A composite processing production equipment for metal products
Patent Information
- Application Number
- CN202611092265.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-07-22
- Publication Date
- 2026-09-25
AI Technical Summary
[0006]针对现有技术的不足,本发明提供了一种金属制品的复合加工生产设备,解决了金属制品加工后废料易弹性回缩抱死导致脱模困难,以及多工位脱模机构需独立驱动源导致结构繁杂、动作不同步的问题
1、本发明通过设置第一调节组件与分瓣限位支撑组件相配合,解决了金属加工后废料易抱死而难以取下的问题,在加工阶段,利用第一调节组件将分瓣限位支撑组件向外扩张,使之与加工模具配合形成稳固的刚性限位,确保金属制品在裁切或打磨等加工过程中保持稳定,不发生形变或颤动;当加工工序完成后,通过第一调节组件的反向调节,使得分瓣限位支撑组件迅速向内收拢,抽离加工裁切废料内壁的受力支撑点,从而破坏废料的抱死状态,使裁切废料能够无阻碍地快速自然脱落,提高了脱模效率,同时避免了废边缠留引发的设备干涉隐患。
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Figure CN122807588A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of metal processing technology, specifically to a composite processing and production equipment for metal products. Background Technology
[0002] Metal products (such as thin-walled metal cups, filter end caps, instrument housings, etc.) are widely used in industrial production and manufacturing. After the initial stamping and forming of metal products, the edge often has uneven height or burrs, so subsequent composite processing steps such as cutting, trimming and polishing are required.
[0003] In existing composite metal processing equipment, the metal semi-finished product to be processed is usually fixed on the outside of an integral support mold or fixture on the processing table. Then, the equipment controls the external processing components (such as cutting tools or grinding wheels) to approach and contact the edge of the metal product to perform circumferential cutting and grinding to remove burrs. After the cutting and grinding process is completed, the equipment uses a demolding mechanism such as a cylinder or hydraulic ejector to apply a pushing force from the bottom or side to forcibly push the processed metal product and the cut-off annular waste edge off the support mold.
[0004] Currently, after metal cutting, the cut ring-shaped scrap is prone to elastic retraction due to the ductility of the metal material and the release of cutting internal stress. After cutting, it will tightly stick to the outer wall of the supporting mold. Traditional integral molds cannot eliminate this sticking state, making it difficult to remove the scrap smoothly. Secondly, for multi-station processing equipment, the existing demolding mechanism usually needs to be configured with an independent drive source for each station. This not only makes the internal structure of the equipment complicated and bulky, but also increases the manufacturing cost and energy consumption. Furthermore, the demolding action is prone to being asynchronous due to the time difference in response of each drive source, affecting the overall reliability of operation.
[0005] Therefore, the purpose of this invention is to provide a composite processing and production equipment for metal products to overcome the shortcomings of the prior art. Summary of the Invention
[0006] To address the shortcomings of existing technologies, this invention provides a composite processing and production equipment for metal products, which solves the problems of easy elastic shrinkage and seizing of waste materials after metal product processing, leading to difficulties in demolding, and the need for independent drive sources for multi-station demolding mechanisms, resulting in complex structures and asynchronous actions.
[0007] To achieve the above objectives, the present invention provides the following technical solution: A composite processing production equipment for metal products includes a processing table, on which a processing mold and a multi-part segmented limiting support assembly are arranged; a first adjustment assembly is arranged on the processing table, which is used to adjust one of the segmented limiting support assemblies to expand outward to cooperate with the processing mold to form a stable rigid limit, and to retract inward to allow the processed waste material to fall off. The first adjustment component is provided with a linkage component, which is used to drive two sets of second adjustment components, so that the second adjustment components can synchronously drive the segmented limiting support components on the second adjustment components to perform consistent expansion or contraction actions.
