Intelligent machining equipment for stainless steel product production

Through the hydraulic system, the intelligent processing equipment for automatically ejecting workpieces and high-pressure airflow to clean waste chips is solved, and the safety hazards and low efficiency of manual operation in the production of traditional stainless steel products are realized, and automated production and high-quality products are realized.

CN120362360AInactive Publication Date: 2025-07-25FOSHAN BAOQILAI METAL PROD CO LTD
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Patent Information

Application Number
CN202510575257.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-06
Publication Date
2025-07-25
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Traditional stainless steel product production equipment relies on manual operation, which poses safety hazards, low production efficiency, high labor costs, and incomplete cleaning of waste chips affects product quality.

Method used

An intelligent processing equipment was designed, using a hydraulic system to drive the moving die to automatically eject the workpiece, and clean the waste chips through high-pressure airflow, combined with automatic loading and unloading components to achieve automated production.

Benefits of technology

It significantly improves production efficiency, reduces labor costs, avoids manual operation errors and safety hazards, ensures consistent product quality, and simplifies equipment structure.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of stainless steel products, and discloses intelligent machining equipment for stainless steel product production, which comprises a base, a support frame is mounted on one side of the top of the base, a hydraulic cylinder is mounted on the top of the support frame, a movable mold is fixedly connected to the output end of the hydraulic cylinder, and a fixed mold is detachably connected to the middle side of the top of the base. A first transmission shaft is movably connected to the interior of the fixed mold through a bearing, two first bevel gears are fixedly connected to the exterior of the first transmission shaft, a cavity is formed in the lower side of the interior of the fixed mold, two driving screw rods are movably connected to the inner top wall of the cavity through bearings, and threaded frames are in threaded connection to the exteriors of the driving screw rods; the top of the threaded frame is fixedly connected with a top plate. The automatic ejection of the stainless steel product is realized in the upward moving process of the movable mold, so that the time and steps required by manually ejecting the product are obviously reduced, and the production cycle of a single product is shortened, thereby greatly improving the overall production efficiency.
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Description

Technical Field

[0001] The present invention relates to the technical field of stainless steel products, and specifically relates to an intelligent processing device for the production of stainless steel products. Background Art

[0002] With the continuous acceleration of the industrialization process, the production demand for stainless steel products is increasing day by day, and the processing technology of stainless steel products is also constantly developing. Traditional stainless steel product production equipment relies on manual operation to complete a series of complex processes. Especially in the processes of mold injection molding, forming, and ejection, there is a lot of manual participation. This production mode not only consumes time and effort, but also easily leads to manual operation errors, thus affecting production efficiency and product quality. Especially in the process of taking out the stamping parts of stainless steel products from inside the mold, the existing manual ejection method not only has great potential safety hazards, but also requires a lot of time and human resources. This makes the production cycle of a single product longer, and in large-scale production, the overall efficiency is severely restricted.

[0003] In addition, during the use of the mold in existing equipment, the problem of waste chip cleaning has always been a difficult problem. During the process of the moving mold and the fixed mold closing, a large amount of waste chips often accumulate on the mold surface. If these waste chips are not removed in time, it will lead to damage to the mold or a decline in the surface quality of the product. At present, most equipment relies on manual cleaning of waste chips, which not only increases the labor intensity during the production process, but also raises the labor cost. During the process of manual cleaning of waste chips, problems such as omission or incomplete cleaning are likely to occur, thus affecting the consistency and overall quality of the product.

[0004] Therefore, those skilled in the art have proposed an intelligent processing device for the production of stainless steel products to solve the above problems. Summary of the Invention

[0005] Aiming at the deficiencies of the prior art, the present invention provides an intelligent processing device for the production of stainless steel products, which solves the problems raised in the above background art.

[0006] To achieve the above objectives, the present invention is realized through the following technical solutions: An intelligent processing device for the production of stainless steel products, including a base, on one side of the top of the base, a support frame is installed, on the top of the support frame, a hydraulic cylinder is installed, the output end of the hydraulic cylinder is fixedly connected to a moving mold, in the middle of the top of the base, a fixed mold is detachably connected, inside the fixed mold, a transmission shaft one is movably connected through a bearing, on the outside of the transmission shaft one, two bevel gears one are fixedly connected, inside the lower side of the fixed mold, a cavity is opened, on the inner top wall of the cavity, two driving screws are movably connected through bearings, on the outside of the driving screws, a threaded frame is threadedly connected, on the top of the threaded frame, a top plate is fixedly connected, on the upper surface of the fixed mold, a limiting groove is opened, and at the bottom end of the driving screw, a bevel gear two is fixedly connected.

