Combined processing equipment for liquid-cooled heat dissipation module shell reverse mold
Through the combined liquid-cooled heat dissipation module shell reverse mold processing equipment, the problems of slow cooling and excessive manual participation of existing equipment are solved, and the rapid molding and cooling of the model is achieved, which improves production efficiency and reduces labor costs.
Patent Information
- Application Number
- CN202510570252.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-06
- Publication Date
- 2025-07-11
AI Technical Summary
Existing reversal equipment cannot quickly cool the model and cannot complete all processing steps in the same location, requiring a lot of manual participation.
A combined liquid-cooled heat-dissipation module shell inverted processing equipment is designed, including raw material processing components, auxiliary liquid-cooled components and molding components. The raw materials are melted through the raw material processing components, and the auxiliary liquid-cooled components are quickly cooled, and the molding components achieve rapid molding and molding of the model.
The rapid modeling and cooling is achieved, reducing manual participation, improving production efficiency and reducing labor costs.
Smart Images

Figure CN120287476A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of die-casting equipment, and specifically to a combined processing equipment for die-casting of a liquid-cooled heat dissipation module shell. Background Art
[0002] During large-scale production, die-casting equipment is often required to complete large-scale and rapid production through continuous injection molding. However, multiple steps of existing die-casting equipment need to be used separately, which is extremely inconvenient. At the same time, the model cannot be cooled quickly.
[0003] According to the authorized announcement number CN 2211036 U, a die-casting machine capable of accelerating cooling is disclosed, which relates to the field of circuit board processing, including a die-casting machine body, a mold placement chamber, and a flipping component. A reaction body is arranged on the front side of the die-casting machine body, a melting furnace is arranged at the inner bottom of the reaction body, a mixing component is arranged inside the melting furnace, and the mixing component includes a motor, a rotating rod, a fixed frame, a clamping rod, and a support protective cover. At the same time, a diversion frame is fixedly connected to one side above the melting furnace, and the mold placement chamber is arranged on one side of the diversion frame. This die-casting machine capable of accelerating cooling, by setting a mixing component, a limiting component, a support component, and a condensing pipe, during the process of using the die-casting machine for circuit board processing, it avoids uneven heating of materials in the melting furnace, resulting in some materials not being melted, and quickly cools the materials, shortens the cooling time, improves work efficiency, and is convenient for staff to use the die-casting machine.
[0004] The above patent cannot meet the requirement of quickly cooling the model during use, nor can it complete all processing steps at the same position, and requires a large amount of manual participation. Therefore, there is a need for a combined processing equipment for die-casting of a liquid-cooled heat dissipation module shell. Summary of the Invention
[0005] The purpose of the present invention is to provide a combined processing equipment for die-casting of a liquid-cooled heat dissipation module shell, which accelerates the mold forming speed through the cooperation of a raw material processing component, an auxiliary liquid cooling component, and a forming component, so as to solve the technical problems mentioned in the background art.
[0006] To achieve the above purpose, the present invention provides the following technical solution: A combined processing equipment for die-casting of a liquid-cooled heat dissipation module shell, including a cooling component, a raw material processing component is arranged on the upper left side of the cooling component, an auxiliary liquid cooling component is arranged on the right side of the raw material processing component, and a forming component is arranged on the right side of the auxiliary liquid cooling component;
[0007] The raw material processing component includes a positioning frame installed on the upper part of the cooling component. A first rotating plate is rotatably installed on the upper part of the positioning frame. A heating furnace is bolted and installed on the upper surface of the first rotating plate. Two groups of second rotating plates are rotatably installed on the left and right sides of the positioning frame. A group of pneumatic push rods are installed on the outside of each group of second rotating plates;
[0008] The auxiliary liquid cooling component includes a mounting plate installed on the upper surface of the cooling component. Two groups of water pumps are symmetrically installed on the upper part of the mounting plate;
[0009] And a cover installed at the output end of the water pump;
[0010] The forming component includes a limiting frame installed on the upper part of the cooling component. A placement groove is opened on the upper part of the limiting frame. Two groups of positioning boxes are movably installed inside the placement groove. Each group of positioning boxes is bolted and installed with a pneumatic push rod. A forming box is installed inside each group of pneumatic push rods;
[0011] The forming box is of a hollow structure and is connected and installed with the output end of the water pump.
