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2021 Thermal Energy Storage Systems

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2021 Thermal Energy Storage Systems ( 2021-thermal-energy-storage-systems )

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Thermal Energy Storage Systems for Buildings Workshop Report be greater than those of stationary Li-ion batteries, at current rates it may take decades for TES deployments in buildings to approach present day stationary Li-ion deployments. To reduce this disparity in adoption, DOE can support research initiatives to improve TES technologies for the built environment where it is applicable. Figure 3. Projected market deployment of stationary Li-ion batteries and TES for buildings Data From: DOE (2020)7 TES materials are continually evolving, and many challenges remain for materials-level research for the next generation of storage media. In 2019, a workshop co-hosted by LBNL and NREL identified research opportunities to improve the capital cost, efficiency, utilization, and lifetime of TES materials.8 Materials-level research remains important, but investigations beyond material properties—such as system and integration challenges—may be required to accelerate the deployment of building-sited TES technologies. 7 DOE. 2020. Energy Storage Market Report. https://www.energy.gov/energy-storage-grand- challenge/downloads/energy-storage-market-report-2020. 8 Kaur, Sumanjeet, Marcus Bianchi, and Nelson James. 2020. 2019 Workshop on Fundamental Needs for Dynamic and Interactive Thermal Storage Solutions for Buildings. https://www.nrel.gov/docs/fy20osti/76701.pdf. 3

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