SUstainable MInerals for a resilient Transition to Net Zero (SUMIT 0)
SUstainable MInerals for a resilient Transition to Net Zero (SUMIT 0)
批准号:
NE/Y00308X/1
负责人:
Margaret Graham
金额:
$10.73万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2023
资助国家:
英国
项目状态:
未结题
起止时间:
2023 至 --
中文摘要
越来越明显的是,向净零转型将是资源密集型的。例如,每兆瓦(MW)的装机容量(电力供应~1000个家庭),单个陆上风力涡轮机使用3吨铜(Cu), 0.75吨锰(Mn), 0.5吨铬(Cr)和镍(Ni), 0.1吨钼(Mo)和少量稀土元素(ree)(~15公斤)。太阳能光伏(PV)设备也有类似的铜需求,但海上风力涡轮机使用更多的铜(x2.5)和稀土(x10)。扩大规模,约1.4亿吨关键金属将用于可再生能源(风能/太阳能/地热)技术和未来气候变化<1.5摄氏度所需的储能设备。因此,人们越来越关注关键要素供应的安全问题。2022年,英国政府发布了首个关键矿产战略,并将在2023年底前审查关键矿产供应链的稳定性和安全性。对我们现在在保护土壤和水,甚至人类健康方面面临的挑战的考虑要少得多。在已经缺水的地区,开采矿产资源不仅需要大量用水,而且不可避免地会产生废料。过去和现在的做法已经产生了280亿吨(Gt)——这相当于一个6公里高的立方体!这些地区往往不受限制,风和水的扩散导致污染扩散,并使近端人口大面积暴露。受污染的粉尘和水含有多种潜在有毒元素(pte),例如砷(As)、铅(Pb)、镍(Ni)、硼(B)、钼(Mo),这些元素自然共存于开采材料中。就个别而言,对人类健康有充分记录的影响,例如,已知铅会导致各种癌症,已知铅会影响大脑发育,特别是儿童,但接触复杂的PTE混合物的累积效果尚不清楚。本提案的重点是铜(Cu)开采,因为(1)所有低碳技术都需要铜;(ii)它是Mo、Re、Te、ree等关键金属共生的门户;铜采矿废物几乎占所有尾矿废物的一半;(iv)这些废物含有我们需要研究的复杂的PTE混合物。智利是迄今为止世界上最大的铜生产国,它还有740多个已登记的尾矿区,其中许多管理不当,正在影响土壤、水、粮食和人类健康,特别是土著社区的健康。因此,我们提议在智利可持续矿物研究所-国际卓越中心(SMI-ICE-Chile)和爱丁堡大学(UoE)之间建立新的国际伙伴关系,将smi - ice -智利在智利和南美洲采矿业的研究、创新和技术/能力转移方面的卓越成就与爱丁堡的世界级研究设施和我们互补的专业知识结合起来。利用smi - ice -智利的积极项目,我们将采用一种新颖、全面和综合的方法来解决在了解PTE混合物方面的关键差距,这将成为生态和人类健康风险评估以及未来可持续废物处理和关键金属回收工作的基础。通过与国际环境研究所(IIES)共同合作,我们将加强伙伴关系的长期可持续性,并为更广泛的国际合作和资助开辟潜在途径。特别是,我们的目标是促进英国-智利-加拿大-澳大利亚关系的讨论,这对于确保未来关键矿物的环境可持续供应至关重要。通过利用我们提供具有积极社会经济影响的科学进步的经验,我们还将确保为土著社区提供具有文化意识的更好的生活质量。
英文摘要
It is increasingly evident that a net zero transition will be resource intensive. For example, per megawatt (MW) of installed capacity (electricity supply ~1000 homes), a single onshore wind turbine uses 3 tonnes (t) of copper (Cu), 0.75 t of manganese (Mn), 0.5 t of chromium (Cr) and nickel (Ni), 0.1 t of molybdenum (Mo) and smaller amounts of rare earth elements (REEs) (~15 kg). Solar photovoltaic (PV) devices have similar Cu requirements but offshore wind turbines use significantly more Cu (x2.5) and REEs (x10). Scaling up, ~140 Mt of critical metals will be utilised by renewable energy (wind/solar/geothermal) technologies and the energy storage devices required for a <1.5 degreeC climate change future. Thus there is growing concern about security of supply of critical elements. In 2022, the UK government published its first Critical Minerals Strategy and will review the stability and security of critical mineral supply chains by the end of 2023. There has been much less consideration of the challenges we now face in protecting our soils and waters and indeed human health. Extraction of mineral resources is not only water intensive in areas that are already water-stressed but it inevitably generates waste materials. Past/current practices have already produced >280 gigatonnes (Gt) - this equates to a cube that is 6 km high! These are often uncurtailed and dispersal by wind and water results in contamination spread and expansive exposure for proximal populations. The contaminated dusts and waters contain a wide range of potentially toxic elements (PTEs), e.g. arsenic (As), lead (Pb), nickel (Ni), boron (B), molybdenum (Mo) which naturally co-occur within the mined materials. Individually, there are well-documented impacts upon human health, e.g. As is known to cause various cancers, Pb is known to affect brain development especially in children, but the cumulative effective of exposures to complex PTE mixtures is unknown. The focus of this proposal is on copper (Cu) mining because (i) Cu is required across all low-carbon technologies; (ii) it is the gateway to co-occurring critical metals such as Mo, Re, Te, REEs; (iii) Cu mining wastes constitute almost half of all tailing wastes; (iv) these wastes contain the complex PTE mixtures that we need to study. Chile is by far the largest producer of Cu in the world and it also has more than 740 registered tailings areas, many of which are improperly managed and are impacting soil, water, food and human health, especially of indigenous communities. We therefore propose a new international partnership between the Sustainable Minerals Institute-International Centre of Excellence-Chile (SMI-ICE-Chile) and the University of Edinburgh (UoE) to bring together SMI-ICE-Chile's excellence in research, innovation and technological/capacity transfer in the mining industry of Chile and South America and Edinburgh's world-class research facilities and our complementary expertise.Taking advantage of SMI-ICE-Chile's active projects, we will use a novel, holistic and integrated approach to address a key gap in understanding regarding PTE mixtures that will underpin assessments for ecological and human health risk as well as future work on sustainable waste treatment and critical metal recovery. By jointly engaging with the International Institute for Environmental Studies (IIES), we will enhance the long-term sustainability of our partnership and open up potential avenues for wider international collaboration and funding. In particular, we aim to facilitate discussions across the UK-Chile-Canada-Australia nexus which will be paramount to securing an environmentally sustainable supply of critical minerals in the future. By building on our experience of delivering scientific progress that also has positive socio-economic impact, we will also ensure a culturally aware provision of a better quality of life for indigenous communities.
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会议论文
Long-Lived Radionuclides in the Surface Environment (LO-RISE)- Mechanistic Studies of Speciation, Environmental Transport and Transfer
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批准号:NE/L00044X/1
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项目类别:Research Grant
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资助金额:$11.44万
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财政年份:2013
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负责人:Margaret Graham
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依托单位:
海外基金