[0012] Preferably, the cooling component includes a water tank. A group of filter boxes are snap - installed on the right side inside the water tank. Two groups of handles are symmetrically installed on both sides of the filter box. A circulating water tank is installed on the left side of the water tank. A water inlet pipe penetrates through the water tank and is installed at the input end of the circulating water tank. A water outlet pipe penetrates through the cooling component and is installed at the output end of the circulating water tank.
[0013] Preferably, a first slot is opened at the lower part of the positioning frame corresponding to the position of the water tank. A top slot is opened at the top of the positioning frame. A rotating bracket is rotatably installed inside the top slot. A limiting slot is opened inside the top slot. The first rotating plate is rotatably installed inside the top slot, and the front end of the first rotating plate is rotatably installed inside the limiting slot. The rotating bracket is rotatably connected to the lower surface of the first rotating plate.
[0014] Preferably, an inner tank is installed inside the heating furnace. Two groups of material ports are symmetrically installed at both ends of the inner tank. A barrier cover plate is covered on the top of the heating furnace.
[0015] Preferably, two groups of side slots are symmetrically opened on both sides of the positioning frame. Two groups of electric push rods are installed inside each group of side slots. A second rotating plate is rotatably installed inside the side slot. An ear plate is installed on the side of the second rotating plate. The ear plate is rotatably connected to the telescopic top end of the electric push rod. An air pump is bolted and installed on the outside of the second rotating plate. The pneumatic push rod is connected to the output end of the air pump.
[0016] Preferably, a water suction pipe is arranged at the input end of the water pump. The water suction pipe penetrates through the mounting plate and extends into the water tank. The ends of the two water suction pipes are jointly connected and installed with a group of filter boxes. A water delivery pipe is installed at the output end of the water pump. A connector is installed at the end of the water delivery pipe.
[0017] Preferably, a feed pipe is installed through the center of the cover, and two sets of connection sockets are penetrated and opened on both sides of the feed pipe of the cover, and the connection head is hermetically connected to the connection socket.
[0018] Preferably, a second slot is opened at the lower part of the limit frame corresponding to the position of the water tank, and two sets of positioning slots are opened at the middle positions of both sides of the limit frame corresponding to the placement groove. A connecting plate is fixedly installed on the outside of each set of positioning boxes, and the connecting plate is inserted into the positioning slot for movable installation.
[0019] Preferably, a first sealing groove is opened on one of the corresponding sides of the two sets of positioning boxes, and a set of sealing plugs is installed on the other of the corresponding sides of the two sets of positioning boxes. A heat insulation plate is installed on the outside of each set of positioning boxes, and a vibration motor is bolted and installed on the outside of each set of heat insulation plates.
[0020] Preferably, a second sealing groove is opened on one of the corresponding sides of the two sets of forming boxes, and another set of sealing plugs is installed on the other of the corresponding sides of the two sets of forming boxes. A water injection hole is opened at the top of the forming box, and a drain pipe is installed through the bottom of the forming box.
[0021] Compared with the prior art, the beneficial effects of the present invention are:
[0022] 1. The raw material processing component and the forming component are cooperated to melt, pour and form the raw materials. At the same time, the auxiliary liquid cooling component is set to inject water into and cool the forming box inside the positioning box, so as to assist the formed model to cool quickly. After the model is initially formed, the positioning box is pushed out of the placement groove by the pneumatic push rod, and the second rotating plate is pushed by the electric push rod to separate the two sets of positioning boxes. The vibration motor is set to assist the model to break away, and at the same time, the vibration motor can vibrate after the molten raw material is fed into the forming box, so as to avoid the reduction of the model quality caused by bubbles remaining in the model.
