Thermal conductivity measurement using modulated photothermal radiometry for nitrate and chloride molten salts
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MPR Molten Salt Manuscript ...
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Final Accepted Manuscript
Author
Chung, Ka ManFeng, Tianshi
Zeng, Jian
Adapa, Sarath Reddy
Zhang, Xintong
Zhao, Andrew Z.
Zhang, Ye
Li, Peiwen
Zhao, Youyang
Garay, Javier E.
Chen, Renkun
Affiliation
Department of Aerospace and Mechanical Engineering, The University of ArizonaIssue Date
2023-09-11Keywords
Fluid Flow and Transfer ProcessesMechanical Engineering
Condensed Matter Physics
Chloride salt
Concentrating solar power
Modulated photothermal radiometry
Molten salt
Nitrate salt
Thermal conductivity
Thermal energy storage
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Elsevier BVCitation
Chung, K. M., Feng, T., Zeng, J., Adapa, S. R., Zhang, X., Zhao, A. Z., ... & Chen, R. (2023). Thermal conductivity measurement using modulated photothermal radiometry for nitrate and chloride molten salts. International Journal of Heat and Mass Transfer, 217, 124652.Rights
© 2023 Elsevier Ltd. All rights reserved.Collection Information
This item from the UA Faculty Publications collection is made available by the University of Arizona with support from the University of Arizona Libraries. If you have questions, please contact us at repository@u.library.arizona.edu.Abstract
Molten salts are being used or explored for thermal energy storage and conversion systems in concentrating solar power and nuclear power plants. Thermal conductivity of molten salts is an important thermophysical property dictating the performance and cost of these systems, but its accurate measurement has been challenging, as evidenced by wide scattering of existing data in literature. The corrosive and conducting nature of these fluids also leads to time consuming sample preparation processes of many contact-based measurements. Here, we report the measurement of thermal conductivity of molten salts using a modulated photothermal radiometry (MPR) technique, which is a laser-based, non-contact, frequency-domain method adopted for molten salts for the first time. By unitizing the advantages of front side sensing of frequency-domain measurements and the vertical holder orientation, the technique can minimize the natural convection and salt creeping effects, thus yielding accurate molten salt thermal conductivity. The MPR technique is first calibrated using standard molten materials including paraffin wax and sulfur. It is then applied on measuring pure nitrate salts (NaNO3 and KNO3), solar salt (NaNO3–KNO3 mixture), and chloride salt (NaCl–KCl–MgCl2). The measurement results are compared with data from literature, especially those obtained from laser flash analysis (LFA). Our results demonstrate that the MPR is a convenient and reliable technique of measuring thermal conductivity of molten salts. Accurate thermal conductivity data of molten salts will be valuable in developing the next-generation high-temperature thermal energy storage and conversion systems.Note
24 month embargo; first published: 11 September 2023ISSN
0017-9310Version
Final accepted manuscriptSponsors
Office of Energy Efficiency and Renewable Energyae974a485f413a2113503eed53cd6c53
10.1016/j.ijheatmasstransfer.2023.124652