[0008] Preferably, the first adjustment component includes a first drive motor, the output end of the first drive motor is fixedly connected to a rotating disk via a first rotating shaft, the rotating disk has a first guide groove inside, a guide post is provided inside the first guide groove, the lower surface of the guide post is fixedly connected to a connecting plate via a first moving plate, and the upper surface of the connecting plate is fixedly connected to the split limiting support component. The segmented limiting support assembly includes a support column, the connecting plate is detachably connected to the support column by bolts, the upper end of the support column is fixedly connected to the segmented limiting support plate, and the upper surface of the segmented limiting support plate is slidably connected to the processing mold. A fixed frame is fixedly connected to the lower surface of the processing table, and the lower surface of the fixed frame is fixedly connected to the first drive motor. The first rotating shaft passes through the fixed frame.
[0009] Preferably, the linkage component includes a first pulley, the side surface of the first rotating shaft is fixedly connected to the first pulley, a conveyor belt is provided on the side surface of the first pulley, a second pulley is provided inside the conveyor belt, and a second rotating shaft is fixedly connected to the inner surface of the second pulley.
[0010] Preferably, the second adjusting component is fixedly connected to the side surface of the second rotating shaft. The second adjusting component is used to synchronously drive the remaining segmented limiting support components to retract or expand through the transmission of the linkage component. A bearing is fixedly connected to the side surface of the second rotating shaft, and the lower surface of the bearing is fixedly connected to the fixing frame.
[0011] Preferably, a fixed seat is fixedly connected to the upper surface of the processing table, and a guide assembly is fixedly connected to the upper surface of the fixed seat. The guide assembly includes a fixed rod, and a sliding groove is formed inside the fixed rod. The inner surface of the sliding groove is slidably connected to the first moving plate.
[0012] Preferably, the upper surface of the guide assembly is fixedly connected to the processing mold via a connecting rod.
[0013] Preferably, a drive assembly is provided above the processing table. The drive assembly is used to drive the processing assembly to perform circumferential cutting operations around the processing mold. The drive assembly includes a fixed plate. A second drive motor is fixedly connected to the upper surface of the fixed plate. A pinion is fixedly connected to the output end of the second drive motor through a third rotating shaft. A gear ring is meshed with the side surface of the pinion.
[0014] Preferably, the processing table has an annular guide groove inside, and an annular guide block is provided on the inner surface of the annular guide groove. The side surface of the annular guide block is fixedly connected to the gear ring.
[0015] Preferably, the processing component includes a first support rod, the upper end of which is fixedly connected to the gear ring, a cylinder is fixedly connected to the side surface of the first support rod, a second movable plate is fixedly connected to the output end of the cylinder, and a cutting component is provided on the second movable plate.
[0016] Preferably, the upper surface of the processing table is fixedly connected to a controller via a second support rod, and the lower surface of the processing table is fixedly connected to a worktable via a support base.
[0017] This invention provides a composite processing and production equipment for metal products. It has the following beneficial effects: 1. This invention solves the problem of metal processing waste easily getting stuck and difficult to remove by setting a first adjustment component in conjunction with a segmented limiting support component. During the processing stage, the first adjustment component expands the segmented limiting support component outward, so that it cooperates with the processing mold to form a stable rigid limit, ensuring that the metal product remains stable during cutting or grinding and does not deform or vibrate. After the processing is completed, the first adjustment component adjusts in the opposite direction, so that the segmented limiting support component quickly retracts inward, removing the force support point on the inner wall of the processed waste, thereby breaking the stuck state of the waste and allowing the cut waste to fall off quickly and naturally without obstruction, improving demolding efficiency, and avoiding the equipment interference hazards caused by waste edge entanglement.
[0018] 2. By setting up a linkage component and a second adjustment component, this invention achieves efficient linkage operation of multiple demolding mechanisms that can be driven synchronously by a single drive device. It can smoothly and accurately distribute the driving force of a single power source to the second adjustment component of each processing station, so that the multiple group of segmented limiting support components can perform highly consistent retraction actions at the same time. This not only effectively simplifies the internal structure of the equipment and reduces the energy consumption and manufacturing cost of the equipment caused by multiple drive sources, but also improves the synchronization rate of mechanical actions and the overall reliability of operation during batch processing demolding at multiple stations.
