Alloy die-casting forming device
Through the automated conveying, clamping and cooling design of the alloy die-casting molding device, the large workload and scalding risks of manual discharge are solved, and efficient and safe alloy workpiece treatment is achieved.
Patent Information
- Application Number
- CN202422332788.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-25
- Publication Date
- 2025-09-02
- Estimated Expiration
- 2034-09-25
AI Technical Summary
During the die-casting process of existing alloys, manual discharge of staff not only increases workload and physical energy consumption, but also has a risk of scalding, and it is impossible to complete the discharge quickly and safely.
An alloy die-casting molding device is designed, including assembly parts, conveying parts, placement parts and cooling parts. It uses components such as conveying motors, movable cylinders, servo motors and other components to achieve automatic conveying, clamping and pushing alloy materials, and combines cooling water pipes and heat dissipation fans for rapid cooling and collection.
Automatic cutting is achieved, reducing the workload and scalding risks of staff, improving work efficiency and safety, and ensuring rapid cooling and unified collection of alloy workpieces.
Smart Images

Figure CN223288960U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of alloy processing, in particular to an alloy die-casting molding device. Background Art
[0002] Die casting is a metal casting process characterized by applying high pressure to the molten metal in the mold cavity. The mold is usually made of a higher-strength alloy. This process is somewhat similar to injection molding. Most die-cast castings do not contain iron, such as zinc, copper, aluminum, magnesium, lead, tin, lead-tin alloys and their alloys. In the existing technology, die casting is usually achieved through a normal die-casting machine. After processing, workers are often required to pick up and take out the processed materials with pliers. The manual unloading method of workers not only increases the workload of workers, consumes a lot of physical strength of workers, and reduces the efficiency of unloading, but also increases the risk of workers being burned when manually unloading, thereby increasing the danger of workers when manually unloading, and failing to unload materials quickly and safely. Utility Model Content
[0003] In order to achieve the above-mentioned purpose, the embodiment of the present invention provides an alloy die-casting molding device, comprising
[0004] An assembly component, wherein the assembly component is fixedly arranged on the outside of the molding device body;
[0005] A conveying component, the conveying component is fixedly arranged at the rear end of the molding device body;
[0006] A placing component, the placing component is fixedly arranged at the front end of the molding device body;
[0007] A cooling component, the cooling component is fixedly arranged at the lower end of the placement component;
[0008] A movable component is movably arranged on the upper end of the placement component, wherein:
[0009] The assembly component can provide a space for fixing and installing the molding device body. The alloy can be transported to the interior of the molding device body through the transport component for die casting, and then the alloy can be transported to the interior of the placement component through the movable component for cooling through the cooling component.
[0010] Furthermore, the assembly components include:
[0011] An assembly frame, the assembly frame being fixedly arranged on the outside of the molding device body;
[0012] A support base, the support base being fixedly arranged at the bottom end of the assembly frame;
[0013] An oil cylinder, the oil cylinder being movably arranged on the top of the assembly frame;
[0014] An upper mold, the upper mold being movably arranged at the upper end of the assembly frame and capable of being raised and lowered by the oil cylinder;
[0015] An electric telescopic rod, the electric telescopic rod being movably arranged on the upper end of the support base;
[0016] A workbench, the workbench being fixedly arranged on the upper end of the electric telescopic rod;
[0017] A lower mold is fixedly arranged on the upper end of the workbench.
[0018] Furthermore, the conveying component includes:
[0019] A conveying frame, the conveying frame being fixedly arranged at the rear end of the assembly frame;
[0020] Mounting frames, with two sets of mounting frames fixedly disposed at the front and rear ends of the conveying frame in mirror image;
[0021] Conveying motors, two groups of conveying motors are fixedly mounted on one end of the two groups of mounting frames in mirror image;
[0022] A conveyor belt, the conveyor belt being movably arranged inside the mounting frame;
[0023] The guide plates are fixedly arranged at both ends of the two groups of mounting frames in a mirror-image manner.
