CIESC Journal

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混沌混合中流体指数拉伸与混合效率的数值研究

王林翔; 陈鹰; 范毓润; 路甬祥   

  1. State Key Laboratory for Fluid Power Transmission & Control, Zhejiang University, Hangzhou
    310027 China
  • 收稿日期:1900-01-01 修回日期:1900-01-01 出版日期:2000-09-28 发布日期:2000-09-28
  • 通讯作者: 王林翔

Numerical Investigation on Mixing Efficiency andExponential Fluid Stretching in Chaotic
Mixing

WANG Linxiang; CHEN Ying; FAN Yurun; LU Yongxiang   

  1. State Key Laboratory for Fluid Power Transmission & Control, Zhejiang University, Hangzhou
    310027 China
  • Received:1900-01-01 Revised:1900-01-01 Online:2000-09-28 Published:2000-09-28
  • Contact: WANG Linxiang

摘要: The stretching and folding of fluid element during chaotic mixing field is studied using
numerical method. The chaotic mixing process is caused by periodic secondary flow in a
twisted curved pipe. Using the nonlinear discrete velocity field as the dynamical system,
the present study connects the fluid particle’s stretching along its trajectory in one
period to a linearized time-varying variational equation. After numerical approximation of
the variational equation, fluid stretching is calculated on the whole cross section. The
stretching distribution shows an exponential fluid stretching and folding, which indicates
an excellent mixing performance.

关键词: chaotic mixing;secondary flow;numerical approximation

Abstract: The stretching and folding of fluid element during chaotic mixing field is studied using
numerical method. The chaotic mixing process is caused by periodic secondary flow in a
twisted curved pipe. Using the nonlinear discrete velocity field as the dynamical system,
the present study connects the fluid particle’s stretching along its trajectory in one
period to a linearized time-varying variational equation. After numerical approximation of
the variational equation, fluid stretching is calculated on the whole cross section. The
stretching distribution shows an exponential fluid stretching and folding, which indicates
an excellent mixing performance.

Key words: chaotic mixing, secondary flow, numerical approximation