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Experimental and kinetic study of removal of lead (Pb~(+2)) from battery effluent using sweet lemon (Citrus limetta) peel biochar adsorbent

机译:使用甜柠檬(柑橘Limetta)Peel Biochar吸附剂从电池流出物中除去铅(PB〜(+2))的实验和动力学研究

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The main polluting agents of the environment are different anthropogenic activities; among them, industries are the primary one. Lead (Pb~(2+)) is an extremely toxic metal ion and is the main raw material of lead-acid batteries. The present study focuses on adsorptive removal of lead from battery manufacturing industrial effluent by sweet lemon (Citrus limetta) peel biochar (SLPB). The removal efficiency was about 97.11% at optimum contact time of 160 min with optimum dosage of 3.5 g L~(-1) at constant temperature. The optimum pH and temperature were recorded to be 5 and 55 °C with their maximum adsorption capacities of 55.67 and 53.89 mg g~(-1) respectively. The process obeyed second-order kinetics favoring chemisorption over physisorption. The adsorbent was also characterized by SEM-EDX, XRD, BET and FTIR to validate the results obtained. The results were justified by the functional groups present and changes in morphology of the biochar after treating waste-water. Further, adsorption process preferred Freundlich (r~2 = 0.98) adsorption isotherm in comparison with Langmuir (r~2 = 0.95) adsorption isotherm. The adsorption process demonstrated that the removal process was multilayered and heterogeneous with maximum adsorption capacity (qmax) of 2840.91 mg g~(-1) which was higher than most of the values obtained from other materials. Thus, the study concluded that SLPB might be used to overcome the pollution level of metals in our water bodies to maintain the quality of water bodies.
机译:环境的主要污染剂是不同的人为活动;其中,行业是主要的。铅(Pb〜(2+))是一种极其有毒的金属离子,是铅酸电池的主要原料。本研究侧重于甜柠檬(柑橘Limetta)Peel Biochar(SLPB)从电池制造工业流出物的吸附脱模。在恒温下,去除效率在160分钟的最佳用量为3.5g L〜(-1)时的最佳接触时间为约97.11%。将最佳pH和温度记录为5和55℃,最大吸附容量为55.67和53.89mg g〜(-1)。该过程遵循了二阶动力学,青睐对物理吸附的化学吸附。吸附剂的特征还在于SEM-EDX,XRD,BET和FTIR来验证所获得的结果。结果是通过存在的官能团的证明,并在处理废水后的生物炭的形态变化。此外,与Langmuir(R〜2 = 0.95)吸附等温线相比,吸附过程优选FreundlICH(R〜2 = 0.98)吸附等温。吸附过程证明了除去方法是多层和异质的,具有2840.91mg g〜(-1)的最大吸附能力(Qmax),其高于其他材料获得的大部分值。因此,研究得出结论,SLPB可用于克服水体中金属的污染水平,以保持水体的质量。

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