[0023] 2. After the model falls into the cooling component, it will flow into the auxiliary liquid cooling component, which can make it more convenient for the staff to take out the cooled model. The auxiliary liquid cooling component and the circulating water tank can recycle the water inside the water tank, better meet the purpose of cooling the model through the liquid, can better and quickly improve the pouring speed of the model, and at the same time, reduce the participation of the staff through the automatic operation mode of the device, greatly reducing the labor cost. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Figure 1 It is a schematic structural diagram of the present invention;
[0025] Figure 2 It is a schematic structural diagram of the rear side of the cooling component of the present invention;
[0026] Figure 3 This is a schematic diagram of the overall structure of the present invention disassembled;
[0027] Figure 4 This is a schematic diagram of the installation structure of the pneumatic push rod of the present invention disassembled;
[0028] Figure 5 This is a schematic diagram of the installation structure of the cover of the present invention disassembled;
[0029] Figure 6 This is a schematic diagram of the installation structure of the positioning box of the present invention disassembled;
[0030] Figure 7 This is a schematic diagram of the installation structure of the forming box of the present invention disassembled.
[0031] In the figure: 1. Cooling component; 2. Raw material processing component; 3. Auxiliary liquid cooling component; 4. Forming component; 5. Water tank; 6. Filter box; 7. Handle; 8. Circulating water tank; 9. Water inlet pipe; 10. Water outlet pipe; 11. Positioning frame; 12. First slot; 13. Top slot; 14. Rotating bracket; 15. Limiting slot; 16. First rotating plate; 17. Heating furnace; 18. Inner tank; 19. Material opening; 20. Barrier cover plate; 21. Side slot; 22. Electric push rod; 23. Second rotating plate; 24. Ear plate; 25. Air pump; 26. Pneumatic push rod; 27. Mounting plate; 28. Water pump; 29. Water extraction pipe; 30. Filter box; 31. Water supply pipe; 32. Connector; 33. Cover; 34. Feed pipe; 35. Connection socket; 36. Limiting frame; 37. Second slot; 38. Placing slot; 39. Positioning slot; 40. Positioning box; 41. Connecting plate; 42. Heat insulation plate; 43. Vibration motor; 44. First sealing groove; 45. Forming box; 46. Second sealing groove. Detailed implementation manners
[0032] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0033] The present invention provides: a combined processing device for liquid-cooled heat dissipation module shell reverse molding, as Figures 1-7As shown in the figure, it includes a cooling component 1. On the upper left side of the cooling component 1, a raw material processing component 2 is provided. On the right side of the raw material processing component 2, an auxiliary liquid cooling component 3 is provided. On the right side of the auxiliary liquid cooling component 3, a forming component 4 is provided. The raw material processing component 2 includes a positioning frame 11 installed on the upper part of the cooling component 1. A first rotating plate 16 is rotatably installed on the upper part of the positioning frame 11. A heating furnace 17 is bolted and installed on the upper surface of the first rotating plate 16. Two groups of second rotating plates 23 are rotatably installed on the left and right sides of the positioning frame 11. A group of pneumatic push rods 26 are installed on the outside of each group of second rotating plates 23. The auxiliary liquid cooling component 3 includes a mounting plate 27 installed on the upper surface of the cooling component 1. Two groups of water pumps 28 are symmetrically installed on the upper part of the mounting plate 27. And a cover 33 installed at the output end of the water pump 28. The forming component 4 includes a limiting frame 36 installed on the upper part of the cooling component 1. A placement groove 38 is opened on the upper part of the limiting frame 36. Two groups of positioning boxes 40 are movably installed inside the placement groove 38. Each group of positioning boxes 40 is bolted and installed with the pneumatic push rod 26. A forming box 45 is installed inside each group of pneumatic push rods 26. The forming box 45 is of a hollow structure, and the forming box 45 is connected and installed with the output end of the water pump 28.
