A continuous forging equipment for processing automobile parts

By integrating the automatic spraying of release agents and flash collection functions into the forging equipment, the health hazards of spraying release agents and the cumbersome flash treatment problems are solved, and safe and efficient forging production is achieved.

CN120325862BActive Publication Date: 2025-09-30DALIAN JINRUIDE MASCH MFG CO LTD
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Patent Information

Application Number
CN202510727194.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-06-03
Publication Date
2025-09-30
Estimated Expiration
2045-06-03

AI Technical Summary

Technical Problem

When spraying release agents on existing forging equipment, chemicals are easily scattered, endangering the health of operators. In addition, the processing of forging flash is cumbersome, affecting production safety and efficiency.

Method used

A continuous forging equipment was designed with integrated automatic spraying of release agent and flash collection functions. The rotating disk and lifting block structure were used to achieve automatic and uniform spraying of release agent and contactless collection of flash, reducing manual intervention.

Benefits of technology

It effectively avoids the scattering of release agent chemicals, improves operational safety and production efficiency, ensures uniform coverage of release agent, and simplifies the flash treatment process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a continuous forging device for processing automobile parts, which relates to the technical field of forging processing. The device comprises a forging machine, a lower die and an upper die, a rotating disk rotatably mounted on the surface of the forging machine worktable, a lower die fixed on the upper surface of the rotating disk, a trimming die fixed on the upper surface of the rotating disk, a plurality of lifting rods slidably mounted inside the trimming die, a first lifting block and a second lifting block fixedly mounted on the surface of the forging machine worktable, a fixed seat mounted at the center of the upper surface of the rotating disk, a rotating rod rotatably mounted on the inner wall of the fixed seat, a spray assembly provided at the upper end of the rotating rod, and a drive assembly provided on the inner wall of the fixed seat. The present invention automatically sprays a release agent on the mold through the upper die, the extrusion seat, the first pressing block, the rotating disk, the trimming die, the fixed seat, the fixed nozzle, the drive assembly and the spray assembly, thereby reducing manual intervention and avoiding the health risks caused by the scattering of chemical substances when manually spraying the release agent.
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Description

Technical Field

[0001] The invention relates to the technical field of forging, in particular to a continuous forging device used for processing automobile parts. Background Art

[0002] Auto parts processing is a basic link in automobile manufacturing. The processing flow mainly includes casting, forging, stamping, machining and heat treatment. Each part is related to the performance and safety of the entire vehicle. With the development of intelligence and lightweight in the automotive industry, the process requirements for parts continue to increase. High precision, high performance, energy saving and environmental protection have become the key. In this system, forging equipment plays an irreplaceable role. As the core equipment for metal plastic forming, forging machinery uses pressure to permanently deform metal billets. It is widely used in the production of high-strength parts such as engine connecting rods, transmission gears, and suspension systems. Modern forging equipment is divided into three categories: mechanical presses, hydraulic presses and screw presses. Mechanical presses are suitable for mass production of precision forgings due to their high precision characteristics. Hydraulic presses rely on their stepless pressure adjustment capabilities to be competent for processing large and complex components. Servo electric screw presses have become the preferred solution under the trend of green manufacturing due to their energy-saving advantages.

[0003] The processing steps of existing forging equipment are mainly divided into four stages: billet heating, die installation, forging and part removal. First, a suitable metal billet is selected according to the required forging specifications and heated to allow the billet to reach the appropriate forging temperature and enhance plasticity. The heated billet is placed in the installed and debugged lower mold cavity. The forging equipment drives the upper die downward through a hydraulically driven slider, exerting huge pressure on the billet, causing it to produce plastic deformation in the die and gradually forming. After the forging is formed and cooled, the ejection mechanism pushes the forging out of the die to complete the entire forging process. Before forging, a release agent needs to be manually sprayed on the die surface to prevent the forging from sticking to the die. However, the chemical substances in the release agent are easily dispersed into the air during spraying. After inhalation by the operator, it may cause respiratory diseases, skin allergies and other health problems. In addition, after forging is completed, excess flash will be generated on the edge of the forging. The common treatment method is to transfer the forging to other equipment for secondary processing to remove the flash, which is a relatively cumbersome step.

