Vulnerability of the Russian power industry to the climate change
暂无分享,去创建一个
[1] R. Fernández-Blanco,et al. Quantifying the water-power linkage on hydrothermal power systems: A Greek case study , 2017 .
[2] Robert A. Holland,et al. Bridging the gap between energy and the environment. , 2016 .
[3] Jürgen P. Kropp,et al. Susceptibility of the European electricity sector to climate change , 2013 .
[4] L. Chapman,et al. Water use of the UK thermal electricity generation fleet by 2050: Part 1 identifying the problem , 2017 .
[5] Liliana Proskuryakova,et al. Wind and solar PV technical potentials: Measurement methodology and assessments for Russia , 2017 .
[6] Scott Samuelsen,et al. Quantifying climate change impacts on hydropower generation and implications on electric grid greenhouse gas emissions and operation , 2016 .
[7] Mikhail Chester,et al. Impacts of climate change on electric power supply in the Western United States , 2015 .
[8] Wagner Liam,et al. New technology adoption for Russian energy generation: What does it cost? A case study for Moscow , 2016 .
[9] Igor Bashmakov,et al. Resource of energy efficiency in Russia: scale, costs, and benefits , 2009 .
[10] P. Dowling,et al. The impact of climate change on the European energy system , 2013 .
[11] Mikhail Chester,et al. Electric Grid Vulnerabilities to Rising Air Temperatures in Arizona , 2016 .
[12] Amgad Elgowainy,et al. Regional water consumption for hydro and thermal electricity generation in the United States , 2018 .
[13] James R. McFarland,et al. Assessment of projected temperature impacts from climate change on the U.S. electric power sector using the Integrated Planning Model , 2014 .
[14] Keywan Riahi,et al. Power-generation system vulnerability and adaptation to changes in climate and water resources , 2016 .
[15] V. V. Klimenko,et al. Performance of gas turbines in Russia under the changing climatic conditions , 2016 .
[16] Miguel Rodríguez,et al. Assessing the impacts of climate change on hydropower generation and the power sector in Portugal: A partial equilibrium approach , 2017 .
[17] Heinz G. Stefan,et al. Stream temperature/air temperature relationship : a physical interpretation , 1999 .
[18] Yutao Wang,et al. Study of the relationship between greenhouse gas emissions and the economic growth of Russia based on the Environmental Kuznets Curve , 2017 .
[19] YuLong Xie,et al. Vulnerability of the US western electric grid to hydro-climatological conditions: How bad can it get? , 2015 .
[20] B. Sovacool,et al. Pain without gain? Reviewing the risks and rewards of investing in Russian coal-fired electricity , 2015 .
[21] M. Sharmina. Low-carbon scenarios for Russia's energy system: A participative backcasting approach , 2017 .
[22] A. Durmayaz,et al. Influence of cooling water temperature on the efficiency of a pressurized‐water reactor nuclear‐power plant , 2006 .
[23] Michael E. Webber,et al. Assessing the impacts of droughts and heat waves at thermoelectric power plants in the United States using integrated regression, thermodynamic, and climate models , 2015 .
[24] Jouni Paavola,et al. A systematic review of the impacts of climate variability and change on electricity systems in Europe , 2016 .
[25] Di Wu,et al. Quantifying impacts of heat waves on power grid operation , 2016 .
[26] Climate Change and Power Systems Planning—Opportunities and Challenges , 2014 .
[27] Firoz Alam,et al. The global climate change and its effect on power generation in Bangladesh , 2013 .
[28] Sami I. Attia,et al. The influence of condenser cooling water temperature on the thermal efficiency of a nuclear power plant , 2015 .
[29] Gunnar S. Eskeland,et al. The Impact of Climate Change on Nuclear Power Supply , 2011 .
[30] Stephen H. Schneider,et al. Transient climate response to external forcing on 100–104 year time scales part 1: Experiments with globally averaged, coupled, atmosphere and ocean energy balance models , 1985 .
[31] Lukas Kranzl,et al. Climate change impact and resilience in the electricity sector: The example of Austria and Germany , 2017 .
[32] Adam A. Scaife,et al. Skill and Reliability of Seasonal Forecasts for the Chinese Energy Sector , 2017, 1703.06662.
[33] Firoz Alam,et al. The Effect of Climate Change on Power Generation in Australia , 2013 .
[34] Nadia S. Ouedraogo. Energy consumption and human development: Evidence from a panel cointegration and error correction model , 2013 .
[35] Matti Lehtonen,et al. Climate change concerns and finnish electric power supply security performance , 2016, 2016 IEEE PES Innovative Smart Grid Technologies Conference Europe (ISGT-Europe).
[36] A. V. Klimenko,et al. Test of developing long-term forecasts of world energy impact on the earth’s atmosphere , 2015, Izvestiya, Atmospheric and Oceanic Physics.
[37] U. Siegenthaler,et al. Uptake of excess CO2 by an outcrop-diffusion model of the ocean , 1983 .
[38] M. Freitas,et al. A foundation for the strategic long-term planning of the renewable energy sector in Brazil: Hydroelectricity and wind energy in the face of climate change scenarios , 2017 .
[39] V. Klimenko. Influence of climatic and geographical conditions on the level of energy consumption , 2012, Doklady Earth Sciences.
[40] Bastian Hoffmann,et al. Analysis of performance losses of thermal power plants in Germany – A System Dynamics model approach using data from regional climate modelling , 2013 .
[41] Wenjia Cai,et al. The vulnerability of thermoelectric power generation to water scarcity in China: Current status and future scenarios for power planning and climate change , 2016 .
[42] Meredydd Evans,et al. Water for electricity in India: A multi-model study of future challenges and linkages to climate change mitigation , 2018 .
[43] Vladimir Klimenko,et al. A combined model for analysis and projection of the regional air temperature dynamics , 2017, Atmospheric and Ocean Optics.
[44] S. P. Filippov,et al. Demand of the power industry of Russia for gas turbines: the current state and prospects , 2017 .