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Environmental life cycle assessment of a novel offshore wind energy design project: A United States based case study

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  • Moussavi, S.
  • Barutha, P.
  • Dvorak, B.

Abstract

Renewable energy resources, particularly offshore wind energy, and their role in combating global climate change have gained significant interest in recent years. Considering the potential life cycle impacts of such systems is essential to support effective policy and decision making. This study used life cycle assessment to compare the environmental sustainability of an offshore wind farm case study employing a novel foundation design to one employing a conventional foundation design. Literature has not yet examined the life cycle environmental sustainability of large-scale United States based facilities using a detailed data inventory from a real case study. The life cycle environmental single score of the novel design was 18% lower than that of the conventional design, highlighting that alternative foundation materials like concrete can help reduce the overall life cycle environmental impact of a large scale offshore wind farm. In general, the proposed novel design is favorable from a life cycle perspective compared to the conventional design, particularly in the impact categories of ecotoxicity, eutrophication, carcinogenics, noncarcinogenics, and respiratory effects. The energy payback time was found to be less than one year for both designs. Additional benefits of the novel design concept include lower costs, easier installation, domestic job opportunities, decreased reliance on foreign supply chains, ability to expand the design to deeper and disaster prone waters globally, and increased support for current political goals. Scenario sensitivity analyses showed that the environmental impact of wind energy systems may decrease with domestic sourcing of foundation materials and foundation reuse after decommissioning.

Suggested Citation

  • Moussavi, S. & Barutha, P. & Dvorak, B., 2023. "Environmental life cycle assessment of a novel offshore wind energy design project: A United States based case study," Renewable and Sustainable Energy Reviews, Elsevier, vol. 185(C).
  • Handle: RePEc:eee:rensus:v:185:y:2023:i:c:s1364032123005002
    DOI: 10.1016/j.rser.2023.113643
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    References listed on IDEAS

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    1. Kaldellis, J.K. & Apostolou, D. & Kapsali, M. & Kondili, E., 2016. "Environmental and social footprint of offshore wind energy. Comparison with onshore counterpart," Renewable Energy, Elsevier, vol. 92(C), pages 543-556.
    2. Lenzen, Manfred & Munksgaard, Jesper, 2002. "Energy and CO2 life-cycle analyses of wind turbines—review and applications," Renewable Energy, Elsevier, vol. 26(3), pages 339-362.
    3. Huang, Yu-Fong & Gan, Xing-Jia & Chiueh, Pei-Te, 2017. "Life cycle assessment and net energy analysis of offshore wind power systems," Renewable Energy, Elsevier, vol. 102(PA), pages 98-106.
    4. Onat, Nuri Cihat & Kucukvar, Murat, 2020. "Carbon footprint of construction industry: A global review and supply chain analysis," Renewable and Sustainable Energy Reviews, Elsevier, vol. 124(C).
    5. Bonou, Alexandra & Laurent, Alexis & Olsen, Stig I., 2016. "Life cycle assessment of onshore and offshore wind energy-from theory to application," Applied Energy, Elsevier, vol. 180(C), pages 327-337.
    6. Guezuraga, Begoña & Zauner, Rudolf & Pölz, Werner, 2012. "Life cycle assessment of two different 2 MW class wind turbines," Renewable Energy, Elsevier, vol. 37(1), pages 37-44.
    7. Varun & Bhat, I.K. & Prakash, Ravi, 2009. "LCA of renewable energy for electricity generation systems--A review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 13(5), pages 1067-1073, June.
    8. Zabala, I. & Henriques, J.C.C. & Blanco, J.M. & Gomez, A. & Gato, L.M.C. & Bidaguren, I. & Falcão, A.F.O. & Amezaga, A. & Gomes, R.P.F., 2019. "Wave-induced real-fluid effects in marine energy converters: Review and application to OWC devices," Renewable and Sustainable Energy Reviews, Elsevier, vol. 111(C), pages 535-549.
    9. Cellura, Maurizio & Longo, Sonia & Mistretta, Marina, 2011. "Sensitivity analysis to quantify uncertainty in Life Cycle Assessment: The case study of an Italian tile," Renewable and Sustainable Energy Reviews, Elsevier, vol. 15(9), pages 4697-4705.
    10. Penalba, Markel & Giorgi, Giussepe & Ringwood, John V., 2017. "Mathematical modelling of wave energy converters: A review of nonlinear approaches," Renewable and Sustainable Energy Reviews, Elsevier, vol. 78(C), pages 1188-1207.
    11. Weinzettel, Jan & Reenaas, Marte & Solli, Christian & Hertwich, Edgar G., 2009. "Life cycle assessment of a floating offshore wind turbine," Renewable Energy, Elsevier, vol. 34(3), pages 742-747.
    12. Nian, Victor & Liu, Yang & Zhong, Sheng, 2019. "Life cycle cost-benefit analysis of offshore wind energy under the climatic conditions in Southeast Asia – Setting the bottom-line for deployment," Applied Energy, Elsevier, vol. 233, pages 1003-1014.
    13. Jesuina Chipindula & Venkata Sai Vamsi Botlaguduru & Hongbo Du & Raghava Rao Kommalapati & Ziaul Huque, 2018. "Life Cycle Environmental Impact of Onshore and Offshore Wind Farms in Texas," Sustainability, MDPI, vol. 10(6), pages 1-18, June.
    14. Hall, Damon M. & Lazarus, Eli D., 2015. "Deep waters: Lessons from community meetings about offshore wind resource development in the U.S," Marine Policy, Elsevier, vol. 57(C), pages 9-17.
    15. Liang Tsai & Jarod C. Kelly & Brett S. Simon & Rachel M. Chalat & Gregory A. Keoleian, 2016. "Life Cycle Assessment of Offshore Wind Farm Siting: Effects of Locational Factors, Lake Depth, and Distance from Shore," Journal of Industrial Ecology, Yale University, vol. 20(6), pages 1370-1383, December.
    16. Newell, David, 2018. "Implementing wind power policy – Institutional frameworks and the beliefs of sovereigns," Land Use Policy, Elsevier, vol. 72(C), pages 16-26.
    17. Alexandre Mathern & Christoph von der Haar & Steffen Marx, 2021. "Concrete Support Structures for Offshore Wind Turbines: Current Status, Challenges, and Future Trends," Energies, MDPI, vol. 14(7), pages 1-31, April.
    18. Walmsley, Timothy G. & Walmsley, Michael R.W. & Varbanov, Petar S. & Klemeš, Jiří J., 2018. "Energy Ratio analysis and accounting for renewable and non-renewable electricity generation: A review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 98(C), pages 328-345.
    19. Verena Göswein & Carla Rodrigues & José D. Silvestre & Fausto Freire & Guillaume Habert & Jakob König, 2020. "Using anticipatory life cycle assessment to enable future sustainable construction," Journal of Industrial Ecology, Yale University, vol. 24(1), pages 178-192, February.
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