Casting device for aluminum product production and processing
By introducing a sliding controllable mold system and automatic cleaning components into the casting equipment, the problem of manually cleaning residues and mold surface residues has been solved, realizing automated residue removal and cleaning, reducing the workload of workers, and improving the automation level of the equipment and the quality of finished products.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-11-30
- Publication Date
- 2026-04-03
AI Technical Summary
After the casting process is completed, existing casting equipment requires manual cleaning of the residues and debris adhering to the edges of the finished product and the residues on the surface of the mold, resulting in an excessive workload for workers.
The system employs sliding controllable punch and die, along with a motor, threaded groove, and spring, to automatically remove and polish the edges and corners of the finished product; it cleans the mold surface of residue using a cylinder, piston, and nozzle structure; and it utilizes auxiliary components to achieve automatic residue collection and site cleaning.
It reduced the workload of workers, improved the automation level of casting equipment and the quality of finished products, and ensured the integrity and operational efficiency of the equipment.
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Figure CN121776459A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of aluminum product casting equipment technology, and in particular to a casting device for aluminum product production and processing. Background Technology
[0002] Casting is a method of shaping metal into a desired form. It involves heating metal material to a temperature above its melting point, pouring it into a mold, and then cooling and solidifying it into the desired shape. Generally, casting involves a series of operations such as mold closing, pouring, cooling, and mold opening to produce cast products.
[0003] Most existing casting equipment requires manual removal of residues and fragments adhering to the edges of the finished product after the casting process is completed, followed by edge grinding. At the same time, the surface of the mold after casting also needs to be manually cleaned by workers to avoid affecting the quality of the subsequent finished products. This series of processes will greatly increase the workload of workers. Therefore, in order to reduce the workload of workers during casting, we provide a casting device for aluminum product production and processing. Summary of the Invention
[0004] This invention discloses a casting device for aluminum product manufacturing and processing, which aims to solve the technical problem that most of the work such as edge trimming, grinding and cleaning after hot melt casting is done manually, resulting in excessive labor.
[0005] To achieve the above objectives, the present invention adopts the following technical solution: A casting device for aluminum product manufacturing and processing includes a guide rail, a first sliding table and a second sliding table slidably distributed on the top of the guide rail, the first sliding table and the second sliding table being symmetrically distributed, and a shaping component being provided inside the first sliding table and the second sliding table. The first sliding platform is equipped with a cleaning component. An auxiliary component is provided in the middle of the guide rail; The shaping assembly includes a punch, a die, a square rod, a motor, a threaded groove, and a spring; The punch is horizontally distributed on the inner side of the first sliding table, the die is slidably distributed on the inner side of the second sliding table, the punch and the die are symmetrically distributed in the horizontal direction, the square rod is horizontally fixed to the side end of the punch and slidably distributed inside the first sliding table, the motor is horizontally fixed to the outer side of the first sliding table, and the output shaft of the motor extends through into the interior of the first sliding table, the threaded groove is formed at the shaft end of the motor output shaft and is threadedly connected to the inner wall of the square rod, and the spring is horizontally fixed between the die and the second sliding table.
[0006] By using sliding controllable concave and convex dies, after the user completes the injection molding process, the motor rotates, and the threaded groove drives the convex die to squeeze the concave die. With the reciprocating extension and retraction of the spring, the chipping and scrap of the finished product are cut off. At the same time, the reciprocating movement polishes the edges of the finished product. While ensuring the quality of the finished product, the workload of the workers is greatly reduced.
[0007] In a preferred embodiment, two cleaning components are symmetrically distributed inside the first sliding table, and each cleaning component includes a cylinder, a piston, a push rod, an air outlet pipe, a nozzle, an air inlet pipe, and a one-way valve. Two cylinders are symmetrically distributed on both sides of the interior of the first sliding platform. The piston is slidably distributed at one end of the interior of the cylinder. Two push rods are symmetrically fixed on both sides of the square rod, and each push rod is fixedly connected to one of the pistons. The air outlet pipe is fixedly connected to the outside of the cylinder. The nozzle is rotatably mounted on the end of the cylinder and distributed on the inside of the first sliding platform. The air inlet pipe is fixedly connected to the outside of the cylinder and extends to the outside of the first sliding platform. The one-way valve is rotatably mounted inside the port of the air inlet pipe and is configured as a one-way rotating structure that can only rotate inward.