[0024] Furthermore, the placement component includes:
[0025] A placement frame, the placement frame being fixedly arranged at the front end of the assembly frame;
[0026] A feeding port, the feeding port being opened at the upper end of the placement frame;
[0027] A collection box, the collection box being movably disposed inside the placement frame;
[0028] Slide grooves, wherein two sets of slide grooves are mirror-imaged and arranged on the inner side of the bottom end of the placement frame;
[0029] Slide blocks, two groups of the slide blocks are fixedly arranged at the bottom end of the collection box and the two groups of the slide blocks are matched with the two groups of the slide blocks.
[0030] Furthermore, the cooling component includes:
[0031] A hanging frame, the hanging frame is fixedly arranged at the lower end of the placement frame;
[0032] A cooling box, the cooling box being fixedly arranged on the upper end of the hanging frame;
[0033] A cooling water pipe, the cooling water pipe being fixedly arranged inside the cooling box;
[0034] A circulating cooling water pump, wherein the circulating cooling water pump is fixedly arranged at the right end of the molding device body and one end of the cooling water pipe is connected to the circulating cooling water pump;
[0035] Heat dissipation holes, a plurality of heat dissipation holes are provided at the bottom end of the placement frame;
[0036] The two groups of heat dissipation fans are fixedly arranged at both ends of the placement frame in a mirror-image manner.
[0037] Furthermore, the movable parts include:
[0038] Movable racks, wherein two sets of movable racks are fixedly disposed on the upper end of the placement frame and inside the assembly frame in a mirror-image manner;
[0039] Movable slots, wherein a plurality of movable slots are mirror-imaged and disposed on the inner sides of both ends of the two sets of movable frames;
[0040] Movable shafts, two groups of movable shafts being rotatably disposed inside the plurality of movable slots;
[0041] Push plates, the two groups of push plates are movably arranged inside the two groups of movable frames through the two groups of movable shafts, and the two groups of push plates are matched with the two groups of movable shafts;
[0042] Servo motors, two groups of servo motors are fixedly arranged at the front ends of the two groups of movable frames in a mirror-image manner;
[0043] The clamping component is movably arranged on the inner side of the pushing plate.
[0044] Furthermore, the clamping component includes:
[0045] Movable cylinders, a plurality of movable cylinders are arranged in a mirror-like manner at the front ends of the inner sides of the two groups of push plates;
[0046] The clamping blocks are mirror-imaged and fixedly arranged at the front ends of the movable cylinders.
[0047] Compared with the prior art, the embodiments of the present invention have the following beneficial effects:
[0048] When the alloy die-casting molding device is in use, the staff can use the two groups of conveying motors to drive the conveyor belt to convey the alloy material that needs to be die-cast. At the same time, the two groups of guide plates can prevent the internal alloy material from falling off and causing safety hazards. After the alloy material reaches the workbench, the two groups of clamping blocks can be driven by the several movable cylinders to extend and retract to clamp the alloy material to a specified position. The upper mold and the electric telescopic rod drive the lower mold to perform die-casting. After that, the two groups of servo motors drive the two groups of movable shafts to drive the two groups of push plates to press the alloy material. The cast alloy workpiece is pushed so that it falls into the collection box through the feed port, which can effectively avoid the risk of workers being scalded when manually unloading, reduce the workload of workers and improve work efficiency. The cooling water pipe at the lower end can cooperate with several heat dissipation holes and two groups of heat dissipation fans to quickly cool the workpiece inside the collection box. After the die-casting work is completed, the staff can extract the collection box by sliding between the two groups of slides and the two groups of sliders, and collect the alloy workpieces in a unified manner, effectively improving work efficiency while reducing the danger of workers manually unloading. BRIEF DESCRIPTION OF THE DRAWINGS
[0049] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0050] Figure 1 Shows an axonometric view of the present invention;
[0051] Figure 2 Shows an axial side expansion view of the utility model;
[0052] Figure 3 Shows a front view of the utility model;
[0053] Figure 4 Shown is a left side view of the present invention.