[0034] Preferably, the cooling component 1 includes a water tank 5. A filtering box 6 is clamped and installed on the right side inside the water tank 5. Two groups of handles 7 are symmetrically installed on both sides of the filtering box 6. A circulating water tank 8 is installed on the left side of the water tank 5. A water inlet pipe 9 is installed through the water tank 5 at the input end of the circulating water tank 8. A water outlet pipe 10 is installed through the cooling component 1 at the output end of the circulating water tank 8. The filtering box 6 installed inside the water tank 5 can store the formed models and quickly cool the models, so as to more efficiently complete the mold casting production work of the models. And because the handles 7 installed on both sides of the filtering box 6 enable the staff to uniformly take out the models after a large number of model productions, reducing the staff's participation and improving the processing speed. And the provided circulating water tank 8 can circulate the water inside the water tank 5 to prevent the water temperature from being too high, resulting in a decrease in the cooling rate of the mold.
[0035] Further, a first slot 12 is opened at the lower part of the positioning frame 11 corresponding to the position of the water tank 5. A top slot 13 is opened at the top of the positioning frame 11. A rotating bracket 14 is rotatably installed inside the top slot 13. A limiting slot 15 is opened inside the top slot 13. The first rotating plate 16 is rotatably installed inside the top slot 13, and the front end of the first rotating plate 16 is rotatably installed inside the limiting slot 15. The rotating bracket 14 is rotatably connected to the lower surface of the first rotating plate 16. The first slot 12 opened at the bottom of the positioning frame 11 can ensure the installation position of the water tank 5. The top slot 13 opened at the top of the positioning frame 11 limits the rotating bracket 14. The first rotating plate 16 is controlled to rotate by the work of the rotating bracket 14. And the front end of the first rotating plate 16 is rotatably installed inside the limiting slot 15, so that the first rotating plate 16 rotates backward with the center of the limiting slot 15 as the axis, making the heating furnace 17 tilt forward, so as to complete the purpose of injecting molten raw materials into the forming box 45.
[0036] Furthermore, an inner tank 18 is installed inside the heating furnace 17. Two groups of material inlets 19 are symmetrically installed at both ends of the inner tank 18. A barrier cover plate 20 is covered on the top end of the heating furnace 17. The first rotating plate 16 limits the position of the heating furnace 17. The heating of the heating furnace 17 melts the raw materials inside the inner tank 18. The installed barrier cover plate 20 can prevent the splashing of the raw materials during the heating process. At the same time, the two groups of material inlets 19 can complete the feeding and discharging work.
[0037] It should be noted that two groups of side grooves 21 are symmetrically opened on both sides of the positioning frame 11. Two electric push rods 22 are installed inside each group of side grooves 21. A second rotating plate 23 is rotatably installed inside the side groove 21. An ear plate 24 is installed on the side of the second rotating plate 23. The ear plate 24 is rotatably connected to the telescopic top end of the electric push rod 22. An air pump 25 is bolted and installed on the outside of the second rotating plate 23. A pneumatic push rod 26 is connected to the output end of the air pump 25. The electric push rod 22 inside the side groove 21 supports one end of the second rotating plate 23, thereby controlling the use angle of the pneumatic push rod 26 and completing the control of the use position of the positioning box 40, so that the model can quickly fall off into the filter box 6 after being extended to complete cooling.
[0038] Specifically, a water suction pipe 29 is arranged at the input end of the water pump 28. The water suction pipe 29 penetrates through the mounting plate 27 and extends into the water tank 5. A filter box 30 is commonly connected and installed at the ends of the two water suction pipes 29. A water delivery pipe 31 is installed at the output end of the water pump 28. A connector 32 is installed at the end of the water delivery pipe 31. The filter box 30 at the bottom of the water suction pipe 29 can filter the water body inside the water tank 5 to prevent impurities from being pumped into the water pump 28 and the forming box 45.
[0039] In addition, a feed pipe 34 penetrates through the center of the cover 33. Two connecting sockets 35 are penetrated and opened on both sides of the cover 33 at the position of the feed pipe 34. The connector 32 is hermetically connected to the connecting socket 35. The provided cover 33 seals the forming box 45 to prevent the raw materials in the molten state from leaking out. At the same time, the connector 32 and the water delivery pipe 31 are connected to the connecting socket 35.