[0004] In response to the above problems, it is urgent to carry out innovative design based on the original foundation. Summary of the Invention

[0005] The purpose of the present invention is to provide a continuous forging equipment for processing automobile parts to solve the problem raised in the above background technology that manually sprayed release agents may be inhaled by operators and cause respiratory diseases. The technical solution of the present invention addresses the technical problem that the existing technical solutions are too single and provides a solution that is significantly different from the existing technology.

[0006] To achieve the above-mentioned object, the present invention provides the following technical solutions: a continuous forging equipment for processing automobile parts, comprising a forging machine, a lower die and an upper die, a rotating disk rotatably mounted on the surface of the forging machine worktable, a lower die fixed on the upper surface of the rotating disk, a trimming die fixed on the upper surface of the rotating disk, a plurality of lifting rods slidably mounted inside the trimming die, a lifting groove is provided at the bottom of the trimming die, a first lifting block and a second lifting block are fixedly mounted on the surface of the forging machine worktable, a collecting frame is mounted on the side wall of the forging machine, an extrusion seat is fixed on the side wall of the upper die, a first pressing block is slidably mounted on the end of the extrusion seat, a fixed seat is mounted at the center position of the upper surface of the rotating disk, a rotating rod rotatably mounted on the inner wall of the fixed seat, a spray assembly is provided on the upper end of the rotating rod, a driving assembly is provided on the inner wall of the fixed seat, and a fixed nozzle is mounted on the outer wall of the slider of the forging machine;

[0007] The spray assembly includes an active connecting rod fixed at the upper end of the rotating rod, and a driven connecting rod rotatably installed in the internal cavity of the fixed seat. The active connecting rod and the driven connecting rod are connected by a set of transmission gears. A sliding seat is fixed to the other end of the driven connecting rod. The sliding seat is limited to slide on the outer wall of the fixed seat, and a movable nozzle is fixed on the side wall of the sliding seat.

[0008] Preferably, a through groove for the first lifting block and the second lifting block to move is opened through the surface of the rotating disk, and lifting grooves are opened at the bottom of the lower mold and the trimming mold, and the lifting grooves correspond to the first lifting block and the second lifting block.

[0009] Preferably, the positions of the first lifting block and the second lifting block correspond to the aggregate frame, the height of the first lifting block is greater than the height of the second lifting block, and the side walls of the first lifting block and the second lifting block are both designed to be inclined.

[0010] Preferably, the multiple lifting rods are distributed around the incision of the trimming mold, and the positions of the lifting rods correspond to the first lifting block and the second lifting block. The multiple lifting rods are distributed around the incision of the trimming mold, and the positions of the lifting rods correspond to the first lifting block and the second lifting block.

[0011] Preferably, the first pressing block is slidably mounted on the side wall of the end portion of the extrusion seat via a spring, and the side of the first pressing block away from the upper die is designed to be inclined.

[0012] Preferably, the cross section of the sliding seat is L-shaped, and the outer wall of the sliding seat is in close contact with the outer wall of the trimming mold and the outer wall of the fixed seat.

[0013] Preferably, the driving assembly includes an oil tank fixed to the inner wall of the fixed seat, a piston is slidably installed inside the oil tank, a return spring connected to the inner wall of the oil tank is installed on the side wall of the piston, and driving teeth are provided in the internal cavity of the piston. It also includes a second pressure block slidably installed at the end of the oil tank, and the second pressure block is located at the end of the inner wall of the oil tank and connected to the piston.

[0014] Preferably, the lower end of the rotating rod is located in the cavity of the piston inside the oil tank, and a gear meshing with the driving teeth is installed at the lower end of the rotating rod.

[0015] Preferably, the second pressing block extends out of the side wall of the fixing seat, the second pressing block corresponds to the first pressing block, and the end of the second pressing block close to the rotating disk is designed to be inclined.