[0008] By incorporating a piston structure driven by a punch, the punch extends outward, and the piston pulls the cylinder to intake air; the punch retracts and resets, and the piston pushes the cylinder to exhaust air; and through a rotating nozzle, the residue adhering to the surface of the die is sprayed off, thereby ensuring the quality of the finished product in the next operation of the equipment and improving the completeness of the equipment.
[0009] In a preferred embodiment, the auxiliary components include a feeding chute, a scraper, an elastic rope, a traction rope, and a collection box; The feeding trough is inclinedly opened in the middle of the guide rail, the scraper is slidably distributed inside the feeding trough, the elastic rope is connected between the scraper and the feeding trough, the first sliding table and the second sliding table are both connected to the scraper by a traction rope, and the collection box is placed horizontally at the side end of the feeding trough.
[0010] By setting up an auxiliary component that is linked to two sliding tables, as the sliding tables move to their reset position, the sliding tables will pull the scraper outward via a traction rope. The outward-moving scraper will scrape the residue accumulated inside the discharge chute into the collection box, thereby facilitating the user's cleaning of the site and further reducing the workload of workers.
[0011] In a preferred embodiment, the inner wall of the second sliding table is shaped according to the shape characteristics of the scraper, and it is provided with a frosted strip.
[0012] By using the set abrasive strips in conjunction with the reciprocating movement of the punch, the edge of the finished product is continuously rubbed against the abrasive strips, thereby achieving the grinding action on the edge of the finished product and further improving the quality of the finished product.
[0013] In a preferred embodiment, a filter is horizontally fixed inside the outer side of the air intake pipe.
[0014] By installing a filter to block the outer opening of the air inlet pipe, air can enter, but impurities cannot enter the interior of the air inlet pipe, thereby further improving the efficiency of equipment operation.
[0015] In a preferred embodiment, two directional change kits are symmetrically fixed on one side of the middle of the guide rail. The two directional change kits are symmetrically distributed on both sides of the feed chute, and each traction rope passes through one of the directional change kits before being connected to the scraper.
[0016] By changing the direction of the force applied to the traction rope through the set-in reversing kit, large friction between the traction rope and the guide rail is avoided, thereby increasing the service life of the traction rope and further improving the completeness of the equipment.
[0017] In a preferred embodiment, sliding grooves are symmetrically formed on both sides of the inner side of the feeding trough, and the two sides of the scraper are slidably engaged with the inside of the scraper.
[0018] By setting the two sides of the scraper to slide and engage in the sliding groove, the scraper is effectively prevented from tilting or slipping out of the feed chute when the traction rope pulls it, thereby further improving the integrity of the equipment operation.
[0019] In a preferred embodiment, two mounting slots are symmetrically formed on one side of the second sliding platform. When the first sliding platform and the second sliding platform slide and fit together, the nozzle can be inserted into the interior of the mounting slot.
[0020] By providing space for the placement of the nozzles in the mounting slots, the two sliding platforms can be made to fit together perfectly, which also improves the smoothness of equipment operation.
[0021] In a preferred embodiment, the inner diameter of the outlet pipe is smaller than the inner diameter of the inlet pipe, and the air intake volume of the inlet pipe is greater than the air output volume of the outlet pipe within the same time period.
[0022] The air intake volume of the air inlet pipe is set to be greater than the air output volume of the air outlet pipe to ensure that when the piston is pushed back to its original position, the air ejected from the nozzle has sufficient pressure to push the impurities adhering to the two molds, causing the impurities to fall off, thereby ensuring the quality of the finished product in the next production.
[0023] In a preferred embodiment, the length of the outermost threaded section of the threaded groove is greater than the length of the threaded section in the middle.
[0024] By setting the length of the outermost thread structure of the thread groove to be greater than the length of the middle thread, the formation during the reciprocating movement of the punch is improved, which indirectly improves the formation of the finished product and the grinding strip, thereby further improving the grinding efficiency.
