Trade-offs of wind power production: A study on the environmental implications of raw materials mining in the life cycle of wind turbines

被引:1
|
作者
Morozovska, Kateryna [1 ]
Bragone, Federica [1 ,2 ]
Svensson, Andre Xavier [1 ]
Shukla, Dhruvi Ajit [1 ]
Hellstenius, Ebba [1 ]
Konstantinos, Salonitis [1 ]
机构
[1] KTH Royal Inst Technol, Stockholm, Sweden
[2] Lindstedtsvagen 5, Stockholm 10044, Sweden
关键词
Wind turbines; SDGs; Raw materials; Mining; Environmental impact; ENERGY; LCA;
D O I
10.1016/j.jclepro.2024.142578
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The energy demand in Sweden is increasing due to the growing electrification, and to meet this need, the generation must be expanded. Wind power generation is a very attractive renewable power production alternative for Sweden because of the favorable weather conditions. Research looks at how much wind energy may be deemed sustainable. Increased energy demand puts pressure on the government and industry to build more wind farms and, as a result, produce more wind turbines. Raw materials are necessary for wind turbines to provide a secure transition to green energy technologies. To meet these demands, the materials from various countries should efficiently contribute towards the Sustainable Development Goals (SDGs). This paper gathers information about raw resources from diverse nations worldwide. All materials are mapped to the country where they are produced using social science criteria. A few nations are chosen based on a sample approach for further analysis, and the implications of mining operations are investigated. Finally, the direct and indirect effects of the SDGs are considered. Based on the data gathered, recommendations and considerations are given to avoid or mitigate the repercussions of raw materials mining and make wind power generation more socially and environmentally sustainable.
引用
收藏
页数:10
相关论文
共 50 条
  • [31] Life cycle assessment of nutrient recovery strategies from domestic wastewaters to quantify environmental performance and identification of trade-offs
    Carla Mae Pausta
    Pradip Kalbar
    Devendra Saroj
    Scientific Reports, 14
  • [32] Study on life cycle investment risk evaluation of wind power projects
    Zeng, Ming
    Feng, Junjie
    Wang, Zhijie
    Cheng, Min
    Xue, Song
    ICIC Express Letters, Part B: Applications, 2014, 5 (04): : 1051 - 1056
  • [33] Life cycle assessment and feasibility study of small wind power in Thailand
    Glassbrook, Keith A.
    Carr, Adam H.
    Drosnes, Mark L.
    Oakley, T. Reade
    Kamens, Richard M.
    Gheewala, Shabbir H.
    ENERGY FOR SUSTAINABLE DEVELOPMENT, 2014, 22 : 66 - 73
  • [34] Environmental trade-offs in fresh-fruit cold chains by combining virtual cold chains with life cycle assessment
    Wu, Wentao
    Beretta, Claudio
    Cronje, Paul
    Hellweg, Stefanie
    Defraeye, Thijs
    APPLIED ENERGY, 2019, 254
  • [35] Life cycle assessment of nutrient recovery strategies from domestic wastewaters to quantify environmental performance and identification of trade-offs
    Pausta, Carla Mae
    Kalbar, Pradip
    Saroj, Devendra
    SCIENTIFIC REPORTS, 2024, 14 (01)
  • [36] Multidisciplinary design optimization of distributed energy generation systems: The trade-offs between life cycle environmental and economic impacts
    Yan, Junchen
    Broesicke, Osvaldo A.
    Tong, Xin
    Wang, Dong
    Li, Duo
    Crittenden, John C.
    APPLIED ENERGY, 2021, 284
  • [37] Lignocellulosic ethanol production combined with CCS-A study of GHG reductions and potential environmental trade-offs
    Lask, Jan
    Rukavina, Slavica
    Zoric, Ivana
    Kam, Jason
    Kiesel, Andreas
    Lewandowski, Iris
    Wagner, Moritz
    GLOBAL CHANGE BIOLOGY BIOENERGY, 2021, 13 (02): : 336 - 347
  • [38] A Technique for Mitigating Thermal Stress and Extending Life Cycle of Power Electronic Converters Used for Wind Turbines
    Batunlu, Canras
    Albarbar, Alhussein
    ELECTRONICS, 2015, 4 (04) : 947 - 968
  • [39] Issues regarding wind turbines positioning: A benchmark study with the application of the life cycle assessment approach
    Angelakoglou, Komninos
    Botsaris, Pantelis N.
    Gaidajis, Georgios
    SUSTAINABLE ENERGY TECHNOLOGIES AND ASSESSMENTS, 2014, 5 : 7 - 18
  • [40] Understanding environmental trade-offs and resource demand of direct air capture technologies through comparative life-cycle assessment
    Madhu, Kavya
    Pauliuk, Stefan
    Dhathri, Sumukha
    Creutzig, Felix
    NATURE ENERGY, 2021, 6 (11) : 1035 - 1044