Abstract
As thermal energy storage (TES) systems gain increasing recognition as next-generation energy storage solutions, evaluating their techno-economic performance is crucial. This perspective analyzes the cost-performance of latent heat-based TES systems and introduces the concept of iso-cost-performance-maintaining a constant cost per unit energy ($/kWh) despite material degradation. Using an empirical degradation model, we show that after 1200 thermal cycles, the thermal conductivity and volumetric energy density of a paraffin-based phase change material (PCM) decreased by 36.0% and 26.1%, respectively, resulting in a 31.2% reduction in the figure of merit (FOM) and, consequently, the system cost-performance. However, by introducing thermally conductive additives to enhance effective thermal conductivity, the TES system can recover its initial FOM, achieving iso-cost-performance operation. This framework quantitatively demonstrates how degradation-mitigation strategies-such as improving thermal conductivity-can offset material degradations and maintain long-term cost-effectiveness. Beyond PCM-based TES, the proposed FOM-based approach provides a generalized pathway for cost-performance optimization across various TES technologies.
| Original language | American English |
|---|---|
| Number of pages | 11 |
| Journal | JPhys Energy |
| Volume | 8 |
| Issue number | 1 |
| DOIs | |
| State | Published - 2026 |
NLR Publication Number
- NLR/JA-2C00-95252
Keywords
- device modeling
- energy storage
- figure-of-merit (FOM)
- phase change materials (PCM)
- techno-economics
- thermal management
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