[0040] Preferably, a second slot 37 is opened at the lower part of the limiting frame 36 corresponding to the position of the water tank 5. Two positioning slots 39 are opened at the middle positions of both sides of the limiting frame 36 corresponding to the middle parts of the placing slots 38. A connecting plate 41 is fixedly installed on the outside of each positioning box 40. The connecting plate 41 is inserted into the positioning slot 39 and installed movably. The second slot 37 opened at the lower part of the limiting frame 36 serves to limit the position of the water tank 5. The provided placing slots 38 accommodate the two positioning boxes 40. The positioning slots 39 limit the connecting plate 41, so that the pneumatic push rod 26 and the connecting plate 41 can be stably connected and used, thereby controlling the movement and opening of the positioning box 40.
[0041] Specifically, one of the corresponding sides of the two groups of positioning boxes 40 is provided with a first sealing groove 44, and the other group of the corresponding sides of the two groups of positioning boxes 40 is installed with a group of sealing plugs. Each group of positioning boxes 40 is installed with a heat insulation plate 42 on the outside, and each group of heat insulation plates 42 is bolted and installed with a group of vibration motors 43 on the outside. The cooperation of the first sealing groove 44 and a group of sealing plugs enables the two groups of positioning boxes 40 to be sealed, better limiting the forming box 45. The provided heat insulation plate 42 protects the vibration motor 43, and the provided vibration motor 43 can control the internal bubbles in the molten raw material during the forming process and can also ensure that the model is easily separated during the demolding process through vibration.
[0042] Preferably, one of the corresponding sides of the two groups of forming boxes 45 is provided with a second sealing groove 46, and the other group of the corresponding sides of the two groups of forming boxes 45 is installed with another group of sealing plugs. The top of the forming box 45 is provided with a water injection hole, and a drain pipe is installed through the bottom of the forming box 45. The inside of the forming box 45 is a hollow structure, so that the water in the water tank 5 can be injected to assist in cooling the model, thereby improving the die production efficiency.
[0043] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A combined processing device for the reverse mold of a liquid-cooled heat dissipation module shell, characterized in that: It includes a cooling component (1), with a raw material processing component (2) arranged on the upper left side of the cooling component (1), an auxiliary liquid cooling component (3) arranged on the right side of the raw material processing component (2), and a forming component (4) arranged on the right side of the auxiliary liquid cooling component (3); The raw material processing component (2) includes a positioning frame (11) installed on the upper part of the cooling component (1). A first rotating plate (16) is rotatably installed on the upper part of the positioning frame (11). A heating furnace (17) is bolted and installed on the upper surface of the first rotating plate (16). Two groups of second rotating plates (23) are rotatably installed on the left and right sides of the positioning frame (11). A group of pneumatic push rods (26) is installed on the outside of each group of second rotating plates (23); The auxiliary liquid cooling component (3) includes a mounting plate (27) installed on the upper surface of the cooling component (1). Two groups of water pumps (28) are symmetrically installed on the upper part of the mounting plate (27); And a cover (33) installed at the output end of the water pump (28); The forming component (4) includes a limiting frame (36) installed on the upper part of the cooling component (1). A placement groove (38) is opened on the upper part of the limiting frame (36). Two groups of positioning boxes (40) are movably installed inside the placement groove (38). Each group of positioning boxes (40) is bolted and installed with the pneumatic push rod (26). A forming box (45) is installed inside each group of pneumatic push rods (26); The forming box (45) is of a hollow structure and is connected and installed in communication with the output end of the water pump (28).
2. The processing equipment for the combined reverse molding of the liquid-cooled heat dissipation module shell according to claim 1, wherein: The cooling component (1) includes a water tank (5). A filter box (6) is snap - installed on the right side inside the water tank (5). Two groups of handles (7) are symmetrically installed on both sides of the filter box (6). A circulating water tank (8) is installed on the left side of the water tank (5). A water inlet pipe (9) is installed through the water tank (5) at the input end of the circulating water tank (8). A water outlet pipe (10) is installed through the cooling component (1) at the output end of the circulating water tank (8).
