Phenomenological improvements to predictive models of fiber orientation in concentrated suspensions

被引:81
|
作者
Tseng, Huan-Chang [1 ]
Chang, Rong-Yeu [2 ]
Hsu, Chia-Hsiang [1 ]
机构
[1] CoreTech Syst Moldex3D Co Ltd, Chupei City 30265, Hsinchu County, Taiwan
[2] Natl Tsing Hua Univ, Dept Chem Engn, Hsinchu 30013, Taiwan
关键词
TRANSIENT SHEAR-FLOW; CLOSURE APPROXIMATIONS; RHEOLOGICAL PROPERTIES; ANISOTROPIC FLUIDS; GENERAL FORMALISM; NEWTONIAN FLUID; COMPLEX FLUIDS; PARTICLES; DYNAMICS; THERMODYNAMICS;
D O I
10.1122/1.4821038
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
The standard Folgar-Tucker (FT) orientation equation is a useful method for theoretically determining isotropic fiber orientation in concentrated suspensions. However, when quantitatively compared with related experimental observations, this equation demonstrates an over-prediction inaccuracy. Recently, the Phelps-Tucker anisotropic rotary diffusion (ARD) model has shown an ability to handle primary anisotropic fiber orientation. Nevertheless, the ARD tensor depending upon Hand's tensor is difficult to apply in general, because numerous parameters themselves are so sensitive as to affect the stability of any numerical results. To address these critical problems in predicting fiber orientation, this study proposes an improved ARD tensor combined with a new retardant principal rate (iARD-RPR) model. The RPR model is a coaxial correction of the orientation tensor for the FT equation. In addition, the iARD tensor, consisting of an identity tensor and a dimensionless fiber-rotary-resistance tensor, is more concise with two available parameters. As a validation, the iARD-RPR model nicely fits the orientation tensor components measured in transient simple shear flows. Of particular importance is the good agreement between the predictive fiber orientation distribution and the practical core-shell structure for the center-gated disk of injection molding of fiber-reinforced thermoplastics. (C) 2013 The Society of Rheology.
引用
收藏
页码:1597 / 1631
页数:35
相关论文
共 50 条
  • [21] Models for the two-phase flow of concentrated suspensions
    Ahnert, Tobias
    Munch, Andreas
    Wagner, Barbara
    EUROPEAN JOURNAL OF APPLIED MATHEMATICS, 2019, 30 (03) : 585 - 617
  • [22] Viscosity of concentrated colloidal suspensions: comparison of bidisperse models
    Qin, KD
    Zaman, AA
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2003, 266 (02) : 461 - 467
  • [23] An experimental study of the turbulent mixing layer in concentrated fiber suspensions
    Claesson, Julia
    Wikstrom, Tomas
    Rasmuson, Anders
    NORDIC PULP & PAPER RESEARCH JOURNAL, 2012, 27 (05) : 940 - 946
  • [24] RESEARCH ON THE SPECIFIC VISCOSITY OF SEMI-CONCENTRATED FIBER SUSPENSIONS
    Wan, Zhanhong
    Lin, Jianzhong
    You, Zhenjiang
    Ding, Hai
    MODERN PHYSICS LETTERS B, 2008, 22 (29): : 2857 - 2868
  • [25] A STUDY OF FLOC BREAKUP AND FORMATION IN FLOWING CONCENTRATED FIBER SUSPENSIONS
    BONANO, EJ
    INTERNATIONAL JOURNAL OF MULTIPHASE FLOW, 1984, 10 (05) : 623 - 633
  • [26] Direct simulation of concentrated fiber suspensions subjected to bending effects
    Mezher, R.
    Abisset-Chavanne, E.
    Ferec, J.
    Ausias, G.
    Chinesta, F.
    MODELLING AND SIMULATION IN MATERIALS SCIENCE AND ENGINEERING, 2015, 23 (05)
  • [27] One and two-fiber orientation kinetic theories of fiber suspensions
    Grmela, Miroslav
    Ammar, Amine
    Chinesta, Francisco
    JOURNAL OF NON-NEWTONIAN FLUID MECHANICS, 2013, 200 : 17 - 33
  • [28] ON THE DESCRIPTION OF THE ORIENTATION STATE FOR FIBER SUSPENSIONS IN HOMOGENEOUS FLOWS
    ALTAN, MC
    ADVANI, SG
    GUCERI, SI
    PIPES, RB
    JOURNAL OF RHEOLOGY, 1989, 33 (07) : 1129 - 1155
  • [29] Fiber suspensions in complex geometries: Flow/orientation coupling
    VerWeyst, BE
    Tucker, CL
    CANADIAN JOURNAL OF CHEMICAL ENGINEERING, 2002, 80 (06): : 1093 - 1106