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THERMAL ENERGY STORAGE Outlook

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THERMAL ENERGY STORAGE Outlook ( thermal-energy-storage-outlook )

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biRMinGHAM eneRGY insTiTuTe (2015), Doing Cold Smarter, University of Birmingham, www. birmingham.ac.uk/energy. bloess, A., w. p. sCHill And A. ZeRRAHn (2018), “Power- to-heat for renewable energy integration: A review of technologies, modeling approaches, and flexibility potentials”, Applied Energy, Elsevier, pp. 1611–1626, doi: 10.1016/j.apenergy.2017.12.073. bonTe, M. (2015), Impacts of Shallow Geothermal Energy on Groundwater Quality, IWA Publishing. bundesveRbAnd eneRGiespeiCHeR (2017), Fact Sheet, Hochtemperatur Flüssigspeicher, Bundesverbrand Energiespeicher. CAlveT, n. et al. (2013), “Compatibility of a post- industrial ceramic with nitrate molten salts for use as filler material in a thermocline storage system”, Applied Energy, Vol. 109, Elsevier, pp. 387–393, doi: 10.1016/J.APENERGY.2012.12.078. CAo, Y. And w.-p. pAn (2006), “Investigation of chemical looping combustion by solid fuels. 1. Process analysis”, Energy & Fuels, Vol. 20, Issue 5, pp. 1836–1844, doi: 10.1021/ef050228d. CeCCA, A. di, F. benAssis And p. poeuF (2010), “Energy storage: The Parisian district cooling system”, Energy Learning, www.energy-learning.com/index. php/archive/94-energy-storage-the-parisian- district-cooling-system (accessed 14 February 2018). CHAnG, M. H. et al. (2013), “Design and experimental investigation of calcium looping process for 3-kWth and 1.9-MWth facilities”, Chemical Engineering and Technology, Vo. 36, Issue 9, pp. 1525–1532, doi: 10.1002/ceat.201300081. CHediAk, M. (2018), “World’s deploying more batteries than ever – but slower”, Bloomberg. CollieR, u. (2018), Renewable Heat Policies Delivering Clean Heat Solutions for the Energy Transition, IEA. Collins, l. (2018), “Wind and solar can become dispatchable within three years”, RECHARGE, www.rechargenews.com/transition/1450958/ wind-and-solar-can-become-dispatchable-within- three-years (accessed 8 August 2018). ConnollY, d. et al. (2012), “Heat roadmap Europe 2050 – Study for the EU27”, Euroheat & Power. Cox, s. (2012), “Cooling a warming planet: A global air conditioning surge”, Yale Environment 360, https:// e360.yale.edu/features/cooling_a_warming_ planet_a_global_air_conditioning_surge (accessed 7 August 2018). CReATe (2018), “About project”, www.createproject.eu/about-project. dAlleMAnd, J. et al. (2015), Energy Use in the EU Food Sector: State of Play and Opportunities for Improvement, JRC Science and Policy Report, doi: 10.2790/158316. dAvis, p. R. (2014), “Monitoring and control of thermal energy storage systems”, in Advances in Thermal Energy Storage Systems: Methods and Applications, Woodhead Publishing, pp. 419–440, doi: 10.1533/9781782420965.4.419. deARMAn enGine (n.d.), https://dearman.co.uk (accessed 8 August 2018). deiGn, J. (2017), “Siemens Gamesa starts building hot rock plant for long-duration grid storage”, Green- tech Media, www.greentechmedia.com/articles/ readsiemens-gamesa-starts-on-giant-thermal-stor- age-plant. di FResCo, i. (2018), “12th International Renewable Energy Storage Conference”, in Simulation Analysis of the Adoption of Thermal Storage Technology for the Dispatch of Wind Energy Curtailment, Dusseldorf. dinG, Y. (2018), The Renewables Conundrum, https:// epsrc.ukri.org/blog/the-renewables-conundrum/. dinG, Y. And s. b. RiFFAT (2012), “Thermochemical energy storage technologies for building applications: a state-of-the-art review”, International Journal of Low-Carbon Technologies, Vol. 8, Issue 2, pp. 106–116, doi: 10.1093/ijlct/cts004. dupuY, M. And w. xuAn, (2016), China’s String of New Policies Addressing Renewable Energy Curtailment: An Update, Renewable Energy World. edwARds, s. e. b. And v. MATeRić (2012), “Calcium looping in solar power generation plants”, Solar Energy, Vol. 86, Issue 9, pp. 2494–2503, doi: 10.1016/j.solener.2012.05.019. eneRGY sYsTeMs CATApulT (2020), Storage and Flexibility: Net Zero Series, https://es.catapult.org. uk/reports/storage-and-flexibility-net-zero-series/. THERMAL ENERGY STORAGE 121

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