Patent classifications
B22D11/143
HORIZONTAL CONTINUOUS CASTING APPARATUS AND METHOD FOR MANUFACTURING ALUMINUM ALLOY CAST ROD USING THE SAME
A horizontal continuous casting apparatus includes a fluid supply pipe for supplying a lubricating fluid to the hollow portion of the mold, which is arranged on one end side of the mold; and, a cooling water cavity for accommodating cooling water cooling an inner peripheral surface of the hollow portion of the mold, which is formed outside the inner peripheral surface, wherein the inner peripheral surface and the inner bottom surface of the cooling water cavity facing the inner peripheral surface form parallel surfaces with each other, and a cooling wall of the mold between the inner peripheral surface and the inner bottom surface is formed so that the heat flux value per unit area from the molten aluminum alloy to the cooling water is 10×10.sup.5 W/m.sup.2 or more.
COPPER BILLET HORIZONTAL CONTINUOUS CASTING APPARATUS AND PROCESS WITH A VERTICAL SHAFT FURNACE FOR SMELTING
- Zhangquan ZHU ,
- Xuelong ZHAO ,
- Weimin MA ,
- Zhiqiang DONG ,
- Lirong JIANG ,
- Jianping FENG ,
- Guang ZHOU ,
- Zhenming WANG ,
- Zhongzhan ZHANG ,
- Zhen FAN ,
- Jie ZHAO ,
- Yue LI ,
- Zhefeng RUAN ,
- Liyong WANG ,
- Jia HE ,
- Fuliang HE ,
- Yina PAN ,
- Shili OUYANG ,
- Wencai PENG ,
- Liyun TIAN ,
- Jingke YU ,
- Yonglong FU ,
- Xibin LIN ,
- Lusen HUANG ,
- Xiaoyong HE
The present invention provides a copper billet horizontal continuous casting apparatus with a vertical shaft furnace for smelting and a corresponding process. The copper billet horizontal continuous casting apparatus with a vertical shaft furnace for smelting includes: a vertical shaft, a refining furnace, a mixing furnace, a holding furnace, and a continuous casting furnace; wherein the refining furnace comprises a furnace body, and a gas flushing device disposed beneath the furnace body, a gas flushing brick is provided at the chamber bottom wall of the furnace body; a gas inlet device is provided on the vertical shaft furnace; the vertical shaft furnace further includes a detecting device and an adjusting device which are connected with the air inlet device.
Copper billet horizontal continuous casting apparatus and process with a vertical shaft furnace for smelting
- Zhangquan ZHU ,
- Xuelong ZHAO ,
- Weimin MA ,
- Zhiqiang DONG ,
- Lirong JIANG ,
- Jianping FENG ,
- Guang ZHOU ,
- Zhenming WANG ,
- Zhongzhan ZHANG ,
- Zhen FAN ,
- Jie ZHAO ,
- Yue LI ,
- Zhefeng RUAN ,
- Liyong WANG ,
- Jia HE ,
- Fuliang HE ,
- Yina PAN ,
- Shili OUYANG ,
- Wencai PENG ,
- Liyun TIAN ,
- Jingke YU ,
- Yonglong FU ,
- Xibin LIN ,
- Lusen HUANG ,
- Xiaoyong HE
The present invention provides a copper billet horizontal continuous casting apparatus with a vertical shaft furnace for smelting and a corresponding process. The copper billet horizontal continuous casting apparatus with a vertical shaft furnace for smelting includes: a vertical shaft, a refining furnace, a mixing furnace, a holding furnace, and a continuous casting furnace; wherein the refining furnace includes a furnace body, and a gas flushing device disposed beneath the furnace body, a gas flushing brick is provided at the chamber bottom wall of the furnace body; a gas inlet device is provided on the vertical shaft furnace; the vertical shaft furnace further includes a detecting device and an adjusting device which are connected with the air inlet device.
Horizontal continuous casting apparatus and method for manufacturing aluminum alloy cast rod using the same
A horizontal continuous casting apparatus includes a fluid supply pipe for supplying a lubricating fluid to the hollow portion of the mold, which is arranged on one end side of the mold; and, a cooling water cavity for accommodating cooling water cooling an inner peripheral surface of the hollow portion of the mold, which is formed outside the inner peripheral surface, wherein the inner peripheral surface and the inner bottom surface of the cooling water cavity facing the inner peripheral surface form parallel surfaces with each other, and a cooling wall of the mold between the inner peripheral surface and the inner bottom surface is formed so that the heat flux value per unit area from the molten aluminum alloy to the cooling water is 10×10.sup.5 W/m.sup.2 or more.
