Lambert Andréa, Drogui Patrick, Daghrir Rimeh, Zaviska François, Benzaazoua Mostafa
Institut National de la Recherche Scientifique (INRS - Eau Terre et Environnement), Université du Québec, 490 rue de la Couronne, C.P. 7500, Quebec City, Quebec, Canada G1X 9A9.
Institut National de la Recherche Scientifique (INRS - Eau Terre et Environnement), Université du Quebec, 490 rue de la Couronne, Quebec City, Quebec, Canada G1K 9A9.
J Environ Manage. 2014 Jan 15;133:78-85. doi: 10.1016/j.jenvman.2013.11.036. Epub 2013 Dec 21.
This research is related to a laboratory study on the performance of a successive mining residues leaching and electrochemical copper recovery process. To clearly define the experimental region for response surface methodology (RSM), a preliminary study was performed by applying a current intensity varying from 0.5 A to 4.0 A for 60 min. By decreasing the current intensity from 4.0 A to 0.5 A, a good adhesion and a very smooth and continuous interface of copper was formed and deposited on the cathode electrode. However, the removal rate of Cu decreased from 83.7% to 37.9% when the current intensity passed from 4.0 A to 0.5 A, respectively. Subsequently, the factorial design and central composite design methodologies were successively employed to define the optimal operating conditions for copper removal in the mining residues leachate. Using a 2(3) factorial matrix, the best performance for copper removal (97.7%) was obtained at a current intensity of 2.0 A during 100 min. The current intensity and electrolysis time were found to be the most influent parameters. The contribution of current intensity and electrolysis time was around 65.8% and 33.9%, respectively. The treatment using copper electrode and current intensity of 1.3 A during 80 min was found to be the optimal conditions in terms of cost/effectiveness. Under these conditions, 86% of copper can be recovered for a total cost of 0.56 $ per cubic meter of treated mining residues leachate.
本研究涉及一项关于连续采矿残渣浸出及电化学铜回收工艺性能的实验室研究。为明确响应面法(RSM)的实验区域,通过施加0.5 A至4.0 A的电流强度持续60分钟进行了初步研究。通过将电流强度从4.0 A降至0.5 A,在阴极电极上形成并沉积了附着良好且非常光滑连续的铜界面。然而,当电流强度从4.0 A降至0.5 A时,Cu的去除率分别从83.7%降至37.9%。随后,相继采用析因设计和中心复合设计方法来确定采矿残渣浸出液中铜去除的最佳操作条件。使用2(3)析因矩阵,在电流强度为2.0 A、持续100分钟时获得了最佳的铜去除性能(97.7%)。发现电流强度和电解时间是最具影响的参数。电流强度和电解时间的贡献分别约为65.8%和33.9%。就成本效益而言,使用铜电极、电流强度为1.3 A、持续80分钟的处理被发现是最佳条件。在这些条件下,每立方米处理后的采矿残渣浸出液可回收86%的铜,总成本为0.56美元。