A casting cooling system
By designing a casting cooling system and combining the clamping, ingot guide and conveying components with the cooling component design, the problem of cold cracks caused by slow cooling in aluminum alloy casting was solved, and efficient forming and cost control of large-sized ingots were achieved.
Patent Information
- Application Number
- CN202211042937.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-08-29
- Publication Date
- 2025-10-10
- Estimated Expiration
- 2042-08-29
AI Technical Summary
Traditional aluminum alloy casting equipment has a slow cooling rate when casting large-sized ingots, which is prone to cold cracks. Existing methods are costly or unsuitable for large-scale applications.
A casting cooling system is designed, including a casting mechanism and a cooling mechanism. By setting up a clamping component, an ingot guide component, a conveying component and a cooling component, the casting, fixation, extrusion, transportation and cooling of aluminum alloy are realized. A blower is used as a cooling component, combined with a conveyor belt and heat dissipation holes to improve the cooling efficiency.
It effectively solves the problem of cold cracks caused by slow cooling during the aluminum alloy casting process, realizes the efficient forming of large-sized ingots, reduces costs and improves casting efficiency.
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Figure CN115519079B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of aluminum alloy casting, in particular to a casting cooling system. BACKGROUND
[0002] Aluminum alloy has the advantages of small density, high strength and the like, and has important application value in many fields. Moreover, aluminum alloy has good fatigue performance and welding performance, and good resistance to marine atmospheric corrosion, and is widely used in aerospace, national defense, welded structural parts and ship fields. With the increasing requirements of users on the size specifications of workpieces, the specifications of ingot billets also increase. In particular, the casting forming, surface quality and metallurgical quality control of large-specification hard alloy and super-strength aluminum alloy round ingots are extremely difficult, and the crack tendency increases, which puts extremely high requirements on the design and manufacture of tooling and the matching of process parameters.
[0003] Traditional metal casting equipment usually adopts methods such as reducing casting speed and hot top-magnetic casting to reduce the crack tendency, but the method of reducing casting speed will cause slow casting speed and long melt residence time, and it is difficult to guarantee the ingot forming and metallurgical quality; and the method of electromagnetic casting has high cost and is not suitable for large-scale application; in the casting of aluminum alloy, for high-strength and high-toughness aluminum alloy with high crack tendency, some methods are used to make the internal and external temperatures of the ingot uniform, so that the internal stress is reduced and the liquid cavity becomes more gentle. Without using some methods, ingots with a diameter of more than 400 mm cannot be formed. When the ingot is separated from the crystallizer, the internal temperature of the liquid cavity is high due to rapid cooling to room temperature after seeing water outside, and the internal temperature also eventually reaches room temperature, so the deeper the liquid cavity, the greater the final stress and the more likely to form cold cracks. SUMMARY
[0004] Therefore, in order to solve the problem of easy formation of cold cracks due to slow cooling speed during aluminum alloy casting, the present application provides a casting cooling system, and the specific technical scheme is as follows:
[0005] A casting cooling system, comprising a casting mechanism and a cooling mechanism; the casting mechanism comprises a mounting frame, a casting device, an ingot assembly and a clamping assembly for fixing the casting device, the ingot assembly and the clamping assembly are both arranged on the mounting frame, the ingot assembly comprises an ingot piece for abutting against the clamping assembly, the ingot piece is slidable relative to the mounting frame, and the casting device is used for casting aluminum alloy; the cooling mechanism comprises a workbench, a cooling assembly and a conveying assembly for conveying aluminum alloy, the cooling assembly is covered on the workbench, the cooling assembly and the workbench cooperate to form a mounting space, and the conveying assembly is arranged in the mounting space.
[0006] The above-mentioned casting cooling system realizes the casting of aluminum alloy by providing a casting device; realizes the fixation of the casting device by providing a clamping assembly, so that the aluminum alloy formed in the casting device can be pushed out; by providing an ingot guide assembly, the ingot guide part in the ingot guide assembly slides relative to the mounting frame, which can realize reciprocating abutment against the clamping assembly, realizes the extrusion and pushing out of the aluminum alloy formed in the casting device, and completes the discharge of the aluminum alloy; by providing a conveying assembly, it is convenient to realize the transportation of the aluminum alloy formed from the casting device; by providing a cooling assembly, when the aluminum alloy is transported on the conveying assembly, the cooling assembly can realize the cooling operation of the aluminum alloy; by providing a casting mechanism and a cooling mechanism, the problem of cold cracks easily formed due to slow cooling speed during aluminum alloy casting is solved.
