Life Cycle Assessment of Electric Vehicle Batteries: An Overview of Recent Literature
Abstract
:1. Introduction
2. The Assessed Documents
- LCA of batteries used in automotive applications, rejecting all the papers that analyze batteries in other contexts (e.g., for stationary use).
- Documents assessing a specific battery life cycle phase, for example, production or end of life and recycling phase, and identifying materials and operations with relevant environmental impacts.
- Studies comparing different battery models, characterized by different chemistry, power, energy density and storage capacity.
- Automotive batteries literature reviews.
- Studies assessing a single battery model and identifying the major impacts due to materials and operations, suggesting sustainable alternatives.
3. Goal and Scope
3.1. Functional Unit
3.2. System Boundaries
3.3. Allocation System
3.4. Cut-Off Rules
3.5. Impact Categories and Methods
4. Life Cycle Inventory—LCI
5. Life Cycle Impact Assessment—LCIA
6. Sensitivity and Uncertainty Analysis
7. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Title | ||
---|---|---|
Bibliographic reference | Bibliographic reference following the APA style (American Psychological Association). | |
Goal and Scope | Target of the study | Specify the target of the study; specify if the LCA is attributional or consequential (if possible). |
Functional unit | Specify the functional unit considered and evaluate whether it is suitable to represent the service analyzed. | |
System boundaries | Specify the system boundaries and the phases of the analysis considered. Possibly, state the omitted phases and the reason for their exclusion. | |
Allocation system | Indicate any allocation system used (mass, economic, etc.,) and how the end of life is managed (cut-off, default, system expansion). | |
Cut-off rules | Specify any cut-off rules and the parameters considered. | |
Impact categories and methods | Indicate impact categories and methods used in the study. | |
Inventory—LCI | Data source | Report data source, specifying if primary or secondary data are considered. |
LCIA | Results | Summarize the results of the study. |
Sensitivity and uncertainty analysis | Considered parameters and techniques | Specify parameters and techniques considered to realize sensitivity and uncertainty analysis (if present). |
Conclusions | Main conclusions of the study | Summarize the main conclusions of the document. |
Authors | Title | Year | Type of Document |
---|---|---|---|
Cusenza, M, A; Bobba, S; Ardente, F; Cellura, M; Di Persio, F | Energy and environmental assessment of a traction lithium-ion battery pack for plug-in hybrid electric vehicles [7] | 2019 | Journal paper |
Helmers, E; Weiss, M | Advances and critical aspects in the life-cycle assessment of battery electric cars [8] | 2017 | Journal paper |
Ioakimidis, C, S; Murillo-Marrodàn, A; Bagheri, A; Thomas, D; Genikomaskis, K | Life Cycle Assessment of a Lithium Iron Phosphate (LFP) Electric Vehicle Battery in Second Life Application Scenarios [9] | 2019 | Journal paper |
Ellingsen, L, A, W; Majeau-Bettez, G; Singh, B; Srivastava, A, K; Valøen, L, O; Strømman, A, H | Life Cycle Assessment of a Lithium-Ion Battery Vehicle Pack [10] | 2014 | Journal paper |
Notter, D, A; Gauch, M; Widmer, R; Wager, P; Stamp, A; Zah, R; Althaus, H, J | Contribution of Li-ion batteries to the environmental impact of electric vehicles [11] | 2010 | Journal paper |
Romare, M; Dahllöf, L | The Life Cycle Energy Consumption and Greenhouse Gas Emissions from Lithium-Ion Batteries [12] | 2017 | Technical report |
Dunn, J, B; Gaines, L; Barnes, M; Sullivan, J | Material and Energy Flows in the Materials Production, Assembly, and End-of-Life Stages of the Automotive Lithium-Ion Battery Life Cycle [13] | 2014 | Technical report |
