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准理想棒材的双轴取向与剪切变稀之间的联系

The Connection between Biaxial Orientation and Shear Thinning for Quasi-Ideal Rods.

作者信息

Lang Christian, Kohlbrecher Joachim, Porcar Lionel, Lettinga Minne Paul

机构信息

ICS-3, Institut für Weiche Materie, Forschungszentrum Jülich, D-52425 Jülich, Germany.

Laboratory of Neutron Scattering and Imaging, Paul Scherrer Institute, 5232 Villigen, Switzerland.

出版信息

Polymers (Basel). 2016 Aug 9;8(8):291. doi: 10.3390/polym8080291.

Abstract

The complete orientational ordering tensor of quasi-ideal colloidal rods is obtained as a function of shear rate by performing rheo-SANS (rheology with small angle neutron scattering) measurements on isotropic fd-virus suspensions in the two relevant scattering planes, the flow-gradient (1-2) and the flow-vorticity (1-3) plane. Microscopic ordering can be identified as the origin of the observed shear thinning. A qualitative description of the rheological response by Smoluchowski, as well as Doi⁻Edwards⁻Kuzuu theory is possible, as we obtain a master curve for different concentrations, scaling the shear rate with the apparent collective rotational diffusion coefficient. However, the observation suggests that the interdependence of ordering and shear thinning at small shear rates is stronger than predicted. The extracted zero-shear viscosity matches the concentration dependence of the self-diffusion of rods in semi-dilute solutions, while the director tilts close towards the flow direction already at very low shear rates. In contrast, we observe a smaller dependence on the shear rate in the overall ordering at high shear rates, as well as an ever-increasing biaxiality.

摘要

通过在两个相关散射平面,即流动梯度(1-2)平面和流动涡度(1-3)平面上,对各向同性的fd病毒悬浮液进行流变小角中子散射(rheo-SANS,即结合小角中子散射的流变学)测量,得到了准理想胶体棒的完整取向有序张量作为剪切速率的函数。微观有序性可被确定为所观察到的剪切变稀的起源。由于我们获得了不同浓度下的主曲线,并用表观集体旋转扩散系数对剪切速率进行了标度,因此可以用斯莫卢霍夫斯基以及Doi-Edwards-Kuzuu理论对流变响应进行定性描述。然而,观察结果表明,在小剪切速率下,有序性和剪切变稀之间的相互依赖性比预测的更强。提取的零剪切粘度与半稀溶液中棒状粒子自扩散的浓度依赖性相匹配,而在非常低的剪切速率下,指向矢就已经向流动方向倾斜。相比之下,我们观察到在高剪切速率下,整体有序性对剪切速率的依赖性较小,同时双轴性不断增加。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/46b7/6432483/c43b6fceb510/polymers-08-00291-g001.jpg

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