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Discrete-Point Analysis of the Energy Demand of Primary versus Secondary Metal Production

机译:初级和次级金属生产的能源需求的离散点分析

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摘要

The metal industry consumes large amounts of energy and contributes signiiicandy, up to 10%, to global greenhouse gas (GHG) emissions. Recycling is commonly included among the most viable options for mitigating the climate forcing of metal production by replacing primary production. However, the recycling rates of metals are still incomplete and, in particular, do not exist for most specialty metals. Our empirical analysis of 48 metals shows that their recycling is mainly impeded by their low concentrations. In many cases, the metal concentration in end-of-life products is lower than that in natural ores. This phenomenon inevitably raises the question of the extent to which recycling can be conducted without losing its mitigating effects on climate change. We answer this question for two example metals, tantalum and copper, within the scope of Germany, a leader in recycling. For tantalum, the results show that a further increase in the end-of-life recycling rate (EOL-RR) could contribute to minimizing the overall energy consumption and GHG emissions, despite its low concentrations in end-of-life products. The energy requirements for recycling copper from end-of-life products already reach the magnitude of those for primary production. A further increase in EOL-RR must be examined in detail to ensure mitigating effects on climate change.
机译:金属工业消耗大量能源,对全球温室气体(GHG)排放的贡献高达10%。通常,回收利用是最可行的选择之一,可通过替代初级生产来减轻金属生产的气候强迫。但是,金属的回收率仍然不完全,特别是对于大多数特种金属而言,这种回收率还不存在。我们对48种金属的经验分析表明,它们的再循环主要受到其低浓度的阻碍。在许多情况下,报废产品中的金属浓度低于天然矿石中的金属浓度。这种现象不可避免地引起了一个问题,即在不损失缓解气候变化影响的前提下,可以进行回收利用的程度。我们以回收领域的领先者德国范围内的两种示例金属(钽和铜)回答这个问题。对于钽,结果表明,尽管报废产品中的浓度很低,但报废回收率(EOL-RR)的进一步提高仍有助于将总能耗和温室气体排放降至最低。从报废产品中回收铜的能源需求已经达到初级生产的能源需求。必须详细研究EOL-RR的进一步增加,以确保减轻对气候变化的影响。

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  • 来源
    《Environmental Science & Technology》 |2020年第1期|507-516|共10页
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  • 作者单位

    Institute for Industrial Ecology Pforzheim University Tiefenbronner Straße 65 75175 Pforzheim Germany;

    Institute for Industrial Ecology Pforzheim University Tiefenbronner Straße 65 75175 Pforzheim Germany Faculty of Sustainability Leuphana University Lueneburg Universitatsallee 1 21335 Liineburg Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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