Molding manufacturing tool for computer part outer shell
The manufacturing setup addresses air bubble issues and manual demolding challenges in computer case molding by integrating a cooling and vibration system with automatic demolding, achieving high-strength and efficient production.
Patent Information
- Application Number
- CN202510674546.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-23
- Publication Date
- 2025-07-15
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing computer case injection molding equipment cannot completely discharge air from the plastic, resulting in bubbles in the molded shell, affecting the strength, and manually demolding after injection molding, which is inconvenient to operate.
The molding and manufacturing tooling of the outer shell of a computer part is adopted, including a base, a cooling water tank, a lower mold shell, an upper mold mechanism, an automatic mold release mechanism, a vibration defoaming mechanism and a rotary drive mechanism. The bubbles are eliminated through the vibration defoaming mechanism, and the automatic mold release mechanism realizes automatic mold release, combining the cooling water tank and a rotary drive mechanism to improve production efficiency.
It realizes high-strength molding and automatic mold release of computer shells, eliminates bubble defects, improves production efficiency and saves manpower.
Smart Images

Figure CN120307531A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of computer housing production, and in particular to a forming and manufacturing tooling for the housing of computer parts. Background Art
[0002] The computer mainframe housing is used to protect hardware components such as the motherboard, CPU, hard disk, and graphics card. At present, there are two ways to produce computer housings. One is machining, and the other is injection molding. Injection molding is more efficient and widely used.
[0003] The existing injection molding equipment for computer housings has two major defects when in use: First, air in the plastic cannot be completely discharged during injection molding, resulting in air bubbles and voids in the formed housing, which affects the strength of the housing; Second, after injection molding, it is necessary for people to manually take out the computer housing from the mold, which is rather troublesome. Therefore, in view of the above current situation, there is an urgent need to develop a forming and manufacturing tooling for the housing of computer parts that is convenient for casting and forming computer housings, can eliminate air bubbles during injection molding, make the formed computer housing have higher strength, automatically demold and discharge materials after injection, and save manpower, so as to overcome the deficiencies in current practical applications and meet the current needs. Summary of the Invention
[0004] The purpose of the present invention is to provide a forming and manufacturing tooling for the housing of computer parts to solve the problems raised in the above background art.
[0005] To achieve the above purpose, the present invention adopts the following technical solutions:
[0006] A forming and manufacturing tooling for the outer shell of a computer part, comprising a base, a cooling water tank, a lower die shell, a transposition plate, an upper die mechanism, an automatic demolding mechanism, a vibration defoaming mechanism, a conveying mechanism and a rotary drive mechanism. The cooling water tank is fixedly installed on the base. The lower die shell is fixedly installed in the cooling water tank, and the inner wall of the lower die shell is smooth. A support shaft is fixed to the lower side of the transposition plate, and the support shaft is rotatably connected to the base. The upper die mechanism and the automatic demolding mechanism are installed on the transposition plate. The rotary drive mechanism for driving the support shaft and the transposition plate to rotate is installed on the base. The vibration defoaming mechanism facing the lower die shell is installed on one side of the cooling water tank. The automatic demolding mechanism includes: a second electric telescopic rod, a lifting frame, a first motor, a bidirectional screw rod, a first external thread, a second external thread, a first thread sleeve, a second thread sleeve, a pressing piece, a transfer rod, a sliding sleeve and a limiting rod. The second electric telescopic rod is fixed on the transposition plate, and the telescopic end of the second electric telescopic rod is fixed to the lifting frame. The first motor is fixed on the lifting frame. The bidirectional screw rod is rotatably connected in the lifting frame, and the output shaft of the first motor is fixed to the bidirectional screw rod. The left half section of the bidirectional screw rod is provided with a first external thread, and a first thread sleeve matched with it is installed on the outside of the first external thread. The right half section of the bidirectional screw rod is provided with a second external thread, and a second thread sleeve matched with it is installed on the outside of the second external thread. A transfer rod is fixed to the lower sides of the first thread sleeve and the second thread sleeve, and each transfer rod is fixed to a pressing piece. Sliding sleeves are fixed to the upper sides of the first thread sleeve and the second thread sleeve, and the sliding sleeves are slidably installed on the limiting rod. The limiting rod is fixedly installed in the lifting frame. The helix directions of the first external thread and the second external thread are opposite. The vibration defoaming mechanism includes: a second motor, a half gear, an outer frame, a tooth groove, a guide rod and a vibration plate. The second motor is fixedly installed on one side of the cooling water tank, and a half gear is fixed on the output shaft of the second motor. The half gear is located inside the outer frame. A tooth groove matched with the half gear is arranged in the outer frame. One end of the outer frame is fixed with a guide rod inserted into the cooling water tank, and the guide rod is in sliding contact with the cooling water tank. A vibration plate is fixed to the end of the guide rod. The conveying mechanism is arranged on the ground at the rear side of the cooling water tank.
