An automatic die-casting mechanism for preparing aluminum alloy fittings
By designing an automated die-casting mechanism, the problem of manual operation for powder filling in aluminum alloy die-casting equipment was solved, realizing automated material conveying and cleaning, and improving production efficiency and safety.
Patent Information
- Application Number
- CN202511009701.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-22
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2045-07-22
AI Technical Summary
Existing aluminum alloy die-casting equipment requires manual operation during the powder filling process, resulting in low production efficiency and safety hazards.
An automated die-casting mechanism for aluminum alloy parts manufacturing was designed, including a main frame assembly, a receiving assembly, a drive assembly, a cleaning assembly, and a feeding assembly. The mechanism achieves automated material conveying, cleaning, and unloading through sliding and lifting mechanisms, reducing manual intervention.
It has enabled automated production of aluminum alloy parts, improved production efficiency, reduced safety risks, simplified processes, and increased the degree of automation in production.
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Figure CN120772494B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of metal processing equipment technology, and in particular to an automated die-casting mechanism for preparing aluminum alloy parts. Background Technology
[0002] With the continuous development of technology, the use of various metal parts in daily life has increased, leading to a greater demand for metal components. Metal components have good stability and can reliably support and connect other components. They can also be used in various mechanical equipment. Based on the material, metal components are divided into various types, such as cast iron, stainless steel, or aluminum alloy. Among them, aluminum alloys are lighter than other commonly used metals, have certain oxidation and corrosion resistance, and are easy to process while maintaining stable strength. With its comprehensive advantages of being "light, strong, durable, and easy to process," aluminum alloy components have become an indispensable material in modern industry. Their application range extends from high-end aerospace to daily consumer products, continuously driving technological progress and lightweight innovation in various industries.
[0003] Aluminum alloys have good heat dissipation properties. Aluminum alloys are usually processed by various methods such as extrusion and forging. Among them, metal parts made by powder die casting profiles can be formed quickly, but the workpieces need to be manually cut. At the same time, the powder filling also needs to be done manually, which increases the production process, reduces production efficiency, and poses certain safety hazards.
[0004] Application No.: CN202411008066.5. This invention provides a rapid die-casting equipment for aluminum alloy die castings, including a die-casting mechanism and a die-casting mold. The die-casting mold includes a concave mold, a convex mold, an injection top block, a lifting mechanism, and a high-pressure injection mechanism. The concave mold has a rectangular cavity recessed on its surface, and the convex mold has a rectangular protrusion at its bottom. After the concave mold and the convex mold are closed, a forming cavity for a rectangular frame is formed between the rectangular cavity and the rectangular protrusion. The injection top block divides the forming cavity into four non-communicating forming channels, allowing the molten metal entering the forming channels to move smoothly in a straight line along the parallel direction of the forming channels, entering the forming channels in a laminar flow manner. This prevents gas from being entrained in the molten metal, avoiding the generation of porosity. Furthermore, the four injection top blocks simultaneously inject liquid into the four forming channels, allowing the molten metal to quickly fill the forming channels in a short time, thus improving the forming rate of the rectangular frame. Summary of the Invention
[0005] This invention provides an automated die-casting mechanism for aluminum alloy parts manufacturing. First, a receiving component is slidably installed on the main frame assembly. The receiving slot of the receiving component facilitates the receiving of materials from the feeding assembly. The outer end of the receiving component is connected to the drive assembly. A part of the drive assembly is installed in the lifting part of the device, so that when the drive assembly descends, it provides sliding drive for the receiving component. A cleaning component is installed at the front end of the receiving component. The cleaning component can remove excess powder and push the die-cast metal workpiece to the feeding assembly, which facilitates unloading and achieves better automated operation.