[0019] 3. Through the transmission and cooperation of the first adjustment component, the second adjustment component and the linkage component, the present invention realizes rapid adaptive demolding of metal products of different sizes and diameters. When dealing with the demolding of processing waste materials of products of different models and sizes, the operator does not need to stop the machine to replace the entire set of demolding fixtures, which reduces the debugging and maintenance time of the equipment, at the same time broadens the application range of the processing equipment, and improves the production line's conversion efficiency and production capacity when dealing with products of multiple specifications. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a front view of the present invention; Figure 3 This is the left view of the present invention; Figure 4 This is a schematic diagram of the linkage component structure of the present invention; Figure 5 This is a schematic diagram of the structure of the first adjustment component of the present invention; Figure 6 This is a schematic diagram of the guiding component structure of the present invention; Figure 7 This is a schematic diagram of the drive component structure of the present invention; Figure 8 This is a schematic diagram of the internal structure of the fixing plate of the present invention.
[0021] The components include: 1. Processing table; 2. First adjusting assembly; 201. Fixing frame; 202. First drive motor; 203. First rotating shaft; 204. Rotating disk; 205. First guide groove; 206. Guide column; 207. First moving plate; 208. Connecting plate; 3. Split-end limiting support assembly; 301. Support column; 302. Split-end limiting support plate; 4. Linkage assembly; 401. First pulley; 402. Conveyor belt; 403. Second pulley; 404. Second rotating shaft; 5. Second adjusting assembly; 6. Bearing; 7. Guide. Components; 701, Fixed rod; 702, Slide groove; 8, Drive assembly; 801, Fixed plate; 802, Second drive motor; 803, Third rotating shaft; 804, Pinion; 805, Gear ring; 806, Annular guide groove; 807, Annular guide block; 9, Machining assembly; 901, First support rod; 902, Cylinder; 903, Second moving plate; 904, Cutting assembly; 10, Second support rod; 11, Controller; 12, Support base; 13, Worktable; 14, Connecting rod; 15, Machining mold; 16, Fixed base. Detailed Implementation
[0022] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0023] Please see the appendix Figure 1 -Appendix Figure 4 This invention provides a composite processing production equipment for metal products, including a processing table 1, a processing mold 15 and a multi-part segmented limiting support assembly 3 on the processing table 1, and a first adjustment assembly 2 on the processing table 1. The first adjustment assembly 2 is used to adjust one of the segments of the segmented limiting support assembly 3 to expand outward and cooperate with the processing mold 15 to form a stable rigid limit, and to retract inward to allow the processed waste material to fall off. The first adjustment assembly 2 includes a first drive motor 202, the output end of the first drive motor 202 is fixedly connected to a rotating disk 204 through a first rotating shaft 203, the rotating disk 204 has a first guide groove 205 inside, the first guide groove 205 has a guide post 206 inside, the lower surface of the guide post 206 is fixedly connected to a connecting plate 208 through a first moving plate 207, and the upper surface of the connecting plate 208 is fixedly connected to the segmented limiting support assembly 3.