[0025] As can be seen from the above, the casting device for aluminum product manufacturing provided by the present invention, by setting up a slidingly controllable concave mold and convex mold, allows the user to complete the injection molding process. After the user completes the injection molding, the motor rotates, and the threaded groove drives the convex mold to squeeze the concave mold. With the reciprocating extension and retraction of the spring, the scrap and chips on the edge of the finished product are cut off. At the same time, the reciprocating movement polishes the edge of the finished product. While ensuring the quality of the finished product, the user also reduces the workload of the workers. The piston structure driven by the convex mold allows the convex mold to extend outward, and the piston pulls the cylinder to take in air. When the convex mold returns to its original position, the piston pushes the cylinder to take out air. The rotating nozzle sprays off the residue adhering to the mold surface, thereby ensuring the quality of the finished product in the next operation of the equipment and improving the completeness of the equipment. It is also linked to an auxiliary component. As the sliding table returns to its original position, the sliding table will pull the scraper outward through the traction rope. The outward-moving scraper will scrape the residue accumulated in the discharge trough into the collection box, thereby facilitating the user's cleaning of the site and further reducing the workload of the workers. Attached Figure Description
[0026] Figure 1 This is a schematic diagram of the overall structure of a casting device for aluminum product manufacturing and processing proposed in this invention.
[0027] Figure 2 This invention provides a casting apparatus for aluminum product manufacturing and processing. Figure 1 Enlarged view of the structure at point A in the middle.
[0028] Figure 3 This is a schematic diagram of the overall side end structure of a casting device for aluminum product manufacturing and processing proposed in this invention.
[0029] Figure 4 This invention provides a casting apparatus for aluminum product manufacturing and processing. Figure 3 Enlarged view of the structure at point B in the middle.
[0030] Figure 5 This is a cross-sectional view of the first sliding table structure of a casting device for aluminum product manufacturing and processing proposed in this invention.
[0031] Figure 6 This is a schematic diagram of the shaping component structure of a casting device for aluminum product manufacturing and processing proposed in this invention.
[0032] Figure 7 This is a schematic diagram of the cleaning component structure of a casting device for aluminum product manufacturing and processing proposed in this invention.
[0033] Figure 8 This invention provides a casting apparatus for aluminum product manufacturing and processing. Figure 7 Enlarged view of the structure at point C.
[0034] Figure 9 This is a cross-sectional view of the second sliding table structure of a casting device for aluminum product manufacturing and processing proposed in this invention.
[0035] Figure 10 This is an exploded view of the second sliding table structure of a casting device for aluminum product manufacturing and processing proposed in this invention.
[0036] In the diagram: 1. Guide rail; 2. First sliding table; 3. Second sliding table; 4. Shaping assembly; 401. Punch mold; 402. Concave mold; 403. Square rod; 404. Motor; 405. Threaded groove; 406. Spring; 407. Abrasive strip; 5. Cleaning assembly; 501. Cylinder; 502. Piston; 503. Push rod; 504. Air outlet pipe; 505. Nozzle; 506. Air inlet pipe; 507. One-way valve; 508. Filter plate; 6. Auxiliary assembly; 601. Feed chute; 602. Scraper; 603. Elastic rope; 604. Traction rope; 605. Collection box; 606. Directional change kit; 607. Sliding groove; 7. Placement groove. Detailed Implementation
[0037] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0038] The casting device disclosed in this invention for aluminum product manufacturing and processing is mainly applied to aluminum pot casting.
[0039] Reference Figures 1 to 10 A casting device for aluminum product manufacturing and processing includes a guide rail 1, a first sliding table 2 and a second sliding table 3 slidably distributed on the top of the guide rail 1, the first sliding table 2 and the second sliding table 3 being symmetrically distributed, and a shaping component 4 being provided inside the first sliding table 2 and the second sliding table 3. The first sliding platform 2 is equipped with a cleaning component 5; An auxiliary component 6 is provided in the middle of the guide rail 1; The shaping component 4 includes a punch 401, a die 402, a square rod 403, a motor 404, a threaded groove 405, and a spring 406; The punch 401 is horizontally distributed on the inner side of the first sliding table 2, and the die 402 is slidably distributed on the inner side of the second sliding table 3. The punch 401 and the die 402 are symmetrically distributed in the horizontal direction. The square rod 403 is horizontally fixed to the side end of the punch 401 and slidably distributed inside the first sliding table 2. The motor 404 is horizontally fixed to the outer side of the first sliding table 2, and the output shaft of the motor 404 extends through to the inside of the first sliding table 2. The threaded groove 405 is opened at the shaft end of the output shaft of the motor 404 and is threadedly connected to the inner wall of the square rod 403. The spring 406 is horizontally fixed between the die 402 and the second sliding table 3.