[0007] Furthermore, the ingot guide assembly also includes a sliding rod, a threaded part, a connecting part, a sleeve and a connecting shell installed on the mounting frame, the sleeve is rotatably connected to the connecting shell, one end of the connecting part is installed on the sleeve, the other end of the connecting part is connected to the threaded part, one end of the sliding rod is connected to the ingot guide part, the other end of the sliding rod is threadedly connected to the threaded part, and the sliding direction of the sliding rod extends into the sleeve.
[0008] Furthermore, a first driving member for driving the sleeve to rotate is provided in the connecting shell, and an output end of the first driving member is drivingly connected to the sleeve.
[0009] Furthermore, the ingot starter component includes a slider, an intermediate plate, an ingot starter plate and a mounting block sleeved on the sliding rod, one end of the intermediate plate is connected to the mounting block, and the other end of the intermediate plate is connected to the ingot starter plate, the slider is installed on the intermediate plate, and the mounting frame is provided with a guide rail slidably connected to the slider, and the ingot starter plate is used to push the aluminum alloy in the casting device out of the clamping assembly.
[0010] Furthermore, the clamping assembly includes a positioning fixture and a positioning plate installed on the mounting frame, the positioning fixture is fixed to the positioning plate, and the positioning fixture is used to fix the casting device.
[0011] Furthermore, the cooling assembly includes a protective cover and multiple cooling parts. The protective cover is arranged on the workbench. A support frame for supporting the workbench is provided at the bottom of the protective cover. A plurality of through holes are arranged side by side at intervals on the top of the protective cover. The cooling parts are inserted into the through holes. The number of the cooling parts and the number of the through holes are both multiple, and the two correspond one to one.
[0012] Furthermore, the cooling element is a blower.
[0013] Further, the conveying assembly comprises a mounting base, a conveying belt, a second driving member and two rollers rotatably connected to the workbench, the conveying belt is arranged around the two rollers, the mounting base is arranged on the workbench, and the second driving member is arranged on the mounting base and is in transmission connection with the rollers.
[0014] Further, a discharging gap is formed between the workbench and the bottom of the conveying belt, and the conveying assembly further comprises a push plate, a push rod and a third driving member arranged on the workbench, the output end of the third driving member is connected with the push rod, the push rod is connected with the push plate, and the push plate is used for abutting against the aluminum alloy in the discharging gap.
[0015] Further, a plurality of heat dissipation holes are arranged on the conveying belt, and equidistantly arranged blocking plates are arranged on the surface of the conveying belt. BRIEF DESCRIPTION OF DRAWINGS
[0016] The application can be further understood from the following description taken in conjunction with the accompanying drawings. The components in the drawings are not necessarily drawn to scale, but emphasis is instead placed upon illustrating the principles of the embodiments. In different views, the same reference numerals designate corresponding parts.
[0017] Figure 1 is a structural schematic view of a casting mechanism of a casting cooling system according to an embodiment of the application;
[0018] Figure 2 is a structural schematic view of a casting mechanism of a casting cooling system according to an embodiment of the application;
[0019] Figure 3 is a structural schematic view of a conveying assembly of a casting cooling system according to an embodiment of the application;
[0020] Figure 4 is a structural schematic view of a conveying assembly of a casting cooling system according to an embodiment of the application;
[0021] Figure 5 is a structural schematic view of a cooling assembly of a casting cooling system according to an embodiment of the application;
[0022] Figure 6 is a structural schematic view of a mounting clamp of a casting cooling system according to an embodiment of the application;
[0023] Figure 7 is a structural schematic view of a mounting clamp of a casting cooling system according to an embodiment of the application;
[0024] Figure 8 is a structural schematic view of a conveying belt of a casting cooling system according to an embodiment of the application;
[0025] Figure 9 It is a structural schematic diagram of a casting device of a casting cooling system according to an embodiment of the present invention.
