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基于球型和棒型的磁流变液的动态流变学。

Dynamic rheology of sphere- and rod-based magnetorheological fluids.

机构信息

Department of Applied Physics, Faculty of Sciences, University of Granada, C/Fuentenueva s/n, Granada 1807, Spain.

出版信息

J Chem Phys. 2009 Nov 21;131(19):194902. doi: 10.1063/1.3259358.

Abstract

The effect of particle shape in the small amplitude oscillatory shear behavior of magnetorheological (MR) fluids is investigated from zero magnetic field strengths up to 800 kA/m. Two types of MR fluids are studied: the first system is prepared with spherical particles and a second system is prepared with rodlike particles. Both types of particles are fabricated following practically the same precipitation technique and have the same intrinsic magnetic and crystallographic properties. Furthermore, the distribution of sphere diameters is very similar to that of rod thicknesses. Rod-based MR fluids show an enhanced MR performance under oscillatory shear in the viscoelastic linear regime. A lower magnetic field strength is needed for the structuration of the colloid and, once saturation is fully achieved, a larger storage modulus is observed. Existing sphere- and rod-based models usually underestimate experimental results regarding the magnetic field strength and particle volume fraction dependences of both storage modulus and yield stress. A simple model is proposed here to explain the behavior of microrod-based MR fluids at low, medium and saturating magnetic fields in the viscoelastic linear regime in terms of magnetic interaction forces between particles. These results are further completed with rheomicroscopic and dynamic yield stress observations.

摘要

研究了从小振幅振荡剪切行为的磁流变 (MR) 流体的零磁场强度高达 800 kA/m 的颗粒形状的影响。两种类型的 MR 流体进行了研究:第一系统是用球形颗粒制备的,第二系统是用棒状颗粒制备的。这两种类型的颗粒都是按照几乎相同的沉淀技术制造的,具有相同的固有磁和结晶性能。此外,球径的分布与棒厚度的分布非常相似。在粘弹性线性区的振荡剪切下,基于棒的 MR 流体表现出增强的 MR 性能。胶体的结构化需要较低的磁场强度,并且一旦达到完全饱和,就会观察到较大的储能模量。现有的基于球和基于棒的模型通常低估了实验结果,即储能模量和屈服应力对磁场强度和颗粒体积分数的依赖性。在此提出了一个简单的模型,以解释在粘弹性线性区中的低、中和饱和磁场下基于微棒的 MR 流体的行为,该模型基于颗粒之间的磁相互作用力。这些结果进一步通过流变显微镜和动态屈服应力观察得到了补充。

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