成功能源转型的关键要素:系统综述

Mashael Kamran , Marco Raugei , Allan Hutchinson
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引用次数: 0

摘要

向低碳能源的未来过渡需要大量的原材料。其中一些材料因其有限的可用性、集中的供应链网络、相关的环境影响和各种社会问题而被认为是至关重要的。鉴于未来能源情景对原材料的严重依赖,本文对现有文献进行了系统回顾,以确定与一系列关键化学元素供应相关的障碍、提出的解决方案以及当前的研究差距。重点是根据原材料可用性和当代提取技术评估供应风险。结果表明,向低碳能源系统过渡是可能的,但需要努力解决供应问题和战略规划。一个关键的风险缓解策略是增加材料的循环性,特别是为了应对锂离子电池中钴、燃料电池和电解槽中使用的铂、电解槽中的铱和永磁体中使用的镝的需求增长。铜可能是最令人担忧的关键元素,因为除了能源转型的需求外,发展中国家的预期需求也是如此。锂、钴、稀土元素和铂族金属的地缘政治、社会和环境风险也可能阻碍未来的能源安全,因为对这些元素的需求持续增长。
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Critical elements for a successful energy transition: A systematic review

The transition to a low-carbon energy future requires large amounts of many raw materials. Some of these materials are deemed critical in terms of their limited availability, concentrated supply chain networks, associated environmental impact, and various social issues. Acknowledging the significant dependency on raw materials for future energy scenarios, this paper presents a systematic review of the existing literature to identify the barriers, solutions proposed and the current research gaps associated with the supply of a range of critical chemical elements. The focus was mainly on evaluating supply risk in light of raw material availability and contemporary extraction technologies. Results indicate that a transition to a low-carbon energy system is possible, but will require efforts to address supply concerns, and strategic planning. A key risk mitigation strategy is increasing material circularity, especially to cope with the growth in demand for cobalt in lithium-ion batteries, platinum used in fuel cells and electrolysers, iridium used in electrolysers and dysprosium used in permanent magnets. Copper was found to be possibly the most concerning critical element due to the expected demand from developing nations in addition to the demand for the energy transition. The geopolitical, social, and environmental risks for lithium, cobalt, rare earth elements and platinum group metals could also hinder future energy security, as demand for these elements continues to grow.

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