[0007] Preferably: The pressing piece is provided with anti-slip lines.
[0008] Preferably: A slider is fixed to one side of the outer frame, and a slide rail is fixed to one side of the cooling water tank. The slider is slidably installed on the slide rail.
[0009] Preferably: The upper die mechanism includes: a first electric telescopic rod, a lifting plate, a pouring port and an upper die head. The first electric telescopic rod is fixedly installed on the transposition plate, and the telescopic end of the first electric telescopic rod is fixed to the lifting plate. The lifting plate is provided with a pouring port, and an upper die head is fixed to the lower side of the lifting plate.
[0010] Preferably, the external dimension of the upper die head is smaller than the internal dimension of the lower die shell.
[0011] Preferably, a water inlet pipe is installed on one side of the cooling water tank. The water inlet pipe is connected to an external tap water source through a pipeline. A drain pipe is installed on the other side of the cooling water tank. The drain pipe is connected to a sewer through a pipeline.
[0012] Preferably, the rotation driving mechanism includes: a fourth motor, a first gear and a second gear. The fourth motor is fixedly installed on the base. A first gear is fixed on the output shaft of the fourth motor. A second gear meshing with the first gear is arranged on one side of the first gear. The second gear is fixedly installed on the support shaft.
[0013] Preferably, the conveying mechanism includes: a frame, a driving roller, a driven roller, a conveyor belt and a third motor. The driving roller and the driven roller are rotatably connected inside the frame. The driving roller and the driven roller are connected by a conveyor belt. The third motor is fixedly installed on the frame. The output shaft of the third motor is fixed to the driving roller.
[0014] Preferably, a PLC controller is fixedly installed on the base. The first electric telescopic rod, the second electric telescopic rod, the first motor, the second motor, the third motor and the fourth motor are electrically connected to the PLC controller through wires respectively.
[0015] The beneficial effects of the present invention are:
[0016] 1. When the forming and manufacturing tool for the computer part housing is used, first, the lifting plate, the pouring port and the upper die head are driven by the first electric telescopic rod to move downward, so that the upper die head is inserted into the lower die shell. Then, the molten plastic is poured from the pouring port into the gap between the upper die head and the lower die shell. Then, the external tap water is conveyed into the cooling water tank to cool the lower die shell, so that the plastic in the lower die shell can be quickly cooled and formed. At the same time, the second motor drives the half gear to rotate, the gear drives the outer frame to move back and forth, and the outer frame drives the guide rod and the vibrating plate to move, so that the vibrating plate knocks and vibrates the lower die shell back and forth. Under the vibration, the air bubbles in the plastic are discharged from the pouring port, so that the strength of the cooled and formed computer housing is better.
[0017] 2. After the cooling is completed, take out the upper die head from the lower die shell. Drive the first gear and the second gear to rotate through the fourth motor. Drive the support shaft and the transposition plate to rotate and transpose through the second gear. Drive the upper die mechanism and the automatic demoulding mechanism to rotate through the transposition plate, so that the automatic demoulding mechanism rotates above the lower die shell. Then, drive the lifting frame to move downward through the second electric telescopic rod, drive the pressing piece to move downward through the lifting frame, so that the pressing piece enters the lower die shell. Then, drive the bidirectional screw to rotate through the first motor. Drive the first thread sleeve and the second thread sleeve to move toward each other through the rotation of the bidirectional screw. Drive the two pressing pieces to move toward each other through the first thread sleeve and the second thread sleeve, so that the pressing piece presses against the inner wall of the computer shell. Increase the friction between the pressing piece and the computer shell through the anti-slip pattern. Then, drive the lifting frame and the pressing piece to move upward through the second electric telescopic rod, so that the friction between the pressing piece and the computer shell drives the computer shell to slide out of the lower die shell outward. Then, drive the transposition plate, the upper die mechanism and the automatic demoulding mechanism to rotate through the rotation drive mechanism, so that the automatic demoulding mechanism rotates above the conveying mechanism. Then, drive the bidirectional screw to rotate through the first motor. Make the two pressing pieces approach each other through the rotation of the bidirectional screw, so that the pressing piece loosens the computer shell, and the computer shell falls onto the conveyor belt. Convey the computer shell outward through the conveying mechanism.