[0024] Specifically, by setting the first adjustment component 2 in conjunction with the segmented limiting support component 3, the problem of scrap material easily elastically retracting and seizing after metal processing due to material ductility and the release of internal cutting stress is solved, making it difficult to remove. In the pre-processing preparation stage, the controller 11 controls the first drive motor 202 to rotate forward, driving the first rotating shaft 203 and the rotating disk 204 to rotate smoothly. Utilizing the first guide groove 205 inside the rotating disk 204 to move the guide column 206 and the cam principle, the rotational motion is cleverly converted into linear displacement, driving the first moving plate 207 and the connecting plate 208 to push outward, thereby expanding the segmented limiting support component 3 outward. This allows the segmented limiting support component 3 to fit tightly with the outer surface of the processing mold 15, forming a stable and rigid limiting without dead angles, ensuring that the metal product maintains a high degree of stability during high-speed cutting or grinding processes. After the processing step is completed, the first drive motor 202 reverses to adjust in the opposite direction, causing the connecting plate 208 to retract, which causes the segmented limiting support component 3 to retract inward, directly removing the force support point on the inner wall of the processed waste material. This breaks the stuck state of the waste material on the outer wall of the processing mold 15, allowing the cut waste material to lose its support force and fall off quickly and naturally without hindrance, improving demolding efficiency. At the same time, it avoids the mechanical interference and jamming hazards caused by the waste edge getting tangled on the mold.
[0025] Please see the appendix Figure 4 With appendix Figure 5 The segmented limiting support assembly 3 includes a support column 301, and a connecting plate 208 is detachably connected to the support column 301 by bolts. The upper end of the support column 301 is fixedly connected to a segmented limiting support plate 302, and the upper surface of the segmented limiting support plate 302 is slidably connected to the processing mold 15.
[0026] Specifically, the detachable connection design between the connecting plate 208 and the support column 301 using bolts enables the invention to achieve rapid adaptive demolding of metal products of different sizes and diameters. When the production line needs to perform demolding operations on processing waste of products of different models and sizes, the operator does not need to stop the machine to disassemble and replace the entire demolding fixture or base. He only needs to unscrew the bolts and replace the segmented limiting support plate 302 and support column 301 of the appropriate size. At the same time, the adjustable first adjustment component 2 and the segmented limiting support component 3 can also be used to adapt to metal products of different sizes.
[0027] Please see the appendix Figure 2 A fixed frame 201 is fixedly connected to the lower surface of the processing table 1. The lower surface of the fixed frame 201 is fixedly connected to the first drive motor 202. The first rotating shaft 203 is set through the fixed frame 201.
[0028] Specifically, the mounting base of the fixed frame 201 serves as the mounting base for the core power source, providing a reliable force point for the first drive motor 202. This ensures that the vibration of the first drive motor 202 can be fully absorbed by the fixed frame 201 and transmitted to the bottom of the processing table 1 during frequent forward and reverse switching and high torque output. This ensures that the concentricity of the first rotating shaft 203 does not shift when it outputs power through the fixed frame 201.
[0029] Please see the appendix Figure 4 With appendix Figure 5 The first adjusting component 2 is provided with a linkage component 4, which is used to drive two sets of second adjusting components 5, so that the second adjusting components 5 can synchronously drive the segmented limiting support components 3 on the second adjusting components 5 to perform consistent expansion or contraction actions. The linkage component 4 includes a first pulley 401, the side surface of the first rotating shaft 203 is fixedly connected to the first pulley 401, the side surface of the first pulley 401 is provided with a conveyor belt 402, the inside of the conveyor belt 402 is provided with a second pulley 403, the inner surface of the second pulley 403 is fixedly connected to a second rotating shaft 404, the side surface of the second rotating shaft 404 is fixedly connected to a second adjusting component 5, and the second adjusting component 5 is used to synchronously drive the remaining segmented limiting support components 3 to contract or expand through the transmission of the linkage component 4. The side surface of the second rotating shaft 404 is fixedly connected to a bearing 6, and the lower surface of the bearing 6 is fixedly connected to the fixed frame 201.
[0030] Specifically, by setting the transmission cooperation between the linkage component 4 and the second adjustment component 5, the linkage operation of multiple demolding mechanisms can be synchronously driven by only a single first drive motor 202. The power of the first rotating shaft 203 is transmitted to the second pulley 403 and the second rotating shaft 404 through the first pulley 401 and the conveyor belt 402. The bearing 6 effectively reduces the frictional resistance when the second rotating shaft 404 rotates. The transmission cooperation between the linkage component 4 and the second adjustment component 5 can smoothly, uniformly and accurately distribute the driving force of a single power source to the second adjustment component 5 of each processing station, so that the multi-part limiting support components 3 can perform highly consistent demolding actions at the precise same moment. This not only simplifies the complicated and bulky internal structure of the processing equipment and reduces the energy consumption and manufacturing cost of the equipment caused by multiple drive sources, but also improves the synchronization rate of mechanical actions during demolding in multi-station batch processing and the reliability of continuous operation of the overall equipment.
