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Future Secular Changes & Remediation of Groundwater Arsenic in the Ganga River Basin

Future Secular Changes & Remediation of Groundwater Arsenic in the Ganga River Basin
未来的长期变化
批准号:
NE/R003386/1
负责人:
David Polya
金额:
$58.2万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2018
资助国家:
英国
项目状态:
已结题
起止时间:
2018 至 --

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中文摘要
翻译
地下水中的砷正在对印度次大陆的人类健康造成严重的有害影响。在养活5亿多人口的恒河流域,数千万人接触地下水砷,每年造成15 000多人过早死亡,发病率上升,经济生产力下降。虽然已经实施了许多补救/缓解计划以减少地下水砷暴露,但存在的压力可能会部分抵消这些努力。这些问题包括:[i]由于人口和财富的增加,对地下水的依赖增加,加上地表水水库补给的减少,以及[ii]地下水中砷的长期增加,我们假设这可能是由于(a)地表来源的有机碳的进入,被认为与导致砷动员的微生物介导的生物地球化学过程密切相关;在这个项目中,我们将量化城市或农村浅层含水层对由氧气或有机碳供应增加引起的地下水砷长期增加的脆弱性。印度和英国研究和水资源管理调查人员高度互补的团队现有的核心研究和现场和实验室基础设施,高效和有效地建立在此基础上,本研究将结合在恒河/胡格利河上游、中游和/或下游独特的沉积学自然实验室的独特现场研究,以及对比自然补给和管理含水层补给系统,如河岸过滤(RBF)。我们将评估在地表水-地下水相互作用的关键区域(包括潜流带)控制砷动员的生物地球化学过程。我们将以现有的详细的野外水文地质知识为基础,这些知识大部分是由项目合作伙伴建立的,并辅以对关键示踪剂的进一步采样和分析,包括氟氯化碳、SF6、氚,以及物源指标、有机生物标志物(包括新出现的有机污染物)和氧化还原物种比率。我们对这些系统的理解将被纳入反应性污染运输模型,以(i)促进对未来50年恒河流域地下水砷危害的预测;(ii)为补救技术和方法的选择提供信息,包括间接方法,如改善近地表城市和农村有机碳源的管理。建立可行的框架,以考虑适当的努力、解决办法的长期维持和可持续性、利用社区参与办法将技术融入社会,将是项目推广和知识转让的关键因素。研究结果将为印度其他地方和全球(包括许多官方发展援助国家和联合王国)地下水脆弱性的风险评估和补救/缓解提供信息。我们已经建立了一个由研究人员、非政府组织、政府组织和其他利益相关者组成的广泛而包容的网络,这些利益相关者对减轻人类活动对印度脆弱地下水中砷和其他污染物浓度长期增加的影响有浓厚的兴趣。该网络的目标是转移关于危害、风险和潜在补救/减轻这些危害的知识,并推动进一步联网、整合、知识转移和共同供资,以更好地了解控制这些重大公共卫生风险的自然和人为过程,以及减轻这些风险的有效方法。合作伙伴在这一研究和水资源管理领域有着实质性和互补的记录,并将通过工作人员的时间和/或实验室和现场基础设施为项目带来大量的共同资金。
英文摘要
Arsenic in groundwater is causing severe detrimental impacts on human health in the Indian sub-continent. In the Gangetic River Basin, which supports a population of over 500 million people, tens of millions of people are exposed to groundwater arsenic, resulting in more than 15,000 premature deaths each year, as well as enhanced morbidity and reduced economic productivity. Whilst many remediation/mitigation schemes have been implemented to reduce groundwater arsenic exposure, there exist pressures that may partly counteract these efforts. These include: [i] increased reliance on groundwater arising from increased population and affluence coupled with decreased recharge of surface water reservoirs, and [ii] future secular increases in groundwater arsenic which we hypothesise may arise from (a) ingress of surface-derived organic carbon, thought to be strongly implicated in the microbially-mediated biogeochemical processes leading to arsenic mobilisation; or (b) injection of oxygenated waters in managed aquifer recharge (MAR) leading to oxidative dissolution of arsenic-bearing pyrite In this project, we will quantify the vulnerability of shallow urban or rural aquifers to secular increases in groundwater arsenic stimulated by enhanced oxygen or organic carbon supplies. Efficiently and effectively building on existing core research and field and laboratory infrastructure of the highly complementary team of India and UK research and water resource management investigators, this study will combine unique field studies of sedimentologically distinct natural laboratories in the upper, mid and/or lower Ganga/Hooghly as well as contrasting naturally recharging and managed aquifer recharging systems such as river bank filtration (RBF). We will evaluate the biogeochemical processes controlling arsenic mobilisation in key zones, including the hyporheic zone, of surface water-groundwater interactions. We will build upon existing detailed hydrogeological knowledge of the field areas, much built up by the project partners , supplemented by further sampling and analysis of key tracers including