各向同性天然橡胶磁流变弹性体的动态特性

IF 1.2 4区 化学 Q4 POLYMER SCIENCE
Mahmud Iskandar Seth Abdul Rahim, Shamsul Kamaruddin, Nik Intan Nik Ismail, Nik Zakaria Nik Yahya, Nazirah Ahmad
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引用次数: 0

摘要

磁流变弹性体(MRE)是一种智能材料,由弹性体基体中的微米级铁颗粒组成,在外加磁场的作用下可表现出可变的动态特性。本文采用相关标准中概述的程序,对各向同性 MRE(羰基铁颗粒含量分别为 30 和 60 wt%)上的天然橡胶的静态和动态特性进行了实验分析。在剪切模式下,使用伺服液压机测量了这些材料的静态特性与磁通密度的函数关系。在剪切应变幅度(2.5% 至 20%)、频率(1 至 50 Hz)和磁通密度(0 至 240 mT)范围内,选择磁流变(MR)效应最高的 MRE 来测量以下动态特性。结果发现,存储模量和损耗模量随频率的增加而增加,随应变幅度的增加而减少。进一步研究发现,相对磁共振效应在剪切应变振幅为 5%、频率为 1 Hz 时达到峰值,数值为 14.11%。因此,在使用基于天然橡胶(NR)的 MRE 设计振动应用时,必须考虑低应变水平。测量的动态特性结果被用于制定马来西亚汽车产品的 MRE 测试规范,以及在各种工程应用中用于振动和噪声控制的智能材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Dynamic properties of isotropic natural rubber-based magnetorheological elastomers

Dynamic properties of isotropic natural rubber-based magnetorheological elastomers

Magnetorheological elastomers (MRE) are one of smart materials comprised of micron-sized iron particles in the elastomeric matrix, which exhibit variable dynamic properties in a changeable manner under the application of an external magnetic field. This paper presents experimental characterisations of static and dynamic properties of natural rubber-based on isotropic MRE with 30 and 60 wt% of carbonyl iron particles (CIPs) using the procedure outlined in the related standards. The static properties of these materials were measured as a function of the magnetic flux density using a servo-hydraulic machine in shear mode. The MRE with the highest magnetorheological (MR) effect was selected for the following dynamic properties with a range of shear strain amplitudes (2.5 to 20%), frequencies (1 to 50 Hz), and magnetic flux densities (0 to 240 mT). The storage modulus and loss modulus were found to increase with increasing frequency and decrease with increasing strain amplitude. Further investigation revealed that the relative MR effect reached its peak at 5% shear strain amplitude and 1 Hz with a value of 14.11%. Therefore, low strain levels must be considered in designing vibration applications using natural rubber (NR)-based MRE. The measured dynamic properties results were used to develop MRE test specifications for automotive products in Malaysia, as well as a possible smart material for vibration and noise control in various engineering applications.

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来源期刊
Journal of Rubber Research
Journal of Rubber Research 化学-高分子科学
自引率
15.40%
发文量
46
审稿时长
3 months
期刊介绍: The Journal of Rubber Research is devoted to both natural and synthetic rubbers, as well as to related disciplines. The scope of the journal encompasses all aspects of rubber from the core disciplines of biology, physics and chemistry, as well as economics. As a specialised field, rubber science includes within its niche a vast potential of innovative and value-added research areas yet to be explored. This peer reviewed publication focuses on the results of active experimental research and authoritative reviews on all aspects of rubber science. The Journal of Rubber Research welcomes research on: the upstream, including crop management, crop improvement and protection, and biotechnology; the midstream, including processing and effluent management; the downstream, including rubber engineering and product design, advanced rubber technology, latex science and technology, and chemistry and materials exploratory; economics, including the economics of rubber production, consumption, and market analysis. The Journal of Rubber Research serves to build a collective knowledge base while communicating information and validating the quality of research within the discipline, and bringing together work from experts in rubber science and related disciplines. Scientists in both academia and industry involved in researching and working with all aspects of rubber will find this journal to be both source of information and a gateway for their own publications.
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