[0016] Compared with the prior art, the present invention has the following beneficial effects:

[0017] The present invention provides an upper die, an extrusion seat, a first pressing block, a rotating disk, a trimming die, a fixed seat, a fixed nozzle, a driving assembly and a spraying assembly. When the forging press is pressed down to perform trimming, the fixed nozzle directly sprays the release agent on the surface of the lower die. When the forging press completes the trimming work and is lifted, the sliding seat drives the movable nozzle to move and automatically sprays the release agent on the upper die, thereby reducing manual intervention and avoiding the health risks caused by the scattering of chemical substances when manually spraying the release agent. At the same time, the automatic double spraying ensures that the release agent is evenly covered, thereby improving the release efficiency. When the first pressing block rises with the upper mold, it squeezes the second pressing block, driving the piston to squeeze the return spring to move inward, thereby driving the driving teeth to move, driving the rotating rod to rotate, and under the transmission cooperation of the active connecting rod and the driven connecting rod, the sliding seat moves linearly, driving the mobile nozzle to spray the release agent on the upper mold for the first time. When the first pressing block moves away from the second pressing block, the piston is pushed back by the return spring. The oil in the oil tank ensures that the piston can be slowly reset, driving the mobile nozzle to move in the opposite direction to spray the release agent for the second time.

[0018] The present invention, through the provided trimming die, rotating disk, first lifting block, second lifting block, lifting groove and lifting rod, solves the forging and trimming tasks in an integrated manner while automatically collecting burr waste. After the trimming work is completed, the rotating disk rotates to squeeze the lifting rod through the first lifting block and the second lifting block. The top of the lifting rod presses against the burr, and slowly lifts the burr originally flat on the upper surface of the trimming die to an inclined state. As the burr angle increases, under the action of gravity, the burr slides off the workbench and automatically falls into the collection frame, avoiding the safety hazard of operators contacting high-temperature forgings and sharp burrs, thereby improving production safety. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention;

[0020] Figure 2 This is a bottom view of the three-dimensional structure of the present invention;

[0021] Figure 3 This is a schematic structural diagram of the upper die, the extrusion seat and the first pressing block of the present invention;

[0022] Figure 4This is a schematic structural diagram of the rotating disk, lower die, trimming die and fixed seat of the present invention;

[0023] Figure 5 For the present invention Figure 4 A in the middle is an enlarged structural diagram;

[0024] Figure 6 It is a structural schematic diagram of the rotating plate, lower die, trimming die, fixed seat, first lifting block and second lifting block of the present invention;

[0025] Figure 7 It is a schematic cross-sectional structural diagram of the fixing seat of the present invention;

[0026] Figure 8 Schematic diagram of the structure of the drive assembly of the present invention.

[0027] In the figure: 1. forging machine; 101. first lifting block; 102. second lifting block; 103. aggregate frame; 2. rotating disk; 3. lower die; 4. upper die; 401. extrusion seat; 402. first pressure block; 5. trimming die; 501. lifting rod; 502. lifting groove; 6. fixed nozzle; 7. fixed seat; 8. oil tank; 801. piston; 802. driving teeth; 803. second pressure block; 804. return spring; 9. rotating rod; 901. active connecting rod; 902. driven connecting rod; 903. sliding seat; 904. moving nozzle; 905. transmission gear. DETAILED DESCRIPTION

[0028] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0029] See also Figures 1-8The present invention provides a technical solution: a continuous forging equipment for processing automobile parts, including a forging machine 1, a lower die 3 and an upper die 4, a rotating disk 2 is rotatably installed on the surface of the worktable of the forging machine 1, a lower die 3 is fixed on the upper surface of the rotating disk 2, a trimming die 5 is fixed on the upper surface of the rotating disk 2, a plurality of lifting rods 501 are slidably installed inside the trimming die 5, a lifting groove 502 is opened at the bottom of the trimming die 5, a first lifting block 101 and a second lifting block 102 are fixedly installed on the surface of the worktable of the forging machine 1, a collecting frame 103 is installed on the side wall of the forging machine 1, an extrusion seat 401 is fixed on the side wall of the upper die 4, a first pressing block 402 is slidably installed on the end of the extrusion seat 401, a fixed seat 7 is installed at the center position of the upper surface of the rotating disk 2, and a lifting groove 502 is opened at the bottom of the fixing seat 7. The wall is rotatably installed with a rotating rod 9, the upper end of the rotating rod 9 is provided with a spraying assembly, the inner wall of the fixed seat 7 is provided with a driving assembly, and the outer wall of the slider of the forging press 1 is installed with a fixed nozzle 6. The fixed nozzle 6 directly sprays the lower die 3 when the slider is pressed down to ensure that the mold surface is evenly covered with the release agent, providing protection for subsequent production. The rotating disk 2 can quickly switch the working positions of the lower die 3 and the trimming die 5, so that the forging and trimming processes are seamlessly transitioned. The built-in lifting rod 501 and the bottom lifting groove 502 of the trimming die 5 cooperate with the first lifting block 101 and the second lifting block 102 on the surface of the workbench of the forging press 1. Through the principle of inclined plane transmission, the flash generated by the trimming is automatically lifted and slid to the collection frame 103 when the rotating disk 2 rotates, thereby realizing contactless collection of waste materials.