CFCs, SF6, tritium, and indicators of provenance, organic biomarkers, including emerging organic contaminants, and redox species ratios. Our developed understanding of these systems will be incorporated into reactive contaminated transport models to (i) facilitate the prediction of groundwater arsenic hazards in the Ganga River Basin over the next 50 years; (ii) inform selection of remediation technologies and approaches, including indirect approaches, such as improving management of near surface urban and rural organic carbon sources. Establishing workable frameworks for considering due diligence, long-term maintenance and sustainability of solutions, social integration of technology using community participatory approaches will be a key element of project outreach and knowledge transfer. The results will inform risk assessment and remediation/mitigation of groundwater vulnerability both elsewhere in India and globally, including in many ODA countries and the UK.We have established a broad and inclusive network of researchers, NGOs, government organisations and other stakeholders with strong interests in mitigating the impacts of human activity on secular increases in the concentration of arsenic and other contaminants in vulnerable groundwaters in India. This network will aim to both transfer knowledge of the hazard, risk and potential remediation/mitigation of these hazards as well as drive for further networking, integration, knowledge transfer and co-funding to better understand the natural and anthropogenic processes controlling these critical public health risks and effective ways to mitigate against them. The partners have substantive and complementary track-records in this area of research and water resource management and will bring significant co-funding to the project, through staff time and/or lab & field infrastructure.
期刊论文(10)
专著(0)
科研奖励(0)
会议论文
DOI: 10.3390/w13243507
发表时间: 2021-12
期刊: Water
影响因子: 3.4
作者: [Animesh Bhattacharya;Saswata Sahu;Venkatesh Telu;Srimanti Duttagupta;S. Sarkar;J. Bhattacharya;]
通讯作者: Animesh Bhattacharya;Saswata Sahu;Venkatesh Telu;Srimanti Duttagupta;S. Sarkar;J. Bhattacharya;
DOI: 10.1016/j.apgeochem.2021.105044
发表时间: 2021-08
期刊: Applied Geochemistry
影响因子: 3.4
作者: [Sumant Kumar;S. Joshi;N. Pant;Surjeet Singh;B. Chakravorty;R. Saini;Vinod Kumar;Ankit Singh;N. C. Ghosh;A. Mukherjee;P. Rai;V. Singh]
通讯作者: Sumant Kumar;S. Joshi;N. Pant;Surjeet Singh;B. Chakravorty;R. Saini;Vinod Kumar;Ankit Singh;N. C. Ghosh;A. Mukherjee;P. Rai;V. Singh
Quantifying the dynamics of sub-daily to seasonal hydrological interactions of Ganges river with groundwater in a densely populated city: Implications to vulnerability of drinking water sources.
量化人口稠密城市中恒河与地下水的次日到季节性水文相互作用的动态:对饮用水源脆弱性的影响。
DOI: 10.1016/j.jenvman.2021.112384
发表时间: 2021
期刊: Journal of environmental management
影响因子: 8.7
作者: [Das P]
通讯作者: Das P
DOI: 10.3390/ijerph18062832
发表时间: 2021-03-10
期刊: International journal of environmental research and public health
影响因子: --
作者: [Duttagupta S, Bhanja SN, Dutta A, Sarkar S, Chakraborty M, Ghosh A, Mondal D, Mukherjee A]
通讯作者: Mukherjee A
共 8 条
    Rare earth element (REE) behaviour in alkaline mineral systems:Harnessing nature's geochemical patterns.
    • 批准号:
      NE/L002418/1
    • 项目类别:
      Research Grant
    • 资助金额:
      $8.8万
    • 财政年份:
      2013
    • 负责人:
      David Polya
    • 依托单位:
    Predicting Secular Changes in Arsenic Hazard in Circum-Himalyan Groundwaters
    • 批准号:
      NE/J023833/1
    • 项目类别:
      Research Grant
    • 资助金额:
      $64.19万
    • 财政年份:
      2013
    • 负责人:
      David Polya
    • 依托单位:
    海外基金