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    Thermal Properties of SiO2 Nanoparticle-Enhanced NaNO3–KNO3 Eutectic Molten Salt

    Source: ASME Journal of Heat and Mass Transfer:;2026:;volume( 148 ):;issue:002
    Author:
    Seo, Joohyun
    ,
    Numbers, Jacob
    ,
    Munro, Troy
    ,
    Zhang, Richard Z.
    DOI: 10.1115/1.4070188
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Abstract. This study provides a thermophysical property metrology of a nitrate-based eutectic molten salt (NEMS) enhanced by silica nanoparticles. The improvement of molten salt thermal properties can benefit fluid transport and energy storage in concentrating solar power plants and molten salt reactors. The thermal behavior and heat transfer mechanisms of the system were investigated through experimental characterization of thermal conductivity, specific heat capacity, and thermal diffusivity. Silica (SiO2) nanoparticles were added into NaNO3–KNO3 binary eutectic molten salt at 60:40 ratio. Thermal conductivity measured by a needle probe confirmed the thermal conductivity increase by nanoparticles from room temperature to the liquid eutectic phase. We demonstrate that thermal conductivity nearly doubled with 0.5 wt % silica nanoparticle concentration at molten temperatures, with a five times increase upon solidification to room temperature. Specific heat measurements also confirmed that the addition of 1.0 wt % SiO2 nanoparticles increased the molten salt's heat capacity with reductions of latent heat of fusion. Changes in specific heat were also found to be linked to nanoparticle concentration, dispersion, and interfacial configuration affecting thermal transport. The enhancement mechanism is suggested by dendrite precipitate formation around nanoparticles, which increase the effective solid–liquid interface area and induce localized changes in interfacial thermal resistance. The resulting interfacial modifications enhance thermal energy storage capacity by altering local heat transfer dynamics. These variations influence not only heat transfer but also the system's heat capacity for thermal energy storage.
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      Thermal Properties of SiO2 Nanoparticle-Enhanced NaNO3–KNO3 Eutectic Molten Salt

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    contributor authorSeo, Joohyun
    contributor authorNumbers, Jacob
    contributor authorMunro, Troy
    contributor authorZhang, Richard Z.
    date accessioned2026-08-23T08:14:52Z
    date available2026-08-23T08:14:52Z
    date copyright2026/02/01
    date issued2026
    identifier issn2832-8450
    identifier otherht-25-1262.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4316274
    description abstractAbstract. This study provides a thermophysical property metrology of a nitrate-based eutectic molten salt (NEMS) enhanced by silica nanoparticles. The improvement of molten salt thermal properties can benefit fluid transport and energy storage in concentrating solar power plants and molten salt reactors. The thermal behavior and heat transfer mechanisms of the system were investigated through experimental characterization of thermal conductivity, specific heat capacity, and thermal diffusivity. Silica (SiO2) nanoparticles were added into NaNO3–KNO3 binary eutectic molten salt at 60:40 ratio. Thermal conductivity measured by a needle probe confirmed the thermal conductivity increase by nanoparticles from room temperature to the liquid eutectic phase. We demonstrate that thermal conductivity nearly doubled with 0.5 wt % silica nanoparticle concentration at molten temperatures, with a five times increase upon solidification to room temperature. Specific heat measurements also confirmed that the addition of 1.0 wt % SiO2 nanoparticles increased the molten salt's heat capacity with reductions of latent heat of fusion. Changes in specific heat were also found to be linked to nanoparticle concentration, dispersion, and interfacial configuration affecting thermal transport. The enhancement mechanism is suggested by dendrite precipitate formation around nanoparticles, which increase the effective solid–liquid interface area and induce localized changes in interfacial thermal resistance. The resulting interfacial modifications enhance thermal energy storage capacity by altering local heat transfer dynamics. These variations influence not only heat transfer but also the system's heat capacity for thermal energy storage.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleThermal Properties of SiO2 Nanoparticle-Enhanced NaNO3–KNO3 Eutectic Molten Salt
    typeJournal Paper
    journal volume148
    journal issue2
    journal titleASME Journal of Heat and Mass Transfer
    identifier doi10.1115/1.4070188
    treeASME Journal of Heat and Mass Transfer:;2026:;volume( 148 ):;issue:002
    contenttypeFulltext
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