[0026] Description of reference numerals:
[0027] 1. Mounting frame; 11. Guide rail; 2. Starter assembly; 21. Starter member; 211. Slider; 212. Intermediate plate; 213. Starter plate; 214. Mounting block; 22. Sliding rod; 23. Threaded member; 24. Connecting member; 25. Sleeve; 26. Connecting shell; 3. Clamping assembly; 31. Positioning fixture; 311. Clamping member; 3111. Clamping block; 3112. Connecting block; 3113. Control handle; 3114. Fixing block; 312. Backing plate; 313. Locking member; 314. Positioning seat ;32. Positioning plate;4. Workbench;5. Cooling assembly;51. Protective cover;52. Cooling element;53. Support frame;6. Conveying assembly;61. Mounting seat;62. Conveyor belt;621. Heat dissipation hole;622. Blocking plate;63. Second driving member;64. Roller;65. Push plate;66. Push rod;67. Third driving member;7. Casting device;71. Metal liquid hole;72. Crystallizer;73. Ingot;74. Graphite base;75. Insulation tube;76. Air inlet pipe;77. Air outlet pipe. DETAILED DESCRIPTION
[0028] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention is further described in detail below in conjunction with its embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and do not limit the scope of protection of the present invention.
[0029] It should be noted that when an element is referred to as being "fixed to" another element, it may be directly attached to the other element or there may be an intermediate element. When an element is referred to as being "connected to" another element, it may be directly connected to the other element or there may be an intermediate element. The terms "vertical," "horizontal," "left," "right," and similar expressions used herein are for illustrative purposes only and do not represent the only implementations.
[0030] Unless otherwise defined, all technical and scientific terms used herein have the same meanings as commonly understood by one skilled in the art to which this invention pertains. The terms used in this specification of the present invention are for the purpose of describing specific embodiments only and are not intended to limit the present invention. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.
[0031] The "first" and "second" in the present invention do not represent specific quantities and orders, but are only used to distinguish names.
[0032] like Figure 1-9 As shown, a casting cooling system in one embodiment of the present invention includes a casting mechanism and a cooling mechanism; the casting mechanism includes a mounting frame 1, a casting device 7, a starter assembly 2 and a clamping assembly 3 for fixing the casting device 7, the starter assembly 2 and the clamping assembly 3 are both mounted on the mounting frame 1, the starter assembly 2 includes a starter part 21 for abutting against the clamping assembly 3, the starter part 21 can slide relative to the mounting frame 1, and the casting device 7 is used to cast aluminum alloy; the cooling mechanism includes a workbench 4, a cooling assembly 5 and a conveying assembly 6 for transporting aluminum alloy, the cooling assembly 5 is covered on the workbench 4, the cooling assembly 5 and the workbench 4 cooperate to form an installation space, and the conveying assembly 6 is installed in the installation space.
[0033] The above-mentioned casting cooling system realizes the casting of aluminum alloy by providing a casting device 7; realizes the fixation of the casting device 7 by providing a clamping assembly 3, so that the aluminum alloy formed in the casting device 7 can be pushed out; the ingot guide assembly 2 is provided, and the ingot guide part 21 in the ingot guide assembly 2 slides relative to the mounting frame 1, which can realize reciprocating abutment with the clamping assembly 3, thereby realizing the extrusion and pushing out of the aluminum alloy formed in the casting device 7, and completing the discharge of the aluminum alloy; the conveying assembly 6 is provided, so that the transportation of the aluminum alloy formed from the casting device 7 is facilitated; the cooling assembly 5 is provided, so that when the aluminum alloy is transported on the conveying assembly 6, the cooling assembly 5 can realize the cooling operation of the aluminum alloy; the casting mechanism and the cooling mechanism are provided, which solves the problem of cold cracks easily formed due to slow cooling speed during aluminum alloy casting.
[0034] like Figure 1 and Figure 2 As shown, in one embodiment, the starter assembly 2 further includes a sliding rod 22, a threaded member 23, a connector 24, a sleeve 25, and a connecting shell 26 mounted on the mounting frame 1. The sleeve 25 is rotatably connected to the connecting shell 26. One end of the connector 24 is mounted on the sleeve 25, and the other end of the connector 24 is connected to the threaded member 23. One end of the sliding rod 22 is connected to the starter member 21, and the other end of the sliding rod 22 is threadedly connected to the threaded member 23. The sliding direction of the sliding rod 22 extends into the sleeve 25. In this way, the rotation of the sleeve 25 drives the rotation of the connector 24, thereby driving the rotation of the threaded member 23 on the connector 24. The threaded connection between the threaded member 23 and the sliding rod 22 also drives the reciprocating sliding of the sliding rod 22. Therefore, it is possible to achieve reciprocating separation and abutment of the clamping assembly 3, completing the push extrusion of the aluminum alloy in the casting device 7.