[0030] The spraying assembly includes an active connecting rod 901 fixed at the upper end of the rotating rod 9, and a driven connecting rod 902 rotatably installed in the internal cavity position of the fixed seat 7. The active connecting rod 901 and the driven connecting rod 902 are connected by a group of transmission gears 905. A sliding seat 903 is fixed to the other end of the driven connecting rod 902. The sliding seat 903 slides on the outer wall of the fixed seat 7. A movable nozzle 904 is fixed to the side wall of the sliding seat 903. When the slider of the forging machine 1 drives the upper die 4 to rise and fall, the first pressing block 402 squeezes the driving assembly in the fixed seat 7 through the inclined surface, driving the rotating rod 9 to rotate. The rotating rod 9 converts the rotational motion into linear motion of the sliding seat 903 through the active connecting rod 901, the driven connecting rod 902 and the transmission gear 905 in the spraying assembly, driving the movable nozzle 904 to complete the release agent spraying of the upper die 4.

[0031] As an embodiment of the present invention, a through groove is provided on the surface of the rotating disk 2 for the movement of the first lifting block 101 and the second lifting block 102. The bottom of the lower mold 3 and the trimming mold 5 are both provided with lifting grooves 502, and the lifting grooves 502 correspond to the first lifting block 101 and the second lifting block 102. The through groove of the rotating disk 2 and the lifting grooves 502 provided on the bottom of the lower mold 3 ensure that when the rotating disk 2 rotates, the rotating disk 2 and the lower mold 3 are not affected by the first lifting block 101 and the second lifting block 102. When the rotating disk 2 rotates, the first lifting block 101 and the second lifting block 102 pass through the lifting grooves 502, and with the inclined design of their side walls, they can gradually push the lifting rod 501 to achieve stable lifting of the flash.

[0032] As an embodiment of the present invention, the positions of the first lifting block 101 and the second lifting block 102 correspond to the aggregate frame 103, the height of the first lifting block 101 is greater than the height of the second lifting block 102, and the side walls of the first lifting block 101 and the second lifting block 102 are both designed with an inclined surface to ensure that the burrs after lifting can fall into the aggregate frame 103 under the action of gravity, and avoid the burrs from sliding and deviating to cause waste accumulation or scattering. The height of the first lifting block 101 is greater than the height of the second lifting block 102, forming a lifting structure. The inclined surface design of the side walls of the two is conducive to the gradual lifting of the lifting rod 501, avoiding the situation where the burrs are unevenly stressed, flipped or bounced due to instantaneous lifting, and ensuring that the burrs slide smoothly into the aggregate frame 103.

[0033] As an embodiment of the present invention, multiple lifting rods 501 are distributed around the cutout of the trimming die 5, and the positions of the lifting rods 501 correspond to the first lifting block 101 and the second lifting block 102, ensuring that the flash can effectively contact the lifting rods 501 and be lifted up, ensuring the accuracy and stability of power transmission, improving the efficiency of flash lifting, and preventing the flash from being deformed or splashing due to sudden changes in force.