Amarakoon, S; Smith, J; Segal, B | Application of Life-Cycle Assessment to Nanoscale Technology: Lithium-ion Batteries for Electric Vehicles [14] | 2013 | Technical report |
ReCharge | PEFCR - Product Environmental Footprint Category Rules For High Specific Energy Rechargeable Batteries for Mobile Applications [15] | 2018 | Technical guide |
Nordelöf, A; Messagie, M; Tillman, A. M; Söderman, M. L; Van Mierlo, J | Environmental impacts of hybrid, plug-in hybrid, and battery electric vehicles—what can we learn from life cycle assessment? [4] | 2014 | Journal paper |
Richa, K; Babbitt, C. W; Nenadic, N, G; Gaustad, G | Environmental trade-offs across cascading lithium-ion battery life cycles [16] | 2017 | Journal paper |
Faria, R; Marques, P; Garcia, R; Moura, P; Freire, F; Delgado, J; de Almeida, A, T | Primary and secondary use of electric mobility batteries from a life cycle perspective [17] | 2014 | Journal paper |
Oliveira, L; Messagie, M; Rangaraju, S; Sanfelix, J; Rivas, M, H; Van Mierlo, J | Key issues of lithium-ion batteries–from resource depletion to environmental performance indicators [18] | 2015 | Journal paper |
Liu, C; Lin, J; Cao, H; Zhang, Y; Sun, Z | Recycling of spent lithium-ion batteries in view of lithium recovery: A critical review [19] | 2019 | Journal paper |
Peters, J, F; Baumann, M; Zimmermann, B; Braun, J; Weil, M | The environmental impact of Li-Ion batteries and the role of key parameters–A review [20] | 2017 | Journal paper |
Majeau-Bettez, G; Hawkins, T, R; Strømman, A, H | Life Cycle Environmental Assessment of Lithium-Ion and Nickel Metal Hydride Batteries for Plug-In Hybrid and Battery Electric Vehicles [21] | 2011 | Journal paper |
Dai, Q; Kelly, J, C; Gaines, L.; Wang, M | Life Cycle Analysis of Lithium-Ion Batteries for Automotive Applications [22] | 2019 | Journal paper |
Vehicle Production | Battery Production | Maintenance | Road | Fuel/Electricity Production | Use | Total | |||
---|---|---|---|---|---|---|---|---|---|
g CO2eq /km | (w/out battery) | Min | Max | IT marg. Mix | Urban Cycle | Min | Max | ||
Diesel | 38.2 | 0.0 | 0.0 | 7.7 | 0.6 | 41.1 | 198.5 | 286.1 | 286.1 |
Electric | 37.7 | 9.5 | 59.6 | 6.2 | 0.6 | 92.5 | 0.0 | 146.6 | 196.7 |
Petrol | 41.5 | 0.0 | 0.0 | 7.4 | 0.5 | 59.1 | 221.6 | 330.0 | 330.0 |
Vehicle | Vehicle Production & Disposal | Battery Production & Disposal | Fuel/Electricity Production & Supply | Use & Maintenance | Total | |||
---|---|---|---|---|---|---|---|---|
Impacts/km | Type | Min | Max | Min | Max | |||
Acidification Potential | EV | 0.10 | 0.10 | 0.70 | 0.23 | 0.02 | 0.46 | 1.00 |
g SO2 eq | ICE | 0.14 | - | - | 0.55 | 0.11 | 0.79 | 0.79 |
Eutrophication Potential | EV | 0.06 | 0.01 | 0.12 | 0.06 | 0.01 | 0.27 | 0.25 |
g PO4 eq | ICE | 0.06 | - | - | 0.07 | 0.03 | 0.16 | 0.16 |
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Temporelli, A.; Carvalho, M.L.; Girardi, P. Life Cycle Assessment of Electric Vehicle Batteries: An Overview of Recent Literature. Energies 2020, 13, 2864. https://doi.org/10.3390/en13112864
Temporelli A, Carvalho ML, Girardi P. Life Cycle Assessment of Electric Vehicle Batteries: An Overview of Recent Literature. Energies. 2020; 13(11):2864. https://doi.org/10.3390/en13112864
Chicago/Turabian StyleTemporelli, Andrea, Maria Leonor Carvalho, and Pierpaolo Girardi. 2020. "Life Cycle Assessment of Electric Vehicle Batteries: An Overview of Recent Literature" Energies 13, no. 11: 2864. https://doi.org/10.3390/en13112864
APA StyleTemporelli, A., Carvalho, M. L., & Girardi, P. (2020). Life Cycle Assessment of Electric Vehicle Batteries: An Overview of Recent Literature. Energies, 13(11), 2864. https://doi.org/10.3390/en13112864