Effects of Water Treatment Residuals on the Kinetics of Ni(II) Sorption and Desorption in Some Arid Soils

Pub Date : 2016-06-01 DOI:10.21608/ASEJAIQJSAE.2016.2480
Mohamed Almanea, E. Elkhatib, A. Mahdy
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引用次数: 3

Abstract

The mobility and bioavailability of nickel (Ni) is strongly dependent on the mechanisms associated with Ni sorption and desorption kinetics in soils. In this contribution, the effects of drinking water treatment residuals (DWTR) applications, as a low-cost adsorbent, on characteristics of Ni sorption /desorption kinetics in three arid soils having different properties were studied by batch experiments. Batch sorption kinetic experiments revealed that Ni sorption behavior involves fast and slow sorption reactions. The fast reaction accounted for> 70% of the total sorption within15 min (the first sampling time). Desorption experiments revealed that Ni desorption was hysteretic in nature, which indicated a irreversible process. The time-sorption and desorption data generated for the DWTR treated and untreated soils fitted well to Elovich , power function and parabolic models as evidenced by high coefficient of determination (R) and low standard error(SE). The rates of adsorptiondesorption in the soils studied were greatly influenced by the rate of DWTR added. Specifically, the rate of Ni sorption increased and the rate of released Ni decreased as the amount of DWTR added to the soils increased. The overall findings suggest that Ni retention capacity of soils can be increased via DWTR amendments to provide additional Albased sorbents. Such information is critical for protecting natural resources, developing improved remediation strategies, and making better risk assessments.
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水处理残渣对干旱土壤Ni(II)吸附和解吸动力学的影响
镍在土壤中的迁移率和生物利用度很大程度上取决于镍在土壤中的吸附和解吸动力学机制。本文通过批量实验研究了饮用水处理残渣作为低成本吸附剂在3种不同性质的干旱土壤中对Ni吸附/解吸动力学特征的影响。批吸附动力学实验表明,Ni的吸附行为包括快速和慢速吸附反应。快速反应在15min(第一次采样时间)内占总吸附量的70%以上。解吸实验表明,Ni的解吸具有滞后性,是一个不可逆过程。DWTR处理和未处理土壤的时间吸附和解吸数据均符合Elovich、幂函数和抛物线模型,具有较高的决定系数(R)和较低的标准误差(SE)。所研究的土壤的吸附和解吸速率受DWTR添加量的影响很大。具体来说,随着DWTR添加量的增加,Ni的吸附速率增加,Ni的释放速率降低。总体结果表明,通过DWTR的修正,可以增加土壤的Ni保留能力,以提供额外的铝基吸附剂。这些信息对于保护自然资源、制定改进的补救战略和更好地进行风险评估至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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