Electricity Generation from Heatwaves
- 1 School of Electrical Engineering, Computing and Mathematical Sciences, Curtin University, Perth, Australia
- 2 School of Electrical Engineering, Computing and Mathematical Sciences, Curtin University, Perth, Australia
- 3 Australian Sustainable Development Institute (ASDI), Perth, Australia
Abstract
We chose a definition of heatwaves (HWs) that has ~4-year recurrence frequency at world hot spots. We first examined the 1940-2022 HWs climatology and trends in lifespan, severity, spatial extent, and recurrence frequency. HWs are becoming more frequent and more severe for extratropical mid- and low-latitudes. To euphemize HWs, we here propose a novel clean energy-tapping concept that utilizes the available nano-technology, micro-meteorology knowledge of temperature distribution within/without buildings, and radiative properties of earth atmosphere. The key points for a practical electricity generation scheme from HWs are defogging, insulation, and minimizing the absorption of infrared downward radiation at the cold legs of the thermoelectric generators. One sample realization is presented which, through relay with existing photovoltaic devices, provides all-day electricity supply sufficient for providing air conditioning requirement for a residence (~2000-watt throughput). The provision of power to air conditioning systems, usually imposes a significant stress on traditional city power grids during heatwaves.
- Knowlton, K., Rotkin-Ellman, M., King, G., Margolis, H.G., Smith, D., Solomon, G., Trent, R. and English, P. (2009) The 2006 California Heat Wave: Impacts on Hospitalizations and Emergency Department Visits Environ. Health Perspect , 117, 61-67. https://doi.org/10.1289/ehp.11594
- Klinenberg, E. (2002) Heat Wave: A Social Autopsy of Disaster in Chicago. University of Chicago Press, Chicago. https://doi.org/10.7208/chicago/9780226026718.001.0001
- Meehl, G. and Tebaldi, C. (2004) More Intense, More Frequent, and Longer Lasting Heat Waves in the 21st Century. Science , 305, 994-997. https://doi.org/10.1126/science.1098704
- Fischer, E., Seneviratne, S., Luthi, D. and Schar, C. (2007) Contribution Ofland-Atmosphere Coupling to Recent European Summer Heat Waves. Geophysical Research Letters , 34, L06707. https://doi.org/10.1029/2006GL029068
- Hauser, M., Orth, R. and Seneviratne, S. (2016) Role of Soil Moisture versus Recent Climate Change for the 2010 Heat Wave in Western Russia. Geophysical Research Letters , 43, 2819-2826. https://doi.org/10.1002/2016GL068036
- Otto, F., Massey, N., Oldenborgh, G., Jones, R. and Allen, M. (2012) Reconciling Two Approaches to Attribution of the 2010 Russian Heat Wave. Geophysical R e search Letters , 39, L04702. https://doi.org/10.1029/2011GL050422
- Dole, R., Hoerling, M., Perlwitz, J., et al . (2011) Was There a Basis for Anticipating the 2010 Russian Heat Wave? Geophysical Research Letters , 38, L06702. https://doi.org/10.1029/2010GL046582
- Scharping, N. (2023) Summer Heat Waves Could Cause Blackouts across the Country. EOS, 104. https://doi.org/10.1029/2023EO230231
- Ren, D., Fu, R., Dickinson, R.E., Leslie, L.M. and Wang, X. (2020) Aviation Impacts on Fuel Efficiency of a Future More Viscous Atmosphere. Bulletin of the American Meteorological Society , 101, E1761-E1780. https://doi.org/10.1175/BAMS-D-19-0239.1
- Crawford, T. and Duchon, C.E. (1999) An Improved Parameterization for Estimating Effective Atmospheric Emissivity for Use in Calculating Daytime Downwelling Longwave Radiation. Journal of Applied Meteorology and Climatology , 38, 474-480. https://doi.org/10.1175/1520-0450(1999)038 2.0.CO;2
- McLeman, R.A., Dupre, J., Berrang, F., Ford, J., Gajewski, K. and Marchildon, G. (2014) What We Learned from the Dust Bowl: Lessons in Science, Policy, and Adaptation. Population and Environment , 35, 417-440. https://doi.org/10.1007/s11111-013-0190-z