TY - JOUR
T1 - Molecular dynamics simulations of ionic transport, local structures, and physicochemical properties of multi-component NaCl-MgCl2-CaCl2-FeCl2/FeCl3 molten salt systems
AU - Xu, Jianlin
AU - Tian, Feng
AU - Zhu, Fuxing
AU - Pang, Zhongya
AU - Ma, Zhanshan
AU - Miao, Han
AU - Zhang, Xueqiang
AU - Han, Chenyang
AU - Xu, Qian
AU - Zou, Xingli
AU - Lu, Xionggang
N1 - Publisher Copyright:
© 2025 Elsevier Ltd
PY - 2025/4
Y1 - 2025/4
N2 - TiCl4 is a vital intermediate raw material for the production of both metallic titanium and titanium dioxide pigment via the chloride process. The current low-grade titanium feedstock available in China is more suitable for the preparation of TiCl4 by molten salt chlorination. However, industrial practice reveals that the prolonged presence of FeCl2 and FeCl3 in the molten salt deteriorates its chlorination properties, posing significant challenges for efficient titanium production. This study employs large-scale molecular dynamics simulations to address deficiencies in thermodynamic structure data for the multi-component NaCl-MgCl2-CaCl2-FeCl2/FeCl3 system, particularly focusing on key structural and transport properties, including mean square displacement (MSD) and radial distribution function (RDF), etc. Additionally, the rotation-pendulum and Archimedes methods were utilized to assess the influences of varying FeCl2/FeCl3 content on the viscosity and density of the molten salt. The results show that Fe2+ and Fe3+ ions significantly affect the structure and transport properties of other ions in the molten salt compared to Na+ and Ca2+. These ions form stronger bonds with Cl−, promoting the formation of longer chain structures and the formation of larger ionic clusters. As a result, elevated levels of Fe2+ and Fe3+ ions correlate positively with increased viscosity, owing to the microstructural changes arising from ion pair interactions. This work may provide a new strategy for extending the operational lifespan of molten salts employed in titanium slag chlorination processes while enhancing its chlorination efficiency, which would be beneficial for facilitating a cleaner and more efficient route for the utilization of titanium resources.
AB - TiCl4 is a vital intermediate raw material for the production of both metallic titanium and titanium dioxide pigment via the chloride process. The current low-grade titanium feedstock available in China is more suitable for the preparation of TiCl4 by molten salt chlorination. However, industrial practice reveals that the prolonged presence of FeCl2 and FeCl3 in the molten salt deteriorates its chlorination properties, posing significant challenges for efficient titanium production. This study employs large-scale molecular dynamics simulations to address deficiencies in thermodynamic structure data for the multi-component NaCl-MgCl2-CaCl2-FeCl2/FeCl3 system, particularly focusing on key structural and transport properties, including mean square displacement (MSD) and radial distribution function (RDF), etc. Additionally, the rotation-pendulum and Archimedes methods were utilized to assess the influences of varying FeCl2/FeCl3 content on the viscosity and density of the molten salt. The results show that Fe2+ and Fe3+ ions significantly affect the structure and transport properties of other ions in the molten salt compared to Na+ and Ca2+. These ions form stronger bonds with Cl−, promoting the formation of longer chain structures and the formation of larger ionic clusters. As a result, elevated levels of Fe2+ and Fe3+ ions correlate positively with increased viscosity, owing to the microstructural changes arising from ion pair interactions. This work may provide a new strategy for extending the operational lifespan of molten salts employed in titanium slag chlorination processes while enhancing its chlorination efficiency, which would be beneficial for facilitating a cleaner and more efficient route for the utilization of titanium resources.
KW - Density
KW - Molecular dynamics simulation
KW - Multicomponent chloride molten salts
KW - Physicochemical properties
KW - Viscosity
UR - http://www.scopus.com/inward/record.url?scp=105001174879&partnerID=8YFLogxK
U2 - 10.1016/j.mtcomm.2025.112271
DO - 10.1016/j.mtcomm.2025.112271
M3 - Article
AN - SCOPUS:105001174879
SN - 2352-4928
VL - 45
JO - Materials Today Communications
JF - Materials Today Communications
M1 - 112271
ER -