiting sleeve 350 near the mounting plate 321. The limiting sleeve 350 is composed of two semi-circular splicing parts. After the two splicing parts are installed on the mounting plate 321 by screws, the limiting sleeve 350 is formed. This design facilitates the disassembly, assembly, and replacement of the drive unit 330 and the limiting sleeve 350.

[0057] Example 5:

[0058] As an optimization of Example 4, such as Figure 1 , Figure 4 , Figure 7 and Figure 8 As shown, the clamping part 340 includes a clamping plate 341 and a guide rod 342. The mounting plate 321 is provided with a guide hole 3212 that slides with the guide rod 342. One end of the guide rod 342 is fixedly connected to the clamping plate 341, and the other end of the guide rod 342 is connected to the drive plate 332 by screws.

[0059] It should be noted that the drive plate 332 drives the clamping plate 341 to move through the guide rod 342. Through the sliding cooperation between the guide rod 342 and the guide hole 3212, it can be ensured that after rotating the threaded rod 331, the drive plate 332 can only move along the length direction of the threaded rod 331 and will not rotate, thereby ensuring the stable operation of the drive unit 330.

[0060] Example 6:

[0061] As an optimization of Example 5, such as Figure 4 , Figure 5 and Figure 8 As shown, an elastic block 343 is fixedly connected to the side of the clamping plate 341 away from the guide rod 342.

[0062] It should be noted that the elastic material is rubber. After the aluminum alloy forging 600 is clamped by adjusting the clamping assembly 300, the elastic block 343 is compressed. The clamping part 340 and the drive plate 332 tend to move away from the aluminum alloy forging 600, thereby eliminating the thread fit gap between the threaded rod 331 and the drive plate 332, thus locking the threaded rod 331 and ensuring the stability of the clamping part 340 in clamping the aluminum alloy forging 600.

[0063] Example 7:

[0064] As an optimization of Example 6, such as Figure 4 As shown, the length of the clamping plate 341 and the elastic block 343 is arranged in the vertical direction.

[0065] It should be noted that when the aluminum alloy forging 600 is cylindrical, the height of the part of the aluminum alloy forging 600 that contacts the elastic block 343 is half the outer diameter of the aluminum alloy forging 600. By setting the length direction of the clamping plate 341 and the elastic block 343 to be vertical, the clamping part 340 can be adapted to a larger range of cylindrical aluminum alloy forgings 600, which is beneficial to further improve the applicability of the clamping assembly 300.

[0066] Example 8:

[0067] As an optimization of Example 7, such as Figure 1 and Figure 10 As shown, the conveying assembly 200 includes a slide 210 fixedly connected to the worktable 100, a slide table 220 slidably connected to the slide 210, a lead screw 230 rotatably connected to the slide 210, and a servo motor 240 drivenly connected to the lead screw 230. The lead screw 230 is threadedly driven to the slide table 220, the servo motor 240 is fixedly mounted on the slide 210, and the support plate 310 is fixedly mounted on the slide table 220.

[0068] It should be noted that the length direction of the lead screw 230 is perpendicular to the length direction of the cutting groove 110. The servo motor 240 drives the lead screw 230 to rotate, thereby driving the slide table 220 to move along the length direction of the lead screw 230, which in turn drives the clamping assembly 300 and the aluminum alloy forging 600 to move synchronously.

[0069] In this embodiment, two sets of conveying components 200 are provided, and the two sets of conveying components 200 are arranged in parallel. Both slides 220 are fixedly connected to the support plate 310, thereby jointly driving the clamping component 300 and the aluminum alloy forging 600 to move stably.

[0070] Example 9:

[0071] As an optimization of Example 8, such as Figure 10 As shown, the slide block 210 is provided with a slide rail 211, and the slide table 220 is provided with a slider 221 that is slidably connected to the slide rail 211.

[0072] It should be noted that the length direction of the slide rail 211 is parallel to the length direction of the lead screw 230. By setting the slide rail 211 and the slider 221, during the process of the lead screw 230 driving the slide block 210 to move, the slide rail 211 guides the slide block 210 through cooperation with the slider 221, and at the same time ensures the stability of the movement of the slide block 210, thereby improving the stability of the aluminum alloy forging 600 conveying, and preventing the aluminum alloy forging 600 from shifting due to vibration or shaking during the conveying process, which would affect the cutting accuracy.

[0073] In this embodiment, each slide block 210 is provided with two slide rails 211, and each slide table 220 is provided with two sliders 221, with the two sliders 221 slidingly engaging with the two slide rails 211 respectively.

[0074] Example 10:

[0075] As an optimization of Example 9, such as Figure 1 , Figure 3 and Figure 11As shown, a support assembly 400 is fixedly installed on the worktable 100. The support assembly 400 is located on the side of the support plate 310 near the cutting groove 110. The support assembly 400 includes a bracket 410, a rotating shaft 420 and a support roller 430. The bracket 410 is fixedly installed on the worktable 100, the rotating shaft 420 is fixedly installed on the bracket 410, and the support roller 430 is rotatably installed on the rotating shaft 420. The plane containing the top surface of the support plate 310 is tangent to the outer edge of the support roller 430.

[0076] It should be noted that the length direction of the rotating shaft 420 is parallel to the length direction of the cutting groove 110, and the first symmetry plane of the support plate 310 is also one of the vertical symmetry planes of the support roller 430. By setting the support component 400, one end of the aluminum alloy forging 600 is supported by the support plate 310, and the other end of the aluminum alloy forging 600 is supported by the support roller 430, thereby ensuring that the aluminum alloy forging 600 remains horizontal and ensuring cutting accuracy. In addition, by setting the support component 400, it is beneficial to reduce the wear of the aluminum alloy forging 600 on the clamping component 300 and reduce the maintenance cost of the clamping component 300.

