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Biochar-based water treatment systems as a potential low-cost and sustainable technology for clean water provision

机译:基于生物炭的水处理系统是清洁水供应的潜在低成本和可持续技术

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摘要

Approximately 600 million people lack access to safe drinking water, hence achieving Sustainable Development Goal 6 (Ensure availability and sustainable management of water and sanitation for all by 2030) calls for rapid translation of recent research into practical and frugal solutions within the remaining 13 years. Biochars, with excellent capacity to remove several contaminants from aqueous solutions, constitute an untapped technology for drinking water treatment. Biochar water treatment has several potential merits compared to existing low-cost methods (i.e., sand filtration, boiling, solar disinfection, chlorination): (1) biochar is a low-cost and renewable adsorbent made using readily available biomaterials and skills, making it appropriate for low-income communities; (2) existing methods predominantly remove pathogens, but biochars remove chemical, biological and physical contaminants; (3) biochars maintain organoleptic properties of water, while existing methods generate carcinogenic by-products (e.g., chlorination) and/or increase concentrations of chemical contaminants (e.g., boiling). Biochars have co-benefits including provision of clean energy for household heating and cooking, and soil application of spent biochar improves soil quality and crop yields. Integrating biochar into the water and sanitation system transforms linear material flows into looped material cycles, consistent with terra preta sanitation. Lack of design information on biochar water treatment, and environmental and public health risks constrain the biochar technology. Seven hypotheses for future research are highlighted under three themes: (1) design and optimization of biochar water treatment; (2) ecotoxicology and human health risks associated with contaminant transfer along the biochar-soil- food-human pathway, and (3) life cycle analyses of carbon and energy footprints of biochar water treatment systems.
机译:大约有6亿人无法获得安全的饮用水,因此要实现可持续发展目标6(确保到2030年实现所​​有人的用水和卫生设施的可持续性管理),需要在剩余的13年内将最新研究迅速转化为实际和节俭的解决方案。生物炭具有出色的去除水溶液中多种污染物的能力,是饮用水处理领域中一项尚未开发的技术。与现有的低成本方法(例如,砂滤,沸腾,太阳能消毒,氯化)相比,生物炭水处理具有几个潜在的优点:(1)生物炭是一种低成本且可再生的吸附剂,它使用易于获得的生物材料和技术制成,使其适用于低收入社区; (2)现有方法主要去除病原体,但生物炭去除化学,生物和物理污染物; (3)生物炭保持水的感官特性,而现有方法会产生致癌性副产物(例如氯化)和/或增加化学污染物的浓度(例如沸腾)。生物炭具有共同的好处,包括为家庭取暖和烹饪提供清洁能源,而在土壤中施用废生物炭可以改善土壤质量和农作物产量。将生物炭集成到水和卫生系统中,可将线性物料流转换为环状物料循环,这与terra preta卫生相一致。缺乏有关生物炭水处理的设计信息以及环境和公共健康风险限制了生物炭技术。以下三个主题突出了未来研究的七个假设:(1)设计和优化生物炭水处理; (2)与沿生物炭-土壤-食物-人类途径的污染物转移相关的生态毒理学和人类健康风险,以及(3)生物炭水处理系统的碳和能量足迹的生命周期分析。

著录项

  • 来源
    《Journal of Environmental Management》 |2017年第15期|732-749|共18页
  • 作者单位

    Biosystems and Environmental Engineering Research Croup, Department of Soil Science and Agricultural Engineering, Faculty of Agriculture,University of Zimbabwe, P.O. Box MP167, Mount Pleasant, Harare, Zimbabwe;

    Nanotechnology and Water Sustainability Research Unit (NanoWS), University of South Africa (UNISA), P.O. Box 392, UNISA, 0003, South Africa;

    Department of Applied Geology, Universitat Göttingen, Goldschmidtstrase 3, D - 37077, Gottingen, Germany , Comite Afro-europeen, Avenue Leopold Ⅱ, 41 - 5000, Namur, Belgium , Kultur und Nachhaltige Entwicklung CDD e.V., Postfach 1502, D - 37005, Gottingen, Germany;

    William Jessup University, 333 Sunset Boulevard Rocklin, California, 95675, CA, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Adsorption; Inorganic contaminants; Pathogenic organisms; Synthetic and emerging contaminants; Sustainable Development Goals;

    机译:吸附;无机污染物;致病生物;合成和新兴污染物;可持续发展目标;

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