Integrated die casting equipment
By designing integrated die-casting equipment, including die-casting devices, anti-adhesive devices and cooling devices, the problem of adhesion between casting and mold during die-casting is solved, and the high-quality output of castings and the efficient operation of equipment is achieved.
Patent Information
- Application Number
- CN202411979477.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2025-05-09
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During the die casting process, high-temperature liquid metal is injected into the mold cavity and solidifies. Due to factors such as the affinity between the metal and the mold material, metal solidification and shrinkage, the castings are easily adhered to the mold.
Integrated die-casting equipment is designed, including die-casting devices, anti-adhesive devices and cooling devices. The die-casting device realizes mold clamping and separation of molds through slide chutes, motors, screws and other components. The anti-adhesive device ensures the smooth separation of castings and molds through components such as bidirectional screws and support blocks. The cooling device cools molds and castings through components such as cooling chambers and conveyor boxes.
It effectively avoids adhesion or stagnation between the casting and the mold, ensures high-quality output of the casting, and improves the working efficiency of the equipment and the service life of the mold through cooling devices.
Smart Images

Figure CN119952028A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the field of die-casting equipment, in particular to integrated die-casting equipment. Background Art
[0002] In the early days of automobile parts manufacturing, die-casting equipment was mainly used to produce some parts with relatively simple structures and small sizes, such as engine parts, transmission system parts, etc. These parts have relatively low requirements for precision and strength, and traditional die-casting technology has been able to meet the needs. However, with the rapid development of the automobile industry, consumers' requirements for automobile comfort, safety, fuel economy, etc. are constantly increasing, and the complexity of automobile parts is also increasing.
[0003] In the prior art, during the die casting process, high temperature liquid metal is injected into the mold cavity and then solidified. Due to factors such as affinity between the metal and the mold material, metal solidification shrinkage, etc., the casting is easily adhered to the mold. Therefore, an integrated die casting device is proposed. Summary of the invention
[0004] The present invention aims to solve the technical problem that during the die-casting process, high-temperature liquid metal is injected into the mold cavity and then solidifies. Due to factors such as affinity between the metal and the mold material and metal solidification shrinkage, the casting is easily adhered to the mold, and an integrated die-casting device is provided.
[0005] The technical solution adopted by the present invention to solve the technical problem is: an integrated die-casting device, including a base, two support plates, a horizontal plate, a die-casting device, an anti-sticking device, a cooling device, and a controller. The base is a rectangular parallelepiped, and the interior of the base is a cavity.
[0006] The two support plates are respectively arranged vertically and are respectively perpendicular to the front side of the base. The two support plates are respectively arranged symmetrically above the base and are respectively fixedly connected to the upper surface of the base.
[0007] The transverse plate is arranged horizontally above the two supporting plates and is fixedly connected to the upper surfaces of the two supporting plates respectively.
[0008] The die-casting device is arranged below the horizontal plate, connected to the horizontal plate and connected to the base.
[0009] The anti-sticking device is arranged in the base, connected with the base, connected with the two supporting plates, and connected with the die-casting device.
[0010] The cooling device is arranged on the side of the die-casting device, connected with the base, connected with the anti-sticking device and connected with the die-casting device.
[0011] The controller is arranged on the side of the base, fixedly connected to the side surface of the base, and electrically connected to the die-casting device.
[0012] When die-casting operation is required, the staff turns on the die-casting device through the controller to carry out the die-casting operation. At the same time, the die-casting device starts to drive the cooling device to cool the mold to prevent deformation of the mold. The mold material will undergo thermal expansion at high temperatures. Long-term exposure to high temperatures may cause permanent deformation of the mold. While cooling the mold, the casting can be cooled, which increases work efficiency. At the same time, the die-casting device starts to drive the anti-sticking device to ensure the smooth separation of the casting in the mold and avoid adhesion or jamming between the casting and the mold.
[0013] Furthermore, the die-casting device includes a slide, a motor, a first screw, a slider, a cylinder, a fixing plate, two telescopic rods, a sealing box, an upper die, a pressure rod, a lower die frame, a raw material box, and an output pipe. The axis of the slide groove is arranged horizontally and parallel to the front side of the base, and the slide groove is arranged on the lower surface of the horizontal plate.
[0014] The axis of the motor shaft is arranged horizontally and parallel to the front side of the base. The motor is arranged in the slide groove, fixedly connected to the horizontal plate, and electrically connected to the controller.
[0015] The axis of the first screw is arranged horizontally and coincides with the axis of the motor shaft. The first screw is arranged in the slide groove. One end of the first screw is fixedly connected to the motor shaft, and the other end is rotatably connected to the cross plate. The rotation axis is arranged horizontally and parallel to the front of the base.
[0016] The sliding block is sleeved on the first screw rod, is threadedly connected with the first screw rod, and is slidably connected with the sliding groove. The sliding direction of the sliding block is horizontally arranged and parallel to the front side of the base.
[0017] The cylinder axis is arranged vertically, the cylinder is arranged below the slider, fixedly connected to the lower surface of the slider, and electrically connected to the controller.
[0018] The fixing plate is arranged transversely at the lower end of the cylinder and is fixedly connected to the lower end of the cylinder.
[0019] The two telescopic rods are respectively and vertically symmetrically arranged below the fixing plate, and the upper ends of the two telescopic rods are respectively fixedly connected to the lower surface of the fixing plate.
[0020] The bottom of the sealing box is open, the sealing box is arranged below the two telescopic rods, and the upper surface of the sealing box is fixedly connected to the lower ends of the two telescopic rods respectively.
[0021] The upper pressing mold is arranged horizontally in the sealing box and is slidably connected with the inner wall of the sealing box, and its sliding direction is arranged vertically.
[0022] The axis of the pressure rod is arranged vertically and coincides with the axis of the cylinder. The pressure rod is arranged between the sealing box and the fixed plate. The upper end of the pressure rod is fixedly connected to the lower surface of the fixed plate, and the lower end passes through the top of the sealing box downward and is fixedly connected to the upper surface of the upper pressure mold.
[0023] The lower mold frame is arranged above the base, and the lower mold frame is arranged just below the upper pressing mold and is fixedly connected to the upper surface of the base.
[0024] The raw material box is arranged on the left side of the lower mold frame and is fixedly connected to the upper surface of the base.
[0025] The output pipe is arranged on the side of the raw material box, a delivery pump is fixedly connected to the middle of the output pipe, one end of the output pipe is connected to the raw material box, and the other end passes through the top of the sealing box and is connected to the upper pressure mold.
