Magnetorheological Elastomer Stress Relaxation Behaviour during Compression: Experiment and Modelling

Materials characterized by magnetorheological properties are non-classic engineering materials. A significant increase in the interest of the scientific community about this group of materials could be observed over the recent years. The results of research presented in this article are oriented on...

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Main Authors: Mateusz Kukla, Łukasz Warguła, Krzysztof Talaśka, Dominik Wojtkowiak
Format: Article
Language:English
Published: MDPI AG 2020-10-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/13/21/4795
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spelling doaj-df458af5943b4465a34f6344e5db688e2020-11-25T03:34:42ZengMDPI AGMaterials1996-19442020-10-01134795479510.3390/ma13214795Magnetorheological Elastomer Stress Relaxation Behaviour during Compression: Experiment and ModellingMateusz Kukla0Łukasz Warguła1Krzysztof Talaśka2Dominik Wojtkowiak3Institute of Machine Design, Faculty of Mechanical Engineering, Poznan University of Technology, Piotrowo 3, PL-60965 Poznan, PolandInstitute of Machine Design, Faculty of Mechanical Engineering, Poznan University of Technology, Piotrowo 3, PL-60965 Poznan, PolandInstitute of Machine Design, Faculty of Mechanical Engineering, Poznan University of Technology, Piotrowo 3, PL-60965 Poznan, PolandInstitute of Machine Design, Faculty of Mechanical Engineering, Poznan University of Technology, Piotrowo 3, PL-60965 Poznan, PolandMaterials characterized by magnetorheological properties are non-classic engineering materials. A significant increase in the interest of the scientific community about this group of materials could be observed over the recent years. The results of research presented in this article are oriented on the examination of the said materials’ mechanical properties. Stress relaxation tests were carried out on cylindrical samples of magnetorheological elastomers loaded with compressive stress, for various values of magnetic induction (B1 = 0 mT, B2 = 32 mT, B3 = 48 mT, and B4 = 64 mT) and temperature (T1 = 25 °C, T2 = 30 °C, and T3 = 40 °C). The results of these tests indicate that the stiffness of the examined samples increased along with the increase of magnetic field induction, and decreased along with the increase of temperature. On this basis, it has been determined that: the biggest stress amplitude change, caused by the influence of magnetic field, was σ0ΔB = 12.7%, and the biggest stress amplitude change, caused by the influence of temperature, was σ0ΔT = 11.3%. As a result of applying a mathematical model, it was indicated that the stress relaxation in the examined magnetorheological elastomer, for the adopted time range (t = 3600 s), had a hyperbolic decline nature. The collected test results point to the examined materials being characterized by extensive rheological properties, which leads to the conclusion that it is necessary to conduct further tests in this area.https://www.mdpi.com/1996-1944/13/21/4795mechanical properties of advanced materialsmagneto-rheological (MR)elastomerstress relaxationmathematical model
collection DOAJ
language English
format Article
sources DOAJ
author Mateusz Kukla
Łukasz Warguła
Krzysztof Talaśka
Dominik Wojtkowiak
spellingShingle Mateusz Kukla
Łukasz Warguła
Krzysztof Talaśka
Dominik Wojtkowiak
Magnetorheological Elastomer Stress Relaxation Behaviour during Compression: Experiment and Modelling
Materials
mechanical properties of advanced materials
magneto-rheological (MR)
elastomer
stress relaxation
mathematical model
author_facet Mateusz Kukla
Łukasz Warguła
Krzysztof Talaśka
Dominik Wojtkowiak
author_sort Mateusz Kukla
title Magnetorheological Elastomer Stress Relaxation Behaviour during Compression: Experiment and Modelling
title_short Magnetorheological Elastomer Stress Relaxation Behaviour during Compression: Experiment and Modelling
title_full Magnetorheological Elastomer Stress Relaxation Behaviour during Compression: Experiment and Modelling
title_fullStr Magnetorheological Elastomer Stress Relaxation Behaviour during Compression: Experiment and Modelling
title_full_unstemmed Magnetorheological Elastomer Stress Relaxation Behaviour during Compression: Experiment and Modelling
title_sort magnetorheological elastomer stress relaxation behaviour during compression: experiment and modelling
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2020-10-01
description Materials characterized by magnetorheological properties are non-classic engineering materials. A significant increase in the interest of the scientific community about this group of materials could be observed over the recent years. The results of research presented in this article are oriented on the examination of the said materials’ mechanical properties. Stress relaxation tests were carried out on cylindrical samples of magnetorheological elastomers loaded with compressive stress, for various values of magnetic induction (B1 = 0 mT, B2 = 32 mT, B3 = 48 mT, and B4 = 64 mT) and temperature (T1 = 25 °C, T2 = 30 °C, and T3 = 40 °C). The results of these tests indicate that the stiffness of the examined samples increased along with the increase of magnetic field induction, and decreased along with the increase of temperature. On this basis, it has been determined that: the biggest stress amplitude change, caused by the influence of magnetic field, was σ0ΔB = 12.7%, and the biggest stress amplitude change, caused by the influence of temperature, was σ0ΔT = 11.3%. As a result of applying a mathematical model, it was indicated that the stress relaxation in the examined magnetorheological elastomer, for the adopted time range (t = 3600 s), had a hyperbolic decline nature. The collected test results point to the examined materials being characterized by extensive rheological properties, which leads to the conclusion that it is necessary to conduct further tests in this area.
topic mechanical properties of advanced materials
magneto-rheological (MR)
elastomer
stress relaxation
mathematical model
url https://www.mdpi.com/1996-1944/13/21/4795
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AT krzysztoftalaska magnetorheologicalelastomerstressrelaxationbehaviourduringcompressionexperimentandmodelling
AT dominikwojtkowiak magnetorheologicalelastomerstressrelaxationbehaviourduringcompressionexperimentandmodelling
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