[0035] In one embodiment, a first driving member for driving the sleeve 25 to rotate is provided in the connecting shell 26, and an output end of the first driving member is in transmission connection with the sleeve 25. In this way, the sleeve 25 is driven to rotate by providing the first driving member.
[0036] like Figure 1 and Figure 2 As shown, in one embodiment, the starter member 21 includes a slider 211, an intermediate plate 212, a starter plate 213, and a mounting block 214 sleeved on the sliding rod 22. One end of the intermediate plate 212 is connected to the mounting block 214, and the other end of the intermediate plate 212 is connected to the starter plate 213. The slider 211 is mounted on the intermediate plate 212. The mounting frame 1 is provided with a guide rail 11 slidably connected to the slider 211. The starter plate 213 is used to push the aluminum alloy in the casting device 7 out of the clamping assembly 3. In this way, by providing the slider 211, the sliding of the slider 211 along the guide rail 11 drives the sliding of the intermediate plate 212, thereby driving the starter plate 213 to reciprocate away from and abut against the clamping assembly 3, thereby achieving the pushing and extrusion of the aluminum alloy in the casting device 7.
[0037] like Figure 1 and Figure 6 As shown, in one embodiment, the clamping assembly 3 includes a positioning fixture 31 and a positioning plate 32 mounted on the mounting frame 1 , the positioning fixture 31 is fixed to the positioning plate 32 , and the positioning fixture 31 is used to fix the casting device 7 .
[0038] like Figure 6 and Figure 7 As shown, specifically, the positioning fixture 31 includes a clamping member 311, a pad 312, a locking member 313 and a positioning seat 314 fixed on the positioning plate 32, and the positioning seat 314 is provided with a mounting hole adapted to the casting device 7, one end of the locking member 313 is connected to the pad 312, and the other end of the locking member 313 is threadedly connected to the positioning seat 314, and a placement space for placing the casting device 7 is formed between the pad 312 and the mounting hole, and the clamping member 311 is installed on the positioning seat 314 and is used to fix the position of the pad 312. In this way, by providing the locking piece 313, when the aluminum alloy on the casting device 7 is formed, the staff covers the pad 312 on top of the casting device 7, and then uses the clamping piece 311 to position the position of the pad 312 to complete the preliminary fixation. Then, based on this position, the position of the pad 312 and the position of the positioning seat 314 are completely locked and fixed using the threaded connection of the locking piece 313, which is conducive to more convenient adjustment of the position of the pad 312 and prevents the pad 312 from falling off and causing the aluminum alloy to directly contact the ingot guide plate 213.
[0039] like Figure 6 and Figure 7As shown, the clamping member 311 further includes a clamping block 3111, a connecting block 3112, a control handle 3113, and a fixed block 3114 mounted on the positioning seat 314. The connecting block 3112 is mounted on the fixed block 3114. One end of the clamping block 3111 is rotatably connected to the connecting block 3112, and the other end of the clamping block 3111 is used to abut the backing plate 312. The control handle 3113 is mounted on the connecting block 3112 and is used to control the rotation of the clamping block 3111. In this way, by providing the control handle 3113, the control handle 3113 drives the rotation of the clamping block 3111, so that the clamping block 3111 can reciprocate away from and abut the backing plate 312. When the backing plate 312 is not fixed by the locking member 313, the position of the backing plate 312 is positioned, thereby preventing the backing plate 312 from falling off, causing the aluminum alloy to directly contact the starter plate 213, causing wear or even damage to the aluminum alloy.
[0040] like Figure 3-5 As shown, in one embodiment, the cooling assembly 5 includes a protective cover 51 and multiple cooling elements 52. The protective cover 51 is placed on the workbench 4. The bottom of the protective cover 51 is provided with a support frame 53 for supporting the workbench 4. The top of the protective cover 51 is provided with multiple through holes spaced side by side. The cooling elements 52 are inserted into the through holes. The number of cooling elements 52 and the number of through holes are both multiple, and the two correspond one to one. In this way, by providing the protective cover 51, the aluminum alloy on the conveying assembly 6 can be protected from damage, and the workbench 4 can be enclosed into a closed space, which is more conducive to the cooling effect of the cooling elements 52.
[0041] In one embodiment, the cooling member 52 is a blower. As such, the blower is known in the art and will not be described in detail herein.
