High-quality non-ferrous metal forging equipment and method
By using high-quality non-ferrous metal forging equipment and methods, and by utilizing mold matching and automated forging, the problems of quality control and low efficiency in large-volume forging have been solved, and a high-efficiency and low-cost forging process has been achieved.
Patent Information
- Application Number
- CN202511373643.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-25
- Publication Date
- 2025-11-14
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In the non-ferrous metal forging process, it is difficult to control the quality of large batches of forgings, resulting in low production efficiency. Furthermore, complex-shaped forgings require secondary cutting, which increases costs.
High-quality non-ferrous metal forging equipment is used, including the forging device body, rotating mechanism, forming mechanism, unloading mechanism and cleaning components. Through mold matching, automated forging and cleaning, assembly line operation is realized, reducing the amount of secondary processing.
This improved the uniformity and standardization of forgings, reduced the amount of secondary processing, increased production efficiency, and lowered production costs.
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Figure CN120940559A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of non-ferrous metal forging technology, and more specifically, to a high-quality non-ferrous metal forging equipment and method. Background Technology
[0002] Non-ferrous metals refer to all metals other than iron, manganese, and chromium. Due to their unique physical and chemical properties, they play an irreplaceable role in industry, science and technology, and daily life. According to their density, they are generally divided into light metals and heavy metals. With their diverse properties and wide applications, non-ferrous metals have become the core materials supporting the development of modern society.
[0003] There are still shortcomings in practical use. When forging non-ferrous metals, especially when forging large quantities of metal, it is difficult to control the quality of the forgings and the production efficiency is low. Furthermore, when the final processed shape of the forgings is complex, it is necessary to perform secondary cutting before it can be put into use, which increases the production cost.
[0004] Based on this, the present invention discloses a high-quality non-ferrous metal forging equipment and method. Summary of the Invention
[0005] To address the issues raised in the background art, such as the difficulty in controlling the quality of forgings and the low production efficiency when forging large quantities of non-ferrous metals, and the increased production costs due to the need for secondary cutting when the final shape of the forgings is complex, this invention provides a high-quality non-ferrous metal forging equipment and method, including a forging device body, a feeding platform fixedly connected to one side of the forging device body, and a discharge platform fixedly connected to one end of the forging device body. A forging assembly is located inside the main body of the forging device. The forging assembly includes a rotating mechanism, a forming mechanism, and a unloading mechanism. The forging assembly is used in conjunction with the unloading mechanism. A cleaning assembly is located at one end outside the main body of the forging device, and the cleaning assembly includes a storage mechanism inside. Preferably, the forging assembly includes a drive module A, a drive module B, a forging block, and a pick-up claw. The drive module A is fixedly connected to the top outer side of the forging device body. Four sets of drive modules B are fixedly connected to the output end of the drive module A. The drive modules B are fixedly connected to the top inner side of the forging device body. The ends of two sets of drive modules B are threadedly connected to the forging block, and the output end of one set of drive modules B is fixedly connected to the pick-up claw.
[0006] Preferably, the rotating mechanism includes a forging table, a slide groove, a support plate, a shock absorber rod, and a rotating module body. The forging table is fixedly connected to the bottom inner side of the forging device body, and a slide groove is opened on the outer side of the forging table. The support plate is slidably connected to the top of the forging table, and the support plate slides inside the slide groove. The shock absorber rod is fixedly connected to the bottom outer side of the support plate, and the rotating module body is fixedly connected to the bottom outer side of the forging table. The output end of the rotating module body is fixedly connected to the shock absorber rod, and the rotating module body drives the shock absorber rod to rotate.
[0007] Preferably, the forming mechanism includes a mold and bolts, the support plate is internally threaded with bolts, the top of the support plate is provided with a mold, and the bolts pass through the support plate and the mold to realize the connection between the support plate and the mold.
