Aluminum ingot mold cooling device

By combining water cooling and air cooling, the problem of high temperature residue in the aluminum ingot mold is solved, efficient and rapid cooling effect is achieved, and safe and convenient mold handling is ensured.

CN223368159UActive Publication Date: 2025-09-23YUNNAN HEQING NANDU NEW MATERIALS CO LTD
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Patent Information

Application Number
CN202422814955.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-19
Publication Date
2025-09-23
Estimated Expiration
2034-11-19

AI Technical Summary

Technical Problem

Existing aluminum ingot molds retain high temperatures during processing, and direct handling will cause harm to personnel. Traditional air blowing cooling has low efficiency and cannot be effectively improved.

Method used

It adopts a dual cooling structure of water cooling and air cooling, and uses water and wind to efficiently cool the mold through the combination of heat sinks and fan blades.

Benefits of technology

It achieves rapid cooling of the mold, improves cooling efficiency, and ensures safety and convenience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an aluminum ingot mold cooling device, which relates to the field of aluminum ingot molds, and comprises a main support box, the bottom surface of the main support box is uniformly butted with shock-absorbing cushion blocks, the side edge of the main support box is horizontally butted with a support side plate, the side edge of the support side plate is fixedly connected with a side fixing box, and the side fixing box is fixedly connected with a cooling device. Connecting pipelines are inserted into the side edges, away from the supporting side plates, of the side fixing boxes, cooling fins are horizontally and evenly arranged on the side edges between the supporting side plates, side through grooves are symmetrically formed in the two side edges of the main supporting box, and cooling grids are fixedly clamped to the inner side edges of the side through grooves; horizontal clamping blocks are horizontally and symmetrically welded to the side edges of the supporting side plates, a control valve body is fixedly connected to the inner side edges of the side fixing boxes, and a conveying pipeline is horizontally inserted into the side edges between the supporting side plates. And meanwhile, the cooling efficiency of the mold is greatly improved under the condition that a water-cooling and air-cooling dual cooling structure is combined.
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Description

Technical Field

[0001] The utility model relates to the technical field of aluminum ingot molds, in particular to an aluminum ingot mold cooling device. Background Art

[0002] Aluminum ingots refer to aluminum, a raw material used in everyday industry. Aluminum is a silvery-white metal, the third most abundant metal in the Earth's crust, after oxygen and silicon. Aluminum's density is relatively low, only 34.61% that of iron and 30.33% that of copper, earning it the nickname "light metal." Aluminum is the second-largest nonferrous metal in the world, second only to steel in both production and consumption.

[0003] When aluminum ingots are currently produced and processed, they need to be operated in conjunction with corresponding molds. High temperatures will remain during the processing of the molds, and direct handling operations will cause harm to personnel. The traditional mold cooling structure is to place it in the blower position for air cooling, so the single cooling structure cannot improve its cooling efficiency. Utility Model Content

[0004] The purpose of the present utility model is to provide an aluminum ingot mold cooling device to solve the problem raised in the above background technology that when the current aluminum ingots are produced and processed, corresponding molds need to be used for coordinated operations, and high temperatures will remain when the molds are processed. Direct handling operations will cause harm to personnel. The traditional mold cooling structure is to place it in the hair dryer position for blowing cooling operations, so that the single cooling structure cannot improve its cooling efficiency.

[0005] To achieve the above objectives, the present invention provides the following technical solutions:

[0006] A cooling device for an aluminum ingot mold comprises a main support box, the bottom surface of the main support box is evenly butted with shock-absorbing pads, the side edges of the main support box are horizontally butted with support side plates, the side edges of the support side plates are fixedly connected with side fixing boxes, the side fixing boxes are plugged with connecting pipes on the side away from the support side plates, and heat dissipation fins are evenly and horizontally arranged on the sides between the support side plates, side through grooves are symmetrically opened on both sides of the main support box, the inner sides of the side through grooves are fixedly clamped with heat dissipation grilles, the sides of the support side plates are horizontally symmetrically welded with horizontal clamping blocks, and the inner sides of the side fixing boxes are The side is fixedly connected with a control valve body, the side edges of the support side plates are horizontally inserted with a transmission pipe, the inner side walls of the support side plates are inserted with an end connecting pipe body, the two side edges of the main support box are horizontally symmetrically provided with side clamping grooves, the inner side edge of the main support box is horizontally fixedly welded with an inner support rod, the side edge of the inner support rod is fixedly connected with an isolation inner box, the inner side edge of the isolation inner box is fixedly connected with a fan motor, the output end of the fan motor is fixedly sleeved with a fan blade, the bottom surface of the main support box is symmetrically provided with bottom clamping holes, and the top surface of the shock-absorbing pad is fixedly inserted with a top clamping column.

