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  • 博士生导师
  • 招生学科专业:
    力学 -- 【招收博士、硕士研究生】 -- 航空学院
    航空宇航科学与技术 -- 【招收硕士研究生】 -- 航空学院
    机械 -- 【招收博士、硕士研究生】 -- 航空学院
  • 电子邮箱:
  • 所在单位:航空学院
  • 学历:法国巴黎第六大学
  • 办公地点:本部流体楼(C12)- 301室
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  • 联系方式:wangjf@nuaa.edu.cn
  • 学位:工学博士学位
  • 职称:教授
  • 毕业院校:南京航空航天大学; Université Pierre et Marie Curie
论文成果
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Development of multi-component generalized sphere function based gas-kinetic flux solver for simulation of compressible viscous reacting flows
  • 点击次数:
  • 所属单位:航空学院
  • 发表刊物:Comput. Fluids
  • 摘要:In this paper, a multi-component generalized sphere function based gas-kinetic flux solver is developed for simulation of compressible viscous reacting flows. This work is inspired by the existing simplified gas-kinetic schemes, which use the circular or sphere function to develop single-component gas-kinetic flux solvers. The present solver applies the finite volume method to discretize the multi-component Navier-Stokes equations and evaluate the numerical flux at the cell interface by using the local solution of Boltzmann equation. In order to unify the existing circular and sphere functions, a generalized sphere function is derived from a reduced Maxwellian distribution function by assuming that all the particles are concentrated on an N-dimensional sphere. The present solver is then developed by integrating the generalized sphere function on the sphere surface. To obtain a multi-component solver, the mass fraction from both sides of the cell interface is used to compute the densities of different species. Considering the different physical properties of the species, the internal energy is computed by enthalpy, and the temperature at the cell interface is obtained by Newton iteration. In addition, to control the numerical dissipation, which is relevant to the grid aspect ratio and the chemical reaction, an improved switch function is introduced. Several benchmark problems are simulated to validate the present solver. It is shown that the developed flux solver has a satisfied performance for simulation of multi-component compressible viscous reacting flows. © 2019
  • ISSN号:0045-7930
  • 是否译文:
  • 发表时间:2020-01-01
  • 合写作者:Yang, Tianpeng,Yang, Liming,Shu, Chang
  • 通讯作者:王江峰
  • 发表时间:2020-01-01