[0007] Preferably, a rack plate is slidably installed at the top through hole of the support frame. A limiting plate is fixedly connected to the top of the rack plate. A second transmission shaft is rotatably installed at the top of the support frame. A first driving gear is fixedly connected to one end of the second transmission shaft. A second synchronous pulley is fixedly connected to the other end of the second transmission shaft. Two swing rods are rotatably connected to the eccentric part outside the second synchronous pulley.

[0008] Preferably, the outside of the first driving gear is meshed and connected with the outside of the rack plate. The bottom of the rack plate is fixedly connected to the top of the moving mold.

[0009] Preferably, two fixed cylinders are fixedly connected to the outside of the support frame. A movable rod is slidably connected to the through hole on one side of the fixed cylinder. A rubber piston is fixedly connected to one end of the movable rod close to the fixed cylinder. An air inlet pipe is communicated with one side of the upper surface of the fixed cylinder. A first transport pipe is communicated with the lower surface of the fixed cylinder. The first transport pipe is connected to a second transport pipe through a three-way valve. One end of the second transport pipe is communicated with an air injection pipe. A plurality of nozzles are fixedly connected to the outer surface of the air injection pipe.

[0010] Preferably, one-way valves are installed inside both the air inlet pipe and the first transport pipe. The conduction directions of the two one-way valves are opposite. One ends of the two movable rods away from the fixed cylinder are respectively rotatably connected to one end of the swing rod at the corresponding position.

[0011] Preferably, a first synchronous pulley is connected to the outside of the second synchronous pulley through a belt. One end of the first transmission shaft penetrates through the outside of the fixed mold and is fixedly connected to the outside of the first synchronous pulley.

[0012] Preferably, a support seat is fixedly connected to one side of the top of the base. Two electric guide rails are installed inside the support seat. An electric slider is installed outside the electric guide rail. A connecting plate is installed between the two electric sliders. Two electric telescopic rods are installed on the top of the connecting plate. The output end of the electric telescopic rod penetrates through the outside of the connecting plate and is fixedly connected to an electric magnetic disk. A collection box is detachably connected to one side inside the base. A placement box is detachably connected to the other side inside the base.

[0013] Preferably, the air injection pipe is fixedly connected to the side of the moving mold. The fixed mold is located directly below the moving mold.

[0014] Preferably, the longitudinal section of the rubber piston is square. The rubber piston is slidably connected inside the fixed cylinder.

[0015] Preferably, the outside of the two second bevel gears are respectively meshed and connected with the outside of the corresponding first bevel gears. The shape of the top plate matches the shape of the limiting groove.

[0016] The present invention provides an intelligent processing device for the production of stainless steel products. It has the following beneficial effects:

[0017] 1. In the present invention, during the upward movement of the moving mold, automatic ejection of the stainless steel product is achieved, significantly reducing the time and steps required for manual ejection of the product, shortening the production cycle of a single product, and thus greatly improving the overall production efficiency. At the same time, since manual ejection is not required, the labor cost is reduced, and errors and safety hazards caused by manual operation are effectively avoided. In addition, the device does not require an additional ejection device, simplifying the device structure and reducing the complexity and maintenance cost of the device.

[0018] 2. In the present invention, during the movement of the moving mold, the chip removal component is driven to operate, and the airflow generated by the chip removal component is used to remove the waste chips on the moving mold, thereby avoiding mold damage and product quality problems caused by waste chip residue, and significantly improving the surface quality and consistency of the product. Secondly, the automatic chip removal function reduces the steps of manual chip cleaning, reduces the labor cost and labor intensity, and has a clever structural design, which is convenient for people to use.

[0019] 3. In the present invention, by adding an automatic loading and unloading component, the tasks of quickly and accurately grasping and placing materials can be completed, reducing the time and steps of manual operation, realizing intelligent integrated operation, greatly shortening the production cycle. At the same time, the present invention can increase the number of loading and unloading components to expand the production capacity and can be quickly adjusted and expanded according to production requirements. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 is a perspective view of the present invention;

[0021] Figure 2 is a schematic structural diagram of the base of the present invention;

[0022] Figure 3 is a schematic structural diagram of the second transport pipe of the present invention;

[0023] Figure 4 is Figure 1 an enlarged view of part A in

[0024] Figure 5 is Figure 1 an enlarged view of part B in

[0025] Figure 6 is a sectional view of the fixed mold of the present invention;

[0026] Figure 7 is Figure 6 an enlarged view of part C in

[0027] Figure 8 is a schematic structural diagram of the collection box of the present invention.

