A cooling device for producing aluminum alloy castings

Through the design of arc-shaped cooling tank and loading and unloading mechanism, the problems of complex and high energy consumption of aluminum alloy casting cooling equipment are solved, and stable continuous operation and efficient cooling of aluminum alloy castings are achieved, which improves processing efficiency and equipment stability.

CN119657896BActive Publication Date: 2025-09-02SHENZHEN YUEYONGSHENG ALUMINUM CO LTD
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Patent Information

Application Number
CN202411905930.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-23
Publication Date
2025-09-02
Estimated Expiration
2044-12-23

AI Technical Summary

Technical Problem

The cutting mechanism of the existing aluminum alloy casting cooling equipment is complex in structure and requires additional electrical equipment to drive, resulting in high energy consumption and high failure rate, which is not conducive to continuous operation.

Method used

The arc-shaped cooling groove and loading and unloading mechanism are adopted, including a rotating shaft, drainage partition, unloading inclined plate and drive motor. The driving motor drives the rotating shaft and drainage partition to realize automatic unloading of aluminum alloy castings. Combined with auxiliary unloading rollers and vibration structure, it ensures smooth sliding of aluminum alloy castings and collects metal slag.

Benefits of technology

The stable and continuous operation of aluminum alloy castings is achieved, processing efficiency is improved, equipment energy consumption and failure rate are reduced, and the uniformity of cooling of aluminum alloy castings and equipment stability is ensured.

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Abstract

The present invention relates to a cooling device for producing aluminum alloy castings applied to the field of aluminum alloy casting processing, comprising a cooling box, an arc-shaped cooling trough provided inside the cooling box, and a loading and unloading mechanism comprising a rotating shaft, a drainage baffle, a driving motor and a blanking inclined plate installed on the inner side of the cooling trough. In the cooling device for producing the above-mentioned aluminum alloy castings, the arc-shaped cooling trough and the loading and unloading mechanism comprising the drainage baffle and the blanking inclined plate are arranged in coordination, the driving motor can be used to drive the rotating shaft to rotate the drainage baffle, the aluminum alloy casting is placed into the coolant in the cooling trough by using the drainage baffle, and the cooled aluminum alloy casting is then pulled out by using the drainage baffle, and when the blanking inclined plate corresponding to the cooled aluminum alloy casting rotates to the topmost position, the cooled aluminum alloy casting slides off the blanking inclined plate to realize automatic unloading, thereby realizing stable and continuous operation of the cooling device and improving processing efficiency.
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Description

Technical Field

[0001] The present invention relates to a cooling device, in particular to a cooling device for producing aluminum alloy castings used in the field of aluminum alloy casting processing. Background Art

[0002] Aluminum castings refer to equipment and devices made of pure aluminum or aluminum alloys by casting. Generally, a sand mold or metal mold is used to pour the heated liquid aluminum or aluminum alloy into the mold cavity to obtain aluminum alloy blanks of various shapes. After the aluminum alloy parts are cast, their temperature is often high. In order to improve production efficiency, a cooling device is required to cool them.

[0003] There are many methods for cooling aluminum alloys. If you want to cool it down quickly, water cooling is generally used. Water cooling is to put the cast casting into cold water to quickly cool it to room temperature. For example, the specification of patent application number CN202311080201.2 discloses a rapid cooling device for the production of aluminum alloy castings, including a base, a protective shell is fixedly connected to the top of the base, a cooling box is fixedly connected to the top of the base, a water inlet is provided at the bottom of the cooling box, a water passage device is fixedly connected to the bottom of the inner surface of the water inlet, a water outlet is provided on the inner surface of the cooling box, a connecting box is fixedly connected to the outer surface of the connecting box, and a water pump is fixedly installed on the outer surface of the connecting box. The rapid cooling device for the production of aluminum alloy castings quickly cools the aluminum alloy castings by placing the aluminum alloy castings into the cooling box.