[0006] This invention provides an automated die-casting mechanism for preparing aluminum alloy parts, specifically including: a main frame assembly; the main frame assembly has a support platform located in the middle of the overall device, a processing groove is provided on the support platform, a metal workpiece is placed in the processing groove of the support platform, a feeding assembly is installed at the front end of the support platform, a driving assembly is installed at the top of the main frame assembly, a receiving assembly is slidably installed on the support platform, a cleaning assembly is installed at the front end of the receiving assembly, the cleaning assembly is in contact with the support platform, an extension frame is added at the front end of the receiving assembly, the extension frame is located at the front end of the cleaning assembly, and a feeding assembly is provided at the upper end of the rear side of the support platform.
[0007] Furthermore, a vertical support plate is provided between the base plate of the main frame assembly and the support platform. An auxiliary frame is installed at the bottom of the processing groove on the support platform, and the bottom of the auxiliary frame is simultaneously slidably mounted on the support plate. A die-casting platform is installed at the top of the support platform, and the protruding part at the bottom of the die-casting platform corresponds to the processing groove.
[0008] Furthermore, the feeding plate of the feeding assembly is hinged to the front end of the support platform, and two sets of support blocks are provided at the bottom of the support platform near the feeding plate. A leaf spring is installed between the support blocks and the feeding plate.
[0009] Furthermore, the top slide of the drive assembly is installed on the outer end of the die-casting platform of the main frame assembly. Drive plates are installed on both sides of the top slide, and guide groove structures are provided on the drive plates. The guide grooves of the drive plates are set in two groups. The extension plate of the drive assembly is fixed on the receiving assembly. Two sets of connecting columns are provided on the outer end of the extension plate. The connecting columns are directly slidably installed in the guide grooves of the drive plate. The guide grooves of the drive plate are set in an inclined shape.
[0010] Furthermore, the guide strip of the receiving component is set on the support platform, the fixed slide plate of the receiving component is plate-shaped, the fixed slide plate is slidably installed on the support platform, the bottom of the fixed slide plate corresponds to the guide strip of the support platform, a receiving groove is installed on the fixed slide plate, the receiving groove is set to expand outward, an expansion groove is set at the rear side of the receiving groove, and a vibration motor is set at the bottom of the expansion groove.
[0011] Furthermore, the rack of the cleaning component is set on the support platform, and the cleaning roller of the cleaning component is rotatably installed at the front end of the receiving component. Two sets of driven wheels are rotatably installed at both ends of the cleaning roller. The bottom driven wheel corresponds to the rack, and the upper driven wheel is fixed to the cleaning roller. The two sets of driven wheels are in contact with each other. The driven wheel at the outer end of the cleaning roller adopts a ratchet structure.
[0012] Furthermore, the top of the feeding rack of the feeding assembly is provided with a spacer slot plate, both ends of the feeding rack are provided with extension plates, an external cylinder is provided on the feeding rack, the top of the external cylinder is connected to an external pipeline, a bottom slide groove is provided at the bottom of the feeding rack, a bottom slide plate is slidably installed at the bottom slide groove, a tension spring structure is installed at the upper end of the bottom slide plate, and a trigger plate is fixed at the bottom of the bottom slide plate.
[0013] This invention provides an automated die-casting mechanism for the preparation of aluminum alloy parts, which has the following advantages:
[0014] In this invention, the main frame assembly is die-cast. A receiving component is slidably mounted on the support platform. A feeding component is installed at the top rear of the receiving component on the support platform. Both ends of the receiving component are connected to a drive component, which is fixed to the lifting section of the main frame assembly. Thus, when the main frame assembly is raised or lowered, the drive component drives the lifting motion. Simultaneously, the drive plate groove of the drive component drives the extension plate, enabling it to slide back and forth. The extension plate is fixed to the receiving component, achieving the driving effect of the drive component on the receiving component. When the receiving component slides rearward, it allows the feeding component to... When the drive is activated, the material from the feeding component is discharged into the receiving component. When the drive component rises and slides the receiving component to the front, the material from the receiving component is filled into the main frame component. At the same time, the cleaning component of the receiving component can remove excess dust. An extension frame is installed at the front of the receiving component, which can directly push out the die-cast metal workpiece, making it easier for the metal workpiece that slides to the unloading component to be discharged. A support block is installed at the hinge of the unloading component. The support block gives the unloading plate a certain degree of elasticity, so that when the unloading component receives the metal workpiece as a whole, it achieves a buffering effect on the metal workpiece during unloading.