[0028] Among them, 1 is the base; 2 is the support frame; 301 is the support seat; 302 is the placement box; 303 is the electric slider; 304 is the electric guide rail; 305 is the collection box; 306 is the connecting plate; 307 is the electric telescopic rod; 308 is the electric disk; 401 is the first synchronous pulley; 402 is the belt; 403 is the second synchronous pulley; 501 is the first transmission shaft; 502 is the first bevel gear; 503 is the second bevel gear; 504 is the driving screw; 505 is the threaded frame; 506 is the limit groove; 507 is the top plate; 6 is the fixed mold; 7 is the hydraulic cylinder; 801 is the fixed cylinder; 802 is the air inlet pipe; 803 is the movable rod; 804 is the first transport pipe; 805 is the second transport pipe; 806 is the air jet pipe; 901 is the limit plate; 902 is the swing rod; 903 is the second transmission shaft; 904 is the first driving gear; 905 is the rack plate; 10 is the movable mold. Specific implementation manner

[0029] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0030] Please refer to the attached Figure 1 - attached Figure 8 , the embodiments of the present invention provide an intelligent processing device for the production of stainless steel products, including a base 1. One side of the top of the base 1 is provided with a support frame 2. The top of the support frame 2 is provided with a hydraulic cylinder 7. The output end of the hydraulic cylinder 7 is fixedly connected with a movable mold 10. The middle side of the top of the base 1 is detachably connected with a fixed mold 6. The inside of the fixed mold 6 is movably connected with a first transmission shaft 501 through a bearing. Two first bevel gears 502 are fixedly connected to the outside of the first transmission shaft 501. A cavity is opened on the lower side inside the fixed mold 6. The inner top wall of the cavity is movably connected with two driving screws 504 through bearings. The outside of the driving screw 504 is threadedly connected with a threaded frame 505. The top of the threaded frame 505 is fixedly connected with a top plate 507. A limit groove 506 is opened on the upper surface of the fixed mold 6. The bottom end of the driving screw 504 is fixedly connected with a second bevel gear 503. The outside of the two second bevel gears 503 is respectively meshed with the outside of the first bevel gear 502 at the corresponding position. The shape of the top plate 507 matches the shape of the limit groove 506. This part of the content is the automatic blanking component.

[0031] Specifically, the base 1 serves as the basic support component of the entire device, bearing other components to ensure the overall stability and firmness of the device, and providing a stable platform for processing operations such as stamping. The support frame 2 plays a role in supporting the hydraulic cylinder 7 to ensure that the hydraulic cylinder 7 can stably apply pressure during operation. The shape and size of the moving die 10 are designed according to the shape of the stainless steel product to be processed, and cooperate with the fixed die 6 to complete the stamping operation. Its material and surface treatment process have sufficient strength and wear resistance to ensure the smooth progress of the stamping process and the quality of the product. The cavity is opened on the lower side inside the fixed die 6, providing installation and movement space for components such as the drive screw 504 and the threaded frame 505, ensuring that these components can work normally inside the fixed die 6 without affecting the overall structural strength and stamping function of the fixed die 6. The limiting groove 506 limits and guides the movement of the top plate 507 to ensure that the top plate 507 can smoothly rise along a predetermined trajectory and accurately eject the workpiece from the fixed die 6. The shape and size of the limiting groove 506 match those of the top plate 507 to achieve good guiding and limiting effects.