[0004] However, after the cooling of the casting cooling device disclosed above is completed, the casting needs to be manually salvaged from the coolant, resulting in poor continuity of the cooling operation and low cooling efficiency. Based on this problem, after searching, for example, the specification of patent application number CN202211257930.6 discloses a casting cooling device for aluminum alloy production and processing, including a device body, a cooling tank is opened in the device body, the cooling tank is filled with coolant, and a cooling mechanism is provided in the device body; the cooling mechanism includes a first rotating shaft, a second rotating shaft, and a third rotating shaft, the first rotating shaft, the second rotating shaft, and the third rotating shaft are all connected to the device body through bearings for rotation, one end of the first rotating shaft extends through the cooling tank and is interference-fitted with a rotating column, and the other end extends through the outside of the device body and is interference-fitted with a pulley II. The casting cooling device has a better cooling effect on the casting, and does not require manual salvage, thereby improving processing efficiency.

[0005] However, although the above-mentioned casting cooling equipment does not require manual salvage and removal of the cooled castings, the multiple sets of unloading mechanisms used are relatively complex in structure and require additional electrical equipment to drive, which results in high energy consumption during equipment operation. In addition, the failure rate of the complex unloading mechanism and electrical equipment is relatively high, which is not conducive to continuous operation. Therefore, a cooling equipment for aluminum alloy casting production is proposed to improve the above-mentioned problems. Summary of the Invention

[0006] In view of the above-mentioned existing technology, the technical problem to be solved by the present invention is that the structure of the unloading mechanism is relatively complex and requires additional electrical equipment to drive, which results in high energy consumption during equipment operation; the failure rate of the complex unloading mechanism and electrical equipment is relatively high, which is not conducive to continuous operation.

[0007] To solve the above problems, the present invention provides a cooling device for producing aluminum alloy castings, including a cooling box, wherein a cooling tank is provided inside the cooling box:

[0008] The cross section of the cooling trough is arc-shaped, and a loading and unloading mechanism is installed inside the cooling trough;

[0009] The loading and unloading mechanism includes a rotating shaft, a drainage baffle, a driving motor and a loading ramp;

[0010] The rotating shaft is rotatably mounted on the inner side of the cooling tank and is coaxially arranged with the cooling tank. The driving motor is fixed on the outer wall of the cooling box, and the output shaft of the driving motor passes through the cooling box and is fixed to one end of the rotating shaft.

[0011] A plurality of drainage baffles are provided, and the drainage baffles are fixed at equal intervals on the circumference of the rotating shaft;

[0012] A plurality of discharge inclined plates are provided, and a discharge inclined plate is installed between two adjacent drainage partitions. The discharge inclined plate is tilted downward toward the side away from the drive motor.

[0013] In the cooling equipment for the production of the above-mentioned aluminum alloy castings, an arc-shaped cooling trough and a loading and unloading mechanism including a drainage baffle and a discharge inclined plate are arranged in cooperation. The driving motor can be used to drive the rotating shaft to rotate the drainage baffle, and the aluminum alloy casting can be placed into the coolant in the cooling trough using the drainage baffle. The cooled aluminum alloy casting is then pulled out through the drainage baffle. When the discharge inclined plate corresponding to the cooled aluminum alloy casting rotates to the topmost position, the cooled aluminum alloy casting slides off the discharge inclined plate to realize automatic unloading, thereby realizing stable and continuous operation of the cooling equipment and improving processing efficiency.

[0014] As a further supplement to the present application, the horizontal plane of the lowest side of a material discharge inclined plate located at the uppermost side is not lower than the horizontal plane of the upper end surface of the cooling box, ensuring that the aluminum alloy casting can slide smoothly away from the cooling equipment.

[0015] As a further supplement to the present application, a raised structure is provided on the end face of the unloading inclined plate away from the rotating shaft to prevent the aluminum alloy casting from being adsorbed on the surface of the unloading inclined plate due to water and being unable to slide down smoothly.

[0016] As a further supplement to the present application, the raised structure includes a plurality of auxiliary unloading rollers, which are arranged parallel to each other and are rotatably installed on the unloading inclined plate at equal intervals along the length direction of the unloading inclined plate; compared with the sliding friction between the aluminum alloy casting and the unloading inclined plate, the rolling friction between the auxiliary unloading rollers and the aluminum alloy casting makes the resistance during the unloading process of the aluminum alloy casting smaller, the unloading is smoother, and the overall operation of the equipment is more stable.