[0054] In the picture:
[0055] a molding device body;
[0056] Assembly parts; 21. Assembly frame; 22. Support seat; 23. Oil cylinder; 24. Upper mold;
[0057] 25. Electric telescopic rod; 26. Workbench; 27. Lower mold;
[0058] Conveying components; 31. Conveying frame; 32. Mounting frame; 33. Conveying motor; 34. Conveying belt;
[0059] 35. Guide plate;
[0060] Place components; 41. Place frame; 42. Feed port; 43. Collecting box; 44. Chute;
[0061] 45. Slider;
[0062] Cooling components; 51, hoisting frame; 52, cooling box; 53, cooling water pipe; 54, circulating cold water pump; 55, heat dissipation hole; 56, cooling fan;
[0063] Movable parts; 61, movable frame; 62, movable slot; 63, movable shaft; 64, push plate;
[0064] Servo motor;
[0065] 7. Clamping component; 71. Movable cylinder; 72. Clamping block. DETAILED DESCRIPTION
[0066] Now the utility model is further described in detail with reference to the accompanying drawings. Figure 1 , Figure 1 Shows an axonometric view of the present invention; see Figure 2 , Figure 2 Shows the axial side expansion diagram of the utility model; please refer to Figure 3 , Figure 3 Shows a front view of the present invention; see Figure 4 , Figure 4 Shows a left view of the utility model; Figure 1-4 As shown, an alloy die-casting molding device includes
[0067] An assembly component 2, wherein the assembly component 2 is fixedly arranged on the outside of the molding device body 1;
[0068] A conveying component 3, wherein the conveying component 3 is fixedly arranged at the rear end of the molding device body 1;
[0069] A placing component 4, wherein the placing component 4 is fixedly arranged at the front end of the molding device body 1;
[0070] A cooling component 5, wherein the cooling component 5 is fixedly arranged at the lower end of the placement component 4;
[0071] a movable component 6, the movable component 6 being movably disposed on the upper end of the placement component 4; the assembly component 2 being capable of providing a space for fixing and installing the molding device body 1; the alloy being transported to the interior of the molding device body 1 by the transport component 3 for die-casting; and then being transported to the interior of the placement component 4 by the movable component 6 for cooling by the cooling component 5;
[0072] When the alloy die-casting molding device is in use, the staff can use the two groups of conveying motors 33 to drive the conveyor belt 34 to convey the alloy material that needs to be die-cast. At the same time, the two groups of guide plates 35 can prevent the internal alloy material from falling off and causing safety hazards. After the alloy material reaches the workbench 26, the two groups of clamping blocks 72 can be driven by the several movable cylinders 71 to extend and retract to clamp the alloy material to the specified position. The upper mold 24 and the electric telescopic rod 25 are driven by the oil cylinder 23 to drive the lower mold 27 for die-casting. After that, the two groups of servo motors 65 drive the two groups of movable shafts 63 to drive the two groups of push plates 64 pushes the die-cast alloy workpiece so that it falls into the collection box 43 through the feed port 42, which can effectively avoid the risk of workers being scalded when manually unloading, reduce the workload of workers and improve work efficiency. The cooling water pipe 53 at the lower end can cooperate with several heat dissipation holes 55 and two groups of heat dissipation fans 56 to quickly cool the workpiece inside the collection box 43. After the die-casting work is completed, the staff can extract the collection box 43 by sliding between the two groups of chutes 44 and the two groups of sliders 45, and collect the alloy workpieces in a unified manner, effectively improving work efficiency while reducing the danger of workers manually unloading.