[0034] As an embodiment of the present invention, the first pressing block 402 is slidably installed on the side wall of the end of the extrusion seat 401 by a spring. The side of the first pressing block 402 away from the upper mold 4 is designed with a slope. When the upper mold 4 is pressed down, the slope can smoothly contact and be squeezed with the second pressing block 803. The first pressing block 402 enters the inner wall of the extrusion seat 401 to ensure that the upper mold 4 can complete the trimming action without obstacles. When the upper mold 4 rises, the plane of the first pressing block 402 contacts the second pressing block 803, squeezing the second pressing block 803 to move toward the inner wall of the oil tank 8, triggering the drive component, and reducing manual intervention.

[0035] As an embodiment of the present invention, the cross-section of the sliding seat 903 is designed to be L-shaped, and the outer wall of the sliding seat 903 is in close contact with the outer wall of the trimming die 5 and the outer wall of the fixed seat 7, which is conducive to limiting the movement of the sliding seat 903 and smoothly converting the driving force into the linear motion of the sliding seat 903, driving the moving nozzle 904 to accurately spray the release agent on the upper die 4, ensuring that the surface of the upper die 4 is evenly covered with the release agent, providing good conditions for subsequent forging work.

[0036] As an embodiment of the present invention, the driving component includes an oil tank 8 fixed to the inner wall of the fixing seat 7, a piston 801 is slidably installed inside the oil tank 8, a return spring 804 connected to the inner wall of the oil tank 8 is installed on the side wall of the piston 801, and a driving tooth 802 is provided in the internal cavity of the piston 801. It also includes a second pressing block 803 slidably installed at the end of the oil tank 8, and the end of the second pressing block 803 is located at the inner wall of the oil tank 8 and is connected to the piston 801. When the first pressing block 402 squeezes the second pressing block 803, the second pressing block 803 pushes the piston 801 to slide in the oil tank 8, compressing the return spring 804 while utilizing the damping characteristics of the oil to make the piston 801 move smoothly, thereby avoiding damage to the transmission components due to excessive impact force, and the piston 8 01 The driving teeth 802 are set at the position of the internal cavity. When the piston 801 moves, the driving teeth 802 engage with the rotating rod 9, converting the linear motion of the piston 801 into the rotational motion of the rotating rod 9, and then driving the sliding seat 903 through the active connecting rod 901 and the driven connecting rod 902, driving the mobile nozzle 904 to complete the first spraying of the release agent. When the first pressing block 402 is away from the second pressing block 803, the return spring 804 releases the elastic potential energy and pushes the piston 801 to reset. Due to the buffering effect of the oil in the oil tank 8, the piston 801 can slowly retreat, ensuring that the mobile nozzle 904 moves in the opposite direction to achieve the second uniform spraying of the release agent. The dual mechanism of hydraulic buffering and spring return is used to make the driving process smoother and reduce the wear between mechanical components.

[0037] As an embodiment of the present invention, the lower end of the rotating rod 9 is located in the cavity position of the piston 801 inside the oil tank 8, and the lower end of the rotating rod 9 is installed with a gear that meshes with the driving teeth 802. The lower end of the rotating rod 9 forms an efficient transmission structure with the piston 801 through the installed gear, which converts the linear motion of the piston 801 into the rotational motion of the rotating rod 9, thereby realizing the automated and precise spraying of the release agent.

[0038] As an embodiment of the present invention, the second pressure block 803 extends out of the side wall of the fixed seat 7. The second pressure block 803 corresponds to the first pressure block 402. The end of the second pressure block 803 close to the rotating disk 2 is designed with an inclined surface. The second pressure block 803 extends out of the side wall of the fixed seat 7, so that the second pressure block 803 can directly contact the first pressure block 402 on the outer wall of the upper mold 4, ensuring that the two interact efficiently during the operation of the equipment. When the upper mold 4 is pressed down, the first pressure block 402 can slide smoothly along the inclined surface of the second pressure block 803 without interfering with the trimming process. When the upper mold 4 completes the trimming work and rises, the first pressure block 402 contacts the plane of the second pressure block 803, instantly triggering the extrusion action. The second pressure block 803 transmits the force to the piston 801 in the oil tank 8, driving the teeth 802 to drive the rotating rod 9 to rotate, thereby realizing the first release agent spraying of the mobile nozzle 904.

