Magneto Rheological properties of Cobalt ferrite based MR fluids

M. Venkateswarlu, B. Rajinikanth
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引用次数: 1

Abstract

Magneto Rheological fluids are made of soft magnetic particles dispersed in a carrier fluid. Here cobalt ferrite based magneto rheological fluids were made from the nanopowders of cobalt ferrite obtained from the simple wet chemical synthesis from the metal salts dispersed in the Polyvinyl Pyrrolidone (PVP). The nanoparticle Cobalt ferrite was heat treated at 600C for five and half hours in a furnace. The sample was characterized by using Xray Diffraction(XRD), Scanning Electron Microscopy(SEM) and Energy Dispersive X-ray Analysis (EDAX). Cobalt ferrite which is mixed with different weight percent solutions of PVP to make the Magneto Rheological fluid samples. These samples were characterized by the Rheometere in both oscillatory, rotational measurement conditions. The variation in viscosity with respect to the magnetic field, storage and loss modulus and damping of the samples were measured and presented in this paper. Magneto rheological (MR) fluids are dispersions of fine magnetically soft, multi domain particles. MR fluids exhibit rapid, reversible and significant changes in their viscosity and shear modulus when subjected to external magnetic field. The apparent yield strength of these fluids can be changed significantly within milliseconds by the application of an external magnetic field [13]. MR fluid devices are being used and developed for shock absorbers, clutches, brakes, and seismic dampers[4].The physical properties of an MR fluid change as a nonlinearly time varying function of applied field driven particle alignment with the typical hysteresis of magnetic materials [5]. The external magnetic field applied to the MR fluid causes changes in all physical properties of the fluid, such as Electrical conductivity, thermal conductivity, permeability, as well as viscosity[3, 68].MR fluid viscosity is very much sensitive to changes on external magnetic fields. Viscosity depends on particle concentration, particle shape, size and material in combination with several carrier fluids [5]. In the current MR devices control of the viscosity is performed by the direct excitation of the external magnetic field. The non-linear, hysteretic time varying response of the fluid is an obstacle to precision viscosity control despite fast response time. Most of the times the MR fluids encounter different operating conditions in which their visco elastic properties plays a vital role. Therefore an understanding of the dynamic behavior of the MR fluid will be crucial for the design[9]. Most of the MR devices operate under dynamic conditions (vibrators, dampers, etc) thus small amplitude oscillatory and rotational measuring rheometer provide more useful results [10]. Keeping these points in view, in the present study we have made an MR fluid which is comprising of magnetically soft Co ferrite nano powders weight percent solutions of PVP and studied their oscillational and rotational viscoelastic properties and results are presented in this paper.
钴铁氧体基磁流变液的磁流变特性
磁流变流体是由分散在载体流体中的软磁颗粒构成的。以分散在聚乙烯吡咯烷酮(PVP)中的金属盐为原料,通过湿法合成的纳米铁氧体钴粉为原料制备了铁氧体钴基磁流变液。将纳米颗粒钴铁氧体在600℃的炉中热处理5个半小时。采用x射线衍射(XRD)、扫描电镜(SEM)和能量色散x射线分析(EDAX)对样品进行了表征。将钴铁氧体与不同重量百分比的PVP溶液混合制成磁流变液样品。在振荡、旋转两种测量条件下,用流变仪对这些样品进行了表征。本文测量并介绍了样品的粘度随磁场、存储和损耗模量以及阻尼的变化。磁流变(MR)流体是细磁软的多畴粒子的分散体。磁流变液在受到外磁场作用时,其粘度和剪切模量表现出快速、可逆和显著的变化。这些流体的表观屈服强度可以在几毫秒内通过施加外部磁场而发生显著变化[13]。磁共振流体装置正被用于减震器、离合器、制动器和地震减震器[4]。磁流变液的物理性质随外加磁场驱动的粒子排列呈非线性时变函数变化,具有典型的磁性材料磁滞特性[5]。施加在MR流体上的外磁场会改变流体的所有物理性质,如导电性、导热性、渗透率和粘度[3,68]。磁流变液的粘度对外部磁场的变化非常敏感。粘度取决于颗粒浓度、颗粒形状、大小和材料,并结合几种载体流体[5]。在目前的磁流变装置中,粘度的控制是通过外部磁场的直接激发来实现的。流体的非线性、滞后时变响应是实现高精度粘度控制的一个障碍。在大多数情况下,磁流变液遇到不同的操作条件,其中它们的粘弹性起着至关重要的作用。因此,了解磁流变液的动态行为对设计至关重要[9]。大多数磁流变装置在动态条件下工作(振动器、阻尼器等),因此小振幅振荡和旋转测量流变仪提供了更有用的结果[10]。有鉴于此,本研究制作了一种由磁性软钴铁氧体纳米粉末(重量百分比为PVP)溶液组成的磁流变液,研究了其振荡和旋转粘弹性性能,并给出了研究结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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