3. The processing equipment for the combined reverse mold of the liquid-cooled heat dissipation module shell according to claim 2, characterized in that: A first slot (12) is opened at the lower part of the positioning frame (11) corresponding to the position of the water tank (5). A top slot (13) is opened at the top of the positioning frame (11). A rotating bracket (14) is rotatably installed inside the top slot (13). A limiting slot (15) is opened inside the top slot (13). The first rotating plate (16) is rotatably installed inside the top slot (13), and the front end of the first rotating plate (16) is rotatably installed inside the limiting slot (15). The rotating bracket (14) is rotatably connected to the lower surface of the first rotating plate (16).
4. A processing device for the reverse mold of a combined liquid-cooled heat dissipation module shell according to claim 3, characterized in that: An inner tank (18) is installed inside the heating furnace (17). Two groups of material ports (19) are symmetrically installed at both ends of the inner tank (18). A barrier cover plate (20) covers the top of the heating furnace (17).
5. The processing equipment for the combined die casting of the liquid-cooled heat dissipation module shell according to claim 4, wherein: On both sides of the positioning frame (11), two groups of side grooves (21) are symmetrically opened. Inside each group of side grooves (21), two electric push rods (22) are installed. Inside the side grooves (21), a second rotating plate (23) is rotatably installed. On the side of the second rotating plate (23), an ear plate (24) is installed. The ear plate (24) is rotatably connected to the telescopic top end of the electric push rod (22). Outside the second rotating plate (23), an air pump (25) is bolted and installed. The pneumatic push rod (26) is connected to the output end of the air pump (25).
6. The processing equipment for the combined reverse mold of the liquid-cooled heat dissipation module shell according to claim 5, characterized in that: At the input end of the water pump (28), a water suction pipe (29) is provided. The water suction pipe (29) penetrates through the mounting plate (27) and extends into the water tank (5). At the ends of the two water suction pipes (29), a filter box (30) is commonly connected and installed. At the output end of the water pump (28), a water delivery pipe (31) is installed. At the end of the water delivery pipe (31), a connector (32) is installed.
7. A combined processing device for the reverse molding of a liquid-cooled heat dissipation module housing according to claim 6, characterized in that: In the center of the cover (33), a feed pipe (34) is penetrated and installed. On both sides of the cover (33) where the feed pipe (34) is located, two connecting sockets (35) are penetrated and opened. The connector (32) is hermetically connected to the connecting socket (35).
8. A processing device for the reverse mold of a combined liquid-cooled heat dissipation module shell according to claim 7, characterized in that: At the lower part of the limiting frame (36), a second slot (37) is opened corresponding to the position of the water tank (5). At the middle positions of the two sides of the limiting frame (36) corresponding to the placing grooves (38), two positioning grooves (39) are opened. On the outside of each positioning box (40), a connecting plate (41) is fixedly installed. The connecting plate (41) is inserted into the positioning groove (39) and installed movably.
9. A processing device for the die-casting of a combined liquid-cooled heat dissipation module housing according to claim 8, characterized in that: On one side of the corresponding sides of the two positioning boxes (40), a first sealing groove (44) is opened. On the other side of the corresponding sides of the two positioning boxes (40), a sealing plug is installed. On the outside of each positioning box (40), a heat insulation plate (42) is installed. And on the outside of each heat insulation plate (42), a vibration motor (43) is bolted and installed.
10. A combined processing device for the reverse molding of a liquid-cooled heat dissipation module housing according to claim 9, characterized in that: On one side of the corresponding sides of the two forming boxes (45), a second sealing groove (46) is opened. On the other side of the corresponding sides of the two forming boxes (45), another sealing plug is installed. At the top of the forming box (45), a water injection hole is opened. At the bottom of the forming box (45), a drain pipe is penetrated and installed.