Characterization of the life cycle greenhouse gas emissions from wind electricity generation systems

被引:24
|
作者
Kadiyala A. [1 ]
Kommalapati R. [1 ,2 ]
Huque Z. [1 ,3 ]
机构
[1] Center for Energy and Environmental Sustainability, Prairie View A&M University, Prairie View, 77446, TX
[2] Department of Civil and Environmental Engineering, Prairie View A&M University, Prairie View, 77446, TX
[3] Department of Mechanical Engineering, Prairie View A&M University, Prairie View, 77446, TX
基金
美国国家科学基金会;
关键词
Electricity generation; Greenhouse gas emissions; Horizontal axis wind turbine; Life cycle assessment; Offshore; Onshore; Vertical axis wind turbine; Wind energy;
D O I
10.1007/s40095-016-0221-5
中图分类号
学科分类号
摘要
This study characterized and evaluated the life cycle greenhouse gas (GHG) emissions from different wind electricity generation systems by (a) performing a comprehensive review of the wind electricity generation system life cycle assessment (LCA) studies and (b) statistically evaluating the life cycle GHG emissions (expressed in grams of carbon dioxide equivalent per kilowatt hour, gCO2e/kWh). A categorization index (with unique category codes, formatted as ‘axis of rotation-installed location-power generation capacity’) was adopted for use in this study to characterize the reviewed wind electricity generation systems. The unique category codes were labeled by integrating the names from the three wind power sub-classifications, i.e., the axis of rotation of the wind turbine [horizontal axis wind turbine (HAWT), vertical axis wind turbine (VAWT)], the location of the installation [onshore (ON), offshore (OFF)], and the electricity production capacity [small (S), intermediate (I), large (L)]. The characterized wind electricity generation systems were statistically evaluated to assess the reduction in life cycle GHG emissions. A total of five unique categorization codes (HAWT-ON-S, HAWT-ON-I, HAWT-ON-L, HAWT-OFF-L, VAWT-ON-S) were designated to the 29 wind electricity generation LCA studies (representing 74 wind system cases) using the proposed categorization index. The mean life cycle GHG emissions resulting from the use of HAWT-ON-S (N = 3), HAWT-ON-I (N = 4), HAWT-ON-L (N = 58), HAWT-OFF-L (N = 8), and VAWT-ON-S (N = 1) wind electricity generation systems are 38.67, 11.75, 15.98, 12.9, and 46.4 gCO2e/kWh, respectively. The HAWT-ON-I wind electricity generation systems produced the minimum life cycle GHGs than other wind electricity generation systems. © 2016, The Author(s).
引用
收藏
页码:55 / 64
页数:9
相关论文
共 50 条
  • [21] Regionalized Life Cycle Greenhouse Gas Emissions of Forest Biomass Use for Electricity Generation in the United States
    Xu, Hui
    Latta, Gregory
    Lee, Uisung
    Lewandrowski, Jan
    Wang, Michael
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2021, 55 (21) : 14806 - 14816
  • [22] Marginal Life-Cycle Greenhouse Gas Emissions of Electricity Generation in Portugal and Implications for Electric Vehicles
    Garcia, Rita
    Freire, Fausto
    RESOURCES-BASEL, 2016, 5 (04):
  • [23] Greenhouse gas emissions from electricity generated by offshore wind farms
    Reimers, Britta
    Oezdirik, Burcu
    Kaltschmitt, Martin
    RENEWABLE ENERGY, 2014, 72 : 428 - 438
  • [24] A comprehensive estimate of life cycle greenhouse gas emissions from onshore wind energy in China
    Xu, Kang
    Chang, Jinfeng
    Zhou, Wenji
    Li, Shuangcheng
    Shi, Zhou
    Zhu, Hanwen
    Chen, Yaoyao
    Guo, Kaiwen
    JOURNAL OF CLEANER PRODUCTION, 2022, 338
  • [25] Life Cycle Greenhouse Gas Emissions of Utility-Scale Wind Power
    Dolan, Stacey L.
    Heath, Garvin A.
    JOURNAL OF INDUSTRIAL ECOLOGY, 2012, 16 : S136 - S154
  • [26] Optimizing bike sharing systems from the life cycle greenhouse gas emissions perspective
    Luo, Hao
    Zhao, Fu
    Chen, Wei-Qiang
    Cai, Hua
    TRANSPORTATION RESEARCH PART C-EMERGING TECHNOLOGIES, 2020, 117
  • [27] Greenhouse gas emissions from life cycle assessment of Norwegian food production systems
    Refsgaard, K.
    Bergsdal, H.
    Berglann, H.
    Pettersen, J.
    ACTA AGRICULTURAE SCANDINAVICA SECTION A-ANIMAL SCIENCE, 2012, 62 (04): : 336 - 346
  • [28] Operation of a national electricity network to minimize life cycle greenhouse gas emissions and cost
    Martinez, P. E.
    Pasquevich, D. M.
    Eliceche, A. M.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2012, 37 (19) : 14786 - 14795
  • [29] Evaluating the levelized costs and life cycle greenhouse gas emissions of electricity generation from rooftop solar photovoltaics: a Swiss case study
    Zhang, Xiaojin
    Walch, Alina
    Rudisuli, Martin
    Bauer, Christian
    Burgherr, Peter
    McKenna, Russell
    Habert, Guillaume
    ENVIRONMENTAL RESEARCH: INFRASTRUCTURE AND SUSTAINABILITY, 2024, 4 (04):
  • [30] Life Cycle Greenhouse Gas Emissions of Electricity Generated from Conventionally Produced Natural Gas Systematic Review and Harmonization
    O'Donoughue, Patrick R.
    Heath, Garvin A.
    Dolan, Stacey L.
    Vorum, Martin
    JOURNAL OF INDUSTRIAL ECOLOGY, 2014, 18 (01) : 125 - 144