[0042] like Figure 3 and Figure 4 As shown, in one embodiment, the conveying assembly 6 includes a mounting base 61, a conveyor belt 62, a second driving member 63, and two rollers 64 rotatably connected to the workbench 4. The conveyor belt 62 is wound around the two rollers 64, the mounting base 61 is mounted on the workbench 4, and the second driving member 63 is mounted on the mounting base 61 and is in transmission connection with the rollers 64. In this way, by providing the second driving member 63, the second driving member 63 drives the rotation of the rollers 64, thereby driving the operation of the conveyor belt 62, thereby realizing the transportation of aluminum alloy.
[0043] like Figure 3 and Figure 4As shown, in one embodiment, a discharge gap is formed between the worktable 4 and the bottom of the conveyor belt 62. The conveyor assembly 6 also includes a push plate 65, a push rod 66, and a third drive member 67 mounted on the worktable 4. The output end of the third drive member 67 is connected to the push rod 66, which is connected to the push plate 65. The push plate 65 is used to abut the aluminum alloy in the discharge gap. Thus, by providing the third drive member 67, the third drive member 67 drives the push rod 66 to slide back and forth, thereby driving the push plate 65 to reciprocate away from and abut the aluminum alloy sliding off the conveyor belt 62, thereby completing the final discharge of the aluminum alloy.
[0044] like Figure 8 As shown in one embodiment, a plurality of heat dissipation holes 621 are provided on the conveyor belt 62, and blocking plates 622 are fixedly mounted on the surface of the conveyor belt 62 at equal intervals. The heat dissipation holes 621 facilitate heat dissipation and temperature reduction of the aluminum alloy on the conveyor belt 62; and the blocking plates 622 enable orderly cooling of multiple aluminum alloys.
[0045] like Figure 9 As shown, in one embodiment, the casting device 7 includes a metal molten pool 71, a crystallizer 72, an ingot 73, and a starter plate connected to the ingot 73; the starter plate is used to abut against the backing plate 312, the crystallizer 72 is installed on the inner wall of the installation hole, the ingot 73 is located in the crystallizer 72, the metal molten pool 71 is located on the top of the ingot 73, and the crystallizer 72 is used to reduce the surface temperature of the metal molten pool 71. In this way, the crystallizer 72 facilitates the installation of the ingot 73 and simultaneously achieves the cooling of the surface of the metal molten pool 71; the ingot 73 realizes the solid-liquid coexistence process of the molten metal cooling and solidification into an ingot; the starter plate facilitates the pulling out of the solid portion of the ingot 73 from the crystallizer 72 to form an ingot, while the unpulled portion of the ingot 73 cooperates with the crystallizer 72 to form a liquid metal molten pool 71, which is beneficial for the subsequent storage and cooling of the molten metal.
[0046] like Figure 9As shown, further, a cooling module is inserted into the metal liquid cavity 71, and the cooling module includes a graphite base 74, an insulation tube 75, and an air inlet pipe 76 and an air outlet pipe 77 that are interconnected. One end of the insulation tube 75 is connected to the graphite base 74 and inserted into the metal liquid cavity 71, and the other end of the insulation tube 75 is provided with an opening. A cavity connected to the opening is provided in the insulation tube 75, and the cavity extends to the connection between the insulation tube 75 and the graphite base 74. The air inlet pipe 76 and the air outlet pipe 77 are both arranged in the cavity, and the connection between the air inlet pipe 76 and the air outlet pipe 77 is located at the bottom of the cavity. The air inlet pipe 76 and the air outlet pipe 77 are both used to circulate nitrogen. In this way, by providing an air inlet pipe 76 and an air outlet pipe 77, nitrogen enters from the air inlet pipe 76 and is discharged from the air outlet pipe 77. During the process, the nitrogen in and out takes away the heat of the graphite base 74, thereby taking away the heat from the core of the ingot, and the liquid cavity becomes smooth so that the aluminum alloy ingot with a high tendency to cold cracks can be smoothly formed.
[0047] Specifically, the starter connecting plate is a prior art.
[0048] Preferably, the ingot 73 is a round ingot. Thus, the outer contour of the solidified ingot is cylindrical.
[0049] The technical features of the above-mentioned embodiments can be combined arbitrarily. In order to make the description concise, not all possible combinations of the technical features in the above-mentioned embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.
[0050] The above-described embodiments merely illustrate several implementations of the present invention, and while their descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the patent. It should be noted that a person skilled in the art would be able to make numerous variations and improvements without departing from the spirit of the present invention, all of which fall within the scope of protection of the present invention. Therefore, the scope of protection of the patent for this invention shall be determined by the appended claims.