[0073] Optionally, the assembly component 2 includes:
[0074] An assembly frame 21, the assembly frame 21 is fixedly arranged on the outside of the molding device body 1;
[0075] A support base 22, the support base 22 is fixedly disposed at the bottom end of the assembly frame 21;
[0076] An oil cylinder 23 is movably disposed on the top of the assembly frame 21;
[0077] An upper mold 24 , the upper mold 24 being movably disposed at the upper end of the assembly frame 21 and capable of being raised and lowered by the oil cylinder 23 ;
[0078] An electric telescopic rod 25 movably disposed on an upper end of the support base 22 ;
[0079] A workbench 26, the workbench 26 is fixedly arranged on the upper end of the electric telescopic rod 25;
[0080] The lower mold 27 is fixedly arranged on the upper end of the workbench 26. The assembly frame 21 can provide a space for fixing and installing the support seat 22 and the workbench 26. The alloy material is die-casted by mutual extrusion between the upper mold 24 and the lower mold 27.
[0081] Optionally, the conveying component 3 includes:
[0082] A conveying frame 31, wherein the conveying frame 31 is fixedly arranged at the rear end of the assembly frame 21;
[0083] Mounting racks 32, two sets of mounting racks 32 are fixedly disposed at the front and rear ends of the conveying frame 31 in a mirror-image manner;
[0084] Conveying motors 33, two groups of conveying motors 33 are fixedly mounted at one end of two groups of mounting brackets 32 in a mirror-image manner;
[0085] A conveyor belt 34 movably disposed inside the mounting frame 32 ;
[0086] The guide plates 35 are mirror-fixed at both ends of the two groups of mounting frames 32. The conveying frame 31 can provide a space for fixing and installing the mounting frames 32 and the conveying motors 33. The conveying belts 34 are driven by the two groups of conveying motors 33 to convey the alloy materials, thereby improving work efficiency. The two groups of guide plates 35 can prevent the alloy materials inside the conveying belts 34 from falling off and causing safety hazards.
[0087] Optionally, the placement component 4 includes:
[0088] A placement frame 41, wherein the placement frame 41 is fixedly arranged at the front end of the assembly frame 21;
[0089] A feeding port 42, the feeding port 42 is opened at the upper end of the placement frame 41;
[0090] A collection box 43, the collection box 43 is movably disposed inside the placement frame 41;
[0091] Slide grooves 44, two sets of slide grooves 44 are mirror-imaged and opened on the inner side of the bottom end of the placement frame 41;
[0092] Sliders 45, two groups of the slides 45 are fixedly arranged at the bottom of the collection box 43 and the two groups of the slide grooves 44 match the two groups of the slides 45. The placement frame 41 can provide space for the collection box 43 to move and install. The collection box 43 can be extracted by sliding between the two groups of the slide grooves 44 and the two groups of the slides 45.
[0093] Optionally, the cooling component 5 includes:
[0094] A hanging frame 51, the hanging frame 51 is fixedly arranged at the lower end of the placement frame 41;
[0095] A cooling box 52, the cooling box 52 is fixedly arranged on the upper end of the hanging frame 51;
[0096] A cooling water pipe 53, the cooling water pipe 53 is fixedly disposed inside the cooling box 52;
[0097] A circulating cold water pump 54, which is fixedly arranged at the right end of the molding device body 1 and one end of the cooling water pipe 53 is connected to the circulating cold water pump 54;
[0098] Heat dissipation holes 55, a plurality of heat dissipation holes 55 are provided at the bottom end of the placement frame 41;
[0099] The cooling fans 56 are mirror-imaged and fixedly mounted at both ends of the placement frame 41 . The hanging frame 51 can provide a space for fixing and installing the cooling box 52 . The cooling water pipe 53 can cool the interior through the circulating cold water pump 54 .