[0026] When die-casting operations are required, the staff opens the cylinder through control, and the cylinder extends downward to drive the fixed plate to move downward. The downward movement of the fixed plate in turn drives the two telescopic rods and the pressure rod to move downward.
[0027] When the fixed plate moves downward, driving the two telescopic rods downward, the two telescopic rods move downward, driving the sealing box downward, until the bottom of the sealing box is in close contact with the top of the lower mold frame, thereby forming a relatively closed space during the mold closing process, surrounding the mold, preventing the molten metal from splashing, and preventing the operator from being scalded by the high-temperature molten metal.
[0028] When the fixed plate moves downward and drives the pressure rod downward, the pressure rod moves downward and drives the upper pressure mold downward until the upper pressure mold and the lower mold frame fit together. At this time, the staff turns on the delivery pump through the controller. The delivery pump is turned on to allow the molten metal to pass through the delivery pump and the output pipe from the raw material box in turn, and finally enter the upper pressure mold. At this time, the molten metal flows to the lower mold frame under the action of pressure, thereby performing die-casting operations on the molten metal.
[0029] Furthermore, an alarm is fixedly connected to the upper surface of the horizontal plate.
[0030] By setting an alarm, when a die-casting equipment fails, the staff can be reminded in time to carry out maintenance.
[0031] Furthermore, a vent is provided on the side of the sealing box.
[0032] By providing the vents, it is convenient to discharge the gas in the sealed box.
[0033] Furthermore, the anti-sticking device includes a bidirectional screw, two support blocks, a moving plate, two connecting rods, a plurality of push rods, a telescopic plate, a second screw, a first bevel gear, an annular plate, and a second bevel gear. The axis of the bidirectional screw is arranged horizontally and parallel to the front of the base. The bidirectional screw is arranged in the base. Both ends of the bidirectional screw are rotatably connected to the inner wall of the base respectively. The rotation axis is arranged horizontally and parallel to the front of the base.
[0034] The two support blocks are symmetrically sleeved on the bidirectional screw rods, respectively, are threadedly connected to the bidirectional screw rods, and are slidably connected to the inner wall of the base, and the sliding direction thereof is horizontally arranged and parallel to the front face of the base.
[0035] The moving plate is arranged above the bidirectional screw rod, and the moving plate is arranged in the base, and is slidably connected with the inner wall of the base, and the sliding direction thereof is arranged vertically.
[0036] The two connecting rods are respectively and symmetrically arranged between the moving plate and the two supporting blocks, one end of the two connecting rods is respectively hinged to the upper surfaces of the two supporting blocks, and the other end is respectively hinged to the lower surface of the moving plate.
[0037] A plurality of push rods are evenly and vertically arranged above the movable plate, the lower ends of the push rods are fixedly connected to the upper surface of the movable plate, the upper ends of the push rods penetrate the base and the lower mold frame upward, and extend into the lower mold frame respectively.
[0038] The telescopic plate is horizontally arranged on the right side of the sealing box, one end of the telescopic plate is fixedly connected to the side surface of the sealing box, and the other end is slidably connected to the inner side of the right supporting plate, and its sliding direction is vertically arranged.
[0039] The axis of the second screw is arranged vertically, the second screw is arranged below the telescopic plate, the upper end of the second screw is fixedly connected to the lower surface of the telescopic plate, the lower end passes through the top of the base downward and extends into the base, and the lower end of the second screw is arranged on the side of the bidirectional screw.
[0040] The axis of the first bevel gear is arranged vertically and coincides with the axis of the second screw. The first bevel gear is arranged on the side of the bidirectional screw. The first bevel gear is sleeved on the second screw and is threadedly connected with the second screw.
[0041] The annular plate axis is vertically arranged and coincides with the second screw axis. The annular plate is arranged above the first bevel gear. The lower surface of the annular plate is fixedly connected to the upper surface of the first bevel gear. The upper surface is rotatably connected to the top surface inside the base. The rotation axis is vertically arranged.
[0042] The second bevel gear is arranged on the side of the first bevel gear, the second bevel gear is sleeved on the bidirectional screw, is fixedly connected to the bidirectional screw, and is meshed with the first bevel gear.
[0043] When the sealing box moves downward, the sealing box moves downward and drives the telescopic plate to move downward, the telescopic plate moves downward and drives the second screw to move downward, the second screw moves downward and drives the first bevel gear to rotate, the rotation of the first bevel gear drives the second bevel gear to rotate, the rotation of the second bevel gear drives the bidirectional screw to rotate, the rotation of the bidirectional screw drives the two support blocks to move away from each other, the two support blocks move away from each other and respectively drive one end of the two connecting rods to move away from each other, the one ends of the two connecting rods move away from each other and respectively drive the other ends of the two connecting rods to move downward, the other ends of the two connecting rods move downward and drive the movable plate to move downward, the movable plate moves downward and drives a number of ejector rods to move downward, the number of ejector rods move downward until the upper ends of the number of ejector rods are flush with the bottom surface of the lower mold frame to ensure that the mold cavity is restored to its original state to avoid casting defects such as uneven wall thickness and uneven surface.
[0044] When the sealing box moves upward and drives the telescopic plate upward, the telescopic plate moves upward and drives the second screw rod upward, the second screw rod moves upward and drives the first bevel gear to rotate, the rotation of the first bevel gear drives the second bevel gear to rotate, the rotation of the second bevel gear drives the bidirectional screw to rotate, the rotation of the bidirectional screw drives the two support blocks to approach each other, the two support blocks approach each other and drive one end of the two connecting rods to approach each other, the one ends of the two connecting rods approach each other and drive the other ends of the two connecting rods to move upward, the other ends of the two connecting rods move upward and drive the movable plate upward, the movable plate moves upward and drives several push rods upward, the several push rods move upward and drive the casting upward, ensuring the smooth separation of the casting in the mold and avoiding adhesion or jamming between the casting and the mold.
[0045] Furthermore, sealing members are respectively fixedly connected at the connection points between the plurality of ejector rods and the lower mold frame.
[0046] By setting a seal, the molten metal is prevented from flowing into the base.
[0047] Furthermore, a tool box is fixedly connected to the side surface of the base.
[0048] By setting up a tool box, it is convenient for staff to maintain the die-casting equipment.
[0049] Furthermore, the cooling device includes a cooling chamber, a conveying box, a slide plate, a conveying pipe, a feeding pipe, a cooling box, a through hole, a piston rod, a discharge pipe, a collecting box, and two one-way valves. The cooling cavity is in a square ring shape and is arranged on the side of the lower mold frame.