[0018] In summary, the present invention is convenient for casting and molding the computer shell, and can eliminate the air bubbles during injection molding, making the formed computer shell have higher strength; automatic demoulding and blanking are carried out after injection molding, saving labor. Description of the Drawings
[0019] Figure 1 Schematic three-dimensional structure of the present invention Figure I 。
[0020] Figure 2 Schematic three-dimensional structure of the present invention Figure II 。
[0021] Figure 3 Schematic diagram of the injection molding state of the present invention.
[0022] Figure 4 Schematic diagram of the demoulding state of the present invention.
[0023] Figure 5 Internal cross-sectional view of the cooling water tank in the present invention.
[0024] Figure 6 Schematic diagram of part of the structure of the present invention Figure I 。
[0025] Figure 7 Schematic diagram of part of the structure of the present invention Figure II 。
[0026] Figure 8 It is a schematic diagram of the partial structure of the present invention Figure III .
[0027] Figure 9 It is a schematic diagram of the partial structure of the present invention Figure IV .
[0028] Figure 10 It is a schematic diagram of the partial structure of the present invention Figure V .
[0029] Legend:
[0030] 1. Base; 2. Cooling water tank; 201. Water inlet pipe; 202. Drain pipe; 3. Lower mold shell; 4. Transposition plate; 401. Support shaft; 5. Upper mold mechanism; 501. First electric telescopic rod; 502. Lifting plate; 503. Casting port; 504. Upper mold head; 6. Automatic demoulding mechanism; 601. Second electric telescopic rod; 602. Lifting frame; 603. First motor; 604. Bidirectional screw; 605. First external thread; 606. Second external thread; 607. First threaded sleeve; 608. Second threaded sleeve; 609. Tightening sheet; 6091. Anti-slip pattern; 610, adapter rod; 611, sliding sleeve; 612, limit rod; 7, vibration defoaming mechanism; 701, second motor; 702, half gear; 703, outer frame; 7031, slider; 7032, slide rail; 704, tooth groove; 705, guide rod; 706, vibration plate; 8, conveying mechanism; 801, frame; 802, active roller; 803, driven roller; 804, conveyor belt; 805, third motor; 9, rotation drive mechanism; 901, fourth motor; 902, first gear; 903, second gear; 10, PLC controller. DETAILED DESCRIPTION
[0031] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0032] Specific examples are given below.