[0008] Preferably, the unloading mechanism includes a fixed block, a clamping claw, a settling groove, a top block, a rotating shaft, a pry bar, a pressing rod, a telescopic cylinder, a rotating pressure block, and a heat preservation box. Two sets of fixed blocks are fixedly connected to the outside of the forging device body. One set of fixed blocks is installed on the outside of the forging device body near the feeding platform, and the other set of fixed blocks is installed on the outside of the forging device body near the discharge platform. A clamping claw is fixedly connected to the bottom of the outer side of the fixed block. A settling groove is opened on the top of the outer side of the mold. A top block is slidably connected inside the settling groove. A pry bar is hinged to the bottom of the top block. A rotating shaft is rotatably connected to the middle of the outer side of the support plate. The pry bar rotates outside the rotating shaft. A pressing rod is fixedly connected to one end of the pry bar near the top block. A telescopic cylinder is fixedly connected to the bottom of the outer side of the discharge platform. A rotating pressure block is fixedly connected to the output end of the telescopic cylinder. The rotating pressure block works in conjunction with the pressing rod. A heat preservation box is provided on one side of the outside of the forging device body. The discharge platform works in conjunction with the heat preservation box.
[0009] Preferably, the cleaning assembly includes a collection box, an air pump, an air inlet, a rotating shaft, and a cleaning brush. The collection box is fixedly connected to the outside of the forging device body on the side away from the feeding platform. The air pump is fixedly connected inside the collection box. An air inlet is fixedly connected to the top of the air pump. The output end of the fourth group of drive module B is fixedly connected to the rotating shaft. The output end of the rotating shaft is fixedly connected to the cleaning brush.
[0010] Preferably, the storage mechanism includes a protective plate and a storage slot, the protective plate is fixed to the outside of the rotating shaft, and the storage slot is provided at the bottom of the inner side of the collection box.
[0011] Preferably, a protective sleeve is fixed to the outside of the drive module B, and a support rod is fixed to the bottom of the outside of the forging table.
[0012] Preferably, a high-quality non-ferrous metal forging method is provided, which is mainly applicable to the aforementioned high-quality non-ferrous metal forging equipment. The method mainly includes the following steps: S1: First, heat the non-ferrous metal that needs to be forged to the forging temperature so that it can be forged in the future. S2: Then, the heated non-ferrous metal is placed on the top of the feeding platform, and then placed on the top of the mold by the clamping claws to prepare for initial forging; S3: Improve the position of the picking claw on the non-ferrous metal so that the molds fit together, which facilitates the initial forging of the non-ferrous metal by the forging block; S4: After the initial forging is completed, use a cleaning brush to clean the surface of the non-ferrous metal to keep the surface of the non-ferrous metal clean and prepare for the second forging. S5: After the second forging is completed, the top block is used to lift the non-ferrous metal inside the mold, and then the clamping claws place the forged non-ferrous metal on the top of the discharge table. S6: The unloading platform transports the forged non-ferrous metal into the heat preservation box for constant temperature cooling, so as to reduce the impact of the external environment on the cooling of non-ferrous metal.
[0013] Compared with the prior art, the beneficial effects of the present invention are as follows: 1. In this high-quality non-ferrous metal forging equipment and method, the combined use of the unloading mechanism and the forming mechanism enables the processing of large batches of metal billets. By placing the metal billets inside a specially customized mold and then impacting them with the forging blocks, the metal billets and the mold cooperate with each other, achieving uniformity in the production of large batches of forgings. Simultaneously, by rotating the main body of the rotating module and the shock-absorbing rod to rotate the forging table, the forging is carried out by the forging blocks, and the top block automatically unloads the forging after completion. The whole process forms a linear flow operation for metal billets, further improving work efficiency. At the same time, the raw materials forged by the mold have more standardized and flexible shapes, reducing the amount of cutting work in secondary processing or even eliminating the need for secondary processing, thus reducing production costs.
[0014] In this high-quality non-ferrous metal forging equipment and method, the drive module B drives the rotating shaft to approach the top of the metal raw material. Then, the rotating shaft drives the cleaning brush to start rotating. The cleaning brush cleans the residual oxide scale on the top of the metal raw material. The protective plate blocks and guides the oxide scale splashed during the cleaning process, preventing it from splashing in other directions and guiding it towards the storage tank inside the collection box. At this time, the suction pump is driven, and with the use of the air inlet, a negative pressure is formed inside the collection box, sucking the splashed oxide scale into the storage tank. It also treats the dust generated inside the forging device body due to violent knocking, further improving the practicality of the device and the cleanliness of the interior. When the storage tank is full, the collection box is disassembled from the outside of the forging device body, and the inside of the storage tank is cleaned.
