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Characterizing the behavior of magnetorheological fluids at high velocities and high shear rates.

机译:表征磁流变流体在高速和高剪切速率下的行为。

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摘要

Magnetorheological (MR) fluids offer solutions to many engineering challenges. The success of MR fluid is apparent in many disciplines, ranging from the automotive and civil engineering communities to the biomedical engineering community. This well documented success of MR fluids continues to motivate current and future applications of MR fluid.; One such application that has been considered recently is MR fluid devices for use in impact and other high velocity applications. In such applications, the fluid environment within the device may be well beyond the scope of our understanding for these fluids. To date, little has been done to explore the suitability of MR fluids in such high velocity and high shear applications.; While future applications may expose the fluid to adverse flow conditions, we must also consider current and existing applications which expose the fluid to extreme flow environments. Consider, for example, an MR damper intended for automotive primary suspensions, in which shear rates may exceed 10 5 s-1. Flow conditions within these dampers far exceed existing fluid behavior characterization.; The aim of the current study is to identify the behavior of the fluid under these extreme operating conditions. Specifically, this study intends to identify the behavior of MR fluid subject to high rates of shear and high flow velocities. A high shear rheometer is built which allows for the high velocity testing of MR fluids. The rheometer is capable of fluid velocities ranging from 1 m/s to 37 m/s, with corresponding shear rates ranging from 0.14x105 s-1 to 2.5x105 s -1. Fluid behavior is characterized in both the off-state and the on-state.; The off-state testing was conducted in order to identify the high shear viscosity of the fluid. Because the high shear behavior of MR fluid is largely governed by the behavior of the carrier fluid, the carrier fluid behavior was also identified at high shear. Experiments were conducted using the high shear rheometer and the MR fluid was shown to exhibit nearly Newtonian post-yield behavior. A slight thickening was observed for growing shear rates. This slight thickening can be attributed to the behavior of the carrier fluid, which exhibited considerable thickening at high shear.; The purpose of the on-state testing was to characterize the MR effect at high flow velocities. As such, the MR fluid was run through the rheometer at various flow velocities and a number of magnetic field strengths. The term "dwell time" is introduced and defined as the amount of time the fluid spends in the presence of a magnetic field. Two active valve lengths were considered, which when coupled to the fluid velocities, generated dwell times ranging from 12 ms to 0.18 ms. The yield stress was found from the experimental measurements and the results indicate that the magnitude of the yield stress is sensitive to fluid dwell time. As fluid dwell times decrease, the yield stress developed in the fluid decreases. The results from the on-state testing clearly demonstrate a need to consider fluid dwell times in high velocity applications. Should the dwell time fall below the response time of the fluid, the yield stress developed in the fluid may only achieve a fraction of the expected value. These results imply that high velocity applications may be subject to diminished controllability for falling dwell times.; Results from this study may serve to aid in the design of MR fluid devices intended for high velocity applications. Furthermore, the identified behavior may lead to further developments in MR fluid technology. In particular, the identified behavior may be used to develop or identify an MR fluid well suited for high velocity and high shear applications.
机译:磁流变(MR)流体为许多工程挑战提供了解决方案。从汽车和土木工程界到生物医学工程界,MR流体的成功在许多学科中都是显而易见的。 MR流体的这种有据可查的成功继续激励着MR流体的当前和未来应用。最近已经考虑的一种这样的应用是用于冲击和其他高速应用的MR流体装置。在此类应用中,设备内的流体环境可能远远超出了我们对这些流体的理解范围。迄今为止,在这种高速和高剪切应用中,几乎没有做过探索MR流体的适用性的研究。尽管未来的应用可能会使流体暴露在不利的流动条件下,但我们还必须考虑当前和现有的将流体暴露于极端流动环境的应用。例如,考虑用于汽车主悬架的MR阻尼器,其剪切速率可能超过10 5 s-1。这些阻尼器内的流动条件远远超过了现有的流体特性。当前研究的目的是确定在这些极端操作条件下流体的行为。具体而言,本研究旨在确定MR流体在高剪切速率和高流速下的行为。内置了高剪切流变仪,可以对MR流体进行高速测试。流变仪的流体速度范围为1 m / s至37 m / s,相应的剪切速率范围为0.14x105 s-1至2.5x105 s -1。流体行为在关闭状态和开启状态下均具有特征。为了确定流体的高剪切粘度,进行了断态测试。因为MR流体的高剪切行为主要受载流体的行为支配,所以在高剪切下也可以确定载流体的行为。使用高剪切流变仪进行的实验表明,MR流体表现出几乎牛顿的屈服后性能。对于增加的剪切速率,观察到轻微的增厚。这种轻微的增稠可以归因于载流体的行为,其在高剪切下表现出相当大的增稠。通态测试的目的是表征高流速下的MR效应。这样,MR流体以各种流速和许多磁场强度流过流变仪。引入术语“停留时间”并将其定义为流体在磁场存在下所花费的时间量。考虑了两个有效的阀门长度,当它们与流体速度耦合时,会产生12毫秒至0.18毫秒的停留时间。通过实验测量发现了屈服应力,结果表明屈服应力的大小对流体的停留时间敏感。随着流体停留时间的减少,流体中产生的屈服应力减小。通态测试的结果清楚地表明,需要考虑高速应用中的流体停留时间。如果停留时间低于流体的响应时间,则在流体中产生的屈服应力可能只会达到预期值的一小部分。这些结果表明,对于下降的停留时间,高速应用可能会降低可控性。这项研究的结果可能有助于设计用于高速应用的MR流体设备。此外,所识别的行为可能导致MR流体技术的进一步发展。特别地,所识别的行为可以用于开发或识别适用于高速和高剪切应用的MR流体井。

著录项

  • 作者

    Goncalves, Fernando D.;

  • 作者单位

    Virginia Polytechnic Institute and State University.;

  • 授予单位 Virginia Polytechnic Institute and State University.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 114 p.
  • 总页数 114
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;
  • 关键词

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