Conocimiento Científico
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Item type:Publication, Toward a Localized Water Footprint of Lithium Brine Extraction: A Case Study from the Salar de Atacama(MDPI AG, 2025) ;Andreas Link ;Sylvia Marinova ;Lindsey Roche ;Vlad CoroamăLily HinkersThe extraction of lithium from salt flats such as the Salar de Atacama (SdA) has raised concerns about its potential impact on the local water balance. This study evaluates the possibility of including localized mining impacts on groundwater tables, lagoons, brine–freshwater mixing, evaporation, precipitation feedback, and recharge in a localized water footprint case study of lithium mining in the SdA. Using ready-to-use hydrogeological models, we primarily assessed the effects of lithium extraction on groundwater levels, evaporation, precipitation, and basin recharge dynamics. The influence on evaporation and recharge appears to be limited, with surplus evaporation due to mining accounting for a maximum of 4% of basin-wide evaporation. Regarding groundwater tables, drawdown exceeding 25 cm to several meters has largely been confined to areas that are not critical for local ecosystems. Available hydrogeological models have also helped to estimate whether the extraction of freshwater by mining companies can exacerbate groundwater drawdown during brine extraction. Consequently, non-overlapping, geographically distinct depression cones have been identified, but total water consumption by all users in the basin has not been considered. Furthermore, the aspect of model uncertainty requires further investigation, as do changes in lagoon areas and brine–freshwater mixing, which are not yet comprehensively captured by existing models. - Some of the metrics are blocked by yourconsent settings
Item type:Publication, Water footprint of battery-grade lithium production in the Salar de Atacama, Chile(Elsevier BV, 2025) ;Sylvia Marinova ;Lindsey Roche ;Andreas LinkMatthias FinkbeinerThe increasing demand for lithium, driven primarily by the electric transportation and renewable energy technologies, highlights the need to comprehensively assess the environmental implications of its production. Thus, a profound exploration of the water-related impacts caused by the life cycle of raw materials like lithium is necessary. In this context, we performed a cradle-to-gate water footprint of lithium extracted from the Salar de Atacama (SdA) operation in Chile for the production period of 2022 and 2023. Based on a Life Cycle Assessment (LCA) approach we evaluated the water inventories and explored the potential impacts of water vulnerability and scarcity by applying AWARE and WAVE + characterisation models. This resulted in a total potential impact of 442 m3 and 5.5 m3 world equivalents per ton of lithium product (87% lithium carbonate (Li2CO3) and 13% lithium hydroxide (LiOH)) for AWARE and WAVE+, respectively. The AWARE results indicate that concentrated lithium brine production significantly dominates the water footprint of lithium battery-grade products, with 326 m³ world equivalents per ton. WAVE + results are consistent, attributing 3.81 m³ equiv. to brine production. In the final production stages, the Li₂CO₃ production is prominent, with AWARE and WAVE + values of 59.9 m³ and 1.01 m³ equiv. per ton, respectively, largely due to sodium carbonate consumption and electricity generation. However, it is noteworthy that the water scarcity and vulnerability impacts remain minimal for these final production phases, which is primarily attributable to the utilisation of desalinated water. In addition, we compared the production periods of 2020–2021 and 2022–2023 finding that all measured indicators improved in 2022–2023 in the range of 9%–42%. This suggests increased efficiency of the operations in the SdA, with higher brine recovery rates and lower energy usage in certain process steps. The insights gained from this research contribute to the understanding of brine-based lithium production practices, providing a basis for exploring further mitigation strategies aimed at reducing the environmental footprint, particularly in production stages with higher water impact.