[0017] As a further supplement to the present application, the unloading inclined plate is hollowed out, and a slag discharge structure is provided on the side of the unloading inclined plate close to the rotating shaft; when the unloading inclined plate corresponding to the cooled aluminum alloy casting rotates to the topmost position, the metal slag attached to the surface of the aluminum alloy casting falls to the lower side of the hollowed-out unloading inclined plate and is discharged through the slag discharge structure.

[0018] As a further supplement to the present application, the slag discharge structure includes a slag collecting inclined plate, and the slag collecting inclined plate is arranged parallel to the unloading inclined plate. A slag guide through hole is provided at the side end of the cooling box away from the driving motor, and a slag collecting box connected to the slag guide through hole is fixed on the outer wall of the cooling box; the metal slag falls on the slag collecting inclined plate and slides along the downward inclined side of the slag collecting inclined plate, and slides through the slag guide through hole into the slag collecting box for unified collection.

[0019] As a further supplement to the present application, a vibration plate is provided on the side of the slag collecting inclined plate away from the unloading inclined plate, and a plurality of transmission rods are evenly fixed between the vibration plate and the slag collecting inclined plate;

[0020] The vibration plate does not contact the drainage partition plate, and a vibration structure is provided between the vibration plate and the cooling box.

[0021] As a further supplement to the present application, the vibration structure includes a movable shifting block, a fixed ring and a fixed shifting block;

[0022] The movable shifting block is fixed to the end surface of the vibrating plate away from the slag collecting inclined plate;

[0023] The fixing ring is fixed on the inner wall of the cooling box, and the output end of the driving motor passes through the fixing ring;

[0024] There are multiple fixed shifting blocks, and the multiple fixed shifting blocks are equidistantly fixed on the arc-shaped outer wall of the fixed ring and in contact with the fixed ring; when the slag collecting inclined plate at the top carries the vibrating plate and rotates along with the drainage partition, the movable shifting blocks on the vibrating plate collide with the multiple fixed shifting blocks on the surface of the fixed ring, causing the vibrating plate to vibrate, and the vibrating plate transmits the vibration to the slag collecting inclined plate through multiple transmission rods, causing the slag collecting inclined plate to vibrate, so that the metal slag on the upper surface of the slag collecting inclined plate rolls down smoothly.

[0025] As a further supplement to this application, the slag collecting inclined plate is an arc-shaped plate, and the concave surface of the slag collecting inclined plate faces one side of the unloading inclined plate, and multiple drainage holes are provided on the slag collecting inclined plate; the arc-shaped slag collecting inclined plate has better elastic properties and better vibration effect.

[0026] As another improvement of the present application, the inner surface of the cooling trough is equidistantly and integrally provided with a plurality of arc-shaped ribs, and the side end of the drainage baffle close to the inner surface of the cooling trough is provided with a recess adapted to the arc-shaped ribs; the plurality of arc-shaped ribs provided can support the aluminum alloy casting. On the one hand, it can prevent the aluminum alloy casting from being too close to the inner surface of the cooling trough during the cooling process, which may cause uneven cooling of the close surface of the aluminum alloy casting. The aluminum alloy casting is supported by the arc-shaped ribs, which can ensure that the aluminum alloy casting is in the middle of the cooling water and cools more evenly; on the other hand, the metal slag falling from the surface of the aluminum alloy casting can be gathered in the gap formed by two adjacent arc-shaped ribs, which is not easy to cause wear to the aluminum alloy casting during the movement of the aluminum alloy casting.

