NARA Discovery
Article Details
← Back to Search Results
Journal Article

Temporally explicit abiotic depletion potential (TADP) for mineral resource use based on future demand projections

Ryosuke Yokoi; Takuma Watari; Masaharu Motoshita
The International Journal of Life Cycle Assessment · Vol. 27, Issue 7 · pp. 932-943 · 2022

Abstract

Purpose Assessing the potential impacts (characterization) of mineral resource use in life cycle impact assessment (LCIA) has long been debated. One of the most crucial challenges in the characterization models for mineral resource use is the consideration of the changing demand and availability of in-use stocks in the future, which is relevant to the global population and economy growth as well as the increasing low-carbon technologies. We propose an extended characterization model to assess the potential impacts for arbitrary time horizons, considering future demand changes and the availability of in-use stock: temporally explicit abiotic depletion potential (TADP). Methods The TADP was developed based on abiotic depletion potential (ADP), which is a widely used characterization model for mineral resource use. While the ADP assesses the potential impacts of mineral resource use based on a natural stock estimate and the current extraction rate, the TADP adopts an average extraction rate for arbitrary time horizons. The average extraction rate was estimated using material flow analysis considering future demand changes and recycling under the five shared socioeconomic pathways (SSPs). TADPs were calculated for six common metals: aluminum, copper, iron, lead, nickel, and zinc. Results and discussion As a result of calculating TADPs for the term by 2050 (TADP 2050 ), compared to iron, all other metals showed larger values of characterization factors for all SSPs than the original ADPs. The TADP 2050 of copper exhibited the largest difference with ADP among the six metals (approximately 1.9 times), which is mainly attributed to future demand growth. On the other hand, for the longer time perspective, the TADP 2100 of lead and zinc exhibited larger differences with ADP than copper (approximately 2.8 times for zinc), which is mainly due to a relatively shorter lifetime for lead and a lower recycling rate for zinc. This suggests that the relative significance of the characterization factors of metals varies depending on the temporal perspective. Conclusions With the proposed characterization model, the potential impacts of mineral resource use can be assessed reflecting future situations for the selected time horizons. The results demonstrate that the consideration of future situations greatly influences the relative significance of the potential impacts of using different mineral resources in the results of LCIA studies. By expanding the coverage of mineral resources and future scenario analysis to other relevant factors, the TADP model can improve the robustness of the assessment and further support decision-making towards sustainable resource management.

Bibliographic Information

JournalThe International Journal of Life Cycle Assessment
PublisherSpringer
Publication Date2022-07-01
Publication Year2022
Volume27
Issue7
Pages932-943
Document TypeJournal Article
Print ISSN0948-3349
eISSN1614-7502
DOI10.1007/s11367-022-02077-2

Access Information

NARA Access Coverage1996-01-01~Current
Journal Homepagehttps://www.springer.com/journal/11367
Publisher PageOpen Publisher Page
Full-text access depends on NARA's subscribed coverage and institutional access.