[0015] In this high-quality non-ferrous metal forging equipment and method, the use of a protective sleeve protects the outside of the drive module B, reducing the possibility of dust escaping during the forging of metal billets affecting the drive module B. By installing a support rod at the bottom of the forging table to form a triangular support with the forging table, the impact resistance of the top of the forging table is further increased, and the service life of the forging table is further improved. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the main body of the forging device of the present invention; Figure 3 This is a schematic diagram of the structure of the drive module B of the present invention; Figure 4 This is a schematic diagram of the structure of the forging block of the present invention; Figure 5 This is a schematic diagram of the mold structure of the present invention; Figure 6 This is a schematic diagram of the structure of the fixing block of the present invention; Figure 7 For the present invention Figure 2 Enlarged view of point A The meanings of the labels in the diagram are as follows: 1. Forging device main body; 2. Feeding platform; 3. Discharge platform; 4. Drive module A; 5. Drive module B; 6. Forging block; 7. Picking claw; 8. Forging table; 9. Slide groove; 10. Support plate; 11. Shock absorber rod; 12. Rotating module main body; 13. Mold; 14. Bolt; 15. Fixing block; 16. Clamping claw; 17. Settling trough; 18. Top block; 19. Rotating shaft; 20. Pry bar; 21. Pressing rod; 22. Telescopic cylinder; 23. Rotating pressure block; 24. Insulation box; 25. Collection box; 26. Suction pump; 27. Air inlet; 28. Rotating shaft; 29. Cleaning brush; 30. Protective plate; 31. Storage tank; 32. Protective sleeve; 33. Support rod. Detailed Implementation
[0017] The technical solutions of 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.
[0018] When forging non-ferrous metals, especially when forging large quantities of metal, it is difficult to control the quality of the forgings and the production efficiency is low. Furthermore, when the final shape of the forgings is complex, a second cutting process is required before they can be put into use, which increases production costs.
[0019] Therefore, this invention provides a high-quality non-ferrous metal forging equipment and method, see [link to relevant documentation]. Figure 1-7 As shown, it includes a forging device body 1, a feeding platform 2 fixedly connected to the outside of the forging device body 1, and a discharging platform 3 fixedly connected to one end of the outside of the forging device body 1. A forging assembly is located inside the main body 1 of the forging device. The forging assembly includes a rotating mechanism, a forming mechanism, and a unloading mechanism. The forging assembly is used in conjunction with the unloading mechanism. A cleaning assembly is located at one end outside the main body 1 of the forging device, and the cleaning assembly includes a storage mechanism inside.
[0020] The forging assembly includes a drive module A4, a drive module B5, a forging block 6, and a pick-up claw 7. The drive module A4 is fixedly connected to the top outer side of the forging device body 1. Four sets of drive modules B5 are fixedly connected to the output end of the drive module A4. The drive modules B5 are fixedly connected to the top inner side of the forging device body 1. The ends of two sets of drive modules B5 are threadedly connected to the forging block 6, and the output end of one set of drive modules B5 is fixedly connected to the pick-up claw 7.
[0021] The rotating mechanism includes a forging table 8, a slide 9, a support plate 10, a shock absorber rod 11, and a rotating module body 12. The forging table 8 is fixedly connected to the bottom inner side of the forging device body 1. The slide 9 is opened on the outer side of the forging table 8. The support plate 10 is slidably connected to the top of the forging table 8. The support plate 10 slides inside the slide 9. The shock absorber rod 11 is fixedly connected to the bottom outer side of the support plate 10. The rotating module body 12 is fixedly connected to the bottom outer side of the forging table 8. The shock absorber rod 11 is fixedly connected to the output end of the rotating module body 12. The rotating module body 12 drives the shock absorber rod 11 to rotate. The forming mechanism includes a mold 13 and bolts 14. The bolts 14 are threadedly connected inside the support plate 10. The mold 13 is set on the top of the support plate 10. The bolts 14 pass through the support plate 10 and the mold 13 to realize the connection between the support plate 10 and the mold 13.