[0027] In summary, through the coordinated arrangement of the arc-shaped cooling trough and the loading and unloading mechanism including the drainage baffle and the unloading inclined plate, the driving motor can be used to drive the rotating shaft to rotate with the drainage baffle, and the aluminum alloy casting can be placed into the coolant in the cooling trough by using the drainage baffle, and then the cooled aluminum alloy casting can be pulled out through the drainage baffle, and when the unloading inclined plate corresponding to the cooled aluminum alloy casting rotates to the topmost position, the cooled aluminum alloy casting slides off the unloading inclined plate to realize automatic unloading, thereby realizing stable and continuous operation of the cooling equipment and improving processing efficiency; by arranging a raised structure including a plurality of auxiliary unloading rollers on the end face of the unloading inclined plate away from the rotating shaft, on the one hand, it can effectively prevent the aluminum alloy casting from being adsorbed on the surface of the unloading inclined plate under the action of water and unable to slide smoothly, and on the other hand, The sliding friction between the aluminum alloy casting and the unloading inclined plate, and the rolling friction between the auxiliary unloading roller and the aluminum alloy casting make the resistance in the unloading process of the aluminum alloy casting smaller, the unloading is smoother, and the overall operation of the equipment is more stable; in addition, when the unloading inclined plate corresponding to the cooled aluminum alloy casting rotates to the topmost position, the metal slag attached to the surface of the aluminum alloy casting falls to the lower side of the hollow unloading inclined plate. In the process of the slag collecting inclined plate at the top end carrying the vibrating plate and rotating with the drainage baffle, the movable block on the vibrating plate collides with the multiple fixed blocks on the surface of the fixed ring, causing the vibrating plate to vibrate, and the vibrating plate transmits the vibration to the slag collecting inclined plate through multiple transmission rods, causing the slag collecting inclined plate to vibrate, so that the metal slag on the upper surface of the slag collecting inclined plate rolls smoothly into the slag collecting box for unified collection. BRIEF DESCRIPTION OF THE DRAWINGS

[0028] Figure 1 This is a schematic diagram of the overall three-dimensional structure of the first embodiment of the present application;

[0029] Figure 2 This is a schematic side plan view of the first embodiment of the present application;

[0030] Figure 3 This is a schematic diagram of the front cross-sectional structure of the first embodiment of the present application;

[0031] Figure 4 This is a schematic diagram of the three-dimensional structure of the loading and unloading mechanism of the first embodiment of the present application;

[0032] Figure 5 This is a schematic diagram of the planar structure of the rotating shaft and the drainage partition of the first embodiment of the present application;

[0033] Figure 6 This is a schematic diagram of the planar structure of the fixing ring and the drainage partition of the first embodiment of the present application;

[0034] Figure 7 This is a schematic diagram of the planar structure of the slag collecting inclined plate, vibrating plate and transmission rod in the first embodiment of the present application;

[0035] Figure 8 This is a schematic diagram of the three-dimensional structure of the fixing ring according to the first embodiment of the present application;

[0036] Figure 9 This is a schematic structural diagram of the cooling trough and drainage partition of the second embodiment of the present application.

[0037] Description of the numbers in the figure:

[0038] 1. Cooling box; 2. Cooling trough; 3. Rotating shaft; 4. Drainage baffle; 5. Driving motor; 6. Unloading ramp; 7. Auxiliary unloading roller; 8. Slag collecting ramp; 9. Vibrating plate; 10. Transmission rod; 11. Movable shift block; 12. Fixed ring; 13. Fixed shift block; 14. Slag guide hole; 15. Slag collecting box; 16. Arc-shaped rib; 17. Notch. DETAILED DESCRIPTION

[0039] The following describes two implementation methods of the present application in detail with reference to the accompanying drawings.

[0040] The first implementation method:

[0041] The present invention provides a cooling device for the production of aluminum alloy castings. Figure 1-4 , including a cooling box 1, a cooling tank 2 is provided inside the cooling box 1, wherein the cooling box 1 adopts a conventional cooling device with a cooling tank 2 in the prior art, including a built-in water circulation structure, a refrigeration component, etc.

[0042] Among them, Figure 3As shown, the cross-section of the cooling trough 2 is arc-shaped, and a loading and unloading mechanism is installed on the inner side of the cooling trough 2. Specifically, the loading and unloading mechanism includes a rotating shaft 3, a drainage baffle 4, a drive motor 5 and a unloading inclined plate 6; wherein, the rotating shaft 3 is rotatably installed on the inner side of the cooling trough 2 and is coaxially arranged with the cooling trough 2, the drive motor 5 is fixed on the outer wall of the cooling box 1, and the output shaft of the drive motor 5 passes through the cooling box 1 and is fixed to one end of the rotating shaft 3.

[0043] There are multiple drainage baffles 4, which are plate-shaped bodies with small holes (not shown in the figure) densely covered on the surface for water to pass through, and the drainage baffles 4 are fixed at equal intervals on the circumferential side of the rotating shaft 3. There are multiple unloading inclined plates 6, and a unloading inclined plate 6 is installed between two adjacent drainage baffles 4. The unloading inclined plate 6 is tilted downward toward the side away from the drive motor 5.

