Gradient and vorticity banding

被引:143
作者
Dhont, Jan K. G. [1 ]
Briels, Wim J. [2 ]
机构
[1] Forschungszentrum Julich, IFF Weiche Mat, D-52425 Julich, Germany
[2] Univ Twente, NL-7500 AE Enschede, Netherlands
关键词
gradient banding; vorticity banding; shear banding;
D O I
10.1007/s00397-007-0245-0
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Banded structures of macroscopic dimensions can be induced by simple shear flow in many different types of soft matter systems. Depending on whether these bands extend along the gradient or vorticity direction, the banding transition is referred to as "gradient banding" or "vorticity banding," respectively. The main features of gradient banding can be understood on the basis of a relatively simple constitutive equation. This minimal model for gradient banding will be discussed in some detail, and its predictions are shown to explain many of the experimentally observed features. The minimal model assumes a decrease of the shear stress of the homogeneously sheared system with increasing shear rate within a certain shear-rate interval. The possible microscopic origin of the severe shear-thinning behaviour that is necessary for the resulting nonmonotonic flow curves is discussed for a few particular systems. Deviations between experimental observations and predictions by the minimal model are due to obvious simplifications within the scope of the minimal model. The most serious simplifications are the neglect of concentration dependence of the shear stress (or on other degrees of freedom) and of the elastic contributions to the stress, normal stresses, and the possibility of shear-induced phase transitions. The consequences of coupling of stress and concentration will be analyzed in some detail. In contrast to predictions of the minimal model, when coupling to concentration is important, a flow instability can occur that does not require strong shear thinning. Gradient banding is sometimes also observed in glassy- and gel-like systems, as well as in shear-thickening systems. Possible mechanisms that could be at the origin of gradient-band formation in such systems are discussed. Gradient banding can also occur in strongly entangled polymeric systems. Banding in these systems is discussed on the basis of computer simulations. Vorticity banding is less well understood and less extensively investigated experimentally as compared to gradient banding. Possible scenarios that are at the origin of vorticity banding will be discussed. Among other systems, the observed vorticity-banding transition in rod-like colloids is discussed in some detail. It is argued, on the basis of experimental observations for these colloidal systems, that the vorticity-banding instability for such colloidal suspensions is probably related to an elastic instability, reminiscent of the Weissenberg effect in polymeric systems. This mechanism might explain vorticity banding in discontinuously shear-thickening systems and could be at work in other vorticity-banding systems as well. This overview does not include time-dependent phenomena like oscillations and chaotic behaviour.
引用
收藏
页码:257 / 281
页数:25
相关论文
共 139 条
[1]   Rheological behavior of a solution of particles aggregating on the containing walls [J].
Ajdari, A .
PHYSICAL REVIEW E, 1998, 58 (05) :6294-6298
[2]  
Berret JF, 2006, MOLECULAR GELS: MATERIALS WITH SELF-ASSEMBLED FIBRILLAR NETWORKS, P667, DOI 10.1007/1-4020-3689-2_20
[3]   Inhomogeneous shear rows of wormlike micelles: A master dynamic phase diagram [J].
Berret, JF ;
Porte, G ;
Decruppe, JP .
PHYSICAL REVIEW E, 1997, 55 (02) :1668-1676
[4]   Kinetics of the shear-thickening transition observed in dilute surfactant solutions and investigated by flow birefringence [J].
Berret, JF ;
Lerouge, S ;
Decruppe, JP .
LANGMUIR, 2002, 18 (20) :7279-7286
[5]   Shear-thickening transition in surfactant solutions: New experimental features from rheology and flow birefringence [J].
Berret, JF ;
Gamez-Corrales, R ;
Lerouge, S ;
Decruppe, JP .
EUROPEAN PHYSICAL JOURNAL E, 2000, 2 (04) :343-350
[6]   Shear-induced micellar growth in dilute surfactant solutions [J].
Berret, JF ;
Gamez-Corrales, R ;
Séréro, Y ;
Molino, F ;
Lindner, P .
EUROPHYSICS LETTERS, 2001, 54 (05) :605-611
[7]   Metastable versus unstable transients at the onset of a shear-induced phase transition [J].
Berret, JF ;
Porte, G .
PHYSICAL REVIEW E, 1999, 60 (04) :4268-4271
[8]   Structure and rheology of concentrated wormlike micelles at the shear-induced isotropic-to-nematic transition [J].
Berret, JF ;
Roux, DC ;
Lindner, P .
EUROPEAN PHYSICAL JOURNAL B, 1998, 5 (01) :67-77
[9]   Inhomogeneous structure formation and shear-thickening in worm-like micellar solutions [J].
Boltenhagen, P ;
Hu, YT ;
Matthys, EF ;
Pine, DJ .
EUROPHYSICS LETTERS, 1997, 38 (05) :389-394
[10]   Observation of bulk phase separation and coexistence in a sheared micellar solution [J].
Boltenhagen, P ;
Hu, YT ;
Matthys, EF ;
Pine, DJ .
PHYSICAL REVIEW LETTERS, 1997, 79 (12) :2359-2362