LAPSE:2023.9181v1
Published Article

LAPSE:2023.9181v1
Molecular Dynamics Simulation of Thermophysical Properties and the Microstructure of Na2CO3 Heat Storage Materials
February 27, 2023
Abstract
In recent years, heat storage technology has attracted wide attention in the fields of renewable energy storage for its relatively high melting point, high heat storage capacity and economy, Na2CO3 and eutectic salt mixtures containing Na2CO3 are promising candidates in the field of solar energy storage. In this paper, a molecular dynamics (MD) simulation of Na2CO3 was conducted with the Born−Mayer potential function. The simulated solid−liquid phase change temperature is 1200 K, and the error is 5.4%. The heat capacity at constant pressure (Cp) is higher in liquid than in solid, the average Cp of solid is 1.45 J/g and that of liquid is 1.79 J/g, and the minimum error is 2.8%. The simulation results revealed the change rules of density and thermal expansion coefficient of Na2CO3 in the process of heating up, and these changes were analyzed by radial distribution functions (RDF) and angular distribution functions (ADF). Moreover, the RDF and ADF results show that the atomic spacing of Na2CO3 increases, the coordination number decreases, and the angle distribution between atoms becomes wider as the temperature rises. Finally, this paper examined the microscopic changes of ions during the phase transition of Na2CO3 from solid to liquid. It is concluded that the angle change of CO32− in the liquid state is more sharply. This study improves the understanding of the thermodynamic properties and local structure of Na2CO3 and provides theoretical support for Na2CO3 heat storage materials.
In recent years, heat storage technology has attracted wide attention in the fields of renewable energy storage for its relatively high melting point, high heat storage capacity and economy, Na2CO3 and eutectic salt mixtures containing Na2CO3 are promising candidates in the field of solar energy storage. In this paper, a molecular dynamics (MD) simulation of Na2CO3 was conducted with the Born−Mayer potential function. The simulated solid−liquid phase change temperature is 1200 K, and the error is 5.4%. The heat capacity at constant pressure (Cp) is higher in liquid than in solid, the average Cp of solid is 1.45 J/g and that of liquid is 1.79 J/g, and the minimum error is 2.8%. The simulation results revealed the change rules of density and thermal expansion coefficient of Na2CO3 in the process of heating up, and these changes were analyzed by radial distribution functions (RDF) and angular distribution functions (ADF). Moreover, the RDF and ADF results show that the atomic spacing of Na2CO3 increases, the coordination number decreases, and the angle distribution between atoms becomes wider as the temperature rises. Finally, this paper examined the microscopic changes of ions during the phase transition of Na2CO3 from solid to liquid. It is concluded that the angle change of CO32− in the liquid state is more sharply. This study improves the understanding of the thermodynamic properties and local structure of Na2CO3 and provides theoretical support for Na2CO3 heat storage materials.
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Keywords
local structures, molecular dynamics, Na2CO3, phase change, thermodynamic properties
Subject
Suggested Citation
Long H, Lu Y, Chang L, Zhang H, Zhang J, Zhang G, Hao J. Molecular Dynamics Simulation of Thermophysical Properties and the Microstructure of Na2CO3 Heat Storage Materials. (2023). LAPSE:2023.9181v1
Author Affiliations
Long H: Institute for Advanced Materials and Technology, University of Science and Technology Beijing, Beijing 100083, China
Lu Y: Science and Technology Innovation Center, China General Nuclear Powder New Energy Holdings Co., Ltd., Beijing 100160, China
Chang L: Beijing Institute of Smart Energy, Future Science and Technology City, Changping District, Beijing 102211, China
Zhang H: Institute for Advanced Materials and Technology, University of Science and Technology Beijing, Beijing 100083, China
Zhang J: Institute for Advanced Materials and Technology, University of Science and Technology Beijing, Beijing 100083, China
Zhang G: Beijing Institute of Smart Energy, Future Science and Technology City, Changping District, Beijing 102211, China
Hao J: Institute for Advanced Materials and Technology, University of Science and Technology Beijing, Beijing 100083, China; Beijing Institute of Smart Energy, Future Science and Technology City, Changping District, Beijing 102211, China
Lu Y: Science and Technology Innovation Center, China General Nuclear Powder New Energy Holdings Co., Ltd., Beijing 100160, China
Chang L: Beijing Institute of Smart Energy, Future Science and Technology City, Changping District, Beijing 102211, China
Zhang H: Institute for Advanced Materials and Technology, University of Science and Technology Beijing, Beijing 100083, China
Zhang J: Institute for Advanced Materials and Technology, University of Science and Technology Beijing, Beijing 100083, China
Zhang G: Beijing Institute of Smart Energy, Future Science and Technology City, Changping District, Beijing 102211, China
Hao J: Institute for Advanced Materials and Technology, University of Science and Technology Beijing, Beijing 100083, China; Beijing Institute of Smart Energy, Future Science and Technology City, Changping District, Beijing 102211, China
Journal Name
Energies
Volume
15
Issue
19
First Page
7080
Year
2022
Publication Date
2022-09-27
ISSN
1996-1073
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PII: en15197080, Publication Type: Journal Article
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LAPSE:2023.9181v1
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