The purpose of this article was to analyze data associated
with advances in wind energy across the United States. While governments,
academia, and the private sector generally know patterns of wind turbine
development (i.e. turbine size and
capacity growing in recent years), there is no known independent, reliable,
and/or updated summary of these variables. Using data collected by the Lawrence
Berkeley National Laboratory and partners, this study used descriptive
statistics to show turbine development and growth patterns from 1981-2019. The newly created United States Wind
Turbine Database (USWTDB) represents the most comprehensive account of
wind turbine information and was updated in January 2020. Variables I am
interested in here are turbine manufacturer, state of project, turbine and
project capacity, and turbine size. Findings provide empirical evidence to
support the common, yet previously unrefined statements that wind turbines are
growing larger in number, size and capacity. This growth is varied over spatial
and temporal scales. I also provide evidence to show patterns of turbine
manufacturing, with GE Wind dominating much of the US wind energy landscape
today. I hope this work provides a timely resource for those interested in a
variety of questions surrounding wind energy development in the United States.
Perhaps more importantly, this analysis will hopefully inspire others to use
what the USWTDB provides and answer larger questions surrounding wind energy
futures.
References
[1]
Global Wind Energy Council (GWEC) (2019) GWEC: Over 60 GW of Wind Energy Capacity Installed in 2019, the Second Biggest Year in History.
https://gwec.net/gwec-over-60gw-of-wind-energy-capacity-installed-in-2019-the-second-biggest-year-in-history
[2]
Rand, J., Kramer, L., Garrity, C., et al. (2020) A Continuously Updated, Geospatially Rectified Database of Utility-Scale Wind Turbines in the United States. Scientific Data, 7, Article No. 15. https://doi.org/10.1038/s41597-020-0353-6
[3]
United States Geological Survey (USGS) (2020) USWTDB Viewer.
https://eerscmap.usgs.gov/uswtdb/viewer/#3/37.25/-96.25
[4]
Millstein, D., Wiser, R., Bolinger, M. and Barbose, G. (2017) The Climate and Air- Quality Benefits of Wind and Solar Power in the United States. Nature Energy, 2, Article No. 17134. https://doi.org/10.1038/nenergy.2017.134
[5]
Walker, C., Baxter, J. and Ouellette, D. (2015) Adding Insult to Injury: The Development of Psychosocial Stress in Ontario Wind Turbine Communities. Social Science & Medicine, 133, 358-365. https://doi.org/10.1016/j.socscimed.2014.07.067
[6]
Johlas, H., Witherby, S. and Doyle, J. (2020) Storage Requirements for High Grid Penetration of Wind and Solar Power for the MISO Region of North America: A Case Study. Renewable Energy, 146, 1315-1324.
https://doi.org/10.1016/j.renene.2019.07.043
[7]
Arent, D., Pless, J., Mai, T., et al. (2014) Implications of High Renewable Electricity Penetration in the US for Water Use, Greenhouse Gas Emissions, Land-Use, and Materials Supply. Applied Energy, 123, 368-377.
https://doi.org/10.1016/j.apenergy.2013.12.022
[8]
Miller, L. and Keith, D. (2018) Climatic Impacts of Wind Power. Joule, 2, 2618- 2632. https://doi.org/10.1016/j.joule.2018.09.009
[9]
Haac, T., Kaliski, K., Landis, M. et al. (2019) Wind Turbine Audibility and Noise Annoyance in a National US Survey: Individual Perception and Influencing Factors. The Journal of the Acoustical Society of America, 146, 1124-1141.
https://doi.org/10.1121/1.5121309
[10]
Hoen, B., Brown, J., Jackson, T., Thayer, M., Wiser, R. and Cappers, P. (2015) Spatial Hedonic Analysis of the Effects of US Wind Energy Facilities on Surrounding Property Values. The Journal of Real Estate Finance and Economics, 51, 22-51.
https://doi.org/10.1007/s11146-014-9477-9
[11]
Walker, C., Baxter, J., Mason, S., Luginaah, I. and Ouellette, D. (2014) Wind Energy Development and Perceived Real Estate Values in Ontario, Canada. AIMS Energy, 2, 424-442. https://doi.org/10.3934/energy.2014.4.424
[12]
Oakleaf, J., Kennedy, C., Baruch-Mordo, S., et al. (2019) Mapping Global Development Potential for Renewable Energy, Fossil Fuels, Mining and Agriculture Sectors. Scientific Data, 6, 1-17. https://doi.org/10.1038/s41597-019-0084-8
[13]
Rand, J. and Hoen, B. (2017) Thirty Years of North American Wind Energy Acceptance Research: What Have We Learned? Energy Research & Social Science, 29, 135-148. https://doi.org/10.1016/j.erss.2017.05.019
[14]
Walker, C., Baxter, J. and Ouellette, D. (2014) Beyond Rhetoric to Understanding Determinants of Wind Turbine Support and Conflict in Two Ontario, Canada Communities. Environment and Planning A, 46, 730-745.
https://doi.org/10.1068/a130004p
[15]
Baxter, J., Walker, C., Ellis, G., Devine-Wright, P., Adams, M. and Fullerton, R.S. (2020) Scale, History and Justice in Community Wind Energy: An Empirical Review. Energy Research & Social Science, 68, Article ID: 101532.
https://doi.org/10.1016/j.erss.2020.101532