Marangoni Convection during Free Electron Laser Nitriding of Titanium

被引:0
作者
Daniel Höche
Sven Müller
Gerd Rapin
Michelle Shinn
Elvira Remdt
Maik Gubisch
Peter Schaaf
机构
[1] Universität Göttingen,
[2] II. Physikalisches Institut,undefined
[3] Institut für Numerische und Angewandte Mathematik,undefined
[4] Thomas Jefferson National Accelerator Facility,undefined
[5] Free Electron Laser Group,undefined
[6] TU Ilmenau,undefined
[7] Institut für Werkstofftechnik,undefined
[8] FG Werkstoffe der Elektrotechnik,undefined
来源
Metallurgical and Materials Transactions B | 2009年 / 40卷
关键词
Surface Deformation; Surface Tension Force; Free Electron Laser; Marangoni Number; Marangoni Convection;
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摘要
Pure titanium was treated by free electron laser (FEL) radiation in a nitrogen atmosphere. As a result, nitrogen diffusion occurs and a TiN coating was synthesized. Local gradients of interfacial tension due to the local heating lead to a Marangoni convection, which determines the track properties. Because of the experimental inaccessibility of time-dependent occurrences, finite element calculations were performed, to determine the physical processes such as heat transfer, melt flow, and mass transport. In order to calculate the surface deformation of the gas-liquid interface, the level set approach was used. The equations were modified and coupled with heat-transfer and diffusion equations. The process was characterized by dimensionless numbers such as the Reynolds, Peclet, and capillary numbers, to obtain more information about the acting forces and the coating development. Moreover, the nitrogen distribution was calculated using the corresponding transport equation. The simulations were compared with cross-sectional micrographs of the treated titanium sheets and checked for their validity. Finally, the process presented is discussed and compared with similar laser treatments.
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页码:497 / 507
页数:10
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共 103 条
  • [1] György E.(2002)undefined Appl. Surf. Sci. 186 130-34
  • [2] Perez del Pino A.(2008)undefined J. Phys. D: Appl. Phys. 41 085208-25
  • [3] Serra P.(2007)undefined J. Phys. D: Appl. Phys. 40 818-10
  • [4] Morenza J.L.(2005)undefined Appl. Phys. A: Mater. Sci. Process. 80 1707-90
  • [5] Raaif M.(2006)undefined J. Heat Transfer 128 680-96
  • [6] El-Hossary F.(2007)undefined FDMP 3 65-72
  • [7] Negm N.(2004)undefined Appl. Mech. Rev. 57 B15-50
  • [8] Khalil S.(2001)undefined J. Phys. D: Appl. Phys. 34 364-74
  • [9] Kolitsch A.(2004)undefined Metall. Mater. Trans. B 35B 1139-17
  • [10] Höche D.(2000)undefined Phys. Rev. E 62 2471-46