[0033] See also Figures 1 to 10, in an embodiment of the present invention, a forming and manufacturing tool for the outer shell of a computer part includes a base 1, a cooling water tank 2, a lower die shell 3, a transposition plate 4, an upper die mechanism 5, an automatic demoulding mechanism 6, a vibration defoaming mechanism 7, a conveying mechanism 8 and a rotation driving mechanism 9. A cooling water tank 2 is fixedly installed on the base 1. A water inlet pipe 201 is installed on one side of the cooling water tank 2, and the water inlet pipe 201 is connected to an external tap water source through a pipeline. A drain pipe 202 is installed on the other side of the cooling water tank 2, and the drain pipe 202 is connected to a sewer through a pipeline (the pipeline is not shown in the figure). The lower die shell 3 is fixedly installed in the cooling water tank 2, and the inner wall of the lower die shell 3 is smooth. A support shaft 401 is fixed to the lower side of the transposition plate 4, and the support shaft 401 is rotatably connected to the base 1. An upper die mechanism 5 and an automatic demoulding mechanism 6 are installed on the transposition plate 4. A rotation driving mechanism 9 for driving the support shaft 401 and the transposition plate 4 to rotate is installed on the base 1. A vibration defoaming mechanism 7 facing the lower die shell 3 is installed on one side of the cooling water tank 2. A conveying mechanism 8 is arranged on the ground at the rear side of the cooling water tank 2. During use, first insert the upper die mechanism 5 into the lower die shell 3, then pour the molten plastic into the lower die shell 3, and convey external tap water into the cooling water tank 2 to cool the lower die shell 3, so that the plastic in the lower die shell 3 can be quickly cooled and formed. At the same time, vibrate the lower die shell 3 through the vibration defoaming mechanism 7, and discharge the air in the plastic in the lower die shell 3 through vibration, so as to prevent bubbles in the plastic after cooling from affecting the structural strength. After cooling, take out the upper die mechanism 5 from the lower die shell 3, and then drive the support shaft 401 and the transposition plate 4 to rotate through the rotation driving mechanism 9, drive the upper die mechanism 5 and the automatic demoulding mechanism 6 to rotate through the transposition plate 4, so that the automatic demoulding mechanism 6 rotates above the lower die shell 3. Then, insert the automatic demoulding mechanism 6 into the lower die shell 3 and hold the computer shell cooled and formed in the lower die shell 3 from the inside. Then, the automatic demoulding mechanism 6 pulls out the computer shell outwards, and takes out the computer shell from the lower die shell 3 through the automatic demoulding mechanism 6. Then, drive the transposition plate 4, the upper die mechanism 5 and the automatic demoulding mechanism 6 to rotate through the rotation driving mechanism 9, so that the automatic demoulding mechanism 6 rotates above the conveying mechanism 8. Then, the automatic demoulding mechanism 6 places the computer shell on the conveying mechanism 8, and the conveying mechanism 8 conveys the computer shell outwards and that's it.
[0034] The upper die mechanism 5 includes: a first electric telescopic rod 501, a lifting plate 502, a pouring port 503, and an upper die head 504. The first electric telescopic rod 501 is fixedly installed on the transposition plate 4, and the telescopic end of the first electric telescopic rod 501 is fixed to the lifting plate 502. A pouring port 503 is provided on the lifting plate 502, and an upper die head 504 is fixed to the lower side of the lifting plate 502. The outer dimension of the upper die head 504 is smaller than the inner dimension of the lower die shell 3, so that there is a certain gap after the upper die head 504 is inserted into the lower die shell 3. After plastic is poured, it will enter the gap to form. During use, the first electric telescopic rod 501 drives the lifting plate 502, the pouring port 503, and the upper die head 504 to move downward, so that the upper die head 504 is inserted into the lower die shell 3. Then, the molten plastic is poured from the pouring port 503 into the gap between the upper die head 504 and the lower die shell 3.
[0035] The automatic demolding mechanism 6 includes: a second electric telescopic rod 601, a lifting frame 602, a first motor 603, a bidirectional screw rod 604, a first external thread 605, a second external thread 606, a first thread sleeve 607, a second thread sleeve 608, a tightening piece 609, a transfer rod 610, a sliding sleeve 611 and a limiting rod 612. The second electric telescopic rod 601 is fixed on the transposition plate 4, and the telescopic end of the second electric telescopic rod 601 is fixed to the lifting frame 602. The first motor 603 is fixed on the lifting frame 602. The bidirectional screw rod 604 is rotatably connected inside the lifting frame 602. The output shaft of the first motor 603 is fixed to the bidirectional screw rod 604. The left half section of the bidirectional screw rod 604 is provided with a first external thread 605, and a first thread sleeve 607 that mates with it is installed outside the first external thread 605. The right half section of the bidirectional screw rod 604 is provided with a second external thread 606, and a second thread sleeve 608 that mates with it is installed outside the second external thread 606. A transfer rod 610 is fixed to the lower sides of both the first thread sleeve 607 and the second thread sleeve 608. Each transfer rod 610 is fixed to a tightening piece 609. Anti-slip lines 6091 are provided on the tightening piece 609, and the friction between the tightening piece 609 and the computer housing is increased through the anti-slip lines 6091. Sliding sleeves 611 are fixed to the upper sides of both the first thread sleeve 607 and the second thread sleeve 608. The sliding sleeves 611 are slidably installed on the limiting rod 612. The limiting rod 612 is fixedly installed inside the lifting frame 602. The helix directions of the first external thread 605 and the second external thread 606 are opposite, so that when the bidirectional screw rod 604 rotates, the moving directions of the first thread sleeve 607 and the second thread sleeve 608 are opposite. During use, first, the second electric telescopic rod 601 drives the lifting frame 602 to move downward, and the lifting frame 602 drives the tightening piece 609 to move downward, so that the tightening piece 609 enters the lower mold shell 3. Then, the first motor 603 drives the bidirectional screw rod 604 to rotate, and the rotation of the bidirectional screw rod 604 drives the first thread sleeve 607 and the second thread sleeve 608 to move towards each other. The first thread sleeve 607 and the second thread sleeve 608 drive the two tightening pieces 609 to move towards each other, so that the tightening pieces 609 are pressed against the inner wall of the computer housing. The friction between the tightening piece 609 and the computer housing is increased through the anti-slip lines 6091. Then, the second electric telescopic rod 601 drives the lifting frame 602 and the tightening piece 609 to move upward, so that the friction between the tightening piece 609 and the computer housing drives the computer housing to slide out of the lower mold shell 3 outward.