[0040] In this embodiment: The user controls the first sliding platform 2 and the second sliding platform 3 to move and converge along the guide rail 1. Then, molten aluminum is injected from the top into the gap between the first sliding platform 2 and the second sliding platform 3. The molten aluminum flows along the shape of the punch 401 and the die 402 and eventually solidifies. After the molten aluminum is completely cooled and formed, the user continues to control the first sliding platform 2 and the second sliding platform 3 to move outward a small distance along the guide rail 1. At the same time, the user starts the motor 404. The motor 404 rotates and drives the square rod 403 through the threaded groove 405 to extend the punch 401 outward and squeeze the die 402. This causes the die 402 and the cooled aluminum product to overcome the resistance of the spring 406 and move towards the interior of the second sliding platform 3. The side of the moving aluminum product will squeeze the second sliding platform 3. The sidewall of the groove structure in the middle of the moving table 3 cuts off excess residue and chips adhering to the aluminum finished product. When the inner wall of the square rod 403 moves to its maximum stroke along the threaded groove 405, it will slip off the threaded groove 405 and be indirectly pushed by the extended spring 406, periodically sliding on the side end of the threaded groove 405. Under the combined force of the spring 406 and the threaded groove 405, the punch 401 and the aluminum finished product will reciprocate along the inside of the second sliding table 3. The length of the outermost thread structure in the threaded groove 405 is greater than the length of the middle thread, which increases the amplitude of the reciprocating sliding of the punch 401 and the aluminum finished product along the inside of the second sliding table 3, thereby rubbing against the inner wall of the second sliding table 3 and achieving further fine grinding.
[0041] It should be noted that the first sliding platform 2 and the second sliding platform 3 have built-in power sources to drive their movement.
[0042] In the above scheme, considering that fine aluminum residues will adhere to the surfaces of the punch 401 and die 402 after casting, the specific operation is as follows in order to ensure the quality of the next product production.
[0043] Reference Figures 1 to 8In a preferred embodiment, two cleaning components 5 are symmetrically distributed inside the first sliding table 2. The cleaning components 5 include a cylinder 501, a piston 502, a push rod 503, an air outlet pipe 504, a nozzle 505, an air inlet pipe 506, and a one-way valve 507. Two cylinders 501 are symmetrically distributed on both sides of the inside of the first sliding table 2. Pistons 502 are slidably distributed at one end of the inside of cylinders 501. Two push rods 503 are symmetrically fixed on both sides of square rod 403, and each push rod 503 is fixedly connected to a piston 502. The air outlet pipe 504 is fixedly connected to the outside of cylinders 501. The nozzle 505 is rotatably installed at the end of cylinder 501 and distributed on the inside of the first sliding table 2. The air inlet pipe 506 is fixedly connected to the outside of cylinder 501 and extends to the outside of the first sliding table 2. The one-way valve 507 is rotatably installed inside the port of the air inlet pipe 506 and is configured as a one-way rotating structure that can only be rotated inward.
[0044] In this embodiment: The user starts the motor 404, which rotates and drives the square rod 403, along with the punch 401, to extend outward and compress the die 402 via the threaded groove 405. Simultaneously, the moving square rod 403 pulls the piston 502 along the inside of the cylinder 501 via the push rod 503, causing it to slide. This draws air into the cylinder 501 through the air inlet pipe 506. After completing one compression and chip-cutting action, the user controls the motor 404 to reverse, causing it to rotate and, via the threaded groove 405, extend the square rod 403, along with the punch 401, to extend outward and compress the die 402. The groove 405 drives the square rod 403, which in turn causes the punch 401 to retract and reset inward. At this time, the moving square rod 403 pushes the piston 502 along the inside of the cylinder 501 through the push rod 503, thereby guiding the gas inside the cylinder 501 through the air outlet pipe 504 to the nozzle 505. The nozzle 505 is pushed by the air pressure and will first rotate and then spray out high-pressure gas. The sprayed high-pressure gas will continuously impact the outer walls of the punch 401 and the concave mold 402, thereby blowing off the adhering residue.
