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Global Resource Circularity for Lithium-Ion Batteries up to 2050: Traction and Stationary Use
by
Yamasue, Eiji
, Kosai, Shoki
, Takata, Ukyo
in
Circular economy
/ Cobalt
/ Copper
/ Electric vehicles
/ Electricity
/ Energy industry
/ Energy storage
/ Environmental impact
/ Life span
/ lifecycle
/ Lithium
/ material footprint
/ Mining
/ mining activity
/ Monte Carlo simulation
/ Natural resources
/ Raw materials
/ Recycling
/ Renewable resources
/ repurpose
/ reuse
/ Traction
2022
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Global Resource Circularity for Lithium-Ion Batteries up to 2050: Traction and Stationary Use
by
Yamasue, Eiji
, Kosai, Shoki
, Takata, Ukyo
in
Circular economy
/ Cobalt
/ Copper
/ Electric vehicles
/ Electricity
/ Energy industry
/ Energy storage
/ Environmental impact
/ Life span
/ lifecycle
/ Lithium
/ material footprint
/ Mining
/ mining activity
/ Monte Carlo simulation
/ Natural resources
/ Raw materials
/ Recycling
/ Renewable resources
/ repurpose
/ reuse
/ Traction
2022
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Do you wish to request the book?
Global Resource Circularity for Lithium-Ion Batteries up to 2050: Traction and Stationary Use
by
Yamasue, Eiji
, Kosai, Shoki
, Takata, Ukyo
in
Circular economy
/ Cobalt
/ Copper
/ Electric vehicles
/ Electricity
/ Energy industry
/ Energy storage
/ Environmental impact
/ Life span
/ lifecycle
/ Lithium
/ material footprint
/ Mining
/ mining activity
/ Monte Carlo simulation
/ Natural resources
/ Raw materials
/ Recycling
/ Renewable resources
/ repurpose
/ reuse
/ Traction
2022
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Global Resource Circularity for Lithium-Ion Batteries up to 2050: Traction and Stationary Use
Journal Article
Global Resource Circularity for Lithium-Ion Batteries up to 2050: Traction and Stationary Use
2022
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Overview
The use of the lithium-ion battery (LIB) in both traction and stationary applications has become ubiquitous. It is essential that retired LIBs are wisely treated, with a basis in the concept of the circular economy, to mitigate primary resource use. A closed-loop repurposing and recycling treatment is required. Thus, using the concept of total material requirement as an indicator of natural resource use based on mining activity, a dynamic material flow analysis was executed considering the degradation of the battery, its lifespan, and demand patterns under several scenarios. Then, the effect of circularity on the savings in global natural resource use involved across the entire lifecycles of LIBs was evaluated. It was found that the global resource use for LIBs will increase to between 10 and 48 Gt in 2050. Circularity has the potential to contribute to an 8–44% reduction in the global resource use associated with LIBs in 2050. It was also found that a longer lifespan in the years leading up to 2050 would have a greater impact on the reduction of resource use for LIBs, despite the lower effectiveness of circularity, because it would reduce the demand for LIBs.
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