[0022] The unloading mechanism includes a fixed block 15, a clamping claw 16, a sinker 17, a top block 18, a rotating shaft 19, a pry bar 20, a pressing rod 21, a telescopic cylinder 22, a rotating pressure block 23, and a heat preservation box 24. Two sets of fixed blocks 15 are fixedly connected to the outside of the forging device body 1. One set of fixed blocks 15 is installed on the outside of the forging device body 1 near the feeding platform 2, and the other set of fixed blocks 15 is installed on the outside of the forging device body 1 near the discharge platform 3. A clamping claw 16 is fixedly connected to the bottom outer side of the fixed block 15. A sinker 17 is formed on the top outer side of the mold 13. A top block 18 is slidably connected inside the settling tank 17. A pry bar 20 is hinged to the bottom of the top block 18. A rotating shaft 19 is rotatably connected to the middle of the outer side of the support plate 10. The pry bar 20 rotates outside the rotating shaft 19. A pressing rod 21 is fixedly connected to one end of the pry bar 20 from the top block 18. A telescopic cylinder 22 is fixedly connected to the bottom of the outer side of the discharge platform 3. A rotating pressure block 23 is fixedly connected to the output end of the telescopic cylinder 22. The rotating pressure block 23 works in conjunction with the pressing rod 21. A heat preservation box 24 is provided on one side of the outer side of the forging device body 1. The discharge platform 3 works in conjunction with the heat preservation box 24.
[0023] During operation, the device is first connected to an external power supply, and then to an external control module. The electronic components in this technical solution are driven by the cooperation of the external control module and the power supply. The external control module is existing technology and should be well known to those skilled in the art, so it will not be described in detail in this technical solution.
[0024] Different shaped molds 13 are customized according to the requirements of customers or production equipment to assist in the forging of non-ferrous metals. After the specifications are determined, the mold 13 is installed on the top of the support plate 10. The support plate 10 and the mold 13 are fixedly connected by the lifting bolts 14. A groove 17 is opened at the bottom of the customized mold 13. Then, the lifting block 18 fills the groove 17 to make the bottom of the mold 13 relatively flat, reducing the deformation of the metal billet caused by the uneven bottom of the mold 13. Then, the support plate 10 is connected to the shock absorber 11. At this time, the rotating module body 12 can rotate the support plate 10 around the forging table 8 by rotating the shock absorber 11. The slide 9 plays a limiting role in the position of the support plate 10, reducing the offset of the support plate 10 when sliding outside the forging table 8.
[0025] The heated metal billet is placed at the feeding platform 2. As the material slides along the feeding platform 2 towards the forging device body 1, the clamping claws 16 at the bottom of the fixing block 15 extend to clamp the material. After clamping, the clamping claws 16 rotate the material and place it into the mold 13. Then, a set of drive modules B5 with a picking claw 7 fixed at the bottom presses down to adjust the position and angle of the metal material at the top of the mold 13, so that the material and the mold 13 cooperate with each other. Then, the rotating module body 12 drives the shock absorber 11 to rotate, rotating the forging table 8 along with the mold 13 outside the forging table 8. When the mold 13 is located at the bottom threaded connection to the drive of the forging block 6, When module B5 is at the bottom, drive module A4 controls drive module B5 to forge the raw material at the top of mold 13. The metal billet and mold 13 are in close contact, and this is the initial forging. Then, the main body of module 12 is rotated to continue driving the forging table 8 to rotate. When the metal billet after the initial forging is at the bottom of another set of drive modules B5 with the bottom threaded connection to forging block 6, that is, drive module B5 near the side of the discharge table 3, the second forging is performed, so that the raw material and mold 13 are in closer contact. The drive module B5 and forging block 6 are designed to be detachable because different specifications of forging block 6 may be used in the initial forging and the second forging. Therefore, the design is detachable, which further increases the flexibility of the device.
