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    • 6. 发明申请
    • METAL SEPARATION USING A TUNNEL KILN FURNACE
    • 使用隧道窑炉的金属分离
    • US20120024111A1
    • 2012-02-02
    • US12844431
    • 2010-07-27
    • James E. BratinaAnthony KriechShannon Wilson
    • James E. BratinaAnthony KriechShannon Wilson
    • C22B1/00C21B7/14
    • C22B7/004F27B9/20F27B9/26Y02P10/212
    • A method of separating metals that are physically or structurally combined in assemblies which includes the steps of: providing at least one assembly that comprises two or more different metals that are physically or structurally combined; heating the at least one assembly in a tunnel kiln furnace to melt at least one of the different metals while maintaining at least one of the different metals in a solid state; and separating the at least one of the different metals that was melted from the at least one of the different metals that was maintained in the solid state. According to one embodiment the assemblies are “copper meatballs.” Also disclosed is a system for separating metals that are physically or structurally combined in assemblies which system includes a tunnel kiln furnace and processing containers or processing containment assemblies into or onto which the assemblies are loaded and transported through the tunnel kiln furnace in.
    • 一种分离物理或结构组合在一起的金属的方法,包括以下步骤:提供至少一个组件,其包括物理上或结构上组合的两种或更多种不同的金属; 在隧道窑炉中加热所述至少一个组件以熔化至少一种不同的金属,同时保持固态中的至少一种不同的金属; 以及从保持在固态的至少一种不同金属中分离熔融的不同金属中的至少一种。 根据一个实施例,组件是“铜丸子”。还公开了一种用于分离物理或结构上组合在组件中的金属的系统,该系统包括隧道窑炉和加工容器或处理容器组件到其中或组装在其上 并通过隧道窑炉运输。
    • 10. 发明授权
    • Assemblies and methods for processing zinc-bearing materials
    • 装载和处理含锌材料的方法
    • US06682586B2
    • 2004-01-27
    • US09973503
    • 2001-10-09
    • Scott W. FrameShannon R. WilsonJames E. Bratina
    • Scott W. FrameShannon R. WilsonJames E. Bratina
    • C22B1904
    • C22B5/10C22B5/16C22B7/02C22B19/30C22B19/34Y02P10/212
    • A process for separating and recovering a desired metal as metal oxide from raw material is provided. The process includes placing the raw material and a reductant in a container to form a reducing microclimate within the container. A housing having an oxidizing atmosphere is heated to maintain a temperature zone within the housing at a heating temperature sufficient to expose the raw material in the container to a reaction temperature. The container containing the raw material is conveyed through the temperature zone in the housing to expose the raw material and the reductant to the reaction temperature wherein the metal oxide is reduced to a gaseous metal that exits the container. Once outside the container, the gaseous metal is exposed to the oxidizing atmosphere of the temperature zone wherein the desired metal is oxidized to metal oxide and the metal oxide is collected. In preferred embodiments, the raw material is EAF dust and the desired metal is zinc. In one specific embodiment, the process also includes maintaining a second temperature zone in the housing at a metal halide vaporization temperature, which is lower than the heating temperature. A flow of air is applied through the housing in a direction that is opposite to a direction of travel of the container during the conveying step, whereby a metal halide in the raw material is volatilized to a volatilized metal halide when the container is conveyed through the second heating zone. The volatilized metal halide is then collected.
    • 提供了从原料中分离和回收所需金属作为金属氧化物的方法。 该方法包括将原料和还原剂放置在容器中以在容器内形成还原微气候。 加热具有氧化气氛的壳体,以将壳体内的温度区域保持在足以将容器中的原料暴露于反应温度的加热温度。 容纳原料的容器通过壳体中的温度区域传送,以将原料和还原剂暴露于反应温度,其中金属氧化物被还原成离开容器的气态金属。 一旦在容器外面,气态金属暴露于温度区的氧化气氛中,其中所需金属被氧化成金属氧化物并且收集金属氧化物。 在优选的实施方案中,原料是EAF粉,所需的金属是锌。 在一个具体实施方案中,该方法还包括在低于加热温度的金属卤化物蒸发温度下保持壳体中的第二温度区域。 在输送步骤期间,通过壳体沿与容器的行进方向相反的方向施加空气流,由此当容器被输送通过该原料时,原料中的金属卤化物挥发成挥发的金属卤化物 第二加热区。 然后收集挥发的金属卤化物。