[0050] The conveying box is arranged on the right side of the lower mold frame, and the conveying box is sleeved on the second screw rod and fixedly connected with the upper surface of the base.
[0051] The slide plate is horizontally arranged in the conveying box, sleeved on the second screw rod, fixedly connected with the second screw rod, and slidably connected with the inner side surface of the conveying box, and its sliding direction is vertically arranged.
[0052] The conveying pipe is arranged on the left side of the conveying box, one end of the conveying pipe is communicated with the conveying box, and the other end of the conveying pipe passes through the side of the lower mold frame and extends into the cooling cavity.
[0053] The feed pipe is arranged on the right side of the conveying box, and one end of the feed pipe is communicated with the conveying box.
[0054] The two one-way valves are respectively arranged in the middle of the delivery pipe and the feed pipe, and are respectively fixedly connected to the delivery pipe and the feed pipe.
[0055] The cooling box is arranged behind the conveying box, fixedly connected to the upper surface of the base, and communicated with the other end of the feed pipe.
[0056] The through hole is arranged below the cooling cavity and away from the conveying box, the through hole is arranged above the moving plate, and the upper end of the through hole is communicated with the inside of the cooling cavity.
[0057] The piston rod is vertically arranged above the moving plate and directly below the through hole. The lower end of the piston rod is fixedly connected to the upper surface of the moving plate, and the upper end of the piston rod passes through the top of the base upward and extends into the through hole.
[0058] The discharge pipe is arranged on the left side of the lower mold frame and is close to the through hole, and one end of the discharge pipe is communicated with the through hole.
[0059] The collecting box is arranged on the side of the discharge pipe, is fixedly connected to the upper surface of the base, and is communicated with the other end of the discharge pipe.
[0060] When the sealing box moves downward, the sealing box moves downward, driving the telescopic plate downward, driving the second screw downward, driving the slide plate downward, and the slide plate moves downward so that the coolant in the cooling box enters the conveying box through the feed pipe, preparing for subsequent cooling operations.
[0061] When the sealing box moves upward and drives the telescopic plate upward, the telescopic plate moves upward and drives the second screw upward, and the second screw moves upward and drives the slide plate upward, so that the coolant in the delivery box enters the cooling cavity through the delivery pipe, thereby cooling the lower mold frame to prevent deformation of the lower mold frame. The mold material will undergo thermal expansion at high temperatures, and being in a high temperature state for a long time may cause permanent deformation of the mold. While cooling the lower mold frame, the casting can also be cooled, thereby increasing work efficiency.
[0062] Furthermore, a plurality of supporting legs are fixedly connected to the bottom surface of the base, and a non-slip pad is fixedly connected to the bottom surface of each supporting leg.
[0063] By providing supporting legs, it is convenient to support the die casting equipment.
[0064] Furthermore, it comprises two buffer springs, which are respectively sleeved on the two telescopic rods, one end of the two buffer springs is respectively fixedly connected to the lower surface of the fixed plate, and the other end is respectively fixedly connected to the upper surface of the sealing box.
[0065] By arranging a buffer spring, an effective buffering effect can be achieved.
[0066] Beneficial effects of the present invention: 1. The die-casting device and the anti-sticking device provided in the present invention interact and support each other, so that when the upper pressure mold moves downward, a plurality of ejector rods can be moved downward until the upper ends of the plurality of ejector rods are flush with the inner bottom surface of the lower mold frame, thereby ensuring that the mold cavity is restored to its original state and avoiding casting defects such as uneven wall thickness and uneven surface. When the die-casting operation is completed and the upper pressure mold moves upward, a plurality of ejector rods can be moved upward to drive the casting upward, thereby ensuring the smooth separation of the casting in the mold and avoiding adhesion or jamming between the casting and the mold.
[0067] 2. The die-casting device and cooling device provided in the present invention support and interact with each other, thereby cooling the lower mold frame to prevent deformation of the lower mold frame. The mold material will undergo thermal expansion at high temperatures, and being in a high temperature state for a long time may cause permanent deformation of the mold. While cooling the lower mold frame, the casting can be cooled, thereby increasing work efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0068] Figure 1 It is a schematic diagram of the cross-sectional structure of the die-casting equipment; Figure 2 This is an enlarged structural diagram of point B of the die-casting equipment.
[0069] Explanation of the reference numerals in the accompanying drawings: 1. base; 2. support plate; 3. cross plate; 401. motor; 402. first screw; 403. slider; 404. cylinder; 405. fixed plate; 406. telescopic rod; 407. sealing box; 408. upper pressing mold; 409. pressing rod; 410. lower mold frame; 501. bidirectional screw; 502. support block; 503. movable plate; 504. connecting rod; 505. push rod; 506. telescopic plate; 507. second screw; 508. first bevel gear; 509. annular plate; 510. second bevel gear; 601. cooling chamber; 602. conveying box; 603. slide plate; 604. conveying pipe; 605. feeding pipe; 606. cooling box; 607. piston rod; 608. discharging pipe; 609. collecting box. DETAILED DESCRIPTION
[0070] The concept and technical effects of the present invention will be clearly and completely described below in conjunction with embodiments to fully understand the purpose, features and effects of the present invention.
[0071] A preferred embodiment of the integrated die-casting equipment provided by the present invention is as follows Figure 1 to Figure 2 As shown: the integrated die-casting equipment includes a base 1, two support plates 2, a horizontal plate 3, a die-casting device, an anti-sticking device, a cooling device, and a controller. The base 1 is a rectangular parallelepiped, and the interior of the base 1 is a cavity.
[0072] The two support plates 2 are respectively arranged vertically and perpendicular to the front surface of the base 1 . The two support plates 2 are respectively arranged symmetrically above the base 1 and are respectively fixedly connected to the upper surface of the base 1 .
[0073] The transverse plate 3 is laterally arranged above the two support plates 2 and is fixedly connected to the upper surfaces of the two support plates 2 respectively.
[0074] The die-casting device is arranged below the transverse plate 3 , connected to the transverse plate 3 , and connected to the base 1 .
[0075] The anti-sticking device is arranged in the base 1 , and is connected to the base 1 , to the two support plates 2 , and to the die-casting device.
[0076] The cooling device is arranged on the side of the die-casting device, connected to the base 1, connected to the anti-sticking device, and connected to the die-casting device.
[0077] The controller is arranged on the side of the base 1 , fixedly connected to the side surface of the base 1 , and electrically connected to the die-casting device.
