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THERMAL ENERGY STORAGE Outlook

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

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innovATe uk (2020), Case Study: Highview Power, www.gov.uk/government/case-studies/ highview-power. iRenA (2020a), Global Renewables Outlook: Energy Transformation 2050, International Renewable Energy Agency, Abu Dhabi. iRenA (2020b), Renewable Power Generation Costs in 2019, International Renewable Energy Agency, Abu Dhabi. iRenA (2019a), Innovation Landscape for a Renewable- Powered Future: Solutions to Integrate Variable Renewables, International Renewable Energy Agency, Abu Dhabi. iRenA (2019b), Global Energy Transformation 2019: A Roadmap to 2050 (2019 edition), International Renewable Energy Agency, Abu Dhabi. iRenA (2018), Global Energy Transformation 2018: A Roadmap to 2050, International Renewable Energy Agency, Abu Dhabi, www.irena.org/-/media/Files/ IRENA/Agency/Publication/2018/Apr/IRENA_ Report_GET_2018.pdf. iRenA (2017a), Power Sector Crucial for Global Decarbonisation, International Renewable Energy Agency, Abu Dhabi. iRenA (2017b), Rethinking Energy 2017: Accelerating the Global Energy Transformation, International Renewable Energy Agency, Abu Dhabi. iRenA (2017c), Renewable Energy in District Heating and Cooling: A Sector Roadmap for REmap, International Renewable Energy Agency, Abu Dhabi, www.irena.org/remap. iRenA (2014), A Renewable Energy Roadmap Report, International Renewable Energy Agency, Abu Dhabi, www.irena.org/remap. isAAC, M. And vAn vuuRen, d. p. (2009), “Modeling global residential sector energy demand for heating and air conditioning in the context of climate change”, Energy Policy, 37(2), pp. 507–521, doi: 10.1016/j.enpol.2008.09.051. iTRi (2014), Calcium-Looping CO2 Capture Technology, Industrial Technology Research Insitute (ITRI), Taiwan. Hill, R. J. And e. J. williAMs (2016), At the Halfway Point: The Effect of California’s Energy Storage Mandate. JCu (2014), Case Study: Campus District Cooling System with Large Scale Thermal Energy Water Storage, James Cook University, Australia. JeGAdHeeswARAn, s. And s. d. poHekAR (2009), “Performance enhancement in latent heat thermal storage system: A review”, Renewable and Sustainable Energy Reviews, Vol. 13, Issue 9, pp. 2225–2244, doi: 10.1016/j.rser.2009.06.024. JinHe eneRGY (2020), Engineering Applications, www.jinhe-energy.com/list/?107_1.html. kAllenbeRGeR, p. A. et al. (2016), “Magnesium sulfate/ polymer composites for seasonal, thermochemical energy storage”, Chemie-Ingenieur-Technik, Vol. 88, Issue 3, pp. 379–384, doi: 10.1002/cite.201500095. kARAipekli, A. et al. (2017), “Thermal characteristics of expanded perlite/paraffin composite phase change material with enhanced thermal conductivity using carbon nanotubes”, Energy Conversion and Management, Vol. 134, Elsevier, pp. 373–381, doi: 10.1016/j.enconman.2016.12.053. kiviluoMA, J. And p. MeiboM (2010), “Influence of wind power, plug-in electric vehicles, and heat storages on power system investments”, Energy, Vol. 35, Issue 3, pp. 1244–1255. kosT, C. (2017), CSP Technology in the Market, Fraunhofer ISE. ku leuven (2018), H-DisNET Project Overview, www.h- disnet.eu/ (Accessed: 26 February 2019). lAnAHAn, M. And p. C. TAbARes-velAsCo (2017), “Seasonal thermal-energy storage: A critical review on BTES systems, modeling, and system design for higher system efficiency”, Energies, Vol. 10, Issue 6, doi: 10.3390/en10060743. lele, A. F. (2016), State-of-Art of Thermochemical Heat Storage Systems, A Thermochemical Heat Storage System for Households Combined Investigations of Thermal Transfers Coupled to Chemical Reactions, doi: 10.1007/978-3-319-41228-3. li, G. eT Al. (2013), “Review of cold storage materials for subzero applications”, Energy, Vol. 51, pp. 1–17, doi: 10.1016/j.energy.2012.12.002. li, G. And ZHenG, x. (2016), “Thermal energy storage system integration forms for a sustainable future”, Renewable and Sustainable Energy Reviews, Vol. 62, Pergamon, pp. 736–757, doi: 10.1016/J. RSER.2016.04.076. 124 INNOVATION OUTLOOK

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