LAPSE:2023.14263v1
Published Article

LAPSE:2023.14263v1
De-Risking Solar Receivers to Achieve SunShot Targets
March 1, 2023
Abstract
Concentrating solar thermal (CST) systems are unique among renewable energy options for the ease of integration with thermal energy storage (TES). This enables dispatchable (or continuous) production of electricity, process heat, solar fuels, or other chemical products. The solar receiver in a CST system converts concentrated sunlight to transportable thermal energy. In solar power towers, the solar receiver’s physical limitations are often the constraining conditions for the system; they restrict maximum temperature, maximum solar concentration, or controllable chemical production. It is also a uniquely challenging component to prototype and test at sizes beyond the laboratory scale. Transitioning exceptional research innovations into viable components for an integrated system and ultimately leading to CST market adoption requires a multiscale vision for component de-risking and development. Technical requirements for holistic novel receiver development are reviewed based on learnings from the US Department of Energy’s (USDOE) SunShot Initiative, its active Third Generation of Concentrating Solar Power Systems (Gen3 CSP) program, and anticipation of requirements for future high value applications for CST. Context and learnings from the Gen3 CSP program are provided to exemplify successful receiver risk-reduction paradigms.
Concentrating solar thermal (CST) systems are unique among renewable energy options for the ease of integration with thermal energy storage (TES). This enables dispatchable (or continuous) production of electricity, process heat, solar fuels, or other chemical products. The solar receiver in a CST system converts concentrated sunlight to transportable thermal energy. In solar power towers, the solar receiver’s physical limitations are often the constraining conditions for the system; they restrict maximum temperature, maximum solar concentration, or controllable chemical production. It is also a uniquely challenging component to prototype and test at sizes beyond the laboratory scale. Transitioning exceptional research innovations into viable components for an integrated system and ultimately leading to CST market adoption requires a multiscale vision for component de-risking and development. Technical requirements for holistic novel receiver development are reviewed based on learnings from the US Department of Energy’s (USDOE) SunShot Initiative, its active Third Generation of Concentrating Solar Power Systems (Gen3 CSP) program, and anticipation of requirements for future high value applications for CST. Context and learnings from the Gen3 CSP program are provided to exemplify successful receiver risk-reduction paradigms.
Record ID
Keywords
Concentrating Solar-thermal Power, CSP, Gen3 CSP, Solar Reactor, Solar Receiver, SunShot, Thermal Systems
Subject
Suggested Citation
Bauer ML. De-Risking Solar Receivers to Achieve SunShot Targets. (2023). LAPSE:2023.14263v1
Author Affiliations
Bauer ML: Solar Energy Technologies Office, US Department of Energy, Washington, DC 20585, USA
Journal Name
Energies
Volume
15
Issue
7
First Page
2508
Year
2022
Publication Date
2022-03-29
ISSN
1996-1073
Version Comments
Original Submission
Other Meta
PII: en15072508, Publication Type: Journal Article
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LAPSE:2023.14263v1
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https://doi.org/10.3390/en15072508
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Mar 1, 2023
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