Loss of mineral resource value in LCA: application of the JRC-LCI method to multiple case studies combined with inaccessibility and value-based impact assessment
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[1] Fulvio Ardente,et al. A price-based life cycle impact assessment method to quantify the reduced accessibility to mineral resources value , 2022, The International Journal of Life Cycle Assessment.
[2] G. Sonnemann,et al. Midpoint and endpoint characterization factors for mineral resource dissipation: methods and application to 6000 data sets , 2022, The International Journal of Life Cycle Assessment.
[3] A. Guézennec,et al. LCA as a support to more sustainable tailings management: critical review, lessons learnt and potential way forward , 2022, Resources, Conservation and Recycling.
[4] Guangming Li,et al. Comparative life cycle assessment of LFP and NCM batteries including the secondary use and different recycling technologies. , 2022, The Science of the total environment.
[5] Alexis Laurent,et al. Identification of dissipative emissions for improved assessment of metal resources in life cycle assessment , 2021, Journal of Industrial Ecology.
[6] G. Sonnemann,et al. Life cycle impact assessment methods for estimating the impacts of dissipative flows of metals , 2021, Journal of Industrial Ecology.
[7] S. Pfister,et al. Towards sustainable resource management: identification and quantification of human actions that compromise the accessibility of metal resources , 2021, Resources, Conservation and Recycling.
[8] Serenella Sala,et al. Mineral resource dissipation in life cycle inventories , 2021, The International Journal of Life Cycle Assessment.
[9] K. Hudson-Edwards,et al. Bioleaching to reprocess sulfidic polymetallic primary mining residues: Determination of metal leaching mechanisms , 2020 .
[10] R. Heijungs,et al. Top-down characterization of resource use in LCA: from problem definition of resource use to operational characterization factors for dissipation of elements to the environment , 2020, The International Journal of Life Cycle Assessment.
[11] V. Goodship,et al. A review of physical processes used in the safe recycling of lithium ion batteries , 2020, Sustainable Materials and Technologies.
[12] Luca Zampori,et al. Accounting for the dissipation of abiotic resources in LCA: Status, key challenges and potential way forward , 2020, Resources, conservation, and recycling.
[13] Alexander Cimprich,et al. Mineral resources in life cycle impact assessment: part II – recommendations on application-dependent use of existing methods and on future method development needs , 2020, The International Journal of Life Cycle Assessment.
[14] Alexander Cimprich,et al. Mineral resources in life cycle impact assessment—part I: a critical review of existing methods , 2020, The International Journal of Life Cycle Assessment.
[15] M. Cellura,et al. Energy and environmental assessment of a traction lithium-ion battery pack for plug-in hybrid electric vehicles , 2019, Journal of cleaner production.
[16] Daniel B. Müller,et al. Modeling the potential impact of lithium recycling from EV batteries on lithium demand: A dynamic MFA approach , 2018, Resources, Conservation and Recycling.
[17] Yelin Deng,et al. Life cycle assessment of lithium sulfur battery for electric vehicles , 2017 .
[18] Carl Vadenbo,et al. Abiotic resources: new impact assessment approaches in view of resource efficiency and resource criticality—55th Discussion Forum on Life Cycle Assessment, Zurich, Switzerland, April 11, 2014 , 2014, The International Journal of Life Cycle Assessment.
[19] Till Zimmermann,et al. Critical materials and dissipative losses: a screening study. , 2013, The Science of the total environment.
[20] T. Nemecek,et al. Overview and methodology: Data quality guideline for the ecoinvent database version 3 , 2013 .
[21] Mary Stewart,et al. A Consistent Framework for Assessing the Impacts from Resource Use - A focus on resource functionality (8 pp) , 2005 .
[22] Jeroen B. Guinee,et al. Handbook on life cycle assessment operational guide to the ISO standards , 2002 .