Magnesium ingot continuous casting device
By designing a continuous casting device of magnesium ingots, the combination of the rotating ring and air guide assembly can achieve rapid cooling and continuous casting of magnesium ingots, solving the problems of slow cooling speed and waiting for cooling to form in the prior art, and improving the casting efficiency of magnesium ingots.
Patent Information
- Application Number
- CN202422429034.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-09
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2034-10-09
AI Technical Summary
In the prior art, the cooling speed of the magnesium ingot casting mold is slow and the cooling effect is poor, resulting in the mold forming time being too long. After forming multiple models at one time, you need to wait for cooling and molding to be disassembled, which reduces the efficiency of magnesium ingot casting.
A continuous casting device for magnesium ingots is designed, including a base, casting mold body, rotating ring, air guide hood and air guide assembly. Through the cooperation of the rotating component and air guide assembly, the rapid cooling of magnesium ingots is achieved, and the air flow in the air guide hood is used to accelerate the cooling process to achieve continuous casting and mold release.
The rapid cooling and continuous casting of magnesium ingots are achieved, which reduces waiting time, improves the casting efficiency of magnesium ingots and improves production efficiency.
Smart Images

Figure CN223171876U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of magnesium ingot casting, in particular to a continuous magnesium ingot casting device. Background Art
[0002] Magnesium metal is a new type of light and corrosion-resistant metal material, which is widely used in various industries. During the smelting process of magnesium ingots, casting molds are often used to form the magnesium ingots into the required shapes. However, the current magnesium ingot casting molds have a slow cooling and heat dissipation speed and a poor cooling effect, resulting in a too long molding time of the molds, reducing the production efficiency. Moreover, a mold has only one slot, and only one model can be manufactured in one molding.
[0003] In the patent application with the publication number of CN213614005U in the prior art, a multi-slot magnesium ingot casting mold for metal smelting is disclosed. By setting a separation plate, the main mold slot can be divided into multiple slots, and multiple models can be formed in one molding.
[0004] Although multiple models can be formed in one molding in the prior art, the amount of molten metal cast at one time is large, the time consumption is long, and after casting, the operator needs to wait for the model to cool and form before disassembling, resulting in a low magnesium ingot casting efficiency. Summary of the Utility Model
[0005] The purpose of the utility model is to provide a continuous magnesium ingot casting device, aiming to solve the problem that although multiple models can be formed in one molding in the prior art, the amount of molten metal cast at one time is large, the time consumption is long, and after casting, the operator needs to wait for the model to cool and form before disassembling, resulting in a low magnesium ingot casting efficiency.
[0006] To achieve the above purpose, the utility model provides a continuous magnesium ingot casting device, which includes a base, four casting mold bodies and a continuous casting mechanism. The continuous casting mechanism includes a rotating ring, a rotating component, a wind guide cover and a wind guide component. The base has an installation groove. The wind guide cover has an air inlet and an air outlet. The four casting mold bodies are located above the base. The rotating ring is slidably connected to the base and is located above the installation groove. The rotating component is arranged below the base and the rotating ring. The four casting mold bodies are fixedly connected to the rotating ring and are located above the rotating ring. The wind guide cover is fixedly connected to the base, and two of the casting mold bodies are located inside the wind guide cover. The wind guide component is arranged inside the wind guide cover and is located inside the air inlet.
[0007] Among them, the rotating assembly includes a power kit, a driving gear, and a gear ring. The power kit is arranged below the base. The driving gear is arranged on the output end of the power kit. The gear ring is fixedly connected to the rotating ring and is located in the installation groove. The driving gear is meshed with the gear ring.
[0008] Among them, the power kit includes a driving motor and a driving shaft. The driving motor is fixedly connected to the base and is located below the base. The driving shaft is fixedly connected to the output end of the driving motor.
[0009] Among them, the air guiding assembly includes a mounting frame, a rotating motor, a rotating shaft, and an air generating kit. Both ends of the mounting frame are fixedly connected to the air guiding cover and are located at the air inlet. The rotating motor is fixedly connected to the mounting frame. The rotating shaft is fixedly connected to the output end of the rotating motor. The air generating kit is arranged on the rotating shaft.
[0010] Among them, the air generating kit includes a mounting cylinder and rotating fan blades. The inner side wall of the mounting cylinder is fixedly connected to the rotating shaft. The outer side wall of the mounting cylinder is fixedly connected to the rotating fan blades.