[0100] Optionally, the movable component 6 includes:
[0101] Movable racks 61, two sets of movable racks 61 are fixedly disposed at the upper end of the placement frame 41 and inside the assembly frame 21 in a mirror-image manner;
[0102] Movable slots 62, wherein a plurality of movable slots 62 are mirror-imaged and disposed on the inner sides of both ends of the two sets of movable frames 61;
[0103] Movable shafts 63, two groups of movable shafts 63 are rotatably disposed inside the plurality of movable slots 62;
[0104] Push plates 64, two groups of push plates 64 are movably arranged inside the two groups of movable frames 61 through the two groups of movable shafts 63, and the two groups of push plates 64 match the two groups of movable shafts 63;
[0105] Servo motors 65, two groups of servo motors 65 are fixedly disposed at the front ends of the two groups of movable frames 61 in a mirror-image manner;
[0106] The clamping component 7 is movably arranged on the inner side of the pushing plate 64. The two groups of movable frames 61 can provide space for installation and movement of the two groups of movable shafts 63 and the two groups of pushing plates 64, and at the same time limit the range of movement of the two groups of movable shafts 63 so that they can only rotate around their own axes, thereby driving the two groups of pushing plates 64 to move horizontally.
[0107] Optionally, the clamping component 7 includes:
[0108] A plurality of movable cylinders 71 are arranged in a mirror-like manner at the inner front ends of the two groups of push plates 64;
[0109] The clamping blocks 72 are fixedly arranged at the front ends of the plurality of movable cylinders 71 in a mirror-image manner. The plurality of movable cylinders 71 can drive the two groups of clamping blocks 72 to extend and retract to clamp and transport the alloy material.
[0110] Working principle: When the alloy die-casting molding device is used, in the first step, the staff can use the two groups of conveying motors 33 to drive the conveyor belt 34 to convey the alloy material to be die-cast. At the same time, the two groups of guide plates 35 can prevent the internal alloy material from falling off. In the second step, after the alloy material reaches the workbench 26, the two groups of clamping blocks 72 can be driven by the plurality of movable cylinders 71 to extend and retract to clamp the alloy material to the specified position. The upper mold 24 and the electric telescopic rod 25 are driven by the oil cylinder 23 to drive the lower mold 27. Die casting is carried out. In the third step, the two groups of servo motors 65 drive the two groups of movable shafts 63 to drive the two groups of push plates 64 to push the die-cast alloy workpiece, so that it falls into the collection box 43 through the feed port 42. In the fourth step, the cooling water pipe 53 at the lower end can cooperate with the plurality of heat dissipation holes 55 and the two groups of heat dissipation fans 56 to quickly cool the workpiece inside the collection box 43. The staff can extract the collection box 43 by sliding between the two groups of slide grooves 44 and the two groups of sliders 45.
Claims
1. An alloy die-casting device, characterized in that: include An assembly component (2), the assembly component (2) being fixedly arranged on the outside of the molding device body (1); A conveying component (3), the conveying component (3) being fixedly arranged at the rear end of the molding device body (1); A placement component (4), the placement component (4) being fixedly arranged at the front end of the molding device body (1); A cooling component (5), the cooling component (5) being fixedly arranged at the lower end of the placement component (4); A movable component (6), the movable component (6) is movably arranged on the upper end of the placement component (4), wherein: The assembly component (2) can provide a space for fixing and installing the molding device body (1). The alloy can be transported to the interior of the molding device body (1) through the transport component (3) for die-casting, and then the alloy is transported to the interior of the placement component (4) through the movable component (6) and cooled by the cooling component (5).
2. The alloy die-casting device according to claim 1, characterized in that: The assembly component (2) comprises: An assembly frame (21), the assembly frame (21) being fixedly arranged on the outside of the molding device body (1); A support seat (22), wherein the support seat (22) is fixedly arranged at the bottom end of the assembly frame (21); An oil cylinder (23), the oil cylinder (23) being movably arranged on the top of the assembly frame (21); An upper mold (24), the upper mold (24) is movably arranged at the upper end of the assembly frame (21) and the upper mold (24) can be driven to rise and fall by the oil cylinder (23); An electric telescopic rod (25), the electric telescopic rod (25) being movably arranged on the upper end of the support seat (22); A workbench (26), the workbench (26) being fixedly arranged on the upper end of the electric telescopic rod (25); A lower mold (27), wherein the lower mold (27) is fixedly arranged on the upper end of the workbench (26).
