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Molecular mechanics and dynamics simulation of hydrogen diffusion in aluminum melt 被引量:5

Molecular mechanics and dynamics simulation of hydrogen diffusion in aluminum melt
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摘要 The main impurities in aluminum melt are hydrogen and Al_2O_3,which can deteriorate melt quality and materials performance.However,the diffusion process of H atoms in aluminum melt and the interactions among Al atoms,Al_2O_3 and hydrogen have been studied rarely.Molecular mechanics and dynamics simulations are employed to study the diffusion behaviors of different types of hydrogen,such as free H atoms,H atoms in H_2 and H^+ions in H_2O using COMPASS force field.Correspondingly,force field types h,h1h and h1o are used to describe different types of hydrogen which are labeled as H_h,H_(h1h) and H_(h1o).The results show that the adsorption areas are maximum for H_(h1o),followed by H_(h1h) and H_h.The diffusion ability of H_(h1o) is the strongest whereas H_h is hard to diffuse in aluminum melt because of the differences in radius and potential well depth of various types of hydrogen.Al_2O_3 cluster makes the Al atoms array disordered,creating the energy conditions for hydrogen diffusion in aluminum melt.Al_2O_3 improves the diffusion of H_h and H_(h1o),and constrains H_(h1h) which accumulates around it and forms gas porosities in aluminum.H_(h1o) is the most dispersive in aluminum melt,moreover,the distance of Al-H_(h1o) is shorter than that of Al-H_(h1h),both of which are detrimental to the removal of H_(h1o).The simulation results indicate that the gas porosities can be eliminated by the removal of Al_2O_3 inclusions,and the dispersive hydrogen can be removed by adsorption function of gas bubbles or molten fluxes. The main impurities in aluminum melt are hydrogen and Al2O3,which can deteriorate melt quality and materials performance.However,the diffusion process of H atoms in aluminum melt and the interactions among Al atoms,Al2O3 and hydrogen have been studied rarely.Molecular mechanics and dynamics simulations are employed to study the diffusion behaviors of different types of hydrogen,such as free H atoms,H atoms in H2 and H-+ions in H2O using COMPASS force field.Correspondingly,force field types h,h1h and h1o are used to describe different types of hydrogen which are labeled as Hh,H(h1h) and Hh1o.The results show that the adsorption areas are maximum for Hh1o,followed by H(h1h) and Hh.The diffusion ability of Hh1o is the strongest whereas Hh is hard to diffuse in aluminum melt because of the differences in radius and potential well depth of various types of hydrogen.Al2O3 cluster makes the Al atoms array disordered,creating the energy conditions for hydrogen diffusion in aluminum melt.Al2O3 improves the diffusion of Hh and Hh1o,and constrains H(h1h) which accumulates around it and forms gas porosities in aluminum.Hh1o is the most dispersive in aluminum melt,moreover,the distance of Al-Hh1o is shorter than that of Al-H(h1h),both of which are detrimental to the removal of Hh1o.The simulation results indicate that the gas porosities can be eliminated by the removal of Al2O3 inclusions,and the dispersive hydrogen can be removed by adsorption function of gas bubbles or molten fluxes.
出处 《China Foundry》 SCIE 2017年第6期478-484,共7页 中国铸造(英文版)
基金 financially supported by the International Cooperation Project of Science and Technology Ministry of China(No.2015DFA71350) Important Science and Technology Programs of Fujian province(No.2012H0006)
关键词 hydrogen in aluminum melt molecular mechanics simulation molecular dynamics simulation COMPASS hydrogen diffusion hydrogen in aluminum melt molecular mechanics simulation molecular dynamics simulation COMPASS hydrogen diffusion
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  • 1张鑫珩,任瑞良.铝及其合金熔剂技术与TH系列多功能复合熔剂[J].轻合金加工技术,1994,22(11):15-16. 被引量:1
  • 2叶天旭,张予辉,刘金河,张在龙.烷基咪唑氟硼酸盐离子液体的合成与溶剂性质研究[J].石油大学学报(自然科学版),2004,28(4):105-107. 被引量:24
  • 3Dupont, J.; de Souza, R. F.; Suarez, P. A. Z. Chem. Rev. 2002, 102, 3667. doi: 10.1021/cr010338r.
  • 4Earle, M. J.; Seddon, K. R. PureAppl. Chem. 2000, 72, 1391 doi: 10.1351/pac200072071391.
  • 5Wilkes, J. Green Chem. 2002, 4, 73. doi: 10.1039/bl10838g.
  • 6Hagiwara, R.; Ito, Y. J. Fluor. Chem. 2000, 105, 221. doi:10.1016/S0022-1139(99)00267-5.
  • 7Wakai, C.; Oleinikova, A.; Ott, M.; Weingartner, H. J. Phys. Chem. B 2005, 109, 17028. doi: 10.1021/jp053946+.
  • 8Welton, T. Chem. Rev. 1999, 99, 2071. doi: 10.1021/cr980032t.
  • 9Zhang, J. M.; Wu, W. Z.; Jiang, T.; Gao, H. X.; Liu, Z. M.; He, J.; Han, B. X. J. Chem. Eng. Data 2003, 48, 1315. doi: 10.1021/ je034078h.
  • 10翟翠萍,王键吉,轩小朋,汪汉卿.物理化学学报,2006,22,456.doi:10.3866/PKU.WHXB20060413.

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