[0011] In a magnesium ingot continuous casting device of the present utility model, when casting magnesium ingots, an operator casts the casting mold body near the air inlet of the air guiding cover. After casting is completed, the rotating assembly is started. The rotating assembly drives the rotating ring to rotate and moves the casting mold body that has completed casting into the air guiding cover through the air inlet. The rotating assembly is turned off, and the casting mold body near the air inlet of the air guiding cover is cast again. At this time, the air guiding assembly guides air flow into the air guiding cover, increasing the gas flow rate in the air guiding cover, enabling the magnesium ingots in the casting mold body to be quickly cooled. The just-cast magnesium ingots enter the air guiding cover for cooling. After the magnesium ingots come out from the air outlet and are cooled, the operator demolds them. Repeating this way, the operator can perform continuous casting of magnesium ingots without extra waiting time, thereby increasing the casting efficiency of magnesium ingots. Description of the Drawings
[0012] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art.
[0013] Figure 1 It is a schematic structural diagram of the magnesium ingot continuous casting device of the present utility model.
[0014] Figure 2 It is a schematic structural diagram of the magnesium ingot continuous casting device of the present utility model in another direction.
[0015] Figure 3 It is a schematic structural diagram inside the air guide cover of the present utility model.
[0016] Figure 4 It is a schematic structural diagram of the base of the present utility model.
[0017] Figure 5 It is a schematic structural diagram of the air guide assembly of the present utility model.
[0018] 101 - Base, 102 - Installation groove, 103 - Rotating ring, 104 - Casting mold body, 105 - Air guide cover, 106 - Air inlet, 107 - Air outlet, 108 - Driving motor, 109 - Driving shaft, 110 - Driving gear, 111 - Tooth ring, 112 - Mounting frame, 113 - Rotating motor, 114 - Rotating shaft, 115 - Mounting cylinder, 116 - Rotating fan blade. Specific implementation mode
[0019] Please refer to Figures 1 to 5 , wherein, Figure 1 It is a schematic structural diagram of the magnesium ingot continuous casting device of the present utility model, Figure 2 It is a schematic structural diagram of the magnesium ingot continuous casting device in another direction of the present utility model, Figure 3 It is a schematic structural diagram inside the air guide cover of the present utility model, Figure 4 It is a schematic structural diagram of the base of the present utility model, Figure 5 It is a schematic structural diagram of the air guide assembly of the present utility model.
[0020] The present utility model provides a magnesium ingot continuous casting device, including a base 101, four casting mold bodies 104 and a continuous casting mechanism. The continuous casting mechanism includes a rotating ring 103, a rotating assembly, an air guide cover 105 and an air guide assembly. The base 101 has an installation groove 102. The air guide cover 105 has an air inlet 106 and an air outlet 107. The rotating assembly includes a power kit, a driving gear 110 and a tooth ring 111. The power kit includes a driving motor 108 and a driving shaft 109. The air guide assembly includes a mounting frame 112, a rotating motor 113, a rotating shaft 114 and an air generating kit. The air generating kit includes a mounting cylinder 115 and a rotating fan blade 116. Through the foregoing solution, the problem that although multiple models can be formed at one time in the prior art, the amount of molten metal cast at one time is large, the time consumption is long, and the operator needs to wait for the model to cool and form before disassembling after casting is completed, resulting in low efficiency of magnesium ingot casting, is solved.
[0021] In this embodiment, the four casting mold bodies 104 are located above the base 101. The rotating ring 103 is slidably connected to the base 101 and is located above the installation groove 102. The rotating assembly is arranged below the base 101 and the rotating ring 103. The four casting mold bodies 104 are fixedly connected to the rotating ring 103 and are located above the rotating ring 103. The air guide cover 105 is fixedly connected to the base 101, and two of the casting mold bodies 104 are located inside the air guide cover 105. The air guide assembly is arranged inside the air guide cover 105 and is located inside the air inlet 106. When casting magnesium ingots, the operator casts the casting mold body 104 near the air inlet 106 of the air guide cover 105. After casting is completed, the rotating assembly is started. The rotating assembly drives the rotating ring 103 to rotate and moves the casted casting mold body 104 into the air guide cover 105 through the air inlet 106. The rotating assembly is turned off, and the casting mold body 104 near the air inlet 106 of the air guide cover 105 is cast again. At this time, the air guide assembly introduces air flow into the air guide cover 105 to increase the gas flow rate inside the air guide cover 105, so that the magnesium ingots in the casting mold body 104 can be quickly cooled. The just-cast magnesium ingots enter the air guide cover 105 for cooling. After the magnesium ingots come out from the air outlet 107 and are cooled, the operator demolds them. Repeating this process, the operator can continuously cast magnesium ingots without extra waiting time, thereby increasing the casting efficiency of magnesium ingots.
[0022] Further, the power kit is arranged below the base 101. The driving gear 110 is arranged on the output end of the power kit. The gear ring 111 is fixedly connected to the rotating ring 103 and is located inside the installation groove 102. The driving gear 110 is meshed with the gear ring 111.
[0023] Further, the driving motor 108 is fixedly connected to the base 101 and is located below the base 101. The driving shaft 109 is fixedly connected to the output end of the driving motor 108.
