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Adsorptive treatment via simultaneous removal of copper, lead and zinc from soil washing wastewater using spent coffee grounds

机译:使用废咖啡渣同时除去土壤洗涤废水的同时除去铜,铅和锌的吸附处理

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In the present work, the performance of spent coffee grounds (SCG) as an adsorbent in the treatment of real soil washing wastewater (SWW) was evaluated. Scanning electron microscopy, Fourier transform infrared spectroscopy, zeta potential measurement and Brunauer-Emmett-Teller analysis were utilized to determine the physicochemical characteristics of SCG. Maximum removal efficiency of 68.73% for Cu(II), 57.23% for Pb(II) and 84.55% for Zn(II) was attained at 2.5 g SCG, 300 min and 328 K. Error analysis was performed using root mean square error (RMSE) and sum of square error (SSE). Equilibrium data correlated well with the Langmuir isotherm for Pb(II) adsorption and Freundlich model for the removal of Cu(II) and Zn(II). The kinetic study shows that adsorption of the heavy metals using SCG can be satisfactorily described using the pseudo-second order equation (R-2 <= 0.9901; RMSE <= 15.0539; SSE <= 145.1461). Activation parameters including activation energy, change in free energy of activation, activation entropy change (Delta S-star) and activation enthalpy change (Delta H-star) were determined using Arrhenius and Eyring equations. Thermodynamic studies show that adsorption of the heavy metals using SCG is spontaneous, endothermic (Delta H degrees >= 9.80 kJ/mol.K) and results in increased randomness at the solid/solution interface (Delta S degrees >= 2.28 J/mol).
机译:在目前的工作中,评估了在治疗真实土壤洗涤废水(SWW)中作为吸附剂的废咖啡渣(SCG)的性能。扫描电子显微镜,傅里叶变换红外光谱,Zeta电位测量和Brunauer-Emmett-excuiter分析用于确定SCG的物理化学特征。对于Cu(II)的最高去除效率为68.73%,Pb(II)的57.23%和Zn(II)的84.55%达到2.5g SCG,300分钟和328 k。使用均方根误差进行误差分析( RMSE)和方形错误(SSE)的总和。平衡数据与Langmuir等温线相关,用于除去Cu(II)和Zn(II)的除去和Freundlich模型。动力学研究表明,使用伪二阶方程可以令人满意地描述使用SCG的重金属的吸附(R-2 <= 0.9901; RMSE <= 15.0539; SSE <= 145.1461)。使用Arhenius和EoTing方程确定激活能量,激活的自由能量,活化熵变化(Delta S-STAR)和激活焓变(Delta H-Star)的激活参数。热力学研究表明,使用SCG的重金属的吸附是自发的,吸热(Delta H度> = 9.80 kJ / mol.k),并导致固体/溶液界面的随机性增加(ΔS度> = 2.28J / mol) 。

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