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Development of highly magnetostrictive composites for applications in magnetomechanical torque sensors.

机译:开发用于磁机械扭矩传感器的高磁致伸缩复合材料。

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摘要

The objective of this work was to investigate and develop a new type of magnetomechanical material with high magnetomechanical response and low hysteresis. This material will be used in electronic torque sensors. A major appreciation could be for advanced steering systems in automobiles which will replace the fuel inefficient hydraulic steering systems currently in use.; The effect of the matrix material on the magnetostriction of composites containing highly magnetostrictive particles was studied. Both experimental and modeled results showed that the elastic modulus of the matrix is an important factor determining the magnetostriction of the composite. For a series of composites with the same volume fraction of Terfenol-D particles but different matrix materials, the saturation magnetostriction was found to increase systematically with decreasing modulus of the matrix.; A magnetic torque sensor test bed was developed as part of the present investigation. This instrumentation was used to make the magnetomechanical measurements under torsional stress. After investigating both of the H-sigma processes and sigma-H processes of metal rods (Fe, Co, Ni), it was shown that a high piezomagnetic coefficient, together with a high saturation magnetostriction are two "figures of merit" for choosing materials for magnetomechanical sensors.; A new class of materials, metal-bonded (Ag/Ni/Co) Co-ferrite composites, has been found to be better than the traditional magnetostrictive materials for this application. These materials exhibited magnetostriction in excess of 200 ppm and a d33 Coefficient, 1.3 x 10--9 A--1m. A prototype of torque sensor was constructed from this material. The sensitivity of surface magnetic field to applied torque as high as 65 AN--1m--2 in the torque range of +/-10N·m was observed. The temperature dependence of the magnetomechanical sensitivity and hysteresis were measured over the range --37 to 90°C. Both decreased as the temperature increased throughout the entire range. The magnetomechanical hysteresis became negligible at temperatures higher than 60°C, above which it gave a linear magnetic field change in response to torque.; The magnetomechanical effect under torque was modeled with an extension of the existing uniaxial model of the magnetomechanical effect. The modeled results show similar behavior to the experimental results and give quantitatively realistic values of sensitivity and hysteresis.
机译:这项工作的目的是研究和开发一种新型的具有高磁机械响应和低磁滞的磁机械材料。该材料将用于电子扭矩传感器。对于汽车的先进转向系统将是主要的赞赏,它将取代目前使用的燃油效率低的液压转向系统。研究了基质材料对包含高磁致伸缩颗粒的复合材料磁致伸缩的影响。实验结果和模型结果均表明,基体的弹性模量是决定复合材料磁致伸缩的重要因素。对于一系列具有相同体积的Terfenol-D颗粒但具有不同基质材料的复合材料,发现饱和磁致伸缩随着基质模量的降低而系统地增加。磁扭矩传感器测试台是本研究的一部分。该仪器用于在扭转应力下进行磁机械测量。在研究了金属棒(Fe,Co,Ni)的H-sigma过程和sigma-H过程之后,发现高压电系数以及高饱和磁致伸缩是选择材料的两个“优值”用于磁机械传感器。已经发现,一类新型材料是金属结合(Ag / Ni / Co)铁氧体复合材料,其性能优于传统的磁致伸缩材料。这些材料的磁致伸缩超过200 ppm,d33系数为1.3 x 10--9 A--1m。扭矩传感器的原型就是用这种材料制成的。在+/- 10N·m的扭矩范围内,观察到了表面磁场对高达65 AN--1m--2的施加扭矩的敏感性。在--37至90°C的范围内测量了磁机械灵敏度和磁滞的温度依赖性。随着温度在整个范围内升高,两者均降低。磁机械滞后在高于60°C的温度下可忽略不计,高于60°C时,其磁滞响应于转矩而变化。在转矩作用下的磁机械效应是通过扩展现有的单轴磁机械效应模型来建模的。建模结果显示出与实验结果相似的行为,并给出了灵敏度和滞后的定量现实值。

著录项

  • 作者

    Chen, Yonghua.;

  • 作者单位

    Iowa State University.;

  • 授予单位 Iowa State University.;
  • 学科 Engineering Mechanical.; Physics Electricity and Magnetism.; Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 1999
  • 页码 162 p.
  • 总页数 162
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;电磁学、电动力学;工程材料学;
  • 关键词

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