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Groundwater recharge in global drylands: processes, quantification & sensitivities to environmental change

Groundwater recharge in global drylands: processes, quantification & sensitivities to environmental change
全球旱地地下水补给:过程、量化
批准号:
NE/P017819/1
负责人:
Mark Olaf Cuthbert
金额:
$73.13万
依托单位:
依托单位国家:
英国
项目类别:
Fellowship
财政年份:
2017
资助国家:
英国
项目状态:
已结题
起止时间:
2017 至 --

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中文摘要
翻译
水是不可替代的--没有水,人类和其他动物就会死亡,农作物就会歉收,重要的生态系统会遭受不可逆转的破坏。全球约有10亿人无法获得清洁饮用水,在世界上已经干旱的地区,水资源变得更加稀缺。这种旱地(降雨量远小于蒸发量的地方)正在扩大,现在覆盖了地球陆地面积的三分之一以上,供养着约20亿人口和世界上约一半的牲畜和耕地,并包含着全球重要的生态系统。到本世纪末,气候变化可能会减少许多干旱地区的降雨量,因此,我们必须知道如何继续向这些地区供应淡水,使不断增长的人口能够茁壮成长,同时保持干旱地区生态系统的健康。地下水(“地下水”)是地球上最大的可利用淡水储存库,比地表水丰富25倍以上。由于地下水是如此巨大的淡水储存,它对旱地的生存至关重要,当湖泊、水库和河流等地表水储存因缺乏降雨而干涸时,地下水在长期干旱中提供可靠的供水。因此,为了明智地管理旱地的水资源,必须知道可以抽取多少地下水满足人类需求,而不减少后代的可用性,即不必要地“开采”地下水。一些重要的生态系统还依赖于地下水,地下水通过泉水和地下水位接近地表的其他地方自然排放(流出地面)。从长远来看,我们应该只取用补充的地下水。这种补给是自然发生的,即降雨渗入地下的速度比通过蒸发或蒸腾作用返回大气的速度快,这一过程称为地下水补给。目前,关于干旱地区地下水补给量的信息不足,因此无法预测地下水储存量将如何随着气候变化而变化,我想回答的中心问题是,在已经缺水的干旱地区,地下水补给量有多少,以及控制这种补给发生的时间和地点的主要因素是什么。这将有助于我们更有效地管理水资源,从而适应未来的气候变化,从而为全球带来社会和经济效益。我计划通过整理和分析全球旱地的地下水位数据以及收集和分析坦桑尼亚和澳大利亚特定旱地地区研究集水区的新实地数据来实现这一目标。然后,我将建立计算机模型来模拟旱地气候和地下水系统如何相互作用,使用新数据来检查模型是否尽可能准确。我将这样做的研究集水区,但然后使用新的知识,以改善全球规模的水文模型,用于预测和管理水资源的变化,由于气候变化。探索这些问题是一个迷人的挑战,因为来自不同科学学科(如水文学,气候学,地质学)的想法需要创造性地汇集在一起。这也给了我一个机会,帮助理解人类过去如何以及为什么应对气候变化,以及我们未来如何做到这一点。
英文摘要
There is no substitute for water - without it humans and other animals die, crops fail and important ecosystems suffer irreversible damage. Globally around 1 billion people lack access to clean drinking water and water is becoming scarcer in already dry parts of the world. Such drylands (places where rainfall is much less than evaporation) are expanding and now cover more than a third of the Earth's landmass, support a population of around 2 billion people and around half of the world's livestock and cultivated land, and contain globally important ecosystems. Climate change is likely to reduce the amount of rainfall in many drylands by the end of this century and so it is vital that we know how to continue to supply fresh water in these areas, to enable the expanding human population to thrive whilst also keeping dryland ecosystems healthy.Water stored in pore spaces and fractures under the Earth's surface ("groundwater") is the largest store of accessible freshwater on the planet, more than 25 times more abundant than surface water. As it constitutes such a large store of freshwater, groundwater is crucial to survival in drylands, providing a reliable water supply through long droughts when surface water stores such as lakes, reservoirs and rivers dry up due to the lack of rainfall to refill them. In order to manage water resources wisely in drylands, it is therefore crucial to know how much groundwater can be pumped for human needs, without reducing its availability for future generations i.e. without 'mining' the groundwater unnecessarily. Some important ecosystems also rely on groundwater where it discharges (flows out of the ground) naturally, through springs and other locations where the water table is close to the ground surface. In the long term we should only take out as much groundwater as is replenished. This replenishment happens naturally when rainfall infiltrates into the ground more quickly than it is removed back to the atmosphere by evaporation or transpiration in a process known as groundwater recharge. At the moment, there is not enough information about how much groundwater recharge occurs in dryland areas and it is therefore impossible to predict how the amount of stored groundwater will change in response to a changing climate.The central question I want to answer is how much groundwater recharge occurs in drylands which are already short of water and what the main factors are which control when and where this recharge happens. This will be of global societal and economic benefit by helping us manage water resources more effectively, and therefore adapt to future climate change. I plan to achieve this by collating and analysing groundwater level data from drylands globally as well as collecting and analysing new field data from study catchments in specific dryland regions of Tanzania and Australia. I will then build computer models to simulate how the dryland climate and groundwater systems interact with each other, using the new data to check the models are as accurate as possible. I will do this for the study catchments but then use the new knowledge to improve global scale hydrological models which are used for predicting and managing changes in water resources due to changes in climate. Exploring these questions is a fascinating challenge because of the number of ideas from various scientific disciplines (e.g. hydrology, climatology, geology) which need to be brought together creatively. It also gives me an opportunity to contribute to understanding both how and why humans have coped with climate change in the past, and how we can do so in the future.
期刊论文(10)
专著(0)
科研奖励(0)
会议论文
Runoff and focused groundwater-recharge response to flooding rains in the arid zone of Australia
澳大利亚干旱地区洪水泛滥的径流和集中地下水补给响应
DOI: 10.1007/s10040-020-02284-x
发表时间: 2021
期刊: Hydrogeology Journal
影响因子: 2.8
作者: [Acworth R]
通讯作者: Acworth R
Rainfall recharge thresholds in a subtropical climate determined using a regional cave drip water monitoring network
使用区域洞穴滴水监测网络确定亚热带气候下的降雨补给阈值
DOI: 10.1016/j.jhydrol.2020.125001
发表时间: 2020
期刊: Journal of Hydrology
影响因子: 6.4
作者: [Baker A]
通讯作者: Baker A
DOI: 10.5194/egusphere-egu2020-1686
发表时间: 2020
期刊:
影响因子: --
作者: [Baker A]
通讯作者: Baker A
DOI: 10.31223/osf.io/h4pr6
发表时间: 2023
期刊:
影响因子: --
作者: [Baker A]
通讯作者: Baker A
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