[0078] When die-casting operation is required, the staff turns on the die-casting device through the controller to carry out the die-casting operation. At the same time, the die-casting device starts to drive the cooling device to cool the mold to prevent deformation of the mold. The mold material will undergo thermal expansion at high temperatures. Long-term exposure to high temperatures may cause permanent deformation of the mold. While cooling the mold, the casting can be cooled, which increases work efficiency. At the same time, the die-casting device starts to drive the anti-sticking device to ensure the smooth separation of the casting in the mold and avoid adhesion or jamming between the casting and the mold.
[0079] The die-casting device includes a chute, a motor 401, a first screw 402, a slider 403, a cylinder 404, a fixing plate 405, two telescopic rods 406, a sealing box 407, an upper die 408, a pressing rod 409, a lower die frame 410, a raw material box, and an output pipe. The axis of the slide groove is arranged horizontally and parallel to the front surface of the base 1 , and the slide groove is arranged on the lower surface of the horizontal plate 3 .
[0080] The axis of the motor 401 is arranged horizontally and parallel to the front side of the base 1. The motor 401 is arranged in the slide groove, fixedly connected to the horizontal plate 3, and electrically connected to the controller.
[0081] The axis of the first screw 402 is arranged horizontally and coincides with the axis of the motor 401. The first screw 402 is arranged in the slide groove. One end of the first screw 402 is fixedly connected to the motor 401 shaft, and the other end is rotatably connected to the horizontal plate 3. Its rotation axis is arranged horizontally and parallel to the front of the base 1.
[0082] The slider 403 is sleeved on the first screw rod 402 , is threadedly connected to the first screw rod 402 , and is slidably connected to the slide groove. The sliding direction thereof is horizontally arranged and parallel to the front surface of the base 1 .
[0083] The axis of the cylinder 404 is arranged vertically. The cylinder 404 is arranged below the slider 403, fixedly connected to the lower surface of the slider 403, and electrically connected to the controller.
[0084] The fixing plate 405 is transversely arranged at the lower end of the cylinder 404 and is fixedly connected to the lower end of the cylinder 404 .
[0085] The two telescopic rods 406 are vertically symmetrically arranged below the fixed plate 405 , and the upper ends of the two telescopic rods 406 are fixedly connected to the lower surface of the fixed plate 405 .
[0086] The bottom of the sealed box 407 is open. The sealed box 407 is arranged below the two telescopic rods 406 . The upper surface of the sealed box 407 is fixedly connected to the lower ends of the two telescopic rods 406 .
[0087] The upper pressing mold 408 is horizontally arranged in the sealing box 407, and is slidably connected to the inner wall of the sealing box 407, and its sliding direction is vertically arranged.
[0088] The axis of the pressure rod 409 is arranged vertically and coincides with the axis of the cylinder 404. The pressure rod 409 is arranged between the sealing box 407 and the fixed plate 405. The upper end of the pressure rod 409 is fixedly connected to the lower surface of the fixed plate 405, and the lower end passes downward through the top of the sealing box 407 and is fixedly connected to the upper surface of the upper pressure mold 408.
[0089] The lower mold frame 410 is arranged above the base 1 . The lower mold frame 410 is arranged directly below the upper pressing mold 408 and is fixedly connected to the upper surface of the base 1 .
[0090] The raw material box is arranged on the left side of the lower mold frame 410 and is fixedly connected to the upper surface of the base 1 .
[0091] The output pipe is arranged on the side of the raw material box, and a delivery pump is fixedly connected to the middle of the output pipe. One end of the output pipe is connected to the raw material box, and the other end passes through the top of the sealing box 407 and is connected to the upper pressure mold 408.
[0092] When die-casting operation is required, the staff controls to open the cylinder 404, and the cylinder 404 extends downward to drive the fixed plate 405 to move downward. The downward movement of the fixed plate 405 drives the two telescopic rods 406 and the pressure rod 409 to move downward in turn.
[0093] When the fixed plate 405 moves downward, driving the two telescopic rods 406 downward, the two telescopic rods 406 move downward, driving the sealing box 407 downward, until the bottom of the sealing box 407 is in close contact with the top of the lower mold frame 410, thereby forming a relatively closed space during the mold closing process, surrounding the mold, preventing the molten metal from splashing, and preventing the operator from being scalded by the high-temperature molten metal.
[0094] When the fixed plate 405 moves downward, driving the pressure rod 409 to move downward, the pressure rod 409 moves downward, driving the upper pressure mold 408 to move downward until the upper pressure mold 408 and the lower mold frame 410 fit together. At this time, the staff turns on the delivery pump through the controller. The delivery pump is turned on to allow the molten metal to pass through the delivery pump and the output pipe in sequence from the raw material box, and finally enter the upper pressure mold 408. At this time, the molten metal flows into the lower mold frame 410 under the action of pressure, thereby performing die-casting operations on the molten metal.
[0095] An alarm is fixedly connected to the upper surface of the horizontal plate 3 .
[0096] By setting an alarm, when a die-casting equipment fails, the staff can be reminded in time to carry out maintenance.
[0097] A vent is provided on the side of the sealed box 407 .
[0098] The vent is provided to facilitate exhaustion of the gas in the sealed box 407 .
[0099] The anti-sticking device includes a bidirectional screw 501, two support blocks 502, a moving plate 503, two connecting rods 504, a plurality of push rods 505, a telescopic plate 506, a second screw 507, a first bevel gear 508, an annular plate 509, and a second bevel gear 510. The axis of the bidirectional screw 501 is arranged horizontally and parallel to the front of the base 1 . The bidirectional screw 501 is arranged inside the base 1 . Both ends of the bidirectional screw 501 are rotatably connected to the inner wall of the base 1 respectively. The rotation axis is arranged horizontally and parallel to the front of the base 1 .
[0100] The two support blocks 502 are symmetrically sleeved on the bidirectional screw 501 , respectively, and are threadedly connected to the bidirectional screw 501 , respectively, and are slidably connected to the inner wall of the base 1 , and their sliding directions are horizontally arranged and parallel to the front surface of the base 1 .
[0101] The moving plate 503 is arranged above the bidirectional screw 501 . The moving plate 503 is arranged in the base 1 and is slidably connected to the inner wall of the base 1 . The sliding direction of the moving plate 503 is arranged vertically.
[0102] The two connecting rods 504 are respectively and symmetrically arranged between the moving plate 503 and the two supporting blocks 502 . One end of the two connecting rods 504 is respectively hinged to the upper surface of the two supporting blocks 502 , and the other end is respectively hinged to the lower surface of the moving plate 503 .