[0036] The vibration defoaming mechanism 7 includes: a second motor 701, a half gear 702, an outer frame 703, a tooth groove 704, a guide rod 705 and a vibration plate 706. The second motor 701 is fixedly installed on one side of the cooling water tank 2. A half gear 702 is fixedly installed on the output shaft of the second motor 701. The half gear 702 is located inside the outer frame 703. A tooth groove 704 that cooperates with the half gear 702 is provided inside the outer frame 703. One end of the outer frame 703 is fixed with a guide rod 705 inserted into the cooling water tank 2. The guide rod 705 is in sliding contact with the cooling water tank 2. The end of the guide rod 705 is fixed with a vibration plate 706. A slider 7031 is fixed on one side of the outer frame 703. A slide rail 7032 is fixed on one side of the cooling water tank 2. The slider 7031 is slidably installed on the slide rail 7032. During use, the second motor 701 drives the half gear 702 to rotate. The outer frame 703 is driven by the gear 702 to move back and forth. The guide rod 705 and the vibration plate 706 are driven by the outer frame 703 to move, so that the vibration plate 706 knocks and vibrates the lower mold shell 3 back and forth. Under the action of vibration, the bubbles in the plastic are discharged from the pouring port 503.
[0037] The conveying mechanism 8 includes: a frame 801, a driving roller 802, a driven roller 803, a conveyor belt 804 and a third motor 805. The driving roller 802 and the driven roller 803 are rotatably connected inside the frame 801. The driving roller 802 and the driven roller 803 are drivingly connected by the conveyor belt 804. The third motor 805 is fixedly installed on the frame 801. The output shaft of the third motor 805 is fixed to the driving roller 802. During use, the third motor 805 drives the driving roller 802, the driven roller 803 and the conveyor belt 804 to rotate, and the computer shell is conveyed outwards through the conveyor belt 804.
[0038] The rotary driving mechanism 9 includes: a fourth motor 901, a first gear 902 and a second gear 903. The fourth motor 901 is fixedly installed on the base 1. A first gear 902 is fixed on the output shaft of the fourth motor 901. A second gear 903 meshing with the first gear 902 is arranged on one side of the first gear 902. The second gear 903 is fixedly installed on the support shaft 401. During use, the fourth motor 901 drives the first gear 902 and the second gear 903 to rotate, and the support shaft 401 and the transposition plate 4 are driven by the second gear 903 to rotate and transpose.
[0039] A PLC controller 10 is fixedly installed on the base 1. The first electric telescopic rod 501, the second electric telescopic rod 601, the first motor 603, the second motor 701, the third motor 805 and the fourth motor 901 are respectively electrically connected to the PLC controller 10 through wires (not shown) for control during use.