[0015] In addition, when the metal workpiece of the device is first pushed to the unloading plate, the unloading plate is first supported by the leaf spring at the support block. The leaf spring makes the unloading plate elastic, so that when the unloading plate picks up the metal workpiece, the unloading plate will drop slightly to facilitate the discharge of the metal workpiece, thus completing the auxiliary annular groove unloading function of the device for the metal workpiece.
[0016] Furthermore, the top slide is directly fixed to the die-casting table, allowing it to rise and fall synchronously. Drive plates with guide grooves at both ends of the top slide are provided, featuring a double-layered guide groove structure that guides the gas components. An extension plate is fixed to the receiving assembly, with two sets of connecting posts at its outer end. These posts are positioned within the guide grooves of the drive plate. When the drive plate rises and falls, the guide grooves control the extension plate's movement, allowing the top slide to slide back and forth. The extension plate, fixed to the receiving assembly, is then driven by the drive assembly.
[0017] In addition, guide bars are directly installed on the support platform, and grooves are set at the bottom of the fixed slide plate corresponding to the guide bars, so that the fixed slide plate can slide stably on the support platform through the guide bars. This allows the receiving slot at the fixed slide plate to be adjusted to any sliding position, so as to achieve the conveying function after the receiving slot at the fixed slide plate receives the material. When the device receives the material, an expansion slot is set at the rear of the receiving slot, so that the expansion slot can help expand the range of material receiving. At the same time, a vibration motor is installed at the bottom outer end of the expansion slot, so that after the receiving slot receives the material, the operation of the vibration motor can better vibrate the material and facilitate the introduction of the material.
[0018] Furthermore, when the device is in use, the driven wheel at the bottom position meshes with the rack, causing the driven wheel at the receiving component to rotate. The bottom driven wheel then drives the top driven wheel, causing the cleaning roller to rotate as a whole. The rotating cleaning roller then contacts the support platform. As the receiving component slides back and forth, the cleaning component rotates, allowing the cleaning roller to rotate the support platform and assist in cleaning it. By using a one-way ratchet structure for the driven wheel at the cleaning roller, the device enables the driven wheel to drive the cleaning roller in one direction only, allowing the cleaning roller to operate in only one direction.
[0019] Furthermore, spacer slots are directly installed on the feeding rack to facilitate external fixation. Extension plates are also installed at both ends of the feeding rack, providing additional fixation options. The top of the external cylinder of the feeding rack can be connected to external pipelines for material introduction and filling. A bottom slide groove is directly installed at the bottom of the feeding rack, and a bottom slide plate is slidably installed there. A tension spring is added to the upper end of the bottom slide plate so that it can be reset by the tension spring after being opened. The trigger plate installed at the bottom of the bottom slide plate can be adjusted in position, allowing the rearward-moving receiving component to directly contact the trigger plate. This trigger plate pushes against the bottom slide plate, driving it to slide and thus opening the bottom slide plate to release the material from the feeding rack. Attached Figure Description
[0020] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings of the embodiments will be briefly described below.
[0021] The accompanying drawings described below are only related to some embodiments of the invention and are not intended to limit the invention.