[0103] A plurality of push rods 505 are evenly and vertically arranged above the movable plate 503 , the lower ends of the push rods 505 are fixedly connected to the upper surface of the movable plate 503 , the upper ends of the push rods 505 penetrate upward through the base 1 and the lower mold frame 410 , and extend into the lower mold frame 410 .
[0104] The telescopic plate 506 is horizontally arranged on the right side of the sealing box 407, one end of the telescopic plate 506 is fixedly connected to the side surface of the sealing box 407, and the other end is slidably connected to the inner side surface of the right support plate 2, and its sliding direction is vertically arranged.
[0105] The axis of the second screw 507 is arranged vertically, and the second screw 507 is arranged below the telescopic plate 506. The upper end of the second screw 507 is fixedly connected to the lower surface of the telescopic plate 506, and the lower end passes through the top of the base 1 downward and extends into the base 1. The lower end of the second screw 507 is arranged on the side of the bidirectional screw 501.
[0106] The axis of the first bevel gear 508 is arranged vertically and coincides with the axis of the second screw rod 507 . The first bevel gear 508 is arranged on the side of the bidirectional screw rod 501 . The first bevel gear 508 is sleeved on the second screw rod 507 and is threadedly connected to the second screw rod 507 .
[0107] The axis of the annular plate 509 is arranged vertically and coincides with the axis of the second screw 507. The annular plate 509 is arranged above the first bevel gear 508. The lower surface of the annular plate 509 is fixedly connected to the upper surface of the first bevel gear 508, and the upper surface is rotatably connected to the top surface inside the base 1. Its rotation axis is arranged vertically.
[0108] The second bevel gear 510 is disposed on the side of the first bevel gear 508 . The second bevel gear 510 is sleeved on the bidirectional screw 501 , fixedly connected to the bidirectional screw 501 , and meshed with the first bevel gear 508 .
[0109] When the sealing box 407 moves downward, the sealing box 407 moves downward and drives the telescopic plate 506 to move downward. The telescopic plate 506 moves downward and drives the second screw 507 to move downward. The second screw 507 moves downward and drives the first bevel gear 508 to rotate. The rotation of the first bevel gear 508 drives the second bevel gear 510 to rotate. The rotation of the second bevel gear 510 drives the bidirectional screw 501 to rotate. The rotation of the bidirectional screw 501 drives the two support blocks 502 to move away from each other. The two support blocks 502 move away from each other and drive the two connecting rods 501 to rotate. One ends of the connecting rod 504 move away from each other, and one ends of the two connecting rods 504 move away from each other to drive the other ends of the two connecting rods 504 to move downward, and the other ends of the two connecting rods 504 move downward to drive the movable plate 503 to move downward, and the movable plate 503 moves downward to drive the plurality of ejector rods 505 to move downward, and the plurality of ejector rods 505 move downward until the upper ends of the plurality of ejector rods 505 are flush with the inner bottom surface of the lower mold frame 410, ensuring that the mold cavity is restored to its original state to avoid casting defects such as uneven wall thickness and uneven surface.
[0110] When the sealing box 407 moves upward and drives the telescopic plate 506 to move upward, the telescopic plate 506 moves upward and drives the second screw 507 to move upward, the second screw 507 moves upward and drives the first bevel gear 508 to rotate, the first bevel gear 508 rotates and drives the second bevel gear 510 to rotate, the second bevel gear 510 rotates and drives the bidirectional screw 501 to rotate, the rotation of the bidirectional screw 501 drives the two support blocks 502 to approach each other, the two support blocks 502 approach each other and drive one end of the two connecting rods 504 to approach each other, the one ends of the two connecting rods 504 approach each other and drive the other ends of the two connecting rods 504 to move upward, the other ends of the two connecting rods 504 move upward and drive the movable plate 503 to move upward, the movable plate 503 moves upward and drives the plurality of ejector rods 505 to move upward, the plurality of ejector rods 505 move upward and drives the casting to move upward, thereby ensuring the smooth separation of the casting in the mold and avoiding adhesion or jamming between the casting and the mold.
[0111] Sealing members are fixedly connected at the connection points between the plurality of ejector pins 505 and the lower mold frame 410 .
[0112] The sealing member is provided to prevent the molten metal from flowing into the interior of the base 1 .
[0113] A tool box is fixedly connected to the side surface of the base 1.
[0114] By setting up a tool box, it is convenient for staff to maintain the die-casting equipment.
[0115] The cooling device includes a cooling chamber 601, a conveying box 602, a slide plate 603, a conveying pipe 604, a feed pipe 605, a cooling box 606, a through hole, a piston rod 607, a discharge pipe 608, a collection box 609, and two one-way valves. The cooling cavity 601 is in a square ring shape and is disposed on the side of the lower mold frame 410 .
[0116] The conveying box 602 is arranged on the right side of the lower mold frame 410 . The conveying box 602 is sleeved on the second screw rod 507 and is fixedly connected to the upper surface of the base 1 .
[0117] The slide plate 603 is horizontally arranged in the conveying box 602. The slide plate 603 is sleeved on the second screw rod 507, fixedly connected to the second screw rod 507, and slidably connected to the inner side surface of the conveying box 602, and its sliding direction is vertically arranged.
[0118] The delivery pipe 604 is disposed on the left side of the delivery box 602 . One end of the delivery pipe 604 is connected to the delivery box 602 , and the other end of the delivery pipe 604 passes through the side of the lower mold frame 410 and extends into the cooling cavity 601 .
[0119] The feed pipe 605 is disposed on the right side of the conveying box 602 , and one end of the feed pipe 605 is connected to the conveying box 602 .
[0120] The two one-way valves are respectively arranged in the middle of the delivery pipe 604 and the feed pipe 605 , and are respectively fixedly connected to the delivery pipe 604 and the feed pipe 605 .
[0121] The cooling box 606 is arranged behind the conveying box 602 , fixedly connected to the upper surface of the base 1 , and communicated with the other end of the feed pipe 605 .
[0122] The through hole is arranged below the cooling cavity 601 and away from the conveying box 602 . The through hole is arranged above the moving plate 503 . The upper end of the through hole is communicated with the inside of the cooling cavity 601 .
[0123] The piston rod 607 is vertically arranged above the movable plate 503 and is arranged directly below the through hole. The lower end of the piston rod 607 is fixedly connected to the upper surface of the movable plate 503, and the upper end of the piston rod 607 passes through the top of the base 1 upward and extends into the through hole.
[0124] The discharge pipe 608 is arranged on the left side of the lower mold frame 410 and is close to the through hole, and one end of the discharge pipe 608 is connected to the through hole.