[0031] Please see the appendix Figure 5 With appendix Figure 6 A fixed base 16 is fixedly connected to the upper surface of the processing table 1, and a guide assembly 7 is fixedly connected to the upper surface of the fixed base 16. The guide assembly 7 includes a fixed rod 701, and a sliding groove 702 is provided inside the fixed rod 701. The inner surface of the sliding groove 702 is slidably connected to the first moving plate 207. The upper surface of the guide assembly 7 is fixedly connected to the processing mold 15 through a connecting rod 14.
[0032] Specifically, the sliding connection between the inner surface of the slide groove 702 and the first moving plate 207 constrains the radial force transmitted from the first rotating shaft 203 onto a single linear motion trajectory, preventing the first moving plate 207 from lateral displacement or jamming when pushing or pulling the segmented limiting support assembly 3. Simultaneously, the fixed seat 16 and the fixed rod 701, acting as a load-bearing support frame, anchor the processing mold 15 via the connecting rod 14, ensuring that the reference origin for support positioning remains unchanged during repeated expansion and contraction demolding cycles. Furthermore, the connecting rod 14 is positioned closer to the center of the rotating disk 204 than the segmented limiting support plate 302, ensuring no motion interference with the segmented limiting support plate 302.
[0033] Please see the appendix Figure 7 With appendix Figure 8A drive assembly 8 is provided above the processing table 1. The drive assembly 8 is used to drive the processing assembly 9 to perform circumferential cutting around the processing mold 15. The drive assembly 8 includes a fixed plate 801. A second drive motor 802 is fixedly connected to the upper surface of the fixed plate 801. A pinion 804 is fixedly connected to the output end of the second drive motor 802 through a third rotating shaft 803. A gear ring 805 is meshed with the side surface of the pinion 804. An annular guide groove 806 is provided inside the processing table 1. An annular guide block 807 is provided on the inner surface of the annular guide groove 806. The side surface of the annular guide block 807 is fixedly connected to the gear ring 805.
[0034] Specifically, the drive assembly 8 uses the second drive motor 802 to output power, which drives the pinion 804 to rotate at high speed through the third rotating shaft 803. The large-diameter gear ring 805 is driven to rotate by the gear meshing transmission principle. In order to ensure the accuracy of the cutting process, the annular guide groove 806 inside the machining table 1 forms a tight sliding guide fit with the annular guide block 807. The annular guide groove 806 not only bears the weight of the gear ring 805 and its above-mounted components, but also eliminates the radial runout of the gear ring 805 caused by centrifugal force or cutting reaction force during rotation, ensuring that the machining assembly 9 can run smoothly, at a constant speed and with precision around the machining mold 15 as the absolute center.
[0035] Please see the appendix Figure 7 The processing component 9 includes a first support rod 901, the upper end of which is fixedly connected to a gear ring 805. A cylinder 902 is fixedly connected to the side surface of the first support rod 901. A second moving plate 903 is fixedly connected to the output end of the cylinder 902. A cutting component 904 is provided on the second moving plate 903. A controller 11 is fixedly connected to the upper surface of the processing table 1 via a second support rod 10. A worktable 13 is fixedly connected to the lower surface of the processing table 1 via a support base 12.