[0040] Working principle: When using the forming and manufacturing tooling for the outer shell of the computer part, first, the first electric telescopic rod 501 drives the lifting plate 502, the pouring port 503, and the upper die head 504 to move downward, so that the upper die head 504 is inserted into the lower die shell 3. Then, the molten plastic is poured from the pouring port 503 into the gap between the upper die head 504 and the lower die shell 3. Then, external tap water is transported into the cooling water tank 2 to cool the lower die shell 3, so that the plastic in the lower die shell 3 can be quickly cooled and formed. At the same time, the second motor 701 drives the semi-gear 702 to rotate, the gear 702 drives the outer frame 703 to move back and forth, and the outer frame 703 drives the guide rod 705 and the vibrating plate 706 to move, so that the vibrating plate 706 knocks and vibrates the lower die shell 3 back and forth. Under the vibration, the bubbles in the plastic are discharged from the pouring port 503, so that the strength of the cooled and formed computer shell is better. After cooling, the upper die head 504 is taken out of the lower die shell 3. The fourth motor 901 drives the first gear 902 and the second gear 903 to rotate. The second gear 903 drives the support shaft 401 and the transposition plate 4 to rotate and transpose. The transposition plate 4 drives the upper die mechanism 5 and the automatic demoulding mechanism 6 to rotate, so that the automatic demoulding mechanism 6 rotates above the lower die shell 3. Then, the second electric telescopic rod 601 drives the lifting frame 602 to move downward, and the lifting frame 602 drives the tightening piece 609 to move downward, so that the tightening piece 609 enters the lower die shell 3. Then, the first motor 603 drives the bidirectional screw rod 604 to rotate. The rotation of the bidirectional screw rod 604 drives the first thread sleeve 607 and the second thread sleeve 608 to move towards each other. The first thread sleeve 607 and the second thread sleeve 608 drive the two tightening pieces 609 to move towards each other, so that the tightening piece 609 abuts against the inner wall of the computer shell. The anti-slip pattern 6091 increases the friction between the tightening piece 609 and the computer shell. Then, the second electric telescopic rod 601 drives the lifting frame 602 and the tightening piece 609 to move upward, so that the friction between the tightening piece 609 and the computer shell drives the computer shell to slide out of the lower die shell 3 outward. Then, the rotation driving mechanism 9 drives the transposition plate 4, the upper die mechanism 5, and the automatic demoulding mechanism 6 to rotate, so that the automatic demoulding mechanism 6 rotates above the conveying mechanism 8. Then, the first motor 603 drives the bidirectional screw rod 604 to rotate. The rotation of the bidirectional screw rod 604 makes the two tightening pieces 609 approach each other, so that the tightening piece 609 loosens the computer shell, and the computer shell falls onto the conveyor belt 804. The conveying mechanism 8 transports the computer shell outward.
[0041] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution and inventive concept of the present invention, makes equivalent substitutions or changes, and all should be covered by the protection scope of the present invention.
Claims
1. A forming and manufacturing tooling for the outer shell of a computer part, characterized in that It includes a base (1), a cooling water tank (2), a lower die shell (3), a transfer plate (4), an upper die mechanism (5), an automatic demolding mechanism (6), a vibration defoaming mechanism (7), a conveying mechanism (8) and a rotary drive mechanism (9). The cooling water tank (2) is fixedly installed on the base (1). The lower die shell (3) is fixedly installed in the cooling water tank (2). The inner wall of the lower die shell (3) is smooth. A support shaft (401) is fixed to the lower side of the transfer plate (4). The support shaft (401) is rotatably connected to the base (1). The upper die mechanism (5) and the automatic demolding mechanism (6) are installed on the transfer plate (4). A rotary drive mechanism (9) for driving the support shaft (401) and the transfer plate (4) to rotate is installed on the base (1). A vibration defoaming mechanism (7) facing the lower die shell (3) is installed on one side of the cooling water tank (2). The automatic demolding mechanism (6) includes: a second electric telescopic rod (601), a lifting frame (602), a first motor (603), a bidirectional screw (604), a first external thread (605), a second external thread (606), a first thread sleeve (607), a second thread sleeve (608), a pressing piece (609), a transfer rod (610), a sliding sleeve (611) and a limiting rod (612). The second electric telescopic rod (601) is fixed on the transfer plate (4). The telescopic end of the second electric telescopic rod (601) is fixed to the lifting frame (602). The first motor (603) is fixed on the lifting frame (602). The bidirectional screw (604) is rotatably connected in the lifting frame (602). The output shaft of the first motor (603) is fixed to the bidirectional