[0125] The collecting box 609 is arranged on the side of the discharge pipe 608 , fixedly connected to the upper surface of the base 1 , and communicated with the other end of the discharge pipe 608 .
[0126] When the sealing box 407 moves downward, the sealing box 407 moves downward, driving the telescopic plate 506 downward, driving the second screw 507 downward, driving the slide plate 603 downward, and the slide plate 603 moves downward so that the coolant in the cooling box 606 enters the conveying box 602 through the feed pipe 605, preparing for the subsequent cooling operation.
[0127] When the sealing box 407 moves upward and drives the telescopic plate 506 to move upward, the telescopic plate 506 moves upward and drives the second screw 507 to move upward, and the second screw 507 moves upward and drives the slide plate 603 to move upward, so that the coolant in the conveying box 602 enters the cooling chamber 601 through the conveying pipe 604, thereby cooling the lower mold frame 410 to prevent the lower mold frame 410 from deforming. The mold material will undergo thermal expansion at high temperatures, and being in a high temperature state for a long time may cause permanent deformation of the mold. While cooling the lower mold frame 410, the casting can be cooled, which increases work efficiency.
[0128] A plurality of supporting legs are fixedly connected to the bottom surface of the base 1 , and a non-slip pad is fixedly connected to the bottom surface of each supporting leg.
[0129] By providing supporting legs, it is convenient to support the die casting equipment.
[0130] It includes two buffer springs, which are respectively sleeved on the two telescopic rods 406 , one end of the two buffer springs is respectively fixedly connected to the lower surface of the fixing plate 405 , and the other end is respectively fixedly connected to the upper surface of the sealing box 407 .
[0131] By arranging a buffer spring, an effective buffering effect can be achieved.
[0132] Working principle: When die-casting operation is required, the staff controls to open the cylinder 404, and the cylinder 404 extends downward to drive the fixed plate 405 to move downward. The downward movement of the fixed plate 405 drives the two telescopic rods 406 and the pressure rod 409 to move downward in turn.
[0133] When the fixed plate 405 moves downward, driving the two telescopic rods 406 downward, the two telescopic rods 406 move downward, driving the sealing box 407 downward, until the bottom of the sealing box 407 is in close contact with the top of the lower mold frame 410, thereby forming a relatively closed space during the mold closing process, surrounding the mold, preventing the molten metal from splashing, and preventing the operator from being scalded by the high-temperature molten metal.
[0134] When the fixed plate 405 moves downward, driving the pressure rod 409 to move downward, the pressure rod 409 moves downward, driving the upper pressure mold 408 to move downward until the upper pressure mold 408 and the lower mold frame 410 fit together. At this time, the staff turns on the delivery pump through the controller. The delivery pump is turned on to allow the molten metal to pass through the delivery pump and the output pipe in sequence from the raw material box, and finally enter the upper pressure mold 408. At this time, the molten metal flows into the lower mold frame 410 under the action of pressure, thereby performing die-casting operations on the molten metal.
[0135] When the sealing box 407 moves downward, the sealing box 407 moves downward to drive the telescopic plate 506 to move downward, the telescopic plate 506 moves downward to drive the second screw 507 to move downward, and the second screw 507 moves downward to drive the slide plate 603 to move downward and the first bevel gear 508 to rotate.
[0136] When the second screw 507 moves downward to drive the slide plate 603 to move downward, the slide plate 603 moves downward so that the coolant in the cooling box 606 enters the conveying box 602 through the feeding pipe 605, preparing for the subsequent cooling operation.
[0137] When the second screw 507 moves downward and drives the first bevel gear 508 to rotate, the rotation of the first bevel gear 508 drives the second bevel gear 510 to rotate, the rotation of the second bevel gear 510 drives the bidirectional screw 501 to rotate, the rotation of the bidirectional screw 501 drives the two support blocks 502 to move away from each other, the two support blocks 502 move away from each other and respectively drive one end of the two connecting rods 504 to move away from each other, the one ends of the two connecting rods 504 move away from each other and respectively drive the other ends of the two connecting rods 504 to move downward, the other ends of the two connecting rods 504 move downward and drive the movable plate 503 to move downward, the movable plate 503 moves downward and in turn drives a number of push rods 505 and piston rod 607 to move downward.
[0138] When the movable plate 503 moves downward and drives the plurality of push rods 505 to move downward, the plurality of push rods 505 move downward until the upper ends of the plurality of push rods 505 are flush with the inner bottom surface of the lower mold frame 410, ensuring that the mold cavity is restored to its original state and avoiding casting defects such as uneven wall thickness and uneven surface.
[0139] When the movable plate 503 moves downward, driving the piston rod 607 to move downward, the piston rod 607 moves downward, so that the coolant in the cooling chamber 601 passes through the through hole, the discharge pipe 608 in sequence, and finally enters the collection box 609. Continuous cooling during the die-casting process may cause the mold temperature to be too low, causing the liquid metal to cool too quickly in the cavity, thereby preventing the liquid metal from solidifying prematurely during the process of filling the cavity.
[0140] When the die-casting operation is completed, the staff turns on the cylinder 404 through the controller, and the cylinder 404 contracts upward to drive the fixed plate 405 to move upward. The upward movement of the fixed plate 405 drives the two telescopic rods 406 and the pressure rod 409 to move upward in turn.
[0141] When the fixing plate 405 moves upward to drive the pressing rod 409 to move upward, the pressing rod 409 moves upward to drive the upper pressing mold 408 to move upward until the upper pressing mold 408 moves into the sealing box 407 to prevent the sealing box 407 from separating from the upper pressing mold 408.
[0142] When the fixing plate 405 moves upward, driving the two telescopic rods 406 to move upward, the two telescopic rods 406 move upward, driving the sealing box 407 to move upward, and the sealing box 407 moves upward until the sealing box 407 is completely separated from the lower mold frame 410, so as to facilitate the subsequent removal of the casting.
[0143] When the sealing box 407 moves upward, driving the telescopic plate 506 upward, the telescopic plate 506 moves upward, driving the second screw rod 507 upward, and the second screw rod 507 moves upward, driving the slide plate 603 upward and the first bevel gear 508 to rotate in turn.
[0144] When the second screw 507 moves upward and drives the slide plate 603 to move upward, the slide plate 603 moves upward, so that the coolant in the conveying box 602 enters the cooling chamber 601 through the conveying pipe 604, thereby cooling the lower mold frame 410 to prevent the lower mold frame 410 from deforming. The mold material will undergo thermal expansion at high temperatures, and being in a high temperature state for a long time may cause permanent deformation of the mold. While cooling the lower mold frame 410, the casting can also be cooled, thereby increasing work efficiency.
