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DOE OSTI · 3012153

Zigzag flow reactor for weekly thermochemical energy storage

Abstract

This paper describes theoretical models and experimental performance of a novel Zigzag Flow Reactor (ZFR) for weekly thermochemical energy storage. The ZFR reduces redox-active metal oxide (MO x ) particles at high temperature (up to ~1100 °C) under inert gas sweep. A physical model demonstrates the approach to process equilibrium by minimizing the associated exergy destruction in a finite number of reaction steps, establishing the thermodynamic requirements for a practical reactor. The model results show several cost-relevant parameter tradeoffs, and the tradeoff analysis implies a cost-optimized set of boundary conditions. Numerical models and prototypes show that the ZFR enables significant gas phase homogenization while simultaneously enabling a customizable MO x residence time in the reactor, both key requirements for approaching an equilibrium process. A scaling model demonstrates the simplicity and affordability of sizing the ZFR to grid-scale levels, with fabrication costs at least five times lower than previously proposed scalable reactor concepts. As a result, a laboratory ZFR prototype achieved an energy storage density of ~90 Wh/kg with CaAl 0.2 Mn 0.8 O 3-δ as the MO x , at temperatures of ~850 °C in >10 h of total runtime.

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BibTeXRIS

Ghotkar, Rhushikesh [ASU LightWorks®, Tempe, AZ (United States)], de la Calle, Alberto [Institute of Catalysis and Petrochemistry (ICP), Madrid (Spain)], Milcarek, Ryan J. [Arizona State University, Tempe, AZ (United States)], Ermanoski, Ivan [ASU LightWorks®, Tempe, AZ (United States); Arizona State University, Tempe, AZ (United States)], Miller, James E. [ASU LightWorks®, Tempe, AZ (United States); Arizona State University, Tempe, AZ (United States)], Hogan, Jr., Roy [ASU LightWorks®, Tempe, AZ (United States)], Stechel, Ellen B. [ASU LightWorks®, Tempe, AZ (United States); Arizona State University, Tempe, AZ (United States)]. 2025-02-03. Zigzag flow reactor for weekly thermochemical energy storage. https://doi.org/10.1016/j.est.2025.115528

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