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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 Figure 1. Annual electrical energy consumption in residential and commercial buildings for major end uses Data from: EIA (2021) and Scout (2021)4,5 Figure 2. Peak period electrical energy consumption in residential and commercial buildings for major end uses Data From: Scout (2020)6 Given the significance of thermal loads to building electricity consumption, thermally based storage technologies can play an important role in managing energy for the built environment. Even though TES systems have the potential to be deployed at lower costs than electrochemical battery technologies, the market adoption of TES has lagged that of batteries. Current projections show the global TES capacity for buildings growing from around 600 megawatt-hours (MWh) to approximately 3,300 MWh over the next six years. Global deployments of lithium-ion (Li-ion) batteries for stationary applications are expected to grow from around 30 gigawatt-hours (GWh) to around 85 GWh. Although the projected growth rate of TES deployments for buildings may 5 DOE Building Technologies Office. Accessed: May 2021. “Scout Baseline Energy Calculator.” https://scout.energy.gov/baseline-energy-calculator.html. 6 DOE Building Technologies Office. 2020. “Scout v0.6.” https://scout.energy.gov/. 2

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