[0044] Based on the above description, through the coordinated arrangement of the arc-shaped cooling trough 2 and the loading and unloading mechanism including the drainage baffle 4 and the unloading inclined plate 6, the driving motor 5 can be used to drive the rotating shaft 3 to rotate with the drainage baffle 4, and the drainage baffle 4 can be used to place the aluminum alloy casting into the coolant in the cooling trough 2, and then the cooled aluminum alloy casting is pulled out through the drainage baffle 4, and when the unloading inclined plate 6 corresponding to the cooled aluminum alloy casting rotates to the topmost position, the cooled aluminum alloy casting slides off the unloading inclined plate 6 to realize automatic unloading, thereby realizing stable and continuous operation of the cooling equipment and improving processing efficiency.

[0045] Among them, Figure 2 It is shown that the horizontal plane of the lowest side of the uppermost unloading inclined plate 6 is not lower than the horizontal plane of the upper end surface of the cooling box 1, ensuring that the aluminum alloy casting can slide smoothly away from the cooling device.

[0046] Among them, a convex structure is provided on the end surface of the side of the blanking inclined plate 6 away from the rotating shaft 3; to prevent the aluminum alloy casting from being adsorbed on the surface of the blanking inclined plate 6 under the action of water and unable to slide smoothly, preferably, as Figure 4 It is shown that the raised structure includes a plurality of auxiliary unloading rollers 7, which are arranged parallel to each other and are rotatably installed on the unloading inclined plate 6 at equal intervals along the length direction of the unloading inclined plate 6; compared with the sliding friction between the aluminum alloy casting and the unloading inclined plate 6, the rolling friction between the auxiliary unloading rollers 7 and the aluminum alloy casting makes the resistance in the unloading process of the aluminum alloy casting smaller, the unloading is smoother, and the overall operation of the equipment is more stable.

[0047] Among them, the unloading inclined plate 6 is hollowed out (not shown in the figure), and a slag discharge structure is provided on the side of the unloading inclined plate 6 close to the rotating shaft 3; when the unloading inclined plate 6 corresponding to the cooled aluminum alloy casting rotates to the topmost position, the metal slag attached to the surface of the aluminum alloy casting falls to the lower side of the hollowed-out unloading inclined plate 6 and is discharged through the slag discharge structure.

[0048] Specifically, such as Figure 5 and Figure 6 It is shown that the slag discharge structure includes a slag collecting inclined plate 8, and the slag collecting inclined plate 8 is arranged parallel to the unloading inclined plate 6, a slag guiding hole 14 is provided at the side end of the cooling box 1 away from the driving motor 5, and a slag collecting box 15 connected to the slag guiding hole 14 is fixed on the outer wall of the cooling box 1; the metal slag falls on the slag collecting inclined plate 8, and slides along the downward inclined side of the slag collecting inclined plate 8, and slides through the slag guiding hole 14 into the slag collecting box 15 for unified collection.

[0049] Further, such as Figure 7 As shown, a vibrating plate 9 is provided on the side of the slag collecting inclined plate 8 away from the unloading inclined plate 6, and a plurality of transmission rods 10 are evenly fixed between the vibrating plate 9 and the slag collecting inclined plate 8. The vibrating plate 9 does not contact the drainage partition 4. A vibration structure is provided between the vibrating plate 9 and the cooling box 1. Specifically, the vibration structure includes a movable block 11, a fixed ring 12 and a fixed block 13. The movable block 11 is fixed to the end face of the vibrating plate 9 away from the slag collecting inclined plate 8, and the fixed ring 12 is fixed to the inner wall of the cooling box 1. The output end of the drive motor 5 passes through the fixed ring 12, as shown in FIG. Figure 6 and Figure 8 As shown, a plurality of fixed and shifting blocks 13 are provided, and the plurality of fixed and shifting blocks 13 are fixed on the arc-shaped outer wall of the fixing ring 12 at equal intervals and in contact with the fixing ring 12 .