Claims
1. A casting cooling system, characterized in that: The invention comprises a casting mechanism, wherein the casting mechanism comprises a mounting frame, a casting device, a starter assembly, and a clamping assembly for fixing the casting device, wherein the starter assembly and the clamping assembly are both mounted on the mounting frame, the starter assembly comprises a starter piece for abutting against the clamping assembly, and the starter piece is slidable relative to the mounting frame, and the casting device is used for casting aluminum alloy; A cooling mechanism, comprising a workbench, a cooling assembly, and a conveying assembly for transporting aluminum alloy, wherein the cooling assembly is covered on the workbench, the cooling assembly cooperates with the workbench to form an installation space, and the conveying assembly is installed in the installation space; The casting device includes a metal liquid cavity, a crystallizer, an ingot and an ingot guide connecting plate connected to the ingot; the ingot guide connecting plate is used to abut against the pad, the crystallizer is installed on the inner wall of the mounting hole, the ingot is located in the crystallizer, the metal liquid cavity is located on the top of the ingot, and the crystallizer is used to reduce the surface temperature of the metal liquid cavity; a cooling module is inserted into the metal liquid cavity, the cooling module includes a graphite base, an insulation tube and an air inlet pipe and an air outlet pipe that are interconnected, one end of the insulation tube is connected to the graphite base and inserted into the metal liquid cavity, the other end of the insulation tube is provided with an opening, a cavity connected to the opening is provided in the insulation tube, the cavity extends to the connection between the insulation tube and the graphite base, the air inlet pipe and the air outlet pipe are both installed in the cavity, and the connection between the air inlet pipe and the air outlet pipe is located at the bottom end of the cavity; The cooling assembly includes a protective cover and multiple cooling parts. The protective cover is arranged on the workbench. A support frame for supporting the workbench is provided at the bottom of the protective cover. A plurality of through holes are arranged side by side at intervals on the top of the protective cover. The cooling parts are inserted into the through holes. The number of the cooling parts and the number of the through holes are both multiple, and the two correspond one to one; the conveying assembly includes a mounting seat, a conveyor belt, a second driving member and two rollers rotatably connected to the workbench, the conveyor belt is wound around the two rollers, the mounting seat is mounted on the workbench, the second driving member is installed on the mounting seat and is transmission-connected to the rollers; a plurality of heat dissipation holes are opened on the conveyor belt, and the surface of the conveyor belt is fixedly mounted with equidistantly arranged blocking plates.
2. The casting cooling system according to claim 1, characterized in that: The ingot guide assembly also includes a sliding rod, a threaded part, a connecting part, a sleeve and a connecting shell installed on the mounting frame. The sleeve is rotatably connected to the connecting shell. One end of the connecting part is installed on the sleeve, and the other end of the connecting part is connected to the threaded part. One end of the sliding rod is connected to the ingot guide part, and the other end of the sliding rod is threadedly connected to the threaded part. The sliding direction of the sliding rod extends into the sleeve.
3. The casting cooling system according to claim 2, characterized in that: A first driving member for driving the sleeve to rotate is provided in the connecting shell, and an output end of the first driving member is transmission-connected to the sleeve.
4. The casting cooling system according to claim 2, characterized in that: The ingot starter component includes a slider, an intermediate plate, a ingot starter plate and a mounting block sleeved on the sliding rod, one end of the intermediate plate is connected to the mounting block, and the other end of the intermediate plate is connected to the ingot starter plate, the slider is mounted on the intermediate plate, and the mounting frame is provided with a guide rail slidably connected to the slider, and the ingot starter plate is used to push the aluminum alloy in the casting device out of the clamping assembly.
5. The casting cooling system according to claim 1, characterized in that: The clamping assembly includes a positioning fixture and a positioning plate installed on the mounting frame. The positioning fixture is fixed on the positioning plate and is used to fix the casting device.
6. The casting cooling system according to claim 1, characterized in that: The cooling element is a blower.
7. The casting cooling system according to claim 1, characterized in that: A discharge gap is formed between the workbench and the bottom of the conveyor belt. The conveying assembly also includes a push plate, a push rod and a third driving member installed on the workbench. The output end of the third driving member is connected to the push rod, and the push rod is connected to the push plate. The push plate is used to abut the aluminum alloy in the discharge gap.
Citation Information
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Copper and copper alloy casting equipment under protection of nitrogen
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