4.8 Article

Temperature-dependent electrochemical heat generation in a commercial lithium-ion battery

Journal

JOURNAL OF POWER SOURCES
Volume 247, Issue -, Pages 618-628

Publisher

ELSEVIER
DOI: 10.1016/j.jpowsour.2013.08.015

Keywords

Battery; Lithium-ion; Heat generation; Temperature-dependent

Funding

  1. Sandia National Laboratories
  2. ARCS Foundation

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Lithium-ion batteries suffer from inherent thermal limitations (i.e., capacity fade and thermal runaway); thus, it is critical to understand heat generation experienced in the batteries under normal operation. In the current study, reversible and irreversible electrochemical heat generation rates were measured experimentally on a small commercially available C/LiFePO4 lithium-ion battery designed for high-rate applications. The battery was tested over a wide range of temperatures (10-60 degrees C) and discharge and charge rates (similar to C/4-5C) to elucidate their effects. Two samples were tested in a specially designed wind tunnel to maintain constant battery surface temperature within a maximum variation of +/- 0.88 degrees C. A data normalization technique was employed to account for the observed capacity fade, which was largest at the highest rates. The heat rate was shown to increase with both increasing rate and decreasing temperature, and the reversible heat rate was shown to be significant even at the highest rate and temperature (7.4% at 5C and 55 degrees C). Results from cycling the battery using a dynamic power profile also showed that constant-current data predict the dynamic performance data well. In addition, the reversible heat rate in the dynamic simulation was shown to be significant, especially for charge-depleting HEV applications. (C) 2013 Elsevier B.V. All rights reserved.

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