[0050] As the slag collecting inclined plate 8 at the top rotates with the vibrating plate 9 along with the drainage partition 4, the movable block 11 on the vibrating plate 9 collides with multiple fixed blocks 13 on the surface of the fixed ring 12, causing the vibrating plate 9 to vibrate. The vibrating plate 9 then transmits the vibration to the slag collecting inclined plate 8 through multiple transmission rods 10, making the vibration amplitude of the slag collecting inclined plate 8 larger, so that the metal slag on the upper surface of the slag collecting inclined plate 8 rolls down smoothly.

[0051] Among them, Figure 7 As shown, the slag collecting inclined plate 8 is an arc-shaped plate, and the concave surface of the slag collecting inclined plate 8 faces one side of the unloading inclined plate 6, and a plurality of drainage holes are provided on the slag collecting inclined plate 8; the arc-shaped slag collecting inclined plate 8 has better elasticity and better vibration effect.

[0052] This solution is provided by cooperating with an arc-shaped cooling trough 2 and a loading and unloading mechanism including a drainage baffle 4 and a discharge ramp 6. The driving motor 5 can be used to drive the rotating shaft 3 to rotate the drainage baffle 4, and the aluminum alloy casting is placed into the coolant in the cooling trough 2 by using the drainage baffle 4. The cooled aluminum alloy casting is then pulled out through the drainage baffle 4. When the discharge ramp 6 corresponding to the cooled aluminum alloy casting rotates to the topmost position, the cooled aluminum alloy casting slides off the discharge ramp 6 to realize automatic unloading, thereby realizing stable and continuous operation of the cooling equipment and improving processing efficiency.

[0053] By providing a protruding structure including a plurality of auxiliary unloading rollers 7 on the end surface of the unloading inclined plate 6 away from the rotating shaft 3, on the one hand, it can effectively prevent the aluminum alloy casting from being adsorbed on the surface of the unloading inclined plate 6 under the action of water and being unable to slide smoothly. On the other hand, compared with the sliding friction between the aluminum alloy casting and the unloading inclined plate 6, the rolling friction between the auxiliary unloading rollers 7 and the aluminum alloy casting reduces the resistance during the unloading process of the aluminum alloy casting, making unloading smoother and the overall operation of the equipment more stable.

[0054] By setting a slag discharge structure and a vibration structure on the side of the discharge inclined plate 6 close to the rotating shaft 3, when the discharge inclined plate 6 corresponding to the cooled aluminum alloy casting rotates to the topmost position, the metal slag attached to the surface of the aluminum alloy casting falls to the lower side of the hollow discharge inclined plate 6. In the process of the slag collecting inclined plate 8 at the top end carrying the vibration plate 9 and the drainage baffle 4, the movable block 11 on the vibration plate 9 collides with the multiple fixed blocks 13 on the surface of the fixed ring 12, causing the vibration plate 9 to vibrate. The vibration plate 9 transmits the vibration to the slag collecting inclined plate 8 through multiple transmission rods 10, causing the slag collecting inclined plate 8 to vibrate, so that the metal slag on the upper surface of the slag collecting inclined plate 8 rolls smoothly to the slag collecting box 15 for unified collection.

[0055] Second implementation method:

[0056] Based on the first embodiment, the present embodiment adds the following structures, which make the cooling of the aluminum alloy casting more uniform and help protect the aluminum alloy casting from wear. Figure 9 It is shown that the inner surface of the cooling trough 2 is equidistantly and integrally provided with a plurality of arc-shaped ribs 16, and the side end of the drainage baffle 4 close to the inner surface of the cooling trough 2 is provided with a recess 17 adapted to the arc-shaped rib 16; the plurality of arc-shaped ribs 16 provided can support the aluminum alloy casting. On the one hand, it can prevent the aluminum alloy casting from being too close to the inner surface of the cooling trough 2 during the cooling process, which may cause uneven cooling of the close surface of the aluminum alloy casting. The aluminum alloy casting is supported by the arc-shaped ribs 16, which can ensure that the aluminum alloy casting is in the middle of the cooling water and is cooled more evenly; on the other hand, the metal slag falling from the surface of the aluminum alloy casting can be gathered in the gap formed by two adjacent arc-shaped ribs 16, which is not easy to cause wear to the aluminum alloy casting during the movement of the aluminum alloy casting.