[0032] At the beginning of stamping, the output end of the hydraulic cylinder 7 extends downward, driving the moving die 10 to move downward and cooperate with the fixed die 6 to perform a stamping operation on the stainless steel material placed in the fixed die 6. After stamping is completed, the output end of the hydraulic cylinder 7 begins to contract, driving the moving die 10 to move upward. The moving die 10 drives the transmission component to work, and the transmission component drives the rotation of the first transmission shaft 501. The rotation of the first transmission shaft 501 drives the synchronous rotation of the two first bevel gears 502 fixedly connected to its outside. Due to the meshing relationship between the first bevel gear 502 and the second bevel gear 503, the rotation of the first bevel gear 502 drives the synchronous rotation of the second bevel gear 503. Thus, the drive screw 504 also begins to rotate. The rotation of the drive screw 504 drives the threaded frame 505 threadedly connected to it to move upward along the outer surface of the drive screw 504. During the upward movement of the threaded frame 505, it drives the top plate 507 fixedly connected to its top to move upward synchronously. The top plate 507 smoothly rises along the limiting groove 506 on the upper surface of the fixed die 6 until the top plate 507 ejects the formed workpiece at the top of the fixed die 6.

[0033] A rack plate 905 is slidably installed at the top through hole of the support frame 2. A limit plate 901 is fixedly connected to the top of the rack plate 905. A second transmission shaft 903 is rotatably installed at the top of the support frame 2. A first driving gear 904 is fixedly connected to one end of the second transmission shaft 903. A second synchronous pulley 403 is fixedly connected to the other end of the second transmission shaft 903. Two swing rods 902 are rotatably connected to the outer eccentric part of the second synchronous pulley 403. The outer side of the first driving gear 904 is meshed and connected with the outer side of the rack plate 905. The bottom of the rack plate 905 is fixedly connected to the top of the moving die 10. The outer part of the second synchronous pulley 403 is connected with a first synchronous pulley 401 through a belt 402. One end of a first transmission shaft 501 penetrates through the outer side of the fixed die 6 and is fixedly connected to the outer part of the first synchronous pulley 401. This part of the content is the transmission assembly of the present invention, which is used to drive the work of the chip removal assembly and the automatic blanking assembly.

[0034] Specifically, when the output end of the hydraulic cylinder 7 drives the moving die 10 to move up or down, the movement of the moving die 10 will drive the rack plate 905 fixedly connected to its top to move synchronously. The moving direction of the rack plate 905 is the same as that of the moving die 10, and the moving speed is the same as that of the moving die 10. The movement of the rack plate 905 drives the first driving gear 904 to rotate. The rotation of the first driving gear 904 drives the second transmission shaft 903 to rotate synchronously. The rotation of the second transmission shaft 903 drives the second synchronous pulley 403 to rotate coaxially. The rotation direction of the second synchronous pulley 403 is the same as that of the second transmission shaft 903, and the rotation speed is the same as that of the second transmission shaft 903. The second synchronous pulley 403 drives the first synchronous pulley 401 to rotate synchronously through the belt 402. The first synchronous pulley 401 drives the automatic blanking assembly to work, realizing the automatic ejection of the workpiece.

[0035] Two fixed cylinders 801 are fixedly connected to the outer side of the support frame 2. A movable rod 803 is slidably connected to the through hole on one side of the fixed cylinder 801. A rubber piston is fixedly connected to one end of the movable rod 803 close to the fixed cylinder 801. An air inlet pipe 802 is communicated with one side of the upper surface of the fixed cylinder 801. A first transport pipe 804 is communicated with the lower surface of the fixed cylinder 801. The first transport pipe 804 is connected to a second transport pipe 805 through a three-way valve. One end of the second transport pipe 805 is communicated with a jet pipe 806. A plurality of nozzles are fixedly connected to the outer surface of the jet pipe 806. Check valves are installed in the internal parts of the air inlet pipe 802 and the first transport pipe 804, and the conduction directions of the two check valves are opposite. One ends of the two movable rods 803 far away from the fixed cylinder 801 are respectively rotatably connected to one ends of the swing rods 902 at the corresponding positions. The longitudinal section of the rubber piston is square, and the rubber piston is slidably connected inside the fixed cylinder 801. The upper part of the content forms the chip removal assembly of the present invention.

[0036] Specifically, the inside of the fixed cylinder 801 provides a space for the movement of the movable rod 803 and the rubber piston.