[0007] As a preferred embodiment of the present invention: there are two main support boxes, and the two main support boxes are arranged parallel to each other, there are eight shock-absorbing pads, and the eight shock-absorbing pads are arranged in groups of four and correspondingly docked at the bottom open end of the bottom clamping hole, and the shock-absorbing pads are all made of rubber material.

[0008] As a preferred embodiment of the present invention: there are two supporting side panels, and the two supporting side panels are arranged parallel to each other, the two ends of the side center lines of the supporting side panels are horizontally docked at the side opening ends of the side clamping grooves, the side fixing box is fixedly arranged at a position near one end of the side of the supporting side panel, and the extended end of the connecting pipe is kept in communication with the interior of the control valve body.

[0009] As a preferred embodiment of the present invention: there are multiple heat sinks, and the multiple heat sinks are arranged in parallel and equidistant from each other, the two ends of the multiple heat sinks are horizontally docked and arranged at the side positions of the heat dissipation grille, the top surface of the heat sink and the top surface of the supporting side plate are maintained at the same horizontal plane, and the side through grooves are symmetrically opened at the center positions on both sides of the main support box.

[0010] As a preferred embodiment of the present invention: the horizontal clamping blocks are horizontally symmetrically fixedly connected at both ends of the side center line of the supporting side plates, and the horizontal clamping blocks are horizontally and one-to-one clamped at the inner side of the side clamping grooves, the transmission pipes are horizontally arranged in an S shape and arranged at the side positions between the supporting side plates, and the transmission pipes are horizontally penetrated and inserted into the side through holes of multiple heat sinks, both ends of the transmission pipes are extended and fixedly connected at one end of the end connecting pipe body, and one end of the end connecting pipe body is kept connected to the opening of the control valve body.

[0011] As a preferred embodiment of the present invention: the side clamping grooves are horizontally symmetrically opened at one end of the midline of both sides of the main support box, and one end of the side clamping groove is open, the bottom clamping holes are symmetrically opened on the bottom surface of the main support box near the four corners, and the top ends of the top clamping columns are all plugged into the inner sides of the bottom clamping holes in a one-to-one correspondence.

[0012] Compared with the prior art, the beneficial effects of the present invention are:

[0013] The utility model places two main support boxes in parallel, so that the support side plates are horizontally docked and arranged on both sides of the main support boxes, and the horizontal clamping blocks on the sides are horizontally correspondingly clamped and arranged inside the side clamping grooves, forming a support side plate installed between the two main support boxes, and then the aluminum ingot mold is horizontally placed on the top surface position of the support side plates, so that the top surfaces of the multiple heat sinks in the position between them are docked and arranged at the bottom surface position of the mold, and the external water pipe end is fixedly connected and arranged at one end of the connecting pipe after controlling the control valve body to open, so that the water enters the interior of the transmission pipe through the end connecting pipe body, forming a heat dissipation and cooling treatment for the multiple heat sinks by the water, and at the same time, the output end drives the fan blades to rotate under the control of the rotation of the fan motor, so that a blowing and cooling effect is formed on the position between the heat sinks through the heat dissipation grille, and the cooling is further efficient and fast after the multiple heat sinks are blown. The splicing structure with buckles makes installation more convenient during use, and the cooling efficiency of the mold is greatly improved under the dual cooling structure combining water cooling and air cooling. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] Other features, objects and advantages of the present invention will become more apparent from the detailed description of the non-limiting embodiments with reference to the following drawings:

[0015] Figure 1 This is a schematic diagram of the three-dimensional structure of an aluminum ingot mold cooling device;

[0016] Figure 2 This is a schematic diagram of the structure of the top view cross-section connection details of the support side plate of an aluminum ingot mold cooling device;

[0017] Figure 3A schematic structural diagram of the side cross-sectional connection details of a support side plate of an aluminum ingot mold cooling device;

[0018] Figure 4 This is a schematic diagram of the structure of the top view cross-section connection details of the main support box of an aluminum ingot mold cooling device;

[0019] Figure 5 This is a structural schematic diagram of the front view cross-sectional connection details of the main support box of an aluminum ingot mold cooling device.