[0026] After the metal billet forging is completed, the telescopic cylinder 22 at the bottom of the discharge platform 3 starts working, causing the rotating pressure block 23 to rotate and approach the pressing rod 21. At this time, the telescopic cylinder 22 begins to extend, using the rotating pressure block 23 to press the pressing rod 21 downward. When the pressing rod 21 is under pressure, the pry bar 20 begins to rotate around the rotating shaft 19. The pry bar 20 then drives the top block 18 to move upward inside the settling tank 17. At this time, the raw material inside the mold 13 has been forged and fits tightly with the mold 13. The temperature is also high, making it difficult to remove. Therefore, the top block 18 moves the raw material inside the settling tank 17 and the mold 13. The movement of the material pushes it out of the mold 13. At this time, the clamping claw 16 close to the discharge platform 3 is driven to take out the forged metal pushed out by the top block 18 and place it on the top of the discharge platform 3. Then the discharge platform 3 sends the forged metal into the heat preservation box 24 for cooling. The use of the heat preservation box 24 can make the temperature drop more during the cooling process, improve the control of the cooling rate of the heat preservation box 24, refine the grains, improve the strength of the forging, and reduce residual stress, thus reducing the possibility of cracking of the forging due to sudden cooling in low outdoor temperatures.
[0027] By using the unloading mechanism and the forming mechanism in combination, when processing large batches of metal billets, the metal billets are placed inside a specially customized mold 13, and the impact of the forging block 6 causes the metal billets and mold 13 to cooperate with each other, achieving uniformity in the production of large batches of forgings. At the same time, by rotating the main body 12 of the rotating module and the shock-absorbing rod 11 to rotate the forging table 8, the forging is carried out by the forging block 6, and the top block 18 automatically unloads the forging after completion. The whole process forms a linear production line for metal billets, which further improves work efficiency. At the same time, the raw materials forged by the mold 13 have more standardized and flexible shapes, reducing the amount of cutting work in secondary processing or even eliminating the need for secondary processing, thus reducing production costs.
[0028] For details, see Figure 1-4 , Figure 7 As shown, the cleaning assembly includes a collection box 25, an air pump 26, an air inlet 27, a rotating shaft 28, and a cleaning brush 29. The collection box 25 is fixedly connected to the outside of the forging device body 1 on the side away from the feeding platform 2. The air pump 26 is fixedly connected inside the collection box 25. The air inlet 27 is fixedly connected to the top of the air pump 26. The rotating shaft 28 is fixedly connected to the output end of the fourth group of drive module B5. The cleaning brush 29 is fixedly connected to the output end of the rotating shaft 28.
[0029] The storage mechanism includes a protective plate 30 and a storage slot 31. The protective plate 30 is fixed to the outside of the rotating shaft 28, and the storage slot 31 is provided at the bottom of the inner side of the collection box 25.
[0030] During operation, when the forging block 6 forges the metal billet, the extremely high temperature of the metal billet during the forging process will produce oxide scale. This oxide scale will remain on the raw material after the initial forging. If it is not cleaned in time, it may affect the effect of the second forging. Therefore, when the metal billet after initial forging passes through the drive module B5, which is fixedly connected to the bottom of the rotating shaft 28, the drive module B5 drives the rotating shaft 28 to approach the top of the metal raw material. Then, the rotating shaft 28 drives the cleaning brush 29 to start rotating. The cleaning brush 29 cleans the oxide scale remaining on the top of the metal raw material. The protective plate 30 then cleans the surface of the metal raw material during the cleaning process. The splashed oxide scale is blocked and guided, preventing it from splashing in other directions and guiding it towards the storage tank 31 inside the collection box 25. At this time, the suction pump 26 is driven, and in conjunction with the use of the air inlet 27, a negative pressure is formed inside the collection box 25, which sucks the splashed oxide scale into the storage tank 31. It also treats the dust generated inside the forging device body 1 due to violent hammering, further improving the practicality of the device and the cleanliness of its interior. When the storage tank 31 is full, the collection box 25 is disassembled from the outside of the forging device body 1, and the interior of the storage tank 31 is cleaned.