[0022] In the attached diagram:
[0023] Figure 1 A schematic diagram of the overall structure of this application is shown;
[0024] Figure 2 A schematic diagram of the top carriage structure of this application is shown;
[0025] Figure 3 A schematic diagram of the cross-sectional structure of the main frame assembly of this application is shown;
[0026] Figure 4 A schematic diagram of the material feeding assembly structure of this application is shown;
[0027] Figure 5 A schematic diagram of the access component structure of this application is shown;
[0028] Figure 6 A schematic diagram of the drive component structure of this application is shown;
[0029] Figure 7 A schematic diagram of the feeding assembly structure of this application is shown;
[0030] Figure 8 This application shows Figure 4 A schematic diagram of the enlarged portion of the structure at point A in the middle;
[0031] List of reference numerals
[0032] 1. Main frame assembly; 101. Base plate; 102. Support platform; 103. Support plate; 104. Auxiliary frame; 105. Die-casting platform;
[0033] 2. Feeding assembly; 201. Feeding plate; 202. Support block;
[0034] 3. Drive assembly; 301. Top slide; 302. Drive board; 303. Extension board; 304. Connecting column;
[0035] 4. Receiving component; 401. Fixed slide plate; 402. Receiving slot; 403. Expansion slot; 404. Guide bar;
[0036] 5. Cleaning assembly; 501. Cleaning roller; 502. Driven wheel; 503. Rack;
[0037] 6. Feeding assembly; 601. Feeding rack; 602. Bottom slide; 603. External cylinder; 604. Bottom slide plate; 605. Trigger plate;
[0038] 7. Metal workpieces;
[0039] 8. Extension rack. Detailed Implementation
[0040] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of the present invention. Based on the described embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0041] Example 1: Please refer to Figures 1 to 8 :
[0042] This invention proposes an automated die-casting mechanism for preparing aluminum alloy parts, comprising: a main frame assembly 1; a support platform 102 of the main frame assembly 1 is located in the middle of the overall device, a processing groove is provided on the support platform 102, a metal workpiece 7 is provided in the processing groove of the support platform 102, a feeding assembly 2 is installed at the front end of the support platform 102, a driving assembly 3 is installed at the top of the main frame assembly 1, a receiving assembly 4 is slidably installed on the support platform 102, a cleaning assembly 5 is installed at the front end of the receiving assembly 4, the cleaning assembly 5 is in contact with the support platform 102, an extension frame 8 is added at the front end of the receiving assembly 4, the extension frame 8 is located at the front end of the cleaning assembly 5, and a feeding assembly 6 is provided at the upper end of the rear side of the support platform 102.
[0043] Among them, such as Figure 1 Figure 2 As shown, a vertical support plate 103 is provided between the base plate 101 of the main frame assembly 1 and the support platform 102. An auxiliary frame 104 is installed at the bottom of the processing groove on the support platform 102. The bottom of the auxiliary frame 104 is slidably installed on the support plate 103. A die-casting table 105 is installed at the top of the support platform 102. The protruding part at the bottom of the die-casting table 105 corresponds to the processing groove.
[0044] Among them, such as Figure 3 Figure 4As shown, the feeding plate 201 of the feeding assembly 2 is hinged to the front end of the support platform 102. Two sets of support blocks 202 are provided at the bottom of the support platform 102 near the feeding plate 201. A leaf spring is installed between the support block 202 and the feeding plate 201. When the metal workpiece 7 of the device is pushed to the feeding plate 201, the feeding plate 201 will first be supported by the leaf spring at the support block 202. The leaf spring can make the feeding plate 201 elastic, so that when the feeding plate 201 picks up the metal workpiece 7, the feeding plate 201 will slightly lower to facilitate the discharge of the metal workpiece 7, thus completing the auxiliary annular groove feeding function of the device for the metal workpiece 7.