screw (604). The left half section of the bidirectional screw (604) is provided with a first external thread (605). A first thread sleeve (607) matching with it is installed on the outside of the first external thread (605). The right half section of the bidirectional screw (604) is provided with a second external thread (606). A second thread sleeve (608) matching with it is installed on the outside of the second external thread (606). A transfer rod (610) is fixed to the lower side of each of the first thread sleeve (607) and the second thread sleeve (608). Each transfer rod (610) is fixed to a pressing piece (609). A sliding sleeve (611) is fixed to the upper side of each of the first thread sleeve (607) and the second thread sleeve (608). The sliding sleeve (611) is slidably installed on the limiting rod (612). The limiting rod (612) is fixedly installed in the lifting frame (602). The first external thread (605) and the second external thread (606) have opposite helix directions. The vibration defoaming mechanism (7) includes: a second motor (701), a half gear (702), an outer frame (703), a tooth groove (704), a guide rod (705) and a vibration plate (706). The second motor (701) is fixedly installed on one side of the cooling water tank (2). A half gear (702) is fixedly installed on the output shaft of the second motor (701).The semi-gear (702) is located inside the outer frame (703), a tooth groove (704) that mates with the semi-gear (702) is provided inside the outer frame (703), a guide rod (705) inserted into the cooling water tank (2) is fixed to one end of the outer frame (703), the guide rod (705) is in sliding contact with the cooling water tank (2), a vibration plate (706) is fixed to the end of the guide rod (705), and a conveying mechanism (8) is provided on the ground at the rear side of the cooling water tank (2).
2. The forming and manufacturing tooling for the housing of the computer part according to claim 1, characterized in that, The anti-slip lines (6091) are provided on the pressing piece (609).
3. The forming and manufacturing tooling for the outer casing of the computer part according to claim 1, characterized in that, One side of the outer frame (703) is fixed with a slider (7031), and one side of the cooling water tank (2) is fixed with a slide rail (7032). The slider (7031) is slidably mounted on the slide rail (7032).
4. The forming and manufacturing tooling for the computer part housing according to claim 1, characterized in that, The upper die mechanism (5) includes: a first electric telescopic rod (501), a lifting plate (502), a pouring port (503) and an upper die head (504). The first electric telescopic rod (501) is fixedly mounted on the transposition plate (4), and the telescopic end of the first electric telescopic rod (501) is fixed to the lifting plate (502). The pouring port (503) is provided on the lifting plate (502), and the upper die head (504) is fixed to the lower side of the lifting plate (502).
5. The forming and manufacturing tooling for the computer part housing according to claim 4, characterized in that, The outer dimension of the upper die head (504) is smaller than the inner dimension of the lower die shell (3).
6. The forming and manufacturing tooling for the computer part housing according to claim 1, characterized in that, One side of the cooling water tank (2) is provided with a water inlet pipe (201), and the water inlet pipe (201) is connected to an external tap water source through a pipeline. The other side of the cooling water tank (2) is provided with a drain pipe (202), and the drain pipe (202) is connected to a sewer through a pipeline.
7. The forming and manufacturing tooling for the computer part housing according to claim 4, characterized in that, The rotary drive mechanism (9) includes: a fourth motor (901), a first gear (902) and a second gear (903). The fourth motor (901) is fixedly mounted on the base (1), and the first gear (902) is fixed to the output shaft of the fourth motor (901). A second gear (903) meshing with the first gear (902) is provided on one side of the first gear (902), and the second gear (903) is fixedly mounted on the support shaft (401).
8. The forming and manufacturing tooling for the computer part housing according to claim 5, characterized in that, The conveying mechanism (8) includes: a frame (801), a driving roller (802), a driven roller (803), a conveyor belt (804) and a third motor (805). The driving roller (802) and the driven roller (803) are rotatably connected inside the frame (801), and the driving roller (802) and the driven roller (803) are connected by the conveyor belt (804) for transmission. The third motor (805) is fixedly mounted on the frame (801), and the output shaft of the third motor (805) is fixed to the driving roller (802).
9. The forming and manufacturing tooling for the computer part housing according to claim 6, characterized in that, The PLC controller (10) is fixedly mounted on the base (1), and the first electric telescopic rod (501), the second electric telescopic rod (601), the first motor (603), the second motor (701), the third motor (805) and the fourth motor (901) are electrically connected to the PLC controller (10) through wires respectively.