[0031] Further, see Figure 2-4 , Figure 7 As shown. A protective sleeve 32 is fixed to the outside of the drive module B5, and a support rod 33 is fixed to the bottom of the outside of the forging table 8.
[0032] During operation, the protective sleeve 32 is placed over the outside of the drive module B5. The use of the protective sleeve 32 protects the outside of the drive module B5, reducing the possibility of dust escaping during the forging of metal billets affecting the drive module B5. Additionally, a support rod 33 is installed at the bottom of the forging table 8 to form a triangular support with the forging table 8, further increasing the impact resistance of the top of the forging table 8 and further improving the service life of the forging table 8.
[0033] A high-quality non-ferrous metal forging equipment and a high-quality non-ferrous metal forging method are mainly applicable to the aforementioned high-quality non-ferrous metal forging equipment. The method mainly includes the following steps: S1: First, heat the non-ferrous metal that needs to be forged to the forging temperature so that it can be forged in the future. S2: Then, the heated non-ferrous metal is placed on the top of the feeding platform 2, and then placed on the top of the mold 13 by the clamping claw 16 for initial forging preparation. S3: Raise the position of the picking claw 7 to adjust the position of the non-ferrous metal so that the mold 13 fits together, which facilitates the forging block 6 to perform initial forging of the non-ferrous metal; S4: After the initial forging is completed, use cleaning brush 29 to clean the surface of the non-ferrous metal to keep the surface of the non-ferrous metal clean after the initial forging, in preparation for the second forging. S5: After the second forging is completed, the top block 18 is used to lift the non-ferrous metal inside the mold 13, and then the clamping claw 16 places the forged non-ferrous metal on the top of the discharge table 3. S6: The unloading platform 3 transports the forged non-ferrous metal to the heat preservation box 24 for constant temperature cooling to reduce the impact of the external environment on the cooling of non-ferrous metal.
[0034] In summary, this effectively solves the problems of difficulty in controlling the quality of forgings when forging large quantities of non-ferrous metals, low production efficiency, and the need for secondary cutting before use when the final shape of the forgings is complex, which increases production costs.
[0035] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0036] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A high-quality non-ferrous metal forging equipment, comprising a forging device body (1), characterized in that: A feeding platform (2) is fixedly connected to one side of the forging device body (1), and a discharging platform (3) is fixedly connected to one end of the forging device body (1). The forging assembly is located inside the main body (1) of the forging device. The forging assembly includes a rotating mechanism, a forming mechanism and a unloading mechanism. The forging assembly is used in conjunction with the unloading mechanism. A cleaning assembly is located at one end outside the main body (1) of the forging device, and the cleaning assembly includes a storage mechanism inside.
2. The high-quality non-ferrous metal forging equipment according to claim 1, characterized in that: The forging assembly includes a drive module A (4), a drive module B (5), a forging block (6), and a pick-up claw (7). The drive module A (4) is fixedly connected to the top of the outer side of the forging device body (1). Four sets of drive modules B (5) are fixedly connected to the output end of the drive module A (4). The drive modules B (5) are fixedly connected to the top of the inner side of the forging device body (1). The ends of two sets of drive modules B (5) are threadedly connected to the forging block (6). The output end of one set of drive modules B (5) is fixedly connected to the pick-up claw (7).
3. The high-quality non-ferrous metal forging equipment according to claim 2, characterized in that: The rotating mechanism includes a forging table (8), a slide groove (9), a support plate (10), a shock absorber rod (11), and a rotating module body (12). The forging table (8) is fixedly connected to the bottom inner side of the forging device body (1). The slide groove (9) is opened on the outer side of the forging table (8). The support plate (10) is slidably connected to the top of the forging table (8). The support plate (10) slides inside the slide groove (9). The shock absorber rod (11) is fixedly connected to the bottom outer side of the support plate (10). The rotating module body (12) is fixedly connected to the bottom outer side of the forging table (8). The shock absorber rod (11) is fixedly connected to the output end of the rotating module body (12). The rotating module body (12) drives the shock absorber rod (11) to rotate.