[0037] One end of the movable rod 803 close to the fixed cylinder 801 is fixedly connected with a rubber piston, and the compression and discharge of gas are realized by the sliding of the rubber piston. The air inlet pipe 802 is used to introduce external air into the fixed cylinder 801. A one-way valve is installed inside the air inlet pipe 802, and the conduction direction of the one-way valve is from the outside to the inside of the fixed cylinder 801, ensuring that gas can only enter the fixed cylinder 801 from the air inlet pipe 802 and will not flow back from the inside of the fixed cylinder 801 to the air inlet pipe 802. The first transport pipe 804 is used to discharge the gas inside the fixed cylinder 801. A one-way valve is also installed inside the first transport pipe 804, and the conduction direction of the one-way valve is opposite to that of the one-way valve inside the air inlet pipe 802, that is, from the inside of the fixed cylinder 801 to the inside of the first transport pipe 804, ensuring that gas can only be discharged from the inside of the fixed cylinder 801 through the first transport pipe 804 and will not flow back from the first transport pipe 804 to the inside of the fixed cylinder 801. The function of the jet pipe 806 is to spray the high-pressure gas transmitted by the second transport pipe 805 onto the moving mold 10 through the nozzle, and the waste chips on the moving mold 10 are removed by using the high-pressure air flow. The nozzle can ensure that the air flow can be evenly sprayed on the surface of the moving mold 10 to achieve a good chip removal effect.

[0038] When the transmission component works, it will drive the movable rod 803 and the connected rubber piston to move left and right reciprocally along the inner wall of the fixed cylinder 801. When the rubber piston moves along the direction of the movable rod 803, at this time, the one-way valve inside the air inlet pipe 802 is opened, and the one-way valve inside the first transport pipe 804 is closed. Due to the movement of the rubber piston, the gas volume inside the fixed cylinder 801 increases and the pressure decreases, thus forming a negative pressure, and the external air enters the inside of the fixed cylinder 801 through the air inlet pipe 802 under the action of atmospheric pressure. This process is similar to the air intake process of a piston-type air pump, and the gas is inhaled through the movement of the rubber piston. When the rubber piston moves away from the direction of the movable rod 803, at this time, the one-way valve inside the air inlet pipe 802 is closed, and the one-way valve inside the first transport pipe 804 is opened. The movement of the rubber piston makes the gas volume inside the fixed cylinder 801 decrease and the pressure increase, so as to discharge the gas inside the fixed cylinder 801 into the inside of the second transport pipe 805 through the first transport pipe 804. The gas inside the second transport pipe 805 is sprayed onto the moving mold 10 through the nozzle outside the jet pipe 806. Since the gas is compressed inside the fixed cylinder 801, the ejected air flow has a relatively high pressure and can effectively remove the waste chips on the moving mold 10. The design of the nozzle enables the high-pressure air flow to be evenly sprayed on the surface of the moving mold 10, ensuring the uniformity and consistency of the chip removal effect.

[0039] On one side of the top of the base 1, there is a support base 301 fixedly connected. Inside the support base 301, there are two electric guide rails 304 installed. Outside the electric guide rails 304, there are electric sliders 303 installed. Between the two electric sliders 303, there is a connecting plate 306 installed. On the top of the connecting plate 306, there are two electric telescopic rods 307 installed. The output ends of the electric telescopic rods 307 penetrate outside the connecting plate 306 and are fixedly connected with an electric magnetic disk 308. On one side inside the base 1, there is a collection box 305 detachably connected. On the other side inside the base 1, there is a placement box 302 detachably connected. This part forms the automatic loading and unloading component in the present invention.

[0040] Specifically, the electric guide rail 304 provides a guide for the movement of the electric slider 303. The setting of the electric guide rail 304 enables the electric slider 303 to move precisely along a predetermined trajectory. The electric magnetic disk 308 is used to adsorb and release workpieces. The suction force of the electric magnetic disk 308 is achieved through the control of electric current, making it have a relatively high adsorption force and release force. The collection box 305 is used to collect the workpieces after stamping. The setting of the collection box 305 enables the workpieces after stamping to be collected orderly, facilitating subsequent processing and transportation.

[0041] The placement box 302 is used to place the stainless steel products to be processed. The setting of the placement box 302 enables the workpieces to be processed to be placed orderly, facilitating the material taking work of the automatic loading and unloading component.

[0042] Start the electric telescopic rod 307 to drive the electric magnetic disk 308 to move downward, and use the suction force generated by the electric magnetic disk 308 to adsorb the stainless steel products to be processed placed inside the placement box 302. At this time, the connecting plate 306 moves horizontally in cooperation with the electric slider 303 and the electric guide rail 304. When the connecting plate 306 moves to directly above the fixed mold 6, at this time, turn off the electric magnetic disk 308, and the workpiece is placed in the forming cavity on the top of the fixed mold 6. After stamping is completed, start the electric magnetic disk 308 again to adsorb the workpiece after stamping, and cooperate with the electric slider 303 and the electric guide rail 304 to move the connecting plate 306 to directly above the collection box 305 to achieve automatic unloading. In this way, the tasks of grasping and placing materials can be completed quickly and accurately, reducing the time and steps of manual operation and realizing intelligent integrated operation.

