Thermal impedance in pulsed energy storage systems with phase change materials
Abstract
Phase change materials (PCMs) have tremendous capacity as passive components to recover and repurpose thermal energy from transient power systems. However, PCMs are only effective if the time scale of the thermal energy storage and retrieval rates match those required for a particular system. We develop a framework to assess the efficiency of pulsed thermal energy storage based on the concept of “thermal impedance,” drawing upon an analogous approach from electrical energy storage. We experimentally characterize a 1 cm thick paraffin-infiltrated copper foam composite PCM subject to pulsed heat boundary conditions up to 1 W cm−2 and demonstrate a decrease in thermal impedance by up to a factor of 2.5× in the regime in which melting occurs (τon = 10−1 to >102 s) relative to a reference case in which melting does not occur. This represents both a signature of the ability to extract or retrieve thermal energy via latent heat, as well as an experimentally accessible measure that provides insight into the internal dynamics of a composite PCM volume. These principles can serve to design the internal structure of composite PCM elements for pulsed thermal systems.
Article Details
Journal Info
Journal of Applied Physics
American Institute of Physics
Authors (5)
Juan C. Lago
Department of Materials Science and Engineering, Texas A&M University 1 , College Station, Texas 77843,
Veronica Gonzalez Fernandez
Department of Materials Science and Engineering, Texas A&M University 1 , College Station, Texas 77843,
Alison Hoe
Department of Materials Science and Engineering, Texas A&M University 1 , College Station, Texas 77843,
Michael Barako
NG Next Basic Research Laboratory, Northrop Grumman Corporation 2 , Redondo Beach, California 90278,
Patrick J. Shamberger
Department of Materials Science and Engineering