[0039] Working Principle: When using this continuous forging equipment for processing automotive parts, first place the preheated raw material to be processed in the cavity of the lower die 3, start the forging press 1, and the forging press 1 drives the slide to push the upper die 4 downward. When the forging work is completed, since the cavity of the upper die 4 is larger than that of the lower die 3, the workpiece will rise synchronously with the upper die 4. The rotating disk 2 begins to rotate 180 degrees, rotating the trimming die 5 to below the upper die 4. At the same time, the lower die 3 also rotates to below the fixed nozzle 6, preparing for subsequent processes.

[0040] The forging machine 1 drives the slider to drive the upper die 4 to press down again to complete the trimming work. The workpiece is ejected by the ejection mechanism in the upper die 4 and falls into the cavity position of the trimming die 5. The cut flash remains on the upper surface of the trimming die 5. During this process, the fixed nozzle 6 follows the slider to press down close to the lower die 3 and sprays the release agent directly on the surface of the lower die 3. While the upper die 4 falls, the extrusion seat 401 installed on the outer wall drives the first pressing block 402 to descend synchronously. The inclined surface of the first pressing block 402 contacts and is squeezed by the second pressing block 803, moves into the extrusion seat 401, and passes through the second pressing block 803 smoothly. When the upper die 4 rises, the plane of the first pressing block 402 contacts and squeezes the second pressing block 803. While the second pressing block 803 moves toward the inner wall of the oil tank 8, it pushes the piston 801 inward. The return spring 804 is squeezed, and the driving teeth 802 installed on the inner wall of the piston 801 rotate the rotating rod 9 through meshing transmission. Under the transmission cooperation of the active connecting rod 901 and the driven connecting rod 902, the sliding seat 903 is restricted by the outer wall of the trimming die 5 and the outer wall of the fixed seat 7, driving the mobile nozzle 904 to move linearly, and spray the release agent on the upper die 4 for the first time. When the first pressing block 402 continues to move upward and away from the second pressing block 803, the second pressing block 803 loses its squeeze, and the piston 801 is reset under the push of the return spring 804. The oil in the oil tank 8 ensures that the piston 801 can be slowly reset, driving the mobile nozzle 904 to move in the opposite direction to spray the release agent on the upper die 4 for the second time, ensuring that the release agent is evenly covered, providing good conditions for the next forging;

[0041] When the release agent is sprayed, the rotating disk 2 continues to rotate 180° to complete the reset of the upper mold 4. While the rotating disk 2 rotates, the first lifting block 101 and the second lifting block 102 pass through the lifting groove 502. Through the inclined design of the side walls of the first lifting block 101 and the second lifting block 102, they gradually contact and push the lifting rod 501. Under the action of the first lifting block 101 and the second lifting block 102, the lifting rod 501 lifts the burrs left on the upper surface of the trimming die 5, and slowly lifts the burrs originally flat on the upper surface of the trimming die 5 to an inclined state. As the lifting angle of the burrs increases, under the action of gravity, the burrs slide away from the trimming die 5 and automatically fall into the aggregate frame 103 below, reducing manual intervention and effectively avoiding the safety risks of operators inhaling volatiles of the release agent and contacting high-temperature forgings and sharp burrs, thereby improving production safety and ensuring stable operation of the equipment.

[0042] Any content not described in detail in this specification is prior art known to those skilled in the art. In the description of the present invention, unless otherwise specified, "plurality" means two or more. Terms such as "upper," "lower," "left," "right," "inner," "outer," "front," "rear," "head," and "tail" indicate positions or relationships based on those shown in the accompanying drawings and are intended solely for ease of description and simplification. They do not indicate or imply that the devices or components referred to must have, be constructed, or operate in a specific orientation and are therefore not to be construed as limiting the present invention. Furthermore, terms such as "first," "second," and "third" are used for descriptive purposes only and are not to be construed as indicating or implying relative importance. In the description of the present invention, unless otherwise specified or limited, the terms "connected" and "connected" are to be understood broadly, meaning, for example, fixedly connected, detachably connected, or integrally connected; mechanically connected, electrically connected; directly connected, or indirectly connected through an intermediary. Those skilled in the art will understand the specific meanings of these terms in the present invention on a case-by-case basis.