[0045] In the above scheme, considering that the fallen residue needs to be centrally processed to reduce the workload of workers, the specific operation is as follows.
[0046] Reference Figure 1 , Figure 3 In a preferred embodiment, the auxiliary component 6 includes a feeding trough 601, a scraper 602, an elastic rope 603, a traction rope 604, and a collection box 605; The feeding trough 601 is inclinedly opened in the middle of the guide rail 1. The scraper 602 is slidably distributed inside the feeding trough 601. The elastic rope 603 is connected between the scraper 602 and the feeding trough 601. The first sliding table 2 and the second sliding table 3 are both connected to the scraper 602 by a traction rope 604. The collection box 605 is placed horizontally on the side of the feeding trough 601.
[0047] In this embodiment: after the equipment completes one aluminum product casting, the first sliding table 2 and the second sliding table 3 move outward along the guide rail 1. At this time, the two will pull the scraper 602 through the traction rope 604, causing the scraper 602 to slide along the inside of the feeding trough 601, thereby scraping the aluminum product residue accumulated inside the feeding trough 601 into the inside of the collection box 605. After the equipment stops, the user can lift the collection box 605 and dispose of the residue inside it. When the first sliding table 2 and the second sliding table 3 move inward along the guide rail 1, the retracted elastic rope 603 will pull the scraper 602 to move back to its original position.
[0048] In the above scheme, considering that the friction force is not that great when the aluminum product rubs against the inner wall of the second sliding table 3, the specific operation is as follows in order to further improve the polishing effect of the aluminum product.
[0049] Reference Figure 10 In a preferred embodiment, the inner wall of the second sliding table 3 is shaped according to the shape characteristics of the scraper 602, and it is provided with a ring of abrasive strips 407.
[0050] In this embodiment: under the combined force of the spring 406 and the threaded groove 405, when the punch 401 and the aluminum product slide back and forth along the inside of the second sliding table 3, the synchronously moving aluminum product will continuously rub against the abrasive strip 407, thereby further refining the edge of the aluminum product.
[0051] In the above solution, considering that the open intake pipe 506 may be blocked by impurities during the air extraction process, the following specific operation is performed to improve the service life of the intake pipe 506.
[0052] Reference Figures 3 to 4 , Figures 6 to 7 In a preferred embodiment, a filter 508 is horizontally fixed inside the outer side of the air intake pipe 506.
[0053] In this embodiment: when the air intake pipe 506 starts to draw air, the filter 508 will block impurities, while air can enter, thereby ensuring the air intake efficiency of the air intake pipe 506.
[0054] In the above scheme, considering that the traction rope 604 will rub against the side wall of the guide rail 1 when it is pulled, the specific operation is as follows in order to improve the service life of the traction rope 604.
[0055] Reference Figure 1 , Figure 3In a preferred embodiment, two reversing kits 606 are symmetrically fixed on one side of the middle of the guide rail 1. The two reversing kits 606 are symmetrically distributed on both sides of the feed chute 601, and each traction rope 604 passes through a reversing kit 606 before being connected to the scraper 602.
[0056] In this embodiment: when the traction rope 604 is pulled, the reversing kit 606 will change the direction of the force applied by the traction rope 604, and at the same time, the reversing kit 606 will also reduce the friction force on the traction rope 604.
[0057] In the above scheme, considering that the scraper 602 may tilt or slip directly from the inside of the feed trough 601 when it is pulled, the specific operation is as follows in order to make the sliding of the scraper 602 smoother.
[0058] Reference Figure 1 , Figure 3 In a preferred embodiment, sliding grooves 607 are symmetrically provided on both sides of the inside of the feeding trough 601, and the two sides of the scraper 602 are slidably engaged inside the scraper 602.
[0059] In this embodiment: when the scraper 602 is pulled, the scraper 602 will slide along the inside of the sliding groove 607. At the same time, the sliding groove 607 will restrict the side end of the scraper 602 to ensure that the scraper 602 can operate normally.
[0060] In the above scheme, considering that when the first sliding table 2 and the second sliding table 3 are combined, the protruding nozzle 505 needs sufficient space to be stored, the specific operation is as follows.
