| Literature DB >> 33489267 |
Woranunt Lao-Atiman1, Sorin Olaru2, Sette Diop2, Sigurd Skogestad3, Amornchai Arpornwichanop1,4, Rongrong Cheacharoen5, Soorathep Kheawhom1,4.
Abstract
Due to the increasing trend of using renewable energy, the development of an energy storage system (ESS) attracts great research interest. A zinc-air battery (ZAB) is a promising ESS due to its high capacity, low cost and high potential to support circular economy principles. However, despite ZABs' technological advancements, a generic dynamic model for a ZAB, which is a key component for effective battery management and monitoring, is still lacking. ZABs show nonlinear behaviour where the steady-state gain is strongly dependent on operating conditions. The present study aims to develop a dynamic model, being capable of predicting the nonlinear dynamic behaviour of a refuellable ZAB, using a linear parameter-varying (LPV) technique. The LPV model is constructed from a family of linear time-invariant models, where the discharge current level is used as a scheduling parameter. The developed LPV model is benchmarked against linear and nonlinear model counterparts. Herein, the LPV model performs remarkably well in capturing the nonlinear behaviour of a ZAB. It significantly outperforms the linear model. Overall, the LPV approach provides a systematic way to construct a robust dynamic model which well represents the nonlinear behaviour of a ZAB.Entities:
Keywords: dynamic model; linear model; linear parameter-varying model; nonlinear model; zinc–air battery
Year: 2020 PMID: 33489267 PMCID: PMC7813229 DOI: 10.1098/rsos.201107
Source DB: PubMed Journal: R Soc Open Sci ISSN: 2054-5703 Impact factor: 2.963