Effect of cathode thickness on the performance of planar Na-NiCl2 battery

  • Xiaochuan Lu
  • , Hee Jung Chang
  • , Jeff F. Bonnett
  • , Nathan L. Canfield
  • , Keeyoung Jung
  • , Vincent L. Sprenkle
  • , Guosheng Li

Research output: Contribution to journalArticlepeer-review

15 Scopus citations

Abstract

Na-beta alumina batteries (NBBs) are one of the most promising technologies for renewable energy storage and grid applications. Commercial NBBs are typically constructed in tubular designs, primarily because of their ease of sealing. However, planar designs are considered superior to tubular counterparts in terms of power output, cell packing, ease of assembly, and thermal management. In this paper, the performance of planar NBBs has been evaluated at an intermediate temperature. In particular, planar Na-NiCl2 cells with different cathode loadings and thicknesses have been studied at 190 °C. The effects of the cathode thickness, charging current, and discharging power output on the cell capacity and resistance have been investigated. More than 60% of theoretical cell capacity was retained with constant discharging power levels of 200, 175, and 100 mW/cm2 for 1x, 2x, and 3x cathode loadings, respectively. The cell resistance with 1x and 2x cathode loadings was dominated by ohmic resistance with discharging currents up to 105 mA/cm2, while for 3x cathode loading, it was primarily dominated by ohmic resistance with currents less than 66.67 mA/cm2 and by polarization resistance above 66.67 mA/cm2.
Original languageEnglish
Pages (from-to)456-462
Number of pages7
JournalJournal of Power Sources
Volume365
DOIs
StatePublished - Jan 1 2017

Keywords

  • Electrode thickness
  • Na-beta alumina batteries
  • Na-NiCl2 cell
  • Power output
  • Tubular and planar designs

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