[0145] When the second screw 507 moves downward and drives the first bevel gear 508 to rotate, the rotation of the first bevel gear 508 drives the second bevel gear 510 to rotate, and the rotation of the second bevel gear 510 drives the bidirectional screw 501 to rotate. The rotation of the bidirectional screw 501 drives the two support blocks 502 to approach each other. The two support blocks 502 approach each other and respectively drive one end of the two connecting rods 504 to approach each other. The one ends of the two connecting rods 504 approach each other and respectively drive the other ends of the two connecting rods 504 to move upward. The upward movement of the other ends of the two connecting rods 504 drives the movable plate 503 to move upward. The upward movement of the movable plate 503 drives several push rods 505 and piston rod 607 to move upward in turn.
[0146] When the movable plate 503 moves upward and drives the plurality of push rods 505 to move upward, the plurality of push rods 505 move upward and drive the casting to move upward, thereby ensuring smooth separation of the casting in the mold and avoiding adhesion or jamming between the casting and the mold.
[0147] When the movable plate 503 moves upward to drive the piston rod 607 to move upward, the piston rod 607 moves upward to block the through hole, thereby preventing the coolant from being lost and causing a poor cooling effect.
[0148] When it is necessary to clean the upper pressure mold 408, the staff turns on the motor 401 through the controller, and the rotation of the motor 401 drives the first screw 402 to rotate, and the rotation of the first screw 402 drives the slider 403 to move to the left, and the slider 403 moves to the left and drives the cylinder 404 to move to the left, and the cylinder 404 moves to the left and drives the fixed plate 405 to move to the left, and the fixed plate 405 moves to the left and drives the two telescopic rods 406 to move to the left, and the two telescopic rods 406 move to the left and drive the sealing box 407 to move to the left, and the sealing box 407 moves to the left and drives the upper pressure mold 408 to move to the left, thereby moving away from the lower mold frame 410, which can provide better operating space and make it easier for cleaning tools to reach various positions of the cavity, especially some corners and edges, to improve the cleaning effect and reduce the influence of impurities on the next die casting.
[0149] The above embodiments are only part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, other embodiments obtained by those skilled in the art without creative work shall all fall within the scope of protection of the present invention.
Claims
1. Integrated die-casting equipment, characterized by: It comprises a base (1), two support plates (2), a horizontal plate (3), a die-casting device, an anti-sticking device, a cooling device, and a controller. The base (1) is a rectangular parallelepiped, and the interior of the base (1) is a cavity; The two support plates (2) are respectively arranged vertically and are respectively perpendicular to the front side of the base (1); the two support plates (2) are respectively symmetrically arranged above the base (1) and are respectively fixedly connected to the upper surface of the base (1); The transverse plate (3) is arranged transversely above the two support plates (2) and is respectively fixedly connected to the upper surfaces of the two support plates (2); The die-casting device is arranged below the transverse plate (3), connected to the transverse plate (3), and connected to the base (1); The anti-sticking device is arranged in the base (1), and the anti-sticking device is connected to the base (1), to the two support plates (2), and to the die-casting device; The cooling device is arranged on the side of the die-casting device, connected to the base (1), connected to the anti-sticking device, and connected to the die-casting device; The controller is arranged on the side of the base (1), fixedly connected to the side surface of the base (1), and electrically connected to the die-casting device.
2. The integrated die-casting equipment according to claim 1, characterized in that The die-casting device comprises a chute, a motor (401), a first screw (402), a slider (403), a cylinder (404), a fixing plate (405), two telescopic rods (406), a sealing box (407), an upper die (408), a pressing rod (409), a lower die frame (410), a raw material box, and an output pipe. The axis of the slide groove is arranged transversely and is parallel to the front surface of the base (1); the slide groove is arranged on the lower surface of the horizontal plate (3); The axis of the motor (401) is arranged horizontally and parallel to the front of the base (1); the motor (401) is arranged in the slide groove, fixedly connected to the horizontal plate (3), and electrically connected to the controller; The axis of the first screw rod (402) is arranged horizontally and coincides with the axis of the rotating shaft of the motor (401); the first screw rod (402) is arranged in the slide groove; one end of the first screw rod (402) is fixedly connected to the rotating shaft of the motor (401); the other end of the first screw rod (402) is rotatably connected to the horizontal plate (3); and the rotating axis thereof is arranged horizontally and parallel to the front face of the base (1); The sliding block (403) is sleeved on the first screw rod (402), is threadedly connected to the first screw rod (402), and is slidably connected to the sliding groove, and its sliding direction is horizontally arranged and parallel to the front side of the base (1); The axis of the cylinder (404) is arranged vertically, and the cylinder (404) is arranged below the slider (403), fixedly connected to the lower surface of the slider (403), and electrically connected to the controller; The fixing plate (405) is transversely arranged at the lower end of the cylinder (404) and is fixedly connected to the lower end of the cylinder (404); The two telescopic rods (406) are respectively and vertically symmetrically arranged below the fixing plate (405), and the upper ends of the two telescopic rods (406) are respectively fixedly connected to the lower surface of the fixing plate (405); The bottom of the sealing box (407) is open, the sealing box (407) is arranged below the two telescopic rods (406), and the upper surface of the sealing box (407) is fixedly connected to the lower ends of the two telescopic rods (406) respectively; The upper pressing mold (408) is arranged horizontally in the sealing box (407), and is slidably connected to the inner wall of the sealing box (407), and its sliding direction is arranged vertically; The axis of the pressure rod (409) is arranged vertically and coincides with the axis of the cylinder (404). The pressure rod (409) is arranged between the sealing box (407) and the fixed plate (405). The upper end of the pressure rod (409) is fixedly connected to the lower surface of the fixed plate (405), and the lower end of the pressure rod (409) passes through the top of the sealing box (407) downward and is fixedly connected to the upper surface of the upper pressing mold (408); The lower mold frame (410) is arranged above the base (1), and the lower mold frame (410) is arranged directly below the upper pressing mold (408) and is fixedly connected to the upper surface of the base (1); The raw material box is arranged on the left side of the lower mold frame (410) and is fixedly connected to the upper surface of the base (1); The output pipe is arranged on the side of the raw material box, and a delivery pump is fixedly connected to the middle of the output pipe. One end of the output pipe is connected to the raw material box, and the other end passes through the top of the sealing box (407) and is connected to the upper pressing mold (408).
