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Cost optimization of a symbiotic system to harvest uranium from seawater via an offshore wind turbine

机译:通过海上风力发电机从海水中收集铀的共生系统的成本优化

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The recovery of uranium from seawater has the potential to transform the perceived sustainability of energy generated by uranium intensive nuclear fuel cycles, while providing environmental benefits as compared to land-based mining. Combining a seawater uranium harvester with an existing offshore wind turbine allows for denser energy recovery per unit ecosystem, as well as lowering the uranium production cost. The analysis presented in this paper focuses on the economic impacts on uranium recovered by adsorbing material deployed with such a symbiotic system as compared to a reference kelp-field like deployment. The Wind and Uranium from Seawater Acquisition symBiotic Infrastructure (WUSABI) was subjected to an independent economic analysis and design optimizations in an effort to reduce the seawater uranium cost. In addition to providing greater transparency to previous economic analyses of this system, this work alters chemical tank materials and establishes a novel means of calculating and optimizing the interval in which symbiotic systems are serviced. The perturbations proposed in this work could achieve a cost savings of 30% as compared to uranium produced from the reference kelp-field like deployment system. Additional design sensitivities are also explored to identify major cost drivers and guide future work regarding deployment location of the turbine field.
机译:与陆上采矿相比,从海水中回收铀具有改变铀密集型核燃料循环产生的能源的可持续性的潜力,同时具有环境效益。将海水铀收集器与现有的海上风力涡轮机结合使用,可以提高单位生态系统的能量回收密度,并降低铀生产成本。本文所进行的分析着重于通过吸附共生系统部署的材料而对铀回收产生的经济影响,而不是像参考海藻田这样的部署。为了降低海水铀成本,对来自海水收购symBiotic Infrastructure(WUSABI)的风和铀进行了独立的经济分析和设计优化。除了为该系统的先前经济分析提供更大的透明度之外,这项工作还改变了化学罐的材料,并建立了一种计算和优化共生系统维修间隔的新颖方法。与从类似海带野外部署系统中生产的铀相比,这项工作中提出的扰动可以节省30%的成本。还探索了其他设计敏感性,以确定主要的成本动因,并指导有关涡轮机领域部署位置的未来工作。

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