[0045] Among them, such as Figure 3 Figure 6 As shown, the top slide 301 of the drive assembly 3 is installed on the outer end of the die-casting table 105 of the main frame assembly 1. Drive plates 302 are installed on both sides of the top slide 301. The drive plates 302 are provided with guide groove structures. The guide grooves of the drive plates 302 are set in two groups, which directly fix the top slide 301 at the die-casting table 105, so that the top slide 301 can rise and fall synchronously with the top slide 301. The drive plates 302 are set at both ends of the top slide 301. The drive plates 302 have guide grooves. The double-set guide groove structure realizes the guiding function of the drive plates 302 on the gas components. The extension plate 303 of the drive assembly 3 is fixed on the receiving assembly 4. Two sets of connecting columns are provided on the outer end of the extension plate 303. 304. The connecting column 304 is directly slidably installed in the guide groove of the drive plate 302. The guide groove of the drive plate 302 is set in an inclined shape to fix the extension plate 303 on the receiving component 4. Two sets of connecting columns 304 are set at the outer end of the extension plate 303, so that the connecting columns 304 of the extension plate 303 are placed in the guide groove of the drive plate 302. At this time, when the drive plate 302 rises and falls, it can drive and control the extension plate 303 through the guide groove, so that the rise and fall of the top slide 301 is controlled by the guide groove of the drive plate 302, so that the extension plate 303 can slide back and forth. The extension plate 303 is fixed on the receiving component 4, so that the drive component 3 drives the receiving component 4.
[0046] Among them, such as Figure 5 Figure 6As shown, the guide bar 404 of the receiving component 4 is disposed on the support platform 102. The fixed slide plate 401 of the receiving component 4 is plate-shaped and slidably mounted on the support platform 102. The bottom of the fixed slide plate 401 corresponds to the guide bar 404 of the support platform 102. A receiving groove 402 is installed on the fixed slide plate 401. The guide bar 404 is directly disposed on the support platform 102, and the bottom of the fixed slide plate 401 is provided with a groove corresponding to the guide bar 404, so that the fixed slide plate 401 can slide stably on the support platform 102 through the guide bar 404, and the receiving groove 402 at the fixed slide plate 401 can be adjusted to any sliding position. The receiving slot 402 at the fixed slide plate 401 is designed to receive materials and then convey them. The receiving slot 402 is shaped to expand outwards. An expansion slot 403 is provided at the rear of the receiving slot 402. A vibration motor is installed at the bottom of the expansion slot 403. When the device receives materials, the expansion slot 403 at the rear of the receiving slot 402 helps to expand the range for receiving materials. At the same time, a vibration motor is installed at the bottom outer end of the expansion slot 403 so that after the receiving slot 402 receives materials, the vibration motor can better vibrate the materials and facilitate their introduction.
[0047] Among them, such as Figure 4 Figure 8 As shown, the rack 503 of the cleaning component 5 is mounted on the support platform 102. The cleaning roller 501 of the cleaning component 5 is rotatably mounted at the front end of the receiving component 4. Two sets of driven wheels 502 are rotatably mounted at both ends of the cleaning roller 501. The bottom driven wheel 502 corresponds to the rack 503, and the upper driven wheel 502 is fixed to the cleaning roller 501. The two sets of driven wheels 502 are in contact with each other. When the device is in use, the driven wheel 502 at the bottom position will mesh with the rack 503, realizing the rotation of the driven wheel 502 at the receiving component 4. The bottom driven wheel 502 will then rotate around the top driven wheel 502. The cleaning roller 501 is driven to rotate, and the rotating cleaning roller 501 will contact the support platform 102. When the receiving component 4 slides back and forth, the cleaning component 5 rotates, so that the cleaning roller 501 rotates the support platform 102 to assist in cleaning the support platform 102. The driven wheel 502 at the outer end of the cleaning roller 501 adopts a ratchet structure. The driven wheel 502 at the outer end of the cleaning roller 501 adopts a one-way ratchet structure, so that the driven wheel 502 drives the cleaning roller 501 in one direction, and the cleaning roller 501 can only perform unidirectional operation.