[0061] Reference Figure 3 , Figures 9 to 10 In a preferred embodiment, two mounting grooves 7 are symmetrically provided on one side of the second sliding table 3. When the first sliding table 2 and the second sliding table 3 slide and fit together, the nozzle 505 can be inserted into the interior of the mounting groove 7.
[0062] In this embodiment: when the first sliding table 2 and the second sliding table 3 are combined, the protruding nozzle 505 will be engaged into the interior of the mounting groove 7.
[0063] In the above scheme, considering that the equipment needs sufficient pressure to drive the nozzle 505 to rotate and spray air during operation, the specific operation is as follows.
[0064] Reference Figure 5 , Figure 7 In a preferred embodiment, the inner diameter of the exhaust pipe 504 is smaller than the inner diameter of the intake pipe 506, and the intake volume of the intake pipe 506 is greater than the exhaust volume of the exhaust pipe 504 within the same time period.
[0065] In this embodiment, the inner diameter of the exhaust pipe 504 is smaller than the inner diameter of the intake pipe 506. In the same amount of time, the intake volume of the intake pipe 506 is greater than the exhaust volume of the exhaust pipe 504, resulting in a sufficiently high gas pressure discharged from the exhaust pipe 504, thereby driving the nozzle 505 to rotate and spray high-pressure gas.
[0066] Working principle: During use, the user controls the first sliding table 2 and the second sliding table 3 to move and converge along the guide rail 1. Then, molten aluminum is injected from the top into the gap between the first sliding table 2 and the second sliding table 3. The molten aluminum flows along the shape of the punch 401 and the die 402 and eventually solidifies. After the molten aluminum has completely cooled and solidified, the user continues to control the first sliding table 2 and the second sliding table 3 to move outward a small distance along the guide rail 1. At the same time, the user starts the motor 404. The motor 404 rotates, driving the square rod 403 through the threaded groove 405, which in turn causes the punch 401 to extend outward and press the die 402, causing the die 402 to... 02 and the cooled aluminum product overcome the resistance of spring 406 and move towards the interior of the second sliding table 3. The side of the moving aluminum product will squeeze the side wall of the groove structure in the middle of the second sliding table 3, thereby cutting off the excess residue and chips adhering to the aluminum product. When the inner wall of the square rod 403 moves to the maximum stroke along the threaded groove 405, it will slip off the threaded groove 405 and be indirectly pushed by the extended spring 406, periodically sliding on the side end of the threaded groove 405. Under the combined force of spring 406 and threaded groove 405, the punch 401 and the aluminum product reciprocate along the interior of the second sliding table 3. This friction causes the inner wall of the second sliding table 3 to be further polished. When the square rod 403 moves, it pulls the piston 502 along the inside of the cylinder 501 via the push rod 503, thus drawing air into the cylinder 501 through the air inlet pipe 506. After completing one extrusion and chip-cutting action, the user controls the motor 404 to reverse, driving the square rod 403 and the punch 401 to retract and reset inward. At this time, the moving square rod 403 pushes the piston 502 along the inside of the cylinder 501 via the push rod 503, thus drawing the gas inside the cylinder 501 through the outlet. The air pipe 504 leads to the nozzle 505. The nozzle 505 is pushed by air pressure and rotates first before spraying high-pressure gas outward. The sprayed high-pressure gas continuously impacts the outer walls of the punch 401 and the die 402, thereby blowing off the adhering residue. The residue will fall into the feeding trough 601. After the equipment completes one aluminum product casting, the first sliding table 2 and the second sliding table 3 move outward along the guide rail 1. At this time, the two will pull the scraper 602 through the traction rope 604, causing the scraper 602 to slide along the inside of the feeding trough 601, thereby scraping the aluminum product residue accumulated inside the feeding trough 601 into the inside of the collection box 605.