4. The high-quality non-ferrous metal forging equipment according to claim 3, characterized in that: The forming mechanism includes a mold (13) and a bolt (14). The support plate (10) is internally threaded with a bolt (14). The mold (13) is provided on the top of the support plate (10). The bolt (14) passes through the support plate (10) and the mold (13) to realize the connection between the support plate (10) and the mold (13).
5. The high-quality non-ferrous metal forging equipment according to claim 4, characterized in that: The unloading mechanism includes a fixed block (15), a clamping claw (16), a sinker (17), a top block (18), a rotating shaft (19), a pry bar (20), a pressing rod (21), a telescopic cylinder (22), a rotating pressure block (23), and a heat preservation box (24). Two sets of fixed blocks (15) are fixedly connected to the outside of the forging device body (1). One set of fixed blocks (15) is installed on the outside of the forging device body (1) near the feeding platform (2), and the other set of fixed blocks (15) is installed on the outside of the forging device body (1) near the discharge platform (3). A clamping claw (16) is fixedly connected to the bottom outer side of each fixed block (15). A sinker (17) is opened on the top outer side of the mold (13). The settling tank (17) is slidably connected to a top block (18), and a pry bar (20) is hinged to the bottom of the top block (18). A rotating shaft (19) is rotatably connected to the middle of the outer side of the support plate (10). The pry bar (20) rotates outside the rotating shaft (19). A pressing rod (21) is fixedly connected to one end of the pry bar (20) from the top block (18). A telescopic cylinder (22) is fixedly connected to the bottom of the outer side of the discharge platform (3). A rotating pressure block (23) is fixedly connected to the output end of the telescopic cylinder (22). The rotating pressure block (23) is used in conjunction with the pressing rod (21). A heat preservation box (24) is provided on one side of the outer side of the forging device body (1). The discharge platform (3) is used in conjunction with the heat preservation box (24).
6. The high-quality non-ferrous metal forging equipment according to claim 2, characterized in that: The cleaning assembly includes a collection box (25), an air pump (26), an air inlet (27), a rotating shaft (28), and a cleaning brush (29). The collection box (25) is fixedly connected to the outside of the forging device body (1) on the side away from the feeding platform (2). The air pump (26) is fixedly connected inside the collection box (25). The air inlet (27) is fixedly connected to the top of the air pump (26). The rotating shaft (28) is fixedly connected to the output end of the fourth group of drive module B (5). The cleaning brush (29) is fixedly connected to the output end of the rotating shaft (28).
7. The high-quality non-ferrous metal forging equipment according to claim 6, characterized in that: The storage mechanism includes a protective plate (30) and a storage slot (31). The protective plate (30) is fixed to the outside of the rotating shaft (28), and the storage slot (31) is provided at the bottom of the inner side of the collection box (25).
8. The high-quality non-ferrous metal forging equipment according to claim 3, characterized in that: The drive module B (5) is fixedly connected to a protective sleeve (32) on the outside, and the forging table (8) is fixedly connected to a support rod (33) at the bottom of the outside.
9. A method for forging high-quality non-ferrous metals, characterized in that: This high-quality non-ferrous metal forging method is mainly applicable to the high-quality non-ferrous metal forging equipment described in claims 1-8, and the method mainly includes the following steps: S1: First, heat the non-ferrous metal that needs to be forged to the forging temperature so that it can be forged in the future. S2: Then, the heated non-ferrous metal is placed on top of the feeding platform (2), and then placed on top of the mold (13) by the clamping claw (16) for initial forging preparation; S3: Raise the position of the picking claw (7) to adjust the position of the non-ferrous metal so that the mold (13) fits together, making it easier for the forging block (6) to perform initial forging of the non-ferrous metal; S4: After the initial forging is completed, use a cleaning brush (29) to clean the surface of the non-ferrous metal so that the surface of the non-ferrous metal after the initial forging is kept clean and ready for the second forging. S5: After the second forging is completed, the top block (18) is used to place the non-ferrous metal inside the mold (13) on top, and then the clamping claw (16) places the forged non-ferrous metal on top of the discharge table (3); S6: The discharge platform (3) transports the forged non-ferrous metal to the heat preservation box (24) for constant temperature cooling to reduce the impact of the external environment on the cooling of non-ferrous metal.