[0048] Among them, such as Figure 2 Figure 7As shown, the top of the feeding rack 601 of the feeding assembly 6 is provided with a spacer slot plate, and both ends of the feeding rack 601 are provided with extension plates. An external connecting cylinder 603 is provided on the feeding rack 601, and the top of the external connecting cylinder 603 is connected to an external pipeline. The spacer slot plate on the feeding rack 601 is directly provided to facilitate external fixation. At the same time, the extension plates at both ends of the feeding rack 601 provide an additional fixation method for the feeding rack 601. The top of the external connecting cylinder 603 of the feeding rack 601 can be connected to an external pipeline to realize the function of introducing and filling materials. The bottom of the feeding rack 601 is provided with a bottom sliding groove 602, and a bottom sliding plate 604 is slidably installed in the bottom sliding groove 602. The upper end of the bottom sliding plate 604 is located at... A tension spring structure is installed, and a trigger plate 605 is fixed at the bottom of the bottom slide plate 604. A bottom slide groove 602 is directly set at the bottom of the feed rack 601, and the bottom slide plate 604 is slidably installed at the bottom slide groove 602. A tension spring is installed at the upper end of the bottom slide plate 604 so that the bottom slide plate 604 can be reset by the tension spring after being pushed open. The trigger plate 605 installed at the bottom of the bottom slide plate 604 can be slidably adjusted, so that the rearward-moving receiving component 4 can directly contact the trigger plate 605. The trigger plate 605 pushes against the bottom slide plate 604 and drives it to slide, thereby achieving the function of releasing the material at the feed rack 601 when the bottom slide plate 604 is opened.
[0049] The working principle of this invention is as follows: When the main frame assembly 1 is running, the feeding assembly 6 will be externally filled with material. The die-casting table 105 of the main frame assembly 1 will descend, and the drive assembly 3 will be fixed at the die-casting table 105, so that the drive assembly 3 will follow the die-casting table 105 as it descends. The slide groove at the drive plate 302 of the drive assembly 3 can drive the extension plate 303, and the extension plate 303 is fixed on the receiving assembly 4, so that the receiving assembly 4 can slide on the support platform 102. When the receiving assembly 4 slides to the rear position, the receiving assembly 4 will contact the trigger plate 605 at the bottom of the feeding assembly 6. At this time, the receiving assembly 4 will push the feeding assembly 6 open, so that the feeding assembly 6 will drop the material into the receiving assembly 4.
[0050] At this time, the die-casting table 105 will rise, allowing the drive plate 302 to drive the expansion plate 303 again through the slide, causing the receiving component 4 to move towards the front end. At the same time, the auxiliary frame 104 will rise along with the die-casting table 105, directly pushing out the metal workpiece 7.
[0051] A cleaning component 5 is installed at the front end of the receiving component 4. When the cleaning component 5 slides along with the receiving component 4, the driven wheel 502 of the cleaning component 5 contacts the rack 503, so that the rack 503 drives the cleaning roller 501 to rotate, and the cleaning roller 501 of the cleaning component 5 cleans the top surface of the support platform 102 that it passes through.
[0052] An extension frame 8 is installed at the front end of the receiving component 4. The extension frame 8 will first contact the metal workpiece 7, allowing the extension frame 8 to push out the metal workpiece 7, so that the metal workpiece 7 slides to the position of the unloading component 2, realizing the unloading component 2 to receive the metal workpiece 7, thereby realizing the stable unloading of the metal workpiece 7.
[0053] When the receiving component 4 is in the groove of the main frame component 1, the vibration motor at the receiving component 4 will run, and the material in the receiving component 4 will be introduced into the groove of the main frame component 1 to complete the filling effect of the material.
[0054] Similarly, when die-casting the metal workpiece 7 again, the die-casting table 105 is lowered again, which allows the receiving component 4 to be driven by the driving component 3 to slide backward, so that the die-casting table 105 can perform die-casting on the material, thus completing the automatic processing and loading / unloading of the metal workpiece 7.
[0055] The following points should be noted in this article:
[0056] 1. The accompanying drawings of the embodiments disclosed herein only relate to the structures involved in the embodiments disclosed herein; other structures can be referred to in a general design.
[0057] 2. Where there is no conflict, the embodiments of this disclosure and the features in the embodiments can be combined with each other to obtain new embodiments.
[0058] The above are merely specific embodiments of this disclosure, but the scope of protection of this disclosure is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this disclosure should be included within the scope of protection of this disclosure. Therefore, the scope of protection of this disclosure should be determined by the scope of the claims.
