通过施用锯末生物炭有效缓解土壤中的镉污染

S. M. M. S. Himaya, A. D. N. T. Kumara, P. Premanandarajah, M. G. M. Thariq
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引用次数: 0

摘要

土壤中的镉(Cd)污染是一个严重的环境问题,本研究探讨了锯屑生物炭在三个月内减少镉污染的效果。研究探讨了不同的锯末生物炭施用量及其对土壤中可提取镉量的影响。研究结果表明,锯末生物炭在解决镉污染方面具有很大的潜力。重要的是,在调查期间,由于使用了生物炭,可萃取镉的浓度逐渐降低。特别是,与较低的施用率(2.5% 和 1.25%)相比,最高的生物炭施用率(5%)显著降低了可萃取镉的累积含量。此外,与对照组相比,所有经生物炭改良的土壤的累积可浸出镉含量都大大降低。浸出液研究表明,生物炭在降低镉浓度方面的效率与时间有关,镉浓度从 2023 年 8 月的 14 毫克/升下降到 2023 年 10 月的 0.004 毫克/升。生物炭多孔结构内的扩散被确定为重金属吸附的主要过程。不过,所观察到的生物炭去除重金属效果下降的原因可能是表面氧化,从而产生了更多可利用的吸附位点。此外,施用生物炭后,土壤的 pH 值升高,大大提高了对 Cd2+ 的吸收能力,从而进一步提高了对 Cd 的去除率。研究还显示了热解温度对生物炭特性的重要性,温度越高,镉的吸附能力越强。这项研究的结果凸显了锯末生物炭作为一种减少土壤镉污染的有效技术的巨大潜力。这些结果凸显了生物炭在镉修复方面的潜力,以及热解温度在决定生物炭特性和吸附能力方面的关键作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effective mitigation of Cadmium contamination in soil through Sawdust Biochar application
Cadmium (Cd) contamination in soil is a serious environmental concern, and this study examines the effectiveness of sawdust biochar in reducing Cd contamination over three months. The study explores different sawdust biochar application rates and their effects on the amount of extractable Cd in the soil. According to the study, sawdust biochar has a high potential for addressing Cd pollution. Importantly, over the duration of the investigation, extractable Cd concentrations gradually decreased as a result of the use of biochar. In particular, compared to lesser application rates of 2.5% and 1.25%, the highest biochar application rate (5%) resulted in a significant reduction in cumulative leachable Cd content. Additionally, compared to the control group, all biochar-amended soils showed considerably decreased cumulative leachable Cd levels. The leachate study demonstrated the time-dependent efficiency of biochar in lowering Cd concentrations, with Cd concentration declining from 14 mg/L in August 2023 to a meager 0.004 mg/L in October 2023. Diffusion within the porous structure of biochar was determined to be the main process underlying heavy metal adsorption. However, the observed decrease in the effectiveness of heavy metal removal with biochar may be explained by surface oxidation, which creates a greater number of accessible adsorption sites. Furthermore, the soil's capacity to absorb Cd2+ was greatly improved by the raised pH brought on by biochar application, further enhancing Cd removal. The study also showed the importance of pyrolysis temperature on biochar characteristics, with higher temperatures greatly improving Cd adsorption capability. This study's findings highlighted the significant potential of sawdust biochar as a powerful technique for reducing soil Cd pollution. These results highlighted the potential of biochar for Cd remediation and crucial role that pyrolysis temperature plays in determining biochar's characteristics and adsorption capacity.
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