[0043] Although the present invention has been described in detail with reference to the aforementioned embodiments, it is still possible for those skilled in the art to modify the technical solutions described in the aforementioned embodiments, or to make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A continuous forging device for processing automobile parts, comprising a forging machine (1), a lower die (3) and an upper die (4), characterized in that: A rotating disk (2) is rotatably mounted on the worktable surface of the forging press (1), a lower die (3) is fixed on the upper surface of the rotating disk (2), a trimming die (5) is fixed on the upper surface of the rotating disk (2), a plurality of lifting rods (501) are slidably mounted inside the trimming die (5), a lifting groove (502) is provided at the bottom of the trimming die (5), a first lifting block (101) and a second lifting block (102) are fixedly mounted on the worktable surface of the forging press (1), a material collecting frame (103) is mounted on the side wall of the forging press (1), and an extrusion seat (401) is fixed on the side wall of the upper die (4) The end of the extrusion seat (401) is slidably mounted with a first pressing block (402), the center position of the upper surface of the rotating disk (2) is mounted with a fixed seat (7), the inner wall of the fixed seat (7) is rotatably mounted with a rotating rod (9), the upper end of the rotating rod (9) is provided with a spraying assembly, the inner wall of the fixed seat (7) is provided with a driving assembly, the outer wall of the slider of the forging press (1) is provided with a fixed nozzle (6), the first pressing block (402) is slidably mounted on the side wall of the end of the extrusion seat (401) through a spring, and the side of the first pressing block (402) away from the upper die (4) is designed as an inclined surface; The spraying assembly includes an active connecting rod (901) fixed at the upper end of the rotating rod (9), and a driven connecting rod (902) rotatably mounted at an inner cavity position of the fixed seat (7), the active connecting rod (901) and the driven connecting rod (902) are connected via a set of transmission gears (905), a sliding seat (903) is fixed at the other end of the driven connecting rod (902), the sliding seat (903) is limitedly slidable on the outer wall of the fixed seat (7), a movable spray head (904) is fixed on the side wall of the sliding seat (903), the cross section of the sliding seat (903) is L-shaped, the outer wall of the sliding seat (903) is in close contact with the outer wall of the trimming die (5) and the outer wall of the fixed seat (7), the driving assembly includes an oil tank (8) fixed on the inner wall of the fixed seat (7), a piston (801) is slidably mounted inside the oil tank (8) The side wall of the piston (801) is provided with a return spring (804) connected to the inner wall of the oil tank (8), the internal cavity of the piston (801) is provided with a driving tooth (802), and further includes a second pressing block (803) slidably installed at the end of the oil tank (8), the second pressing block (803) is located at the end of the inner wall of the oil tank (8) and is connected to the piston (801), the lower end of the rotating rod (9) is located in the cavity position of the piston (801) inside the oil tank (8), the lower end of the rotating rod (9) is provided with a gear meshing with the driving tooth (802), the second pressing block (803) extends out of the side wall of the fixed seat (7), the second pressing block (803) corresponds to the first pressing block (402), and the end of the second pressing block (803) close to the rotating disk (2) is designed with an inclined surface.

2. The continuous forging equipment for automobile parts processing according to claim 1, characterized in that: A through slot for the first lifting block (101) and the second lifting block (102) to move is provided through the surface of the rotating disk (2), and lifting slots (502) are provided at the bottom of both the lower mold (3) and the trimming mold (5), and the lifting slots (502) correspond to the first lifting block (101) and the second lifting block (102).

3. The continuous forging equipment for automobile parts processing according to claim 2, characterized in that: The positions of the first lifting block (101) and the second lifting block (102) correspond to the aggregate frame (103); the height of the first lifting block (101) is greater than the height of the second lifting block (102); and the side walls of the first lifting block (101) and the second lifting block (102) are both designed to be inclined.

4. The continuous forging equipment for automobile parts processing according to claim 3, characterized in that: A plurality of the lifting rods (501) are distributed around the cutout of the trimming die (5), and the positions of the lifting rods (501) correspond to the first lifting block (101) and the second lifting block (102).