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METAL RECOVERY FROM ELECTRONIC SCRAP BY LEACHING AND ELECTROWINNING IV

机译:通过浸出和电动卷绕IV从电子废料中回收金属

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A novel process is being developed for metal recovery from waste electrical and electronic equipment involving a leach reactor coupled to an electrochemical reactor. Metals such as Ag, Au, Cu, Pb, Pd, Sn etc. are dissolved from shredded electronic scrap in an acidic aqueous chloride electrolyte by oxidising them with aqueous dissolved chlorine species. In the electrochemical reactor: (i) chlorine is generated at the anode for use as the oxidant in the leach reactor, and, simultaneously, (ii) at the cathode, the dissolved metals are electrodeposited from the leach solution. The extended Butler-Volmer equation was used to provide predictions of the electrode potential dependences of partial current densities and, hence, total current densities, current efficiencies and alloy compositions for acidic aqueous chloride electrolytes containing Ag(I), Au(III), Cu(II), Pb(II), Pd(IV) and Sn(IV) species, together with dissolved chlorine. With judicious choice of kinetic parameters, the predicted total current density - electrode potential behaviour of such solutions was in good agreement with experimental data for a rotating Pt disc electrode. Reduction of dissolved chlorine at a Pt rotating disc electrode exhibited mass transport controlled behaviour, in agreement with Levich's equation over the potential range 0.3-0.9 V (SHE). This could form the basis of a linear sensor, possibly using a microelectrode for measurement and control of the dissolved chlorine concentration in the efflux of leach reactors and inlet to electrowinning reactors in the envisaged process.
机译:正在开发一种新的工艺,用于从涉及耦合到电化学反应器的浸出反应器的废电气和电子设备的金属回收。通过用溶解的氯物种氧化氧化它们,将如Ag,Au,Cu,Cu,Pb,Pd,Sn等溶解在酸性含水氯化物水溶液中的碎屑。在电化学反应器中:(i)在阳极处产生氯,用作浸出反应器中的氧化剂,并且同时(ii)在阴极处,溶解的金属从浸出溶液中电沉积。扩展的管家 - Volmer方程用于提供部分电流密度的电极电位依赖性的预测,从而提供含有Ag(I),Au(III),Cu的酸性氯化物电解质的酸性氯化物电解质的总电流密度,电流效率和合金组合物的预测。 (ii),Pb(ii),pd(iv)和sn(iv)物种与溶解氯一起。通过明智地选择动力学参数,这种解决方案的预测总电流密度 - 电极电位势能与旋转PT盘电极的实验数据很好。在PT旋转盘电极下减少溶解氯,表现出质量传输控制行为,同时与潜在范围0.3-0.9 V(SHE)的Levich的等式一致。这可以形成线性传感器的基础,可能使用微电极进行测量和控制浸出反应器中的浸出氯浓度,并在设想的过程中对电滤醇反应器的进气中的溶解氯浓度。

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