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Criticality of Byproduct Materials: Assessing Supply Risk, Environmental Impact, and Strategic Policy Response for Tellurium.

机译:副产品材料的重要性:评估碲的供应风险,环境影响和战略对策。

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摘要

Creating a more sustainable future will require a transition toward more clean energy technologies. As technology shifts, the portfolio of materials needed to support the energy sector will shift as well. To prevent resource scarcity challenges, it is necessary to investigate multifaceted risks for energy materials. In recent years, a tool known as criticality assessment has been used for this purpose, identifying economic vulnerabilities for key energy, defense, and electronic technologies. These studies intend to guide strategic response to reduce risk; however existing methodologies lack a comprehensive systems perspective necessary to inform decisions.;This is particularly true for materials supplied from byproduct mining. Byproduct minerals (e.g. tellurium, indium, gallium) are unintended minor joint products generated while mining and refining major metals (e.g. aluminum, iron, copper). They contribute only marginally to profit, so their extraction is justified strictly by association with the carrier metal ore, linking their supply, both physically and economically, to the system of materials being produced by the joint process. This level of interconnection is not well captured by the single-product focus characteristic of existing criticality assessments, potentially misrepresenting risks for byproducts.;This dissertation aims to inform more appropriate policy response by addressing key gaps in criticality assessment and mitigation for byproduct minerals through the application of various systems modeling tools, including dynamic material flow analysis (dMFA), life cycle assessment (LCA), and scenario-based uncertainty analysis. Resulting contributions address the following specific challenges: (a) supply risk assessment neglects carrier metal production dynamics, (b) environmental risk assessment is sensitive to variability in impact allocation assumptions, and (c) standard, static result metrics are poorly matched for development of dynamic risk mitigation policy. Novel methodologies are demonstrated throughout using a case study of tellurium, a byproduct of copper refining critical to rapidly-growing CdTe thin-film photovoltaics.
机译:创造更可持续的未来将需要向更多清洁能源技术过渡。随着技术的变化,支持能源部门所需的材料组合也会发生变化。为了防止资源短缺的挑战,有必要调查能源材料的多方面风险。近年来,为此目的使用了一种称为关键性评估的工具,该工具可识别关键能源,国防和电子技术的经济脆弱性。这些研究旨在指导战略应对以降低风险。然而,现有的方法论缺乏必要的综合系统视角来指导决策。对于副产品开采提供的材料尤其如此。副产品矿物质(例如碲,铟,镓)是在开采和提炼主要金属(例如铝,铁,铜)时产生的意想不到的次要副产品。它们对利润的贡献很小,因此严格地通过与载体金属矿石的结合来合理地提取它们,将其供应在物理上和经济上与联合工艺生产的材料系统联系起来。现有关键性评估的单一产品重点特征不能很好地把握这种相互联系的程度,这可能会误解副产品的风险。本论文旨在通过解决关键性评估中关键差距和通过副产品矿物缓解的关键信息,提供更适当的政策应对措施。各种系统建模工具的应用,包括动态物料流分析(dMFA),生命周期评估(LCA)和基于方案的不确定性分析。由此产生的贡献解决了以下具体挑战:(a)供应风险评估忽略了载体金属的生产动态,(b)环境风险评估对影响分配假设的变化敏感,并且(c)标准,静态结果度量标准与开发动态风险缓解政策。贯穿整个案例的碲研究证明了新颖的方法,碲是铜精炼的副产品,对快速生长的CdTe薄膜光伏电池至关重要。

著录项

  • 作者

    Bustamante, Michele L.;

  • 作者单位

    Rochester Institute of Technology.;

  • 授予单位 Rochester Institute of Technology.;
  • 学科 Sustainability.;Energy.;Mining engineering.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 152 p.
  • 总页数 152
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 公共建筑;
  • 关键词

  • 入库时间 2022-08-17 11:41:40

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