[0036] Specifically, during the circumferential motion, the controller 11 issues a command to activate the cylinder 902. The piston rod of the cylinder 902 extends and pushes the second moving plate 903, causing the cutting component 904 to smoothly and precisely approach and contact the edge of the metal product, which has been firmly supported inside the segmented limiting support component 3. As the gear ring 805 continues to rotate smoothly, the cutting component 904 can perform a complete circumferential cutting operation on the metal product. At the same time, the controller 11 is equipped with a PLC control system, which coordinates and monitors the sequential operation of the first drive motor 202, the second drive motor 802, and the cylinder 902. The worktable 13 and the support base 12 stably support the entire complex mechanical equipment on the fixed work position.
[0037] Working principle: When using this device, the operator places the semi-finished metal products to be processed onto the outside of multiple sets of processing molds 15 on the processing table 1. The controller 11 controls the first drive motor 202 of the first adjustment component 2 to start in the forward direction. The first drive motor 202 drives the first rotating shaft 203 and the rotating disk 204 to rotate. During the rotation of the rotating disk 204, the first guide groove 205 inside it moves the guide column 206, causing the first moving plate 207 to slide outward along the sliding groove 702 inside the fixed rod 701 of the guide component 7. The movement of the first moving plate 207 causes the connecting plate 208 and the support column 301 and the split limiting support plate 302 of the split limiting support component 3 to expand outward. After expansion, the split limiting support component 3 cooperates with the processing mold 15 fixed on the connecting rod 14 to form a stable rigid limit on the metal products from the inside. Under the driving force of the first drive motor 202, the rotation of the first rotating shaft 203 drives the first pulley 401 of the linkage component 4 to rotate synchronously. The power is transmitted to the second pulley 403 and the second rotating shaft 404 through the conveyor belt 402. The rotation of the second rotating shaft 404 then drives the two sets of second adjustment components 5 to move, so that the split limiting support components 3 of the other stations on the processing table 1 synchronously perform the same outward expansion action, thereby achieving efficient synchronous limiting of multi-station metal products through a single power source. After the metal product is secured, the second drive motor 802 of the drive assembly 8 starts, driving the third rotating shaft 803 and the pinion 804 to rotate. The pinion 804 drives the gear ring 805 meshing with it to rotate. Under the sliding guidance of the annular guide block 807 and the annular guide groove 806, the gear ring 805 rotates smoothly in the circumferential direction. The rotation of the gear ring 805 drives the first support rod 901 of the processing assembly 9 to move in the circumferential direction around the processing mold 15. The cylinder 902 starts, pushing the second moving plate 903, so that the cutting assembly 904 approaches and contacts the edge of the metal product. As the gear ring 805 rotates, the cutting assembly 904 performs circumferential cutting on the metal product. After the cutting process is completed, the cylinder 902 drives the cutting component 904 to retract. Then the controller 11 controls the first drive motor 202 to rotate in the opposite direction, and the first moving plate 207 and the connecting plate 208 move inward, so that the split limiting support plate 302 and the support column 301 retract inward. The retraction action removes the force support point of the inner wall of the cutting waste, so that the waste can fall off quickly and naturally without obstruction. Under the reverse synchronous transmission of the linkage component 4, the second adjustment component 5 drives the segmented limit support components 3 of the other stations to complete the highly consistent retraction action at the same time. The demolding process avoids the equipment interference risk caused by waste edge entanglement, and also saves the complicated structure of configuring an independent drive source for each station. At the same time, it improves the mechanical action synchronization rate and overall operation reliability during multi-station batch processing demolding.
Claims
1. A composite processing production equipment for metal products, comprising a processing table (1), characterized in that, The processing table (1) is provided with a processing mold (15) and a multi-part segmented limiting support assembly (3); the processing table (1) is provided with a first adjustment assembly (2), which is used to adjust one of the segmentsed limiting support assemblies (3) to expand outward and cooperate with the processing mold (15) to form a stable rigid limit, and to retract inward to make the processed waste material fall off; The first adjustment component (2) is provided with a linkage component (4), which is used to drive two sets of second adjustment components (5) so that the second adjustment components (5) can synchronously drive the split limiting support component (3) on the second adjustment component (5) to perform consistent expansion or contraction actions.
