@misc{1515e42f351541f8b3ed026e7439da6c,
title = "Prototype Development, Testing, and Modeling for a Solar Light-Trapping Planar-Cavity Particle Receiver (LTPCR)",
abstract = "Many applications for concentrating solar thermal power (CSP) technologies of high efficiency power cycles or thermochemical processes require higher operating temperatures and alternative heat transfer media. Inert solid particles for next-generation CSP and reactive gas and/or solid media for solar thermochemical processes are common options; however, these have significantly lower heat transfer capabilities than thermal oil, molten salt, or molten metal media. Conventional solar receivers operating temperatures >700 degrees Celsius face challenges including thermal performance and thermal-mechanical issues. To overcome these limitations, we have developed a novel light-trapping, planar-cavity receiver (LTPCR) that can heat solid-phase media within an enclosed receiver while maintaining a high aperture solar flux concentration for high efficiency. This paper presents progress on design, fabrication, and testing of a 100 kWt prototype receiver to demonstrate the LTPCR operability and its commercial feasibility.",
keywords = "concentrating solar thermal power, solar receiver, solid particles, thermal energy storage",
author = "Zhiwen Ma and Janna Martinek and Munjal Shah and Jeong, \{Shin Young\} and Eldwin Djajadiwinata and N. Saleh and R. Saeed and Hany Al-Ansary",
year = "2025",
doi = "10.2172/3024715",
language = "American English",
series = "Presented at the 31st SolarPACES Conference, 23-26 September 2025, Almeria, Spain",
type = "Other",
}