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Method of Measuring Deformations of Magnetoactive Elastomers under the Action of Magnetic Fields

https://doi.org/10.32362/2500-316X-2019-7-4-81-91

Abstract

Magnetic deformation is a change in the size and shape of a sample under the action of a uniform external magnetic field. The study of this effect in various materials provides deep understanding of the nature of magnetic and mechanical interactions. Moreover, magnetic deformation is of great interest from an engineering point of view for designing new devices. In magnetoactive elastomers containing magnetic microparticles in the polymer matrix, a giant deformation is detected under the action of an external magnetic field. The generally accepted methods for measuring magnetic deformation in magnetoactive soft materials are now practically absent. The article describes the installation for the study of the magnetomechanical characteristics of magnetoactive elastomers and demonstrates its experimental capabilities. The installation allows to measure deformations in the range from 0 to 12.5 mm with a resolution of 1 micron. The deformation curves obtained using these installations are required for developing actuators and sensors based on magnetoactive elastomers, and also for improving their manufacturing technologies.

About the Authors

D. V. Saveliev
MIREA – Russian Technological University
Russian Federation

Postgraduate Student of the Chair of Nanoelectronics, Institute of Physics and Technology

78, Vernadskogo pr., Moscow 119454, Russia

ResearcherID D-8952-2019

Scopus Author ID 57196479660



L. Yu. Fetisov
MIREA – Russian Technological University
Russian Federation

Cand. of Sci. (Physics and Mathematics), Associate Professor of the Chair of Nanoelectronics, Institute of Physics and Technology

78, Vernadskogo pr., Moscow 119454, Russia

ResearcherID D-1163-2013

Scopus Author ID 26431336600



D. V. Chashin
MIREA – Russian Technological University
Russian Federation

Leading Engineer of the Research and Educational Center «Magnetoelectric materials and Devices»

ResearcherID D-9629-2019

Scopus Author ID 23977510200

78, Vernadskogo pr., Moscow 119454, Russia



P. A. Shabin
MIREA – Russian Technological University
Russian Federation

Student of the Chair of Nanoelectronics, Institute of Physics and Technology

78, Vernadskogo pr., Moscow 119454, Russia



D. A. Vyunik
MIREA – Russian Technological University
Russian Federation

Student of the Chair of Nanoelectronics, Institute of Physics and Technology

78, Vernadskogo pr., Moscow 119454, Russia



F. A. Fedulov
MIREA – Russian Technological University
Russian Federation

Postgraduate Student of the Chair of Nanoelectronics, Institute of Physics and Technology

78, Vernadskogo pr., Moscow 119454, Russia



W. Kettl
Ostbayerische Technische Hochschule Regensburg
Germany

Master Student «Electrical Engineering and Microsystem Technology»

58, Prüfeninger Str., Regensburg 93049, Germany



M. Shamonin
Ostbayerische Technische Hochschule Regensburg
Germany

Dr. Rer. Nat., Professor, Fakultät Elektro- und Informationstechnik 

58, Prüfeninger Str., Regensburg 93049, Germany)

Scopus Author ID 7003493217



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Supplementary files

1. Fig. 3. The apparatus for measuring the dependence of magnetostriction of magnetoactive elastomers on the magnetic field H.
Subject
Type Research Instrument
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Saveliev D.V., Fetisov L.Yu., Chashin D.V., Shabin P.A., Vyunik D.A., Fedulov F.A., Kettl W., Shamonin M. Method of Measuring Deformations of Magnetoactive Elastomers under the Action of Magnetic Fields. Russian Technological Journal. 2019;7(4):81-91. (In Russ.) https://doi.org/10.32362/2500-316X-2019-7-4-81-91

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ISSN 2782-3210 (Print)
ISSN 2500-316X (Online)