[0057] In view of current actual needs, the protection scope of the above-mentioned implementation mode adopted in this application is not limited to this. Various changes made within the knowledge scope of technical personnel in this field without departing from the concept of this application still fall within the protection scope of the present invention.

Claims

1. A cooling device for producing aluminum alloy castings, comprising a cooling box (1), wherein a cooling groove (2) is provided inside the cooling box (1), and characterized in that: The cross section of the cooling groove (2) is arranged in an arc shape, and a loading and unloading mechanism is installed on the inner side of the cooling groove (2); The loading and unloading mechanism comprises a rotating shaft (3), a drainage baffle (4), a driving motor (5) and a loading and unloading inclined plate (6); The rotating shaft (3) is rotatably mounted on the inner side of the cooling trough (2) and is coaxially arranged with the cooling trough (2); the driving motor (5) is fixed on the outer wall of the cooling box (1); and the output shaft of the driving motor (5) passes through the cooling box (1) and is fixed to one end of the rotating shaft (3); A plurality of drainage baffles (4) are provided, and the drainage baffles (4) are fixed at equal intervals on the circumference of the rotating shaft (3); A plurality of the discharge inclined plates (6) are provided, and one discharge inclined plate (6) is installed between two adjacent drainage partitions (4), and the discharge inclined plate (6) is tilted downward toward a side away from the drive motor (5); The material discharge inclined plate (6) is hollowed out, and a slag discharge structure is provided on a side of the material discharge inclined plate (6) close to the rotating shaft (3); The slag discharge structure includes a slag collecting inclined plate (8), and the slag collecting inclined plate (8) is arranged in parallel with the material discharge inclined plate (6); a slag guide through hole (14) is provided on the side end of the cooling box (1) away from the drive motor (5); and a slag collecting box (15) connected to the slag guide through hole (14) is fixed on the outer wall of the cooling box (1); A vibration plate (9) is provided on a side of the slag collecting inclined plate (8) away from the unloading inclined plate (6), and a plurality of transmission rods (10) are evenly fixed between the vibration plate (9) and the slag collecting inclined plate (8); The vibration plate (9) is not in contact with the drainage baffle (4), and a vibration structure is provided between the vibration plate (9) and the cooling box (1); The vibration structure comprises a movable block (11), a fixed ring (12) and a fixed block (13); The movable block (11) is fixed to the end surface of the vibration plate (9) away from the slag collecting inclined plate (8); The fixing ring (12) is fixed on the inner wall of the cooling box (1), and the output end of the driving motor (5) passes through the fixing ring (12); A plurality of the fixed and shifting blocks (13) are provided, and the plurality of the fixed and shifting blocks (13) are fixed on the arc-shaped outer wall of the fixed ring (12) at equal intervals and are in contact with the fixed ring (12).

2. The cooling equipment for producing aluminum alloy castings according to claim 1, characterized in that: The horizontal plane where the lowest side of the uppermost discharge inclined plate (6) is located is not lower than the horizontal plane where the upper end surface of the cooling box (1) is located.

3. The cooling equipment for producing aluminum alloy castings according to claim 1, characterized in that: A protruding structure is provided on the end surface of the blanking inclined plate (6) away from the rotating shaft (3).

4. The cooling device for producing aluminum alloy castings according to claim 3, characterized in that: The raised structure comprises a plurality of auxiliary unloading rollers (7), wherein the plurality of auxiliary unloading rollers (7) are arranged parallel to each other and are rotatably mounted on the unloading inclined plate (6) at equal distances along the length direction of the unloading inclined plate (6).

5. The cooling equipment for producing aluminum alloy castings according to claim 1, characterized in that: The slag collecting inclined plate (8) is an arc-shaped plate, and the concave surface of the slag collecting inclined plate (8) faces one side of the material discharge inclined plate (6), and a plurality of drainage holes are provided on the slag collecting inclined plate (8).

6. The cooling equipment for producing aluminum alloy castings according to claim 5, characterized in that: The inner surface of the cooling trough (2) is provided with a plurality of arc-shaped ribs (16) at equal intervals and in an integrated manner, and the side end of the drainage baffle (4) close to the inner surface of the cooling trough (2) is provided with a recess (17) adapted to the arc-shaped ribs (16).

Citation Information

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