[0020] In the figure: 1. Main support box; 2. Shock-absorbing pad; 3. Support side plate; 4. Side fixing box; 5. Connecting pipe; 6. Heat sink; 7. Side through groove; 8. Heat dissipation grille; 9. Horizontal clamping block; 10. Control valve body; 11. Transmission pipe; 12. End connecting pipe body; 13. Side clamping groove; 14. Inner support rod; 15. Isolation inner box; 16. Fan motor; 17. Fan blade; 18. Bottom clamping hole; 19. Top clamping column. DETAILED DESCRIPTION

[0021] See also Figure 1 , In the embodiment of the present utility model, a cooling device for an aluminum ingot mold comprises a main support box 1, the bottom surface of the main support box 1 is evenly docked with shock-absorbing pads 2, the number of the main support boxes 1 is two, and the two main support boxes 1 are arranged parallel to each other, the number of the shock-absorbing pads 2 is eight, and the eight shock-absorbing pads 2 are arranged in groups of four at the bottom open end of the bottom clamping hole 18, the shock-absorbing pads 2 are made of rubber material, the side of the main support box 1 is horizontally docked with a supporting side plate 3, the side of the supporting side plate 3 is fixedly connected with a side fixing box 4, the side fixing box 4 is plugged with a connecting pipe 5 on the side away from the supporting side plate 3, the number of the supporting side plates 3 is two, and the two supporting side plates 3 are arranged parallel to each other, the side of the supporting side plates 3 The two ends of the side midline are horizontally butted at the side opening ends of the side clamping groove 13, the side fixing box 4 is fixedly arranged on the side of the supporting side plate 3 near one end, the extended end of the connecting pipe 5 is kept in communication with the interior of the control valve body 10, and the side edges between the supporting side plates 3 are evenly and horizontally provided with heat sinks 6. Side through grooves 7 are symmetrically provided on both sides of the main support box 1. There are multiple heat sinks 6, and the multiple heat sinks 6 are arranged equidistantly and parallel to each other. The two ends of the multiple heat sinks 6 are horizontally butt-jointed at the side positions of the heat dissipation grille 8, and the top surface of the heat sink 6 and the top surface of the supporting side plate 3 are kept in the same horizontal plane. The side through grooves 7 are symmetrically provided at the center positions on both sides of the main support box 1, and the heat dissipation grille 8 is fixedly clamped on the inner side edges of the side through grooves 7;

[0022] See also Figure 2-5In the embodiment of the present invention, a cooling device for an aluminum ingot mold is provided, wherein the side edges of the supporting side plates 3 are horizontally symmetrically welded with horizontal clamping blocks 9, the inner sides of the side fixing boxes 4 are fixedly connected with a control valve body 10, transmission pipes 11 are horizontally inserted between the side edges of the supporting side plates 3, and the inner side walls of the supporting side plates 3 are inserted with end connecting pipe bodies 12, the horizontal clamping blocks 9 are horizontally symmetrically fixedly connected and arranged at the two ends of the side center line of the supporting side plates 3, and the horizontal clamping blocks 9 are horizontally and one-to-one correspondingly clamped and arranged at the inner sides of the side clamping grooves 13, the transmission pipes 11 are horizontally arranged in an S-shape and arranged at the side positions between the supporting side plates 3, and the transmission pipes 11 are horizontally penetrated and inserted at the side through-hole positions of multiple heat sinks 6, and both ends of the transmission pipe 11 are extended and fixedly connected to one end of the end connecting pipe body 12, and one end of the end connecting pipe body 12 is connected to the inner side wall of the supporting side plates 3. The opening of the control valve body 10 remains connected, and side clamping grooves 13 are horizontally symmetrically provided on both sides of the main support box 1. The inner side of the main support box 1 is horizontally fixedly welded with an inner support rod 14, and the side of the inner support rod 14 is fixedly connected to an isolation inner box 15. The inner side of the isolation inner box 15 is fixedly connected to a fan motor 16, and the output end of the fan motor 16 is fixedly sleeved with a fan blade 17. The bottom surface of the main support box 1 is symmetrically provided with a bottom clamping hole 18, and the top surface of the shock-absorbing pad 2 is fixedly plugged with a top clamping column 19. The side clamping grooves 13 are horizontally symmetrically provided at one end of the midline of both sides of the main support box 1, and one end of the side clamping groove 13 is open. The bottom clamping holes 18 are symmetrically provided on the bottom surface of the main support box 1 near the four corners, and the top ends of the top clamping columns 19 are all plugged into the inner sides of the bottom clamping holes 18 in a one-to-one correspondence.

[0023] The working principle of this utility model is:

[0024] After the two main support boxes 1 are placed parallel to each other, the support side plates 3 are horizontally connected to the two side edges of the main support box 1, and the horizontal clamping blocks 9 on the sides are horizontally correspondingly clamped in the inside of the side clamping grooves 13, forming a support side plate 3 installed between the two main support boxes 1, and then the aluminum ingot mold is placed horizontally to the top surface position of the support side plates 3, so that the top surfaces of the multiple heat sinks 6 in the between positions are connected to the bottom surface position of the mold, and the external water pipe end is fixedly connected to one end of the connecting pipe 5. After controlling the control valve body 10 to open, the water body enters the interior of the transmission pipe 11 through the end connecting pipe body 12, forming a heat dissipation and cooling treatment for the multiple heat sinks 6 by the water body. At the same time, under the control of the rotation of the fan motor 16, the output end drives the fan blades 17 to rotate, so that a blowing and cooling effect is formed on the position between the heat dissipation grille 8, and the multiple heat sinks 6 are further cooled efficiently and quickly after the blowing treatment.

