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均匀磁场中磁活性弹性体圆柱的巨大拉伸应变

Giant Extensional Strain of Magnetoactive Elastomeric Cylinders in Uniform Magnetic Fields.

作者信息

Saveliev Dmitry V, Belyaeva Inna A, Chashin Dmitry V, Fetisov Leonid Y, Romeis Dirk, Kettl Wolfgang, Kramarenko Elena Yu, Saphiannikova Marina, Stepanov Gennady V, Shamonin Mikhail

机构信息

Research and Education Center "Magnetoelectric Materials and Devices", MIREA - Russian Technological University, 119454 Moscow, Russia.

East Bavarian Centre for Intelligent Materials (EBACIM), Ostbayerische Technische Hochschule (OTH) Regensburg, Seybothstr. 2, 93053 Regensburg, Germany.

出版信息

Materials (Basel). 2020 Jul 24;13(15):3297. doi: 10.3390/ma13153297.

Abstract

Elongations of magnetoactive elastomers (MAEs) under ascending-descending uniform magnetic fields were studied experimentally using a laboratory apparatus specifically designed to measure large extensional strains (up to 20%) in compliant MAEs. In the literature, such a phenomenon is usually denoted as giant magnetostriction. The synthesized cylindrical MAE samples were based on polydimethylsiloxane matrices filled with micrometer-sized particles of carbonyl iron. The impact of both the macroscopic shape factor of the samples and their magneto-mechanical characteristics were evaluated. For this purpose, the aspect ratio of the MAE cylindrical samples, the concentration of magnetic particles in MAEs and the effective shear modulus were systematically varied. It was shown that the magnetically induced elongation of MAE cylinders in the maximum magnetic field of about 400 kA/m, applied along the cylinder axis, grew with the increasing aspect ratio. The effect of the sample composition is discussed in terms of magnetic filler rearrangements in magnetic fields and the observed experimental tendencies are rationalized by simple theoretical estimates. The obtained results can be used for the design of new smart materials with magnetic-field-controlled deformation properties, e.g., for soft robotics.

摘要

使用专门设计用于测量柔性磁活性弹性体(MAE)中大幅拉伸应变(高达20%)的实验室设备,对磁活性弹性体在升降均匀磁场下的伸长情况进行了实验研究。在文献中,这种现象通常被称为巨磁致伸缩。合成的圆柱形MAE样品基于填充有微米级羰基铁粉的聚二甲基硅氧烷基体。评估了样品的宏观形状因子及其磁机械特性的影响。为此,系统地改变了MAE圆柱形样品的纵横比、MAE中磁性颗粒的浓度和有效剪切模量。结果表明,沿圆柱轴线施加约400 kA/m的最大磁场时,MAE圆柱体的磁致伸长随纵横比的增加而增大。从磁场中磁性填料的重新排列角度讨论了样品成分的影响,并通过简单的理论估计使观察到的实验趋势合理化。所得结果可用于设计具有磁场控制变形特性的新型智能材料,例如用于软机器人技术。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9059/7435617/7ba96561402d/materials-13-03297-g001.jpg

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