A quantitative comparison of electrocaloric cooling systems from an exergy-based thermodynamic analysis

Electrocaloric (EC) refrigeration represents a promising solution for active solid-state thermal management of electronic devices. However, EC cooling remains at an early developmental stage, with insufficient understanding of its thermodynamic processes and a lack of rational performance evaluation metrics. This work systematically analyzes EC thermodynamics and introduces an exergy-based metric enabling unified assessment of cooling capacities and temperature spans for an EC device. We also fabricated an EC flat-panel cooling device and developed an experimentally validated model. The single-layer device employing double-bond modified polymers (DMP) as the active EC material demonstrated the highest specific cold exergy rate of 111.3 mWg −1 and an exergy efficiency of 55.7%. We developed a cascaded EC cooling device that delivers 4.3 times the specific cold exergy rate of that of the single-layer device. These results establish actionable pathways for EC refrigeration optimization, driving significant performance enhancement.

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Publication Details

Journal
Applied Thermal Engineering
Published
2026-10-07
DOI
https://doi.org/10.1016/j.applthermaleng.2026.133424
Primary Topic
Dielectric materials and actuators
Type
article
Field-Weighted Citation Impact
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article

A quantitative comparison of electrocaloric cooling systems from an exergy-based thermodynamic analysis

Feihong Du, Shanyu Zheng, Ruhong Luo, Guangyu Lu et al.
Applied Thermal Engineering
Dielectric materials and actuators
article

A quantitative comparison of electrocaloric cooling systems from an exergy-based thermodynamic analysis

Feihong Du, Shanyu Zheng, Ruhong Luo, Guangyu Lu, Donglin Han, Junye Shi, Qiang Li, Feiyu Zhang, Jiangping Chen, Xiaoshi Qian
article en

Abstract

Electrocaloric (EC) refrigeration represents a promising solution for active solid-state thermal management of electronic devices. However, EC cooling remains at an early developmental stage, with insufficient understanding of its thermodynamic processes and a lack of rational performance evaluation metrics. This work systematically analyzes EC thermodynamics and introduces an exergy-based metric enabling unified assessment of cooling capacities and temperature spans for an EC device. We also fabricated an EC flat-panel cooling device and developed an experimentally validated model. The single-layer device employing double-bond modified polymers (DMP) as the active EC material demonstrated the highest specific cold exergy rate of 111.3 mWg −1 and an exergy efficiency of 55.7%. We developed a cascaded EC cooling device that delivers 4.3 times the specific cold exergy rate of that of the single-layer device. These results establish actionable pathways for EC refrigeration optimization, driving significant performance enhancement.

Applied Thermal EngineeringVol. 308
Shanghai Jiao Tong University (CN), Jiaxing Vocational Technical College (CN), State Key Laboratory of Mechanical System and Vibration
Openalex Percentile: Top 23%
Dielectric materials and actuators
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A quantitative comparison of electrocaloric cooling systems from an exergy-based thermodynamic analysis — Feihong Du, Shanyu Zheng, et al. · Applied Thermal Engineering (2026) | TGRS Research Map | TGRS