3. The alloy die-casting device according to claim 2, characterized in that: The conveying component (3) comprises: A conveying frame (31), wherein the conveying frame (31) is fixedly arranged at the rear end of the assembly frame (21); Mounting frames (32), two sets of mounting frames (32) are fixedly arranged at the front and rear ends of the conveying frame (31) in a mirror-image manner; Conveying motors (33), wherein two groups of conveying motors (33) are fixedly mounted in mirror images on one end of the two groups of mounting frames (32); a conveyor belt (34), the conveyor belt (34) being movably arranged inside the mounting frame (32); Guide plates (35), two groups of guide plates (35) are fixedly arranged at both ends of the two groups of mounting frames (32) in a mirror-image manner.
4. The alloy die-casting device according to claim 3, characterized in that: The placement component (4) includes: A placement frame (41), wherein the placement frame (41) is fixedly arranged at the front end of the assembly frame (21); A feeding port (42), the feeding port (42) being opened at the upper end of the placement frame (41); A collection box (43), the collection box (43) being movably arranged inside the placement frame (41); Slide grooves (44), wherein two groups of slide grooves (44) are mirror-imaged and opened on the inner side of the bottom end of the placement frame (41); Slide blocks (45), two groups of the slide blocks (45) are fixedly arranged at the bottom end of the collection box (43) and the two groups of the chute (44) are matched with the two groups of the slide blocks (45).
5. The alloy die-casting device according to claim 4, characterized in that: The cooling component (5) comprises: A hanging frame (51), wherein the hanging frame (51) is fixedly arranged at the lower end of the placement frame (41); A cooling box (52), the cooling box (52) being fixedly arranged on the upper end of the hanging frame (51); a cooling water pipe (53), the cooling water pipe (53) being fixedly arranged inside the cooling box (52); a circulating cold water pump (54), wherein the circulating cold water pump (54) is fixedly arranged at the right end of the molding device body (1) and one end of the cooling water pipe (53) is connected to the circulating cold water pump (54); Heat dissipation holes (55), wherein a plurality of the heat dissipation holes (55) are provided at the bottom end of the placement frame (41); Heat dissipation fans (56), two groups of heat dissipation fans (56) are fixedly arranged at both ends of the placement frame (41) in a mirror-image manner.
6. The alloy die-casting device according to claim 5, characterized in that: The movable part (6) comprises: Movable racks (61), two sets of movable racks (61) are fixedly arranged in mirror image at the upper end of the placement frame (41) and inside the assembly frame (21); Movable grooves (62), wherein a plurality of the movable grooves (62) are mirror-imaged and opened on the inner sides of both ends of the two sets of movable frames (61); Movable shafts (63), two groups of movable shafts (63) are rotatably arranged inside the plurality of movable grooves (62); Push plates (64), the two groups of push plates (64) are movably arranged inside the two groups of movable frames (61) through the two groups of movable shafts (63), and the two groups of push plates (64) are matched with the two groups of movable shafts (63); Servo motors (65), two groups of servo motors (65) are fixedly arranged at the front ends of the two groups of movable frames (61) in a mirror-image manner; A clamping component (7), wherein the clamping component (7) is movably arranged inside the pushing plate (64).
7. The alloy die-casting device according to claim 6, characterized in that: The clamping component (7) comprises: Movable cylinders (71), wherein a plurality of movable cylinders (71) are arranged in a mirror-like manner at the front ends of the inner sides of the two groups of push plates (64); Clamping blocks (72), two groups of the clamping blocks (72) are fixedly arranged in a mirror image at the front ends of the plurality of movable cylinders (71).