The Influence of Current Magnitudes and Profiles on the Sedimentation of Magnetorheological Fluids: An Experimental Work

IF 2.6 4区 化学 Q2 CHEMISTRY, INORGANIC & NUCLEAR Magnetochemistry Pub Date : 2024-03-07 DOI:10.3390/magnetochemistry10030018
Elliza Tri Maharani, Myeong-Won Seo, Jung Woo Sohn, Jong-Seok Oh, Seung-Bok Choi
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Abstract

Magnetorheological fluids (MRFs) are widely used for various kinds of controllable devices since their properties can be controlled by an external magnetic field. Despite many benefits of MRFs, such as fast response time, the sedimentation arisen due to the density mismatch of the compositions between iron particles and carrier oil is still one of bottlenecks to be resolved. Many studies on the sedimentation problem of MR fluids have been carried out considering appropriate additives, nanoparticles, and several carrier oils with different densities. However, a study on the effect of current magnitudes and profiles on the sedimentation is considerably rare. Therefore, this study experimentally investigates sedimentation behaviors due to different current magnitudes and different magnitude profiles such as square and sine waves in different diameters. The evaluation was performed by visual observation to obtain the sedimentation rate. It was found that the average sedimentation rate of the square type of current is slower compared to the sinusoidal type. It has also been identified that the higher intensity of the applied current results in a stronger electromagnetic field, which could slow down the sedimentation. The results achieved in this work can be effectively used to reduce particle sedimentation in the controller design of various application systems utilizing MRFs in which the controller generates a different magnitude and different profile of the external magnetic field.
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电流强度和剖面对磁流变流体沉积的影响:一项实验工作
磁流变液体(MRFs)的特性可以通过外部磁场进行控制,因此被广泛应用于各种可控设备。尽管磁流变流体具有响应速度快等诸多优点,但由于铁颗粒与载体油之间的成分密度不匹配而产生的沉降问题仍是亟待解决的瓶颈之一。针对磁共振成像流体的沉降问题,已有许多研究考虑了适当的添加剂、纳米颗粒和几种不同密度的载体油。然而,有关电流大小和剖面对沉降影响的研究却非常罕见。因此,本研究通过实验研究了不同电流大小和不同大小剖面(如不同直径的方波和正弦波)引起的沉积行为。评估通过目视观察来获得沉积速率。结果发现,与正弦波型相比,方波型电流的平均沉积速率较慢。此外还发现,施加的电流强度越大,电磁场越强,这可能会减缓沉积速度。在利用 MRF 的各种应用系统的控制器设计中,控制器会产生不同大小和不同剖面的外部磁场,本研究取得的结果可有效用于减少颗粒沉积。
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来源期刊
Magnetochemistry
Magnetochemistry Chemistry-Chemistry (miscellaneous)
CiteScore
3.90
自引率
11.10%
发文量
145
审稿时长
11 weeks
期刊介绍: Magnetochemistry (ISSN 2312-7481) is a unique international, scientific open access journal on molecular magnetism, the relationship between chemical structure and magnetism and magnetic materials. Magnetochemistry publishes research articles, short communications and reviews. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced.
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