[0025] The above is only a preferred specific implementation method of the present invention, but the protection scope of the present invention is not limited to this. Any technician familiar with the technical field within the technical scope disclosed by the present invention can make equivalent replacements or changes based on the technical solution and utility model concept of the present invention, which should be covered by the protection scope of the present invention.

Claims

1. An aluminum ingot mold cooling device, comprising a main support box (1), characterized in that: The bottom surface of the main support box (1) is evenly connected to a shock-absorbing pad (2), the side of the main support box (1) is horizontally connected to a support side plate (3), the side of the support side plate (3) is fixedly connected to a side fixing box (4), the side fixing box (4) is plugged with a connecting pipe (5) on the side away from the support side plate (3), and heat dissipation fins (6) are evenly arranged on the side between the support side plates (3). Side through grooves (7) are symmetrically opened on both sides of the main support box (1), and the inner side of the side through groove (7) is fixedly connected to a heat dissipation grille (8), the side of the support side plate (3) is horizontally symmetrically welded with a horizontal clamping block (9), the inner side of the side fixing box (4) is fixedly connected to a control valve body (10), and the A transmission pipe (11) is horizontally inserted between the side edges of the supporting side plates (3), an end connecting pipe body (12) is inserted into the inner side wall of the supporting side plates (3), side clamping grooves (13) are horizontally and symmetrically opened on both sides of the main supporting box (1), an inner supporting rod (14) is horizontally fixedly welded to the inner side edge of the main supporting box (1), an isolation inner box (15) is fixedly connected to the side edge of the inner supporting rod (14), a fan motor (16) is fixedly connected to the inner side edge of the isolation inner box (15), a fan blade (17) is fixedly sleeved on the output end of the fan motor (16), a bottom clamping hole (18) is symmetrically opened on the bottom surface of the main supporting box (1), and a top clamping column (19) is fixedly inserted on the top surface of the shock-absorbing pad (2).

2. The aluminum ingot mold cooling device according to claim 1, characterized in that: There are two main support boxes (1), and the two main support boxes (1) are arranged in parallel with each other. There are eight shock-absorbing pads (2), and the eight shock-absorbing pads (2) are arranged in groups of four and correspondingly docked at the bottom opening end of the bottom clamping hole (18). The shock-absorbing pads (2) are all made of rubber material.

3. The aluminum ingot mold cooling device according to claim 1, characterized in that: The number of the supporting side plates (3) is two, and the two supporting side plates (3) are arranged parallel to each other. The two ends of the side center lines of the supporting side plates (3) are horizontally docked at the side opening ends of the side clamping grooves (13). The side fixing box (4) is fixedly arranged at a position near one end of the side of the supporting side plate (3), and the extended end of the connecting pipe (5) is kept in communication with the interior of the control valve body (10).

4. The aluminum ingot mold cooling device according to claim 1, characterized in that: The number of the heat sinks (6) is multiple, and the multiple heat sinks (6) are arranged in parallel and at equal distances from each other. The two ends of the multiple heat sinks (6) are horizontally butted and arranged at the side positions of the heat dissipation grille (8). The top surface of the heat sink (6) and the top surface of the supporting side plate (3) are maintained at the same horizontal plane. The side through grooves (7) are symmetrically opened at the center positions of both sides of the main support box (1).

5. The aluminum ingot mold cooling device according to claim 1, characterized in that: The horizontal clamping blocks (9) are horizontally symmetrically fixedly connected and arranged at both ends of the side center line of the supporting side plates (3), and the horizontal clamping blocks (9) are all horizontally correspondingly clamped and arranged on the inner side of the side clamping groove (13). The transmission pipes (11) are arranged horizontally in an S-shape and arranged at the side positions between the supporting side plates (3), and the transmission pipes (11) are all horizontally penetrated and inserted into the side through holes of the plurality of heat sinks (6). Both ends of the transmission pipes (11) are extended and fixedly connected to one end of the end connecting pipe body (12), and one end of the end connecting pipe body (12) is kept in communication with the opening of the control valve body (10).

6. The aluminum ingot mold cooling device according to claim 1, characterized in that: The side clamping grooves (13) are horizontally symmetrically arranged at one end of the midline of both sides of the main support box (1), and one end of the side clamping grooves (13) is open. The bottom clamping holes (18) are symmetrically arranged at the bottom surface of the main support box (1) near the four corners, and the top ends of the top clamping columns (19) are respectively inserted and arranged on the inner sides of the bottom clamping holes (18).