[0024] In this embodiment, when rotating the four casting mold bodies 104, the driving motor 108 is started. The driving motor 108 drives the driving shaft 109 and the driving gear 110 to rotate. The driving gear 110 drives the rotating ring 103 and the four casting mold bodies 104 to rotate by being meshed with the gear ring 111, so as to facilitate the operator to continuously cast, cool and demold magnesium ingots, and improve the production efficiency.
[0025] Further, both ends of the mounting bracket 112 are fixedly connected to the air guide cover 105 and are located at the air inlet 106. The rotary motor 113 is fixedly connected to the mounting bracket 112. The rotary shaft 114 is fixedly connected to the output end of the rotary motor 113. The air generating kit is arranged on the rotary shaft 114.
[0026] Further, the inner side wall of the mounting cylinder 115 is fixedly connected to the rotary shaft 114, and the outer side wall of the mounting cylinder 115 is fixedly connected to the rotary fan blade 116.
[0027] In this embodiment, when the casting mold body 104 containing magnesium ingots is added to the air guide cover 105, the rotary motor 113 drives the rotary shaft 114 and the rotary fan blade 116 to rotate, and introduces air flow into the air guide cover 105, increasing the gas flow rate in the air guide cover 105, so that the magnesium ingots in the casting mold body 104 can be quickly cooled.
[0028] When using the present utility model for magnesium ingot casting, an operator casts the casting mold body 104 near the air inlet 106 of the air guide cover 105. After casting is completed, the driving motor 108 is started. The driving motor 108 drives the rotating ring 103 to rotate, and moves the casting mold body 104 that has completed casting into the air guide cover 105 through the air inlet 106. The driving motor 108 is turned off, and the casting mold body 104 near the air inlet 106 of the air guide cover 105 is cast again. At this time, the rotary fan blade 116 rotates at a high speed to introduce air flow into the air guide cover 105, increasing the gas flow rate in the air guide cover 105, so that the magnesium ingots in the casting mold body 104 can be quickly cooled. The just-cast magnesium ingots enter the air guide cover 105 for cooling. After the magnesium ingots come out of the air outlet 107 and are cooled, the operator demolds them. Repeating this process, the operator can perform continuous magnesium ingot casting without extra waiting time, thereby increasing the casting efficiency of magnesium ingots.
[0029] The above-disclosed is only a preferred embodiment of the present application, and it cannot be used to limit the scope of rights of the present application. Those of ordinary skill in the art can understand the whole or part of the processes of implementing the above embodiments, and the equivalent changes made according to the claims of the present application still fall within the scope covered by the present application.
Claims
1. A continuous magnesium ingot casting device, comprising a base and four casting die bodies. The four casting die bodies are located above the base. It is characterized in that it further comprises a continuous casting mechanism. The continuous casting mechanism includes a rotating ring, a rotating component, a wind guide cover and a wind guide component. The base has a mounting groove. The wind guide cover has an air inlet and an air outlet. The rotating ring is slidably connected to the base and is located above the mounting groove. The rotating component is arranged below the base and the rotating ring. The four casting die bodies are fixedly connected to the rotating ring and are located above the rotating ring. The wind guide cover is fixedly connected to the base, and two of the casting die bodies are located inside the wind guide cover. The wind guide component is arranged inside the wind guide cover and is located inside the air inlet.
2. The continuous magnesium ingot casting device according to claim 1, characterized in that the rotating component includes a power kit, a driving gear and a gear ring. The power kit is arranged below the base. The driving gear is arranged on the output end of the power kit. The gear ring is fixedly connected to the rotating ring and is located inside the mounting groove. The driving gear is meshed with the gear ring.
3. The continuous magnesium ingot casting device according to claim 2, characterized in that the power kit includes a driving motor and a driving shaft. The driving motor is fixedly connected to the base and is located below the base. The driving shaft is fixedly connected to the output end of the driving motor.
4. The continuous magnesium ingot casting device according to claim 3, characterized in that the wind guide component includes a mounting frame, a rotating motor, a rotating shaft and a wind generating kit. The two ends of the mounting frame are fixedly connected to the wind guide cover and are located inside the air inlet. The rotating motor is fixedly connected to the mounting frame. The rotating shaft is fixedly connected to the output end of the rotating motor. The wind generating kit is arranged on the rotating shaft.
5. The continuous magnesium ingot casting device according to claim 4, characterized in that the wind generating kit includes a mounting cylinder and rotating fan blades. The inner side wall of the mounting cylinder is fixedly connected to the rotating shaft. The outer side wall of the mounting cylinder is fixedly connected to the rotating fan blades.
Citation Information
Patent Citations
Multislot magnesium ingot casting mold for metal smelting
CN213614005U