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Article

Thermal Stability and Eutectic Point of Chloride-Based High-Temperature Molten Salt Energy Systems

1
Department of Nuclear and Quantum Engineering, Korea Advanced Institute of Science and Technology, 291 Daehak-ro, Yuseong-gu, Daejeon 34141, Republic of Korea
2
Department of Nuclear Engineering, Seoul National University, 1 Gwanak-ro, Gwanak-gu, Seoul 08826, Republic of Korea
*
Author to whom correspondence should be addressed.
Energies 2025, 18(14), 3616; https://doi.org/10.3390/en18143616
Submission received: 16 May 2025 / Revised: 25 June 2025 / Accepted: 2 July 2025 / Published: 9 July 2025

Abstract

In response to the growing impact of the climate crisis, many countries are accelerating efforts to develop sustainable and carbon-free energy solutions. This has led to increasing interest in advanced energy storage and conversion technologies, particularly the development of high-temperature molten salt energy systems. Among these, chloride salt-based molten salt systems, which offer excellent thermal properties such as high thermal conductivity, low melting points, and favorable chemical stability, are emerging as strong candidates for thermal energy storage and heat-transfer applications. This study focuses on deriving key thermophysical properties essential for selecting suitable molten salt heat-transfer fluids by examining their eutectic points and thermal stability with respect to various salt compositions. Three chloride mixtures—NaCl-MgCl2, NaCl-KCl-MgCl2, and NaCl-KCl-ZnCl2—were evaluated for potential use in high-temperature molten salt energy systems. Differential scanning calorimetry (DSC) and thermogravimetric analysis (TGA) were employed to measure the melting points and thermal stability of molten salts with various compositions near their eutectic regions. Experimental results were compared with predicted eutectic points to assess the thermal performance of each salt mixture. The findings indicate that the NaCl-KCl-MgCl2 mixture exhibits the most promising characteristics, including a low melting point below 400 °C and superior thermal stability, making it highly suitable as a heat-transfer fluid in high-temperature molten salt energy systems. In contrast, NaCl-KCl-ZnCl2 was found unsuitable for such applications due to its high hygroscopicity and poor thermal stability. This study provides essential data for selecting optimal molten salt compositions for the efficient and reliable operation of high-temperature molten salt energy systems.
Keywords: high-temperature molten salt energy system; thermal energy storage system (TESS); chloride salt; eutectic point; thermal stability; thermogravimetric analysis (TGA); differential scanning calorimetry (DSC) high-temperature molten salt energy system; thermal energy storage system (TESS); chloride salt; eutectic point; thermal stability; thermogravimetric analysis (TGA); differential scanning calorimetry (DSC)

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MDPI and ACS Style

Yoo, S.; Kim, J.; Choi, S.; Lee, J.I. Thermal Stability and Eutectic Point of Chloride-Based High-Temperature Molten Salt Energy Systems. Energies 2025, 18, 3616. https://doi.org/10.3390/en18143616

AMA Style

Yoo S, Kim J, Choi S, Lee JI. Thermal Stability and Eutectic Point of Chloride-Based High-Temperature Molten Salt Energy Systems. Energies. 2025; 18(14):3616. https://doi.org/10.3390/en18143616

Chicago/Turabian Style

Yoo, Sunghyun, Jihun Kim, Sungyeol Choi, and Jeong Ik Lee. 2025. "Thermal Stability and Eutectic Point of Chloride-Based High-Temperature Molten Salt Energy Systems" Energies 18, no. 14: 3616. https://doi.org/10.3390/en18143616

APA Style

Yoo, S., Kim, J., Choi, S., & Lee, J. I. (2025). Thermal Stability and Eutectic Point of Chloride-Based High-Temperature Molten Salt Energy Systems. Energies, 18(14), 3616. https://doi.org/10.3390/en18143616

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