2. The composite processing and production equipment for metal products according to claim 1, characterized in that, The first adjustment component (2) includes a first drive motor (202), the output end of the first drive motor (202) is fixedly connected to a rotating disk (204) through a first rotating shaft (203), the rotating disk (204) has a first guide groove (205) inside, the first guide groove (205) has a guide post (206) inside, the lower surface of the guide post (206) is fixedly connected to a connecting plate (208) through a first moving plate (207), and the upper surface of the connecting plate (208) is fixedly connected to the split limiting support component (3); The segmented limiting support assembly (3) includes a support column (301), and the connecting plate (208) is detachably connected to the support column (301) by bolts. The upper end of the support column (301) is fixedly connected to a segmented limiting support plate (302), and the upper surface of the segmented limiting support plate (302) is slidably connected to the processing mold (15). The lower surface of the processing table (1) is fixedly connected to a fixing frame (201), the lower surface of the fixing frame (201) is fixedly connected to the first drive motor (202), and the first rotating shaft (203) is set through the fixing frame (201).
3. The composite processing and production equipment for metal products according to claim 2, characterized in that, The linkage component (4) includes a first pulley (401), the side surface of the first rotating shaft (203) is fixedly connected to the first pulley (401), the side surface of the first pulley (401) is provided with a conveyor belt (402), the inside of the conveyor belt (402) is provided with a second pulley (403), and the inner surface of the second pulley (403) is fixedly connected with a second rotating shaft (404).
4. The composite processing and production equipment for metal products according to claim 3, characterized in that, The second adjusting component (5) is fixedly connected to the side surface of the second rotating shaft (404). The second adjusting component (5) is used to drive the remaining split limiting support components (3) to retract or expand synchronously through the transmission of the linkage component (4). The bearing (6) is fixedly connected to the side surface of the second rotating shaft (404). The lower surface of the bearing (6) is fixedly connected to the fixing frame (201).
5. The composite processing equipment for metal products according to claim 2, characterized in that, The upper surface of the processing table (1) is fixedly connected to a fixed seat (16), and the upper surface of the fixed seat (16) is fixedly connected to a guide assembly (7). The guide assembly (7) includes a fixed rod (701), and a sliding groove (702) is provided inside the fixed rod (701). The inner surface of the sliding groove (702) is slidably connected to the first moving plate (207).
6. The composite processing and production equipment for metal products according to claim 5, characterized in that, The upper surface of the guide assembly (7) is fixedly connected to the processing mold (15) via a connecting rod (14).
7. The composite processing and production equipment for metal products according to claim 1, characterized in that, A drive assembly (8) is provided above the processing table (1). The drive assembly (8) is used to drive the processing assembly (9) to perform circumferential cutting around the processing mold (15). The drive assembly (8) includes a fixed plate (801). A second drive motor (802) is fixedly connected to the upper surface of the fixed plate (801). A pinion (804) is fixedly connected to the output end of the second drive motor (802) through a third rotating shaft (803). A gear ring (805) is meshed with the side surface of the pinion (804).
8. The composite processing equipment for metal products according to claim 7, characterized in that, The processing table (1) has an annular guide groove (806) inside, and an annular guide block (807) is provided on the inner surface of the annular guide groove (806). The side surface of the annular guide block (807) is fixedly connected to the gear ring (805).
9. The composite processing equipment for metal products according to claim 7, characterized in that, The processing component (9) includes a first support rod (901), the upper end of which is fixedly connected to the gear ring (805), a cylinder (902) is fixedly connected to the side surface of the first support rod (901), a second moving plate (903) is fixedly connected to the output end of the cylinder (902), and a cutting component (904) is provided on the second moving plate (903).
10. The composite processing equipment for metal products according to claim 1, characterized in that, The upper surface of the processing table (1) is fixedly connected to the controller (11) via the second support rod (10), and the lower surface of the processing table (1) is fixedly connected to the worktable (13) via the support base (12).