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Treatment of high-level arsenic-containing wastewater by fluidized bed crystallization process

机译:流化床结晶法处理高砷含砷废水

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Gallium arsenide technology has been widely applied in the communication and optical electronics industries. The process of chip manufacturing produces a stream of wastewater unique in its low flow rate and high arsenic concentration. Fluidized bed crystallization (FBC) technology combines the advantages of a fluidized bed reactor and crystallization. It is highly efficient with low capital and operational costs, while producing no sludge. The waste from the FBC is small in volume, high in crystal purity and recyclable. Jar tests were first performed to evaluate the precipitation of arsenic sulfide. Then a lab-scale fluidized bed reactor was applied to screen critical operational parameters and the process was optimized to meet the wastewater discharge standard. The results obtained in this study confirmed that the FBC process is capable of treating wastewater containing high concentrations of arsenic, reducing the concentration to mu g L-1 levels. Sulfide dosage and operating pH are the two most significant parameters determining the residual arsenic concentration of the effluent, with optimum conditions of pH = 2 and S/As = 2.2 to meet the local discharge limit. (c) 2007 Society of Chemical Industry
机译:砷化镓技术已广泛应用于通信和光学电子行业。芯片制造过程产生的废水流具有低流速和高砷浓度的独特之处。流化床结晶(FBC)技术结合了流化床反应器和结晶的优点。它是高效的,具有较低的资金和运营成本,同时不产生污泥。来自FBC的废物体积小,晶体纯度高且可回收。首先进行Jar测试以评估硫化砷的沉淀。然后,将实验室规模的流化床反应器应用于筛选关键操作参数,并对工艺进行优化以满足废水排放标准。这项研究获得的结果证实,FBC工艺能够处理含高浓度砷的废水,从而将其浓度降低至微克L-1水平。硫化物的用量和工作pH是确定废水中残留砷浓度的两个最重要的参数,最佳条件为pH = 2和S / As = 2.2,以满足局部排放极限。 (c)2007年化学工业学会

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