3. The integrated die-casting equipment according to claim 1, characterized in that An alarm is fixedly connected to the upper surface of the horizontal plate (3).
4. The integrated die-casting equipment according to claim 2, characterized in that A vent is provided on the side of the sealing box (407).
5. The integrated die-casting equipment according to claim 2, characterized in that The anti-sticking device comprises a bidirectional screw (501), two support blocks (502), a movable plate (503), two connecting rods (504), a plurality of push rods (505), a telescopic plate (506), a second screw (507), a first bevel gear (508), an annular plate (509), and a second bevel gear (510). The axis of the bidirectional screw (501) is arranged horizontally and parallel to the front face of the base (1); the bidirectional screw (501) is arranged inside the base (1); both ends of the bidirectional screw (501) are rotatably connected to the inner wall of the base (1) respectively; and the rotation axis is arranged horizontally and parallel to the front face of the base (1); The two support blocks (502) are symmetrically sleeved on the bidirectional screw (501), respectively threadedly connected to the bidirectional screw (501), and respectively slidably connected to the inner wall of the base (1), and the sliding direction is horizontally arranged and parallel to the front face of the base (1); The movable plate (503) is arranged above the bidirectional screw (501), and the movable plate (503) is arranged in the base (1), and is slidably connected to the inner wall of the base (1), and its sliding direction is arranged vertically; The two connecting rods (504) are respectively arranged obliquely and symmetrically between the moving plate (503) and the two supporting blocks (502); one end of the two connecting rods (504) is respectively hinged to the upper surface of the two supporting blocks (502), and the other end is respectively hinged to the lower surface of the moving plate (503); A plurality of the push rods (505) are respectively and evenly arranged vertically above the movable plate (503); the lower ends of the push rods (505) are respectively fixedly connected to the upper surface of the movable plate (503); the upper ends respectively penetrate upward through the base (1) and the lower mold frame (410), and respectively extend into the lower mold frame (410); The telescopic plate (506) is arranged horizontally on the right side of the sealing box (407), one end of the telescopic plate (506) is fixedly connected to the side surface of the sealing box (407), and the other end is slidably connected to the inner side surface of the right support plate (2), and the sliding direction is arranged vertically; The axis of the second screw rod (507) is arranged vertically. The second screw rod (507) is arranged below the telescopic plate (506). The upper end of the second screw rod (507) is fixedly connected to the lower surface of the telescopic plate (506). The lower end of the second screw rod (507) passes through the top of the base (1) downward and extends into the base (1). The lower end of the second screw rod (507) is arranged on the side of the bidirectional screw rod (501). The axis of the first bevel gear (508) is arranged vertically and coincides with the axis of the second screw (507); the first bevel gear (508) is arranged on the side of the bidirectional screw (501); the first bevel gear (508) is sleeved on the second screw (507) and is threadedly connected to the second screw (507); The axis of the annular plate (509) is arranged vertically and coincides with the axis of the second screw rod (507); the annular plate (509) is arranged above the first bevel gear (508); the lower surface of the annular plate (509) is fixedly connected to the upper surface of the first bevel gear (508); the upper surface is rotatably connected to the inner top surface of the base (1); and the rotation axis is arranged vertically; The second bevel gear (510) is arranged on the side of the first bevel gear (508). The second bevel gear (510) is sleeved on the bidirectional screw (501), fixedly connected to the bidirectional screw (501), and meshed with the first bevel gear (508).
6. The integrated die-casting equipment according to claim 5, characterized in that The connection points between the plurality of push rods (505) and the lower mold frame (410) are respectively fixedly connected with sealing members.
7. The integrated die-casting equipment according to claim 1, characterized in that A tool box is fixedly connected to the side surface of the base (1).
8. The integrated die-casting equipment according to claim 5, characterized in that The cooling device comprises a cooling chamber (601), a conveying box (602), a slide plate (603), a conveying pipe (604), a feeding pipe (605), a cooling box (606), a through hole, a piston rod (607), a discharge pipe (608), a collecting box (609), and two one-way valves. The cooling cavity (601) is in the shape of a square ring, and the cooling cavity (601) is arranged on the side of the lower mold frame (410); The conveying box (602) is arranged on the right side of the lower mold frame (410), and the conveying box (602) is sleeved on the second screw rod (507) and fixedly connected to the upper surface of the base (1); The slide plate (603) is horizontally arranged in the conveying box (602), the slide plate (603) is sleeved on the second screw rod (507), is fixedly connected to the second screw rod (507), and is slidably connected to the inner side surface of the conveying box (602), and its sliding direction is vertically arranged; The delivery pipe (604) is arranged on the left side of the delivery box (602), one end of the delivery pipe (604) is connected to the delivery box (602), and the other end of the delivery pipe (604) passes through the side of the lower mold frame (410) and extends into the cooling cavity (601); The feed pipe (605) is arranged on the right side of the conveying box (602), and one end of the feed pipe (605) is connected to the conveying box (602); The two one-way valves are respectively arranged in the middle of the delivery pipe (604) and the feed pipe (605), and are respectively fixedly connected to the delivery pipe (604) and the feed pipe (605); The cooling box (606) is arranged behind the conveying box (602), fixedly connected to the upper surface of the base (1), and communicated with the other end of the feeding pipe (605); The through hole is arranged below the cooling cavity (601) and away from the conveying box (602); the through hole is arranged above the movable plate (503); and the upper end of the through hole is communicated with the interior of the cooling cavity (601); The piston rod (607) is vertically arranged above the movable plate (503), and the piston rod (607) is arranged directly below the through hole. The lower end of the piston rod (607) is fixedly connected to the upper surface of the movable plate (503), and the upper end of the piston rod (607) passes through the top of the base (1) upward and extends into the through hole; The discharge pipe (608) is arranged on the left side of the lower mold frame (410) and is close to the through hole, and one end of the discharge pipe (608) is connected to the through hole; The collecting box (609) is arranged on the side of the discharge pipe (608), fixedly connected to the upper surface of the base (1), and communicated with the other end of the discharge pipe (608).
9. The integrated die-casting equipment according to claim 1, characterized in that The bottom surface of the base (1) is fixedly connected to a plurality of supporting legs, and the bottom surface of each supporting leg is fixedly connected to an anti-slip pad.
10. The integrated die-casting equipment according to claim 2, characterized in that : It comprises two buffer springs, the two buffer springs are respectively sleeved on the two telescopic rods (406), one end of the two buffer springs is respectively fixedly connected to the lower surface of the fixing plate (405), and the other end is respectively fixedly connected to the upper surface of the sealing box (407).