[0077] Example 11:

[0078] As an optimization of Example 10, such as Figure 2 and Figure 3 As shown, a servo electric cylinder 500 is also installed on the worktable 100. The servo electric cylinder 500 is located on the side of the cutting groove 110 away from the conveying assembly 200. The end face of the output end of the servo electric cylinder 500 is in contact with the end face of the aluminum alloy forging 600.

[0079] It should be noted that by adjusting the servo electric cylinder 500, the vertical distance between the output end face of the servo electric cylinder 500 and the saw blade is set to a preset distance. When the aluminum alloy forging 600 is cut for the first time, the conveying component 200 drives the clamping component 300 and the aluminum alloy forging 600 to move closer to the servo electric cylinder 500 until the end face of the aluminum alloy forging 600 is in contact with the output end face of the servo electric cylinder 500. This ensures that the length of the small forging cut for the first time also meets the requirements and helps to improve the cutting efficiency of the aluminum alloy forging 600.

[0080] The embodiments of the utility model have been described above with reference to the accompanying drawings. However, the embodiments are not limited to the specific implementation methods described above. The specific implementation methods described above are merely illustrative and not restrictive. Those skilled in the art can make many other forms under the guidance of the embodiments without departing from the spirit of the embodiments and the scope of protection of the claims, and all of these forms are within the protection scope of the embodiments.

Claims

1. A feeding platform for aluminum alloy forgings, characterized in that, include: A workbench (100) is provided, on which a conveying assembly (200) is installed. The conveying assembly (200) is connected to a clamping assembly (300). The clamping assembly (300) includes a support plate (310) connected to the conveying assembly (200), a mounting part (320) connected to the support plate (310), a driving part (330) connected to the mounting part (320), and a clamping part (340) connected to the driving part (330). A cutting groove (110) is provided on the workbench (100). The clamping part (340) clamps the end of the aluminum alloy forging (600) away from the cutting groove (110). The conveying direction of the conveying assembly (200) is perpendicular to the length direction of the cutting groove (110).

2. The aluminum alloy forging feeding platform according to claim 1, characterized in that, The support plate (310) is provided with a plurality of sets of positioning holes (311) spaced apart along its length direction. The mounting part (320) includes two mounting plates (321) symmetrically distributed about a first symmetrical plane of the support plate (310). The mounting plates (321) are detachably mounted on the support plate (310) by bolts and nuts. The first symmetrical plane is a vertical plane, and the length direction of the support plate (310) is perpendicular to the first symmetrical plane.

3. The aluminum alloy forging feeding platform according to claim 2, characterized in that, The drive unit (330) includes a threaded rod (331), a drive plate (332), and a rotating handle (333). The threaded rod (331) is rotatably connected to the mounting plate (321). The drive plate (332) and the threaded section of the threaded rod (331) are threadedly driven together. The rotating handle (333) is fixedly connected to the end of the threaded rod (331) away from the mounting plate (321). The clamping part (340) is fixedly connected to the drive plate (332) and is slidably connected to the mounting plate (321).

4. The aluminum alloy forging feeding platform according to claim 3, characterized in that, The threaded rod (331) has a raised ring (3311) on the outer ring of one end near the mounting plate (321). A limiting sleeve (350) is installed on the side of the mounting plate (321) near the raised ring (3311). The limiting sleeve (350) has a limiting hole (351) that is rotatably connected to the raised ring (3311). The limiting sleeve (350) also has a through hole (352) that is rotatably connected to the non-threaded section of the threaded rod (331).

5. The aluminum alloy forging feeding platform according to claim 3, characterized in that, The clamping part (340) includes a clamping plate (341) and a guide rod (342). The mounting plate (321) is provided with a guide hole (3212) that slides with the guide rod (342). One end of the guide rod (342) is fixedly connected to the clamping plate (341), and the other end of the guide rod (342) is connected to the drive plate (332) by screws.

6. The aluminum alloy forging feeding platform according to claim 5, characterized in that, An elastic block (343) is fixedly connected to the side of the clamp (341) away from the guide rod (342).

7. The aluminum alloy forging feeding platform according to claim 6, characterized in that, The length direction of the clamping plate (341) and the elastic block (343) is arranged in the vertical direction.

8. The aluminum alloy forging feeding platform according to claim 1, characterized in that, The conveying assembly (200) includes a slide (210) fixedly connected to the worktable (100), a slide table (220) slidably connected to the slide (210), a lead screw (230) rotatably connected to the slide (210), and a servo motor (240) drivenly connected to the lead screw (230). The lead screw (230) is threadedly driven to the slide table (220), the servo motor (240) is fixedly mounted on the slide (210), and the support plate (310) is fixedly mounted on the slide table (220).

9. The aluminum alloy forging feeding platform according to claim 8, characterized in that, The slide block (210) is provided with a slide rail (211), and the slide table (220) is provided with a slider (221) that is slidably connected to the slide rail (211).

10. The aluminum alloy forging feeding platform according to claim 1, characterized in that, A support assembly (400) is fixedly installed on the workbench (100). The support assembly (400) is located on the side of the support plate (310) near the cutting groove (110). The support assembly (400) includes a bracket (410), a rotating shaft (420), and a support roller (430). The bracket (410) is fixedly installed on the workbench (100), the rotating shaft (420) is fixedly installed on the bracket (410), and the support roller (430) is rotatably installed on the rotating shaft (420). The plane on which the top surface of the support plate (310) is located is tangent to the outer edge of the support roller (430).