Claims
1. An automated die-casting mechanism for manufacturing aluminum alloy parts, comprising: Main frame assembly (1); the support platform (102) of the main frame assembly (1) is located in the middle of the whole device, and a processing groove is provided on the support platform (102). A metal workpiece (7) is provided in the processing groove of the support platform (102). The main frame assembly (1) is characterized in that a feeding assembly (2) is installed at the front end of the support platform (102), and a driving assembly (3) is installed at the top of the main frame assembly (1). The top slide (301) of the driving assembly (3) is installed at the outer end of the die-casting table (105) of the main frame assembly (1). A driving plate (302) is installed on both sides of the top slide (301). A guide groove structure is provided on the driving plate (302). The guide groove of the driving plate (302) is set in two groups. The extension plate (303) of the driving assembly (3) is also provided. The expansion plate (303) is fixed on the receiving component (4). Two sets of connecting posts (304) are provided at the outer end of the expansion plate (303). The connecting posts (304) are directly slidably installed in the guide groove at the drive plate (302). The guide groove of the drive plate (302) is set in an inclined shape. The receiving component (4) is slidably installed at the support platform (102). The guide strip (404) of the receiving component (4) is set on the support platform (102). The fixed plate (401) of the receiving component (4) is set in a plate shape. The fixed plate (401) is slidably installed on the support platform (102). The bottom of the fixed plate (401) corresponds to the guide strip (404) of the support platform (102). The receiving groove (402) is installed on the fixed plate (401). The receiving groove (402) is set to face outward. The extended shape has an extension groove (403) at the rear of the receiving groove (402). A vibration motor is installed at the bottom of the extension groove (403). A cleaning component (5) is installed at the front end of the receiving component (4). The rack (503) of the cleaning component (5) is set on the support platform (102). The cleaning roller (501) of the cleaning component (5) is rotatably installed at the front end of the receiving component (4). Two sets of driven wheels (502) are rotatably installed at both ends of the cleaning roller (501). The bottom driven wheel (502) corresponds to the rack (503), and the upper driven wheel (502) is fixed to the cleaning roller (501). The two sets of driven wheels (502) are in contact with each other. The driven wheel (502) at the outer end of the cleaning roller (501) adopts... The ratchet structure allows the cleaning component (5) to contact the support platform (102) simultaneously. An extension frame (8) is installed at the front end of the receiving component (4), with the extension frame (8) positioned at the front end of the cleaning component (5). A feeding component (6) is installed at the upper end of the rear side of the support platform (102). The feeding rack (601) of the feeding component (6) has a spacer slot plate at its top, and extension plates at both ends of the feeding rack (601). An external connecting cylinder (603) is installed on the feeding rack (601), with its top connected to an external pipeline. A bottom slide groove (602) is installed at the bottom of the feeding rack (601), and a bottom sliding plate (604) is slidably installed in the bottom slide groove (602). A tension spring structure is installed at the upper end of the bottom sliding plate (604).A trigger plate (605) is fixed at the bottom of the bottom slide plate (604).
2. The automated die-casting mechanism for preparing aluminum alloy parts according to claim 1, characterized in that, A vertical support plate (103) is provided between the base plate (101) of the main frame assembly (1) and the support platform (102). An auxiliary frame (104) is installed at the bottom of the processing groove at the support platform (102). The bottom of the auxiliary frame (104) is simultaneously slidably installed on the support plate (103). A die-casting table (105) is installed at the top of the support platform (102). The protruding part at the bottom of the die-casting table (105) corresponds to the processing groove.
3. The automated die-casting mechanism for preparing aluminum alloy parts according to claim 1, characterized in that, The feeding plate (201) of the feeding assembly (2) is hinged to the front end of the support platform (102). Two sets of support blocks (202) are provided at the bottom of the support platform (102) near the feeding plate (201). A leaf spring is installed between the support block (202) and the feeding plate (201).
Citation Information
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A rapid die-casting equipment for aluminum alloy die-casting parts
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