[0043] The air spray pipe 806 is fixedly connected to the side of the moving mold 10, and the fixed mold 6 is located directly below the moving mold 10.

[0044] Specifically, the air spray pipe 806 can more effectively cover the side and bottom areas of the moving mold 10 to ensure that the waste chips can be comprehensively cleaned. At the same time, the fixed mold 6 is located directly below the moving mold 10, enabling the moving mold 10 to be precisely aligned with the fixed mold 6 during the stamping process, ensuring the accuracy and consistency of the stamping operation.

[0045] Working principle: When specifically using this device, it includes the following detailed operating principles:

[0046] First, start the electric telescopic rod 307 to drive the electric disk 308 to move downward, and use the suction force generated by the electric disk 308 to adsorb the stainless steel products to be processed placed inside the collection box 305. At this time, the connecting plate 306 moves horizontally in cooperation with the electric slider 303 and the electric guide rail 304. When the connecting plate 306 moves directly above the fixed mold 6, turn off the electric disk 308 at this time, and the workpiece is placed in the forming cavity on the top of the fixed mold 6;

[0047] Start the hydraulic cylinder 7 to drive the moving mold 10 to move downward until the moving mold 10 is combined with the fixed mold 6 to complete the stamping work on the workpiece and prepare the accessories of the stainless steel product;

[0048] After stamping, the output end of the hydraulic cylinder 7 contracts to drive the moving mold 10 to move upward. During the movement of the moving mold 10, the rack plate 905 is driven to move synchronously. The movement of the rack plate 905 drives the driving gear one 904 to rotate. Further drive the transmission shaft two 903 to rotate synchronously. The rotation of the transmission shaft two 903 drives the synchronous wheel two 403 to rotate coaxially. Under the driving action of the belt 402, the synchronous wheel two 403 drives the synchronous wheel one 401 to rotate synchronously. The synchronous wheel one 401 drives the transmission shaft one 501 to rotate. The rotation of the transmission shaft one 501 drives the two bevel gears one 502 to rotate. The bevel gear one 502 drives the engaged bevel gear two 503 to rotate synchronously. The bevel gear two 503 drives the driving screw 504 to rotate synchronously. At this time, the threaded frame 505 moves upward along the outer surface of the driving screw 504, so as to drive the top plate 507 to move upward until the top plate 507 ejects the workpiece on the top of the fixed mold 6. This significantly reduces the time and steps required for manual product ejection, shortens the production cycle of a single product, and thus greatly improves the overall production efficiency:

[0049] After stamping, the electric disk 308 is used again to adsorb the stamped workpiece, and in cooperation with the electric slider 303 and the electric guide rail 304, the connecting plate 306 is moved above the collection box 305 to achieve automatic blanking;

[0050] During the rotation of the second synchronous pulley 403, the rotation of the second synchronous pulley 403 drives one end of the swing rod 902 to swing. Thus, under the traction of the swing rod 902, the movable rod 803 and the rubber piston connected thereto move reciprocally left and right along the inner wall of the fixed cylinder 801. When the rubber piston moves along the direction of the movable rod 803, the one-way valve located inside the intake pipe 802 is opened, while the one-way valve located inside the first transport pipe 804 is closed. At this time, the outside air enters the inside of the fixed cylinder 801 through the intake pipe 802. When the rubber piston moves away from the direction of the movable rod 803, the gas inside the fixed cylinder 801 is discharged into the inside of the second transport pipe 805 through the first transport pipe 804. The gas inside the second transport pipe 805 is sprayed on the moving die 10 through the nozzle outside the spray pipe 806, and the waste chips on the moving die 10 are cleaned by using high-pressure air flow, avoiding mold damage and product quality problems caused by waste chip residue, and significantly improving the surface quality and consistency of the product.

