Neill Bartie, Lucero Cobos-Becerra
Various high-purity metals endow renewable energy technologies with specific functionalities. These become heavily intertwined in products, complicating end-of-life treatment. To counteract downcycling and resource depletion, maximising both quantities and qualities of materials recovered during production and recycling processes should be prioritised in the pursuit of sustainable circular economy. To do this well requires metallurgical infrastructure systems that maximise resource efficiency. To illustrate the concept, digital twins of two photovoltaic (PV) module technologies were created using process simulation. The models comprise integrated metallurgical systems that produce, among others, cadmium, tellurium, zinc, copper, and silicon, all of which are required for PV modules. System-wide resource efficiency, environmental impacts, and technoeconomic performance were assessed using exergy analysis, life cycle assessment, and cost models, respectively. High-detail simulation of complete life cycles allows for the system-wide effects of various production, recycling, and residue exchange scenarios to be evaluated to maximise overall sustainability and simplify the distribution of impacts in multiple-output production systems. This paper expands on previous studies and demonstrates the key importance of metallurgy in achieving Circular Economy, highlighting the role of energy grid compositions and the resulting location-based variations in supply chain footprints.
@article{7c15d959-5063-4dab-b119-b4cb410b6a05,
title={Metallurgical infrastructure and technology criticality: the link between photovoltaics, sustainability, and the metals industry},
author={Neill Bartie and Lucero Cobos-Becerra},
year={2022},
language={en}
}TY - JOUR TI - Metallurgical infrastructure and technology criticality: the link between photovoltaics, sustainability, and the metals industry AU - Neill Bartie AU - Lucero Cobos-Becerra PY - 2022 LA - en ER -
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