SYSTEM AND METHOD FOR REPLACING AND ADJUSTING CONTINUOUS CASTING COMPONENTS
A method includes: replacing a first casting system component by a second casting component; sensing a position of the second casting component relative to at least one of a reference position and a third casting component; determining an adjustment amount and/or direction of the second casting system component; and providing the adjustment amount and/or direction to an operator for adjustment of the second casting system component and/or commanding that the second casting system component be adjusted by the adjustment amount and/or direction.
METHOD AND CASTING/ROLLING SYSTEM FOR CASTING AND ROLLING A CONTINUOUS STRAND MATERIAL
A method for operating a casting/rolling system and to a corresponding system for casting and rolling an endless strand material. The casting/rolling system comprises a strand casting machine and a rolling train arranged downstream of the strand casting machine. The method has the following step: controlling the drive for the rollers of the first roller frame of the rolling train by means of a drive control in response to a target value specification of the pass sequence model. Furthermore, the drive of the at least one strand guiding roller is controlled by a strand guiding roller drive control in response to a target value specification of the strand casting machine drive model.
Continuous casting mold, continuous casting device, and continuous casting method
A crack-free continuous casting mold configured so that occurrence of cracks at a casting billet can be reduced even in a case where a casting speed exceeds 500 mm/min. The continuous casting mold continuously casts a casting billet while cooling molten metal by a cooling device provided at a cooling casting mold. The cooling device includes multiple cooling nozzles configured to release coolant water to the casting billet pulled out of the cooling casting mold to cool the casting billet. Multiple ejection ports of the multiple cooling nozzles are arranged along an outer circumferential direction of a surface of the casting billet. Each ejection port has a short side and a long side, and is configured such that the long side is arranged along an axial direction of the casting billet.
HIGH SURFACE AREA ANODE AND METHOD OF MANUFACTURING
The invention described herein shows a high surface area anode. The high surface area anode contains a flat surface on one side and a ribbed surface on the opposite side. On the ribbed surface there is a first edge-lip on its first-end and a second edge-lip on its second-end. Both the first edge-lip and the second edge-lip run parallel to each other. The high surface area anode further contains a plurality of ribs and groves between the first edge-lip and the second edge-lip also running parallel to each other. The high surface area anode is manufactured using a continuous casting method that includes the following steps; dissolving the anode metal into the holding furnace shaping the anode metal using a high surface area graphite mold; solidifying the anode metal using a liquid while extruding the anode metal through the high surface area mold; solidifying the anode metal by using a secondary cooling source; and extracting the now solidified and shaped high surface anode metal.
Method and apparatus for near net shape casting (NNSC) of metals and alloys
A method and apparatus for continuous Near Net Shape casting of a liquid metal (10) into a metal strip are described. Liquid metal is transferred in a velocity adjusted manner from a headbox (50) to a chilled substrate (36), via a meniscus gap (69). The headbox (50) has a slot nozzle (68) defined in a bottom portion (66) for the headbox (50) above the chilled substrate (36). The slot nozzle (68) defines a smooth elongated cavity with a slot width (67) and the slot length (65) of the metal strip (34). The generation of some turbulence at the outlet of the apparatus promotes stable Near Net Shape Continuous Casting. The present method and apparatus increase the level of turbulence in the liquid metal of the outlet nozzle upstream of the chilled substrate (36) to minimize premature metal freezing. In a particularly preferred embodiment, the slot nozzle is adjustable.
Radially acting aftercooler for horizontal continuous casting
An aftercooler for horizontal continuous casting includes a plurality of aftercooler segments each of which includes a plurality of radially acting aftercooler sections. The radially acting sections each define inner surfaces which combine with the remaining radially acting aftercooler sections to form an aftercooler passage. The radially acting sections within each aftercooler segment are banded together by a plurality of resilient encircling bands. The bands draw the radially acting aftercooler sections together to constrain a casting within the casting passage. The plurality of aftercooler segments are provided with a surrounding coolant carrying jacket. A plurality of gas distribution passages are formed in the radially acting aftercooler sections which are provided with a flow of inert gas. The inert gas distributes itself between the surfaces of the casting and the surfaces of the aftercooler passage to prevent oxide formation and to ease the travel of the casting through the aftercooler.