[0051] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An intelligent processing device for the production of stainless steel products, comprising a base (1), characterized in that, On one side of the top of the base (1), a support frame (2) is installed. On the top of the support frame (2), a hydraulic cylinder (7) is installed. The output end of the hydraulic cylinder (7) is fixedly connected to a moving mold (10). In the middle of the top of the base (1), a fixed mold (6) is detachably connected. Inside the fixed mold (6), a first transmission shaft (501) is rotatably connected through a bearing. On the outside of the first transmission shaft (501), two first bevel gears (502) are fixedly connected. Inside the lower side of the fixed mold (6), a cavity is formed. On the inner top wall of the cavity, two driving screws (504) are rotatably connected through bearings. On the outside of the driving screws (504), a threaded frame (505) is threadedly connected. On the top of the threaded frame (505), a top plate (507) is fixedly connected. On the upper surface of the fixed mold (6), a limiting groove (506) is formed. At the bottom end of the driving screw (504), a second bevel gear (503) is fixedly connected.

2. The intelligent processing equipment for the production of stainless steel products according to claim 1, characterized in that, A rack plate (905) is slidably installed at the through hole on the top of the support frame (2). On the top of the rack plate (905), a limiting plate (901) is fixedly connected. On the top of the support frame (2), a second transmission shaft (903) is rotatably installed. At one end of the second transmission shaft (903), a first driving gear (904) is fixedly connected. At the other end of the second transmission shaft (903), a second synchronous pulley (403) is fixedly connected. At the eccentric part on the outside of the second synchronous pulley (403), two swing rods (902) are rotatably connected.

3. The intelligent processing equipment for the production of stainless steel products according to claim 2, characterized in that, The outside of the first driving gear (904) is meshed with the outside of the rack plate (905). The bottom of the rack plate (905) is fixedly connected to the top of the moving mold (10).

4. An intelligent processing device for the production of stainless steel products according to claim 1, characterized in that, On the outside of the support frame (2), two fixed cylinders (801) are fixedly connected. At the through hole on one side of the fixed cylinder (801), a movable rod (803) is slidably connected. At the end of the movable rod (803) close to the fixed cylinder (801), a rubber piston is fixedly connected. On one side of the upper surface of the fixed cylinder (801), an air inlet pipe (802) is communicated. On the lower surface of the fixed cylinder (801), a first transport pipe (804) is communicated. The first transport pipe (804) is connected to a second transport pipe (805) through a three-way valve. At one end of the second transport pipe (805), an air jet pipe (806) is communicated. On the outer surface of the air jet pipe (806), a plurality of spray nozzles are fixedly connected.

5. The intelligent processing equipment for the production of stainless steel products according to claim 4, characterized in that, Check valves are installed inside both the air inlet pipe (802) and the first transport pipe (804). The conduction directions of the two check valves are opposite. The ends of the two movable rods (803) away from the fixed cylinder (801) are respectively rotatably connected to one end of the corresponding swing rod (902).

6. The intelligent processing equipment for the production of stainless steel products according to claim 2, characterized in that, The outside of the second synchronous pulley (403) is connected to a first synchronous pulley (401) through a belt (402). One end of the first transmission shaft (501) penetrates through the outside of the fixed mold (6) and is fixedly connected to the outside of the first synchronous pulley (401).

7. An intelligent processing device for the production of stainless steel products according to claim 1, characterized in that, One side of the top of the base (1) is fixedly connected with a support base (301). Two electric guide rails (304) are installed inside the support base (301). An electric slider (303) is installed outside the electric guide rail (304). A connecting plate (306) is installed between the two electric sliders (303). Two electric telescopic rods (307) are installed on the top of the connecting plate (306). The output end of the electric telescopic rod (307) penetrates outside the connecting plate (306) and is fixedly connected with an electric disk (308). A collection box (305) is detachably connected to one side inside the base (1), and a placement box (302) is detachably connected to the other side inside the base (1).

8. The intelligent processing equipment for the production of stainless steel products according to claim 4, characterized in that, The air injection pipe (806) is fixedly connected to the side of the moving mold (10), and the fixed mold (6) is located directly below the moving mold (10).

9. The intelligent processing equipment for the production of stainless steel products according to claim 4, characterized in that, The longitudinal section of the rubber piston is square, and the rubber piston is slidably connected inside the fixed cylinder (801).

10. The intelligent processing equipment for the production of stainless steel products according to claim 1, characterized in that, The outer sides of the two bevel gears two (503) are respectively meshed with the outer sides of the corresponding bevel gears one (502), and the shape of the top plate (507) matches the shape of the limit groove (506).