Polymer dynamics in a model of the turbulent buffer layer

被引:42
|
作者
Stone, PA [1 ]
Graham, MD [1 ]
机构
[1] Univ Wisconsin, Dept Chem Engn, Madison, WI 53706 USA
关键词
D O I
10.1063/1.1563258
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
A Brownian dynamics study of bead-spring-chain polymer dynamics is undertaken in a model flow that captures key features of the buffer region of near-wall turbulence-wavy streamwise vortices superimposed on a mean shear. In this flow and in any Lagrangian chaotic flow, a Hookean dumbbell polymer will stretch indefinitely if and only if the Weissenberg number based on the largest Lyapunov exponent for the velocity field is greater than or equal to1/2. In the flow investigated here, this criterion is found to be good predictor of when the stretch of finitely extensible chains approaches its maximum value. The chains become highly stretched in the streamwise streaks and relax as they move into and around the vortex cores, leading to large differences in stress in different regions of the flow. Hydrodynamic and excluded volume interactions between polymer segments have no qualitative effects once results are normalized for the change in relaxation time due to their inclusion. The results from the bead-spring-chain models are used to assess the utility of the simpler FENE-P model. Although the FENE-P model does not capture the hysteresis in stress that is seen with the bead-spring-chain models, it otherwise qualitatively captures the behavior of the bead-spring chains. Most importantly, large polymer stress in the flow is seen at the same spatial positions for both the FENE-P and the more detailed models. (C) 2003 American Institute of Physics.
引用
收藏
页码:1247 / 1256
页数:10
相关论文
共 50 条
  • [31] Dynamics of a low Reynolds number turbulent boundary layer
    Chacin, JM
    Cantwell, BJ
    JOURNAL OF FLUID MECHANICS, 2000, 404 : 87 - 115
  • [32] ON THE EFFECT OF TURBULENT EKMAN LAYER ON GLOBAL ATMOSPHERIC DYNAMICS
    DOLZHANSKII, FV
    MANIN, DY
    GEOPHYSICAL AND ASTROPHYSICAL FLUID DYNAMICS, 1993, 72 (1-4): : 93 - 105
  • [33] Prediction of Turbulent Boundary Layer Flow Dynamics with Transformers
    Sarma, Rakesh
    Huebenthal, Fabian
    Inanc, Eray
    Lintermann, Andreas
    MATHEMATICS, 2024, 12 (19)
  • [34] Turbulent-layer dynamics in homogeneous and stratified fluids
    O. S. Ermakova
    I. A. Kapustin
    V. V. Papko
    Izvestiya, Atmospheric and Oceanic Physics, 2008, 44 : 583 - 593
  • [35] THE EFFECT OF TURBULENT EKMAN LAYER ON GLOBAL ATMOSPHERIC DYNAMICS
    DOLZHANSKII, FV
    MANIN, DY
    DOKLADY AKADEMII NAUK SSSR, 1992, 322 (06): : 1065 - 1069
  • [36] TURBULENT BOUNDARY LAYER TREATMENT FOR REACTING POLYMER JETS.
    Johnson III, Joseph A.
    Santiago, Jaime P.
    Polymer Communications (Guildford, England), 1984, 25 (02): : 34 - 35
  • [37] TURBULENT BOUNDARY-LAYER TREATMENT FOR REACTING POLYMER JETS
    JOHNSON, JA
    SANTIAGO, JP
    POLYMER COMMUNICATIONS, 1984, 25 (02): : 34 - 35
  • [38] Design Considerations for Electrode Buffer Layer Materials in Polymer Solar Cells
    Bilby, David
    Frieberg, Bradley
    Kramadhati, Shobhita
    Green, Peter
    Kim, Jinsang
    ACS APPLIED MATERIALS & INTERFACES, 2014, 6 (17) : 14964 - 14974
  • [39] Metal oxide buffer layer for improving performance of polymer solar cells
    Zhao, Zhouying
    Teki, Ranganath
    Koratkar, Nikhil
    Efstathiadis, Harry
    Haldar, Pradeep
    APPLIED SURFACE SCIENCE, 2010, 256 (20) : 6053 - 6056
  • [40] Ultrathin Anode Buffer Layer for Enhancing Performance of Polymer Solar Cells
    Wang, Dun
    Wang, Jian
    Li, Ling-liang
    An, Qiao-shi
    Huang, Hui
    Jiao, Chao-qun
    Liu, Yang
    Zhang, Fu-jun
    INTERNATIONAL JOURNAL OF PHOTOENERGY, 2014, 2014