Experimental and Numerical Study of a Semi-Industrial Salt-Based Thermal Energy Storage System (TES), Focusing on Latent Heat
潜熱に着目した半工業規模の塩系熱エネルギー貯蔵システム(TES)の実験・数値研究 (AI 翻訳)
Hochenauer* J, Müller MJ, Hochenauer C
🤖 gxceed AI 要約
日本語
本研究は、溶融塩潜熱を利用した半工業規模の熱エネルギー貯蔵システムを初めて実験・数値解析で実証した。完全凝固で熱収量が約10%向上するが、約60%凝固時に最適な運転戦略があり、550°Cから200°Cの範囲で約1300 kJ/kgの蓄熱容量を達成。凝固層の成長と放電性能のメカニズムを解明し、再生可能エネルギー応用における経済性向上に貢献する。
English
This study presents the first combined experimental and numerical demonstration of latent heat utilization in a semi-industrial molten salt TES system. Complete solidification increases thermal yield by ~10%, but optimal operation at ~60% solidification yields ~1300 kJ/kg storage capacity (550-200°C). Insights into frozen-layer growth and discharge performance support system optimization and scale-up for renewable energy applications.
Unofficial AI-generated summary based on the public title and abstract. Not an official translation.
📝 gxceed 編集解説 — Why this matters
日本のGX文脈において
日本では再生可能エネルギーの導入拡大に伴い、蓄熱技術の高効率化が重要。本研究成果は、溶融塩蓄熱システムの潜熱利用を実証し、エネルギー密度向上と経済性改善に寄与する。日本の太陽熱発電や工場廃熱利用などへの応用が期待され、エネルギー政策や産業競争力強化に資する。
In the global GX context
Globally, this work advances thermal energy storage (TES) technology by demonstrating latent heat utilization in molten salts, which can significantly improve energy density and efficiency. It provides validated CFD models and operational strategies that are crucial for scaling up TES systems, supporting the integration of renewable energy and enhancing grid stability. The findings are relevant to international efforts in decarbonization and sustainable energy storage.
👥 読者別の含意
🔬研究者:Provides validated experimental and numerical methods for latent heat TES, offering insights into solidification dynamics and optimization strategies for scale-up.
🏢実務担当者:Offers operational guidelines for maximizing energy yield and efficiency in molten salt TES systems, applicable to solar thermal plants and industrial heat recovery.
🏛政策担当者:Highlights the potential of advanced TES to enhance renewable energy utilization and grid stability, informing policies that support energy storage innovation.
📄 Abstract(原文)
Molten salt-based thermal energy storage (TES) systems are widely deployed for large-scale energy storage; however, they currently utilize only sensible heat, limiting their energy density and overall efficiency. The utilization of latent heat in molten salts has the potential to significantly increase the extractable energy, but its practical implementation remains largely unexplored due to challenges related to solidification control, thermal stresses, and structural integrity. Addressing this gap is essential for improving the performance and economic viability of TES systems in renewable energy applications. This work presents the first combined experimental and numerical study demonstrating the safe and controlled utilization of latent heat in a molten salt TES system at semi-industrial scale. A vertical shell-and-tube heat exchanger integrated into a salt tank was investigated experimentally, enabling controlled melting and solidification of solar salt under realistic operating conditions. High-resolution spatial and temporal measurements of temperature and heat flux were used to establish detailed energy balances and characterize the thermal response during phase change. In addition, a validated three-dimensional CFD model was developed and validated against the measured temperature histories to predict the corresponding crystallization behaviour and support system optimization and scale-up. The combined experimental–numerical analysis provides new insights into molten salt solidification. While the thermal response was validated experimentally, the spatial distribution and temporal evolution of the solid phase were inferred from the validated CFD simulations. It is shown that complete solidification can increase the thermal energy yield by approximately 10%. However, an optimal operating strategy is identified at about 60% solidification, corresponding to an energy storage capacity of approximately 1300 kJ/kg within a temperature range of 550°C to 200°C. Beyond this point, heat transfer is significantly reduced due to the formation of insulating solid layers, and thermal stresses may compromise structural integrity. These findings demonstrate the technical feasibility of controlled latent heat utilization in the investigated molten salt TES configuration and provide new insight into the mechanisms governing frozen-layer growth and discharge performance under high-temperature operating conditions.
🔗 Provenance — このレコードを発見したソース
- Research Square https://doi.org/10.20944/preprints202608.0574.v1first seen 2026-08-12 04:31:38 · last seen 2026-08-13 04:43:05
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