[0067] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A casting apparatus for aluminum product manufacturing and processing, comprising a guide rail (1), a first sliding table (2) and a second sliding table (3) slidably distributed on the top of the guide rail (1), wherein the first sliding table (2) and the second sliding table (3) are symmetrically distributed, characterized in that, The first sliding table (2) and the second sliding table (3) are provided with shaping components (4); The first sliding platform (2) is equipped with a cleaning component (5); An auxiliary component (6) is provided in the middle of the guide rail (1). The shaping component (4) includes a punch (401), a die (402), a square rod (403), a motor (404), a threaded groove (405), and a spring (406). The convex mold (401) is horizontally distributed on the inner side of the first sliding table (2), the concave mold (402) is slidably distributed on the inner side of the second sliding table (3), the convex mold (401) and the concave mold (402) are symmetrically distributed in the horizontal direction, the square rod (403) is horizontally fixed to the side end of the convex mold (401) and slidably distributed inside the first sliding table (2), the motor (404) is horizontally fixed to the outer side of the first sliding table (2), and the output shaft of the motor (404) extends through to the inside of the first sliding table (2), the threaded groove (405) is opened at the shaft end of the output shaft of the motor (404) and is threadedly connected to the inner wall of the square rod (403), and the spring (406) is horizontally fixed between the concave mold (402) and the second sliding table (3).
2. The casting apparatus for aluminum product manufacturing and processing according to claim 1, characterized in that, Two cleaning components (5) are symmetrically distributed inside the first sliding table (2). The cleaning components (5) include a cylinder (501), a piston (502), a push rod (503), an air outlet pipe (504), a nozzle (505), an air inlet pipe (506), and a one-way valve (507). Two cylinders (501) are symmetrically distributed on both sides of the inside of the first sliding table (2). The piston (502) is slidably distributed at one end of the inside of the cylinder (501). Two push rods (503) are symmetrically fixed on both sides of the square rod (403), and each push rod (503) is fixedly connected to one piston (502). The air outlet pipe (504) is fixedly connected to the outside of the cylinder (501). The nozzle (505) is rotatably installed at the end of the cylinder (501) and distributed on the inside of the first sliding table (2). The air inlet pipe (506) is fixedly connected to the outside of the cylinder (501) and extends through to the outside of the first sliding table (2). The one-way valve (507) is rotatably installed inside the port of the air inlet pipe (506) and is configured as a one-way rotating structure that can only be rotated inward.
3. The casting apparatus for aluminum product manufacturing and processing according to claim 1, characterized in that, The auxiliary component (6) includes a feeding trough (601), a scraper (602), an elastic rope (603), a traction rope (604), and a collection box (605). The feeding trough (601) is inclinedly opened in the middle of the guide rail (1), the scraper (602) is slidably distributed inside the feeding trough (601), the elastic rope (603) is connected between the scraper (602) and the feeding trough (601), the first sliding table (2) and the second sliding table (3) are both connected to the scraper (602) by a traction rope (604), and the collection box (605) is horizontally placed at the side end of the feeding trough (601).
4. The casting apparatus for aluminum product manufacturing and processing according to claim 3, characterized in that, The inner wall of the second sliding table (3) is shaped according to the shape characteristics of the scraper (602), and it is provided with a ring of frosted strips (407).
5. A casting apparatus for aluminum product manufacturing and processing according to claim 2, characterized in that, A filter (508) is horizontally fixed inside the outer side of the air intake pipe (506).
6. A casting apparatus for aluminum product manufacturing and processing according to claim 3, characterized in that, Two reversing kits (606) are symmetrically fixed on one side of the middle part of the guide rail (1). The two reversing kits (606) are symmetrically distributed on both sides of the feed chute (601), and each traction rope (604) passes through one of the reversing kits (606) before being connected to the scraper (602).
7. A casting apparatus for aluminum product manufacturing and processing according to claim 3, characterized in that, The material feeding trough (601) has symmetrical sliding grooves (607) on both sides inside, and the two sides of the scraper (602) are slidably engaged inside the scraper (602).
8. A casting apparatus for aluminum product manufacturing and processing according to claim 2, characterized in that, Two mounting slots (7) are symmetrically opened on one side of the second sliding table (3). When the first sliding table (2) and the second sliding table (3) slide and fit together, the nozzle (505) is inserted into the interior of the mounting slot (7).
9. A casting apparatus for aluminum product manufacturing and processing according to claim 2, characterized in that, The inner diameter of the exhaust pipe (504) is smaller than the inner diameter of the intake pipe (506). In the same time period, the intake volume of the intake pipe (506) is greater than the exhaust volume of the exhaust pipe (504).
10. A casting apparatus for aluminum product manufacturing and processing according to claim 1, characterized in that, The length of the outermost thread structure in the thread groove (405) is greater than the length of the thread in the middle.