Screening of Ceramic Filler Materials for a Packed‐Bed Thermal Energy Storage System With Lead as Heat Transfer Fluid

ABSTRACT Liquid lead (Pb) is an attractive heat transfer fluid (HTF) for packed‐bed thermal energy storage (TES) systems aimed for high temperatures. However, liquid Pb is corrosive and its corrosivity increases with rising temperature. Therefore, compatibility tests of possible filler materials with Pb are mandatory. This study tested the corrosion and thermal alteration of seven ceramic materials (two alumina materials, one alumina zirconia composite material, two zirconia ceramics stabilized with either yttria or ceria, and two zirconium silicates in different compositions) in liquid Pb at 650°C and 750°C in a reducing environment for up to 5000 h. The results showed that the tested zirconium silicates are not suitable due to the high glass content and the ceria stabilized ZrO 2 revealed a poor thermal shock resistance. In contrast, the yttria stabilized ZrO 2 and the alumina zirconia composite showed a very good compatibility with a negligible reaction with Pb.

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Publication Details

Journal
Energy Storage
Published
2026-09-24
DOI
https://doi.org/10.1002/est2.70531
Primary Topic
Phase Change Materials Research
Type
article
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article

Screening of Ceramic Filler Materials for a Packed‐Bed Thermal Energy Storage System With Lead as Heat Transfer Fluid

A. Weisenburger, Renate Fetzer, A. Heinzel, Klarissa Niedermeier et al.
Energy Storage
Phase Change Materials Research
article

Screening of Ceramic Filler Materials for a Packed‐Bed Thermal Energy Storage System With Lead as Heat Transfer Fluid

A. Weisenburger, Renate Fetzer, A. Heinzel, Klarissa Niedermeier, Anisa Purwitasari
article en

Abstract

ABSTRACT Liquid lead (Pb) is an attractive heat transfer fluid (HTF) for packed‐bed thermal energy storage (TES) systems aimed for high temperatures. However, liquid Pb is corrosive and its corrosivity increases with rising temperature. Therefore, compatibility tests of possible filler materials with Pb are mandatory. This study tested the corrosion and thermal alteration of seven ceramic materials (two alumina materials, one alumina zirconia composite material, two zirconia ceramics stabilized with either yttria or ceria, and two zirconium silicates in different compositions) in liquid Pb at 650°C and 750°C in a reducing environment for up to 5000 h. The results showed that the tested zirconium silicates are not suitable due to the high glass content and the ceria stabilized ZrO 2 revealed a poor thermal shock resistance. In contrast, the yttria stabilized ZrO 2 and the alumina zirconia composite showed a very good compatibility with a negligible reaction with Pb.

Energy StorageVol. 8(7)
Karlsruhe Institute of Technology (DE), Kerntechnische Entsorgung Karlsruhe (Germany) (DE)
Affordable and clean energy
Openalex Percentile: Top 21%
Phase Change Materials Research
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Screening of Ceramic Filler Materials for a Packed‐Bed Thermal Energy Storage System With Lead as Heat Transfer Fluid — A. Weisenburger, Renate Fetzer, et al. · Energy Storage (2026) | TGRS Research Map | TGRS