Dynamic micromechanical measurement of the flexural modulus of micrometre-sized diameter single natural fibres using a vibrating microcantilever technique

IF 2.4 4区 工程技术 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC Journal of Micromechanics and Microengineering Pub Date : 2023-12-05 DOI:10.1088/1361-6439/ad124e
Ali Reda, Thomas Dargent, Steve Arscott
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Abstract

The dynamic response of a structure is a manifestation of its inherent characteristics, including material density, mechanical modulus, thermo- and viscoelastic properties, and geometric properties. Together, these factors influence how the material behaves in dynamic scenarios, dictating its damping properties and behaviour under varying forces. In this study we present a novel approach to accurately determine the flexural (bending) modulus of microscopic diameter natural fibres (flax) using microcantilever vibration analysis. Traditionally, the characterisation of the mechanical properties of fibres has relied on macroscopic methods such as tensile testing, which often results in high scatter in measurement data; furthermore, tensile testing does not accurately represent microscale or dynamic conditions and can be complex in terms of sample preparation and loading. To address this, we have developed a microscale technique involving the fabrication of microcantilevers using flat polypropylene support chips, inspired by microelectromechanical systems (MEMS) approaches. Our approach provides a refined method for accurately characterising the mechanical modulus of flax fibres, with reduced data dispersion compared to traditional macroscopic testing. Furthermore, by reducing the influence of inherent fibre defects and maintaining homogeneity along the length of the fibre, our micro-scale technique provides reliable modulus determination. This work opens up avenues for improved understanding and application of natural and man-made fibres, such as glass and optical fibres, in a variety of fields.
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利用微悬臂振动技术对直径为微米的单根天然纤维的弯曲模量进行动态微机械测量
结构的动力响应是其固有特性的表现,包括材料密度、力学模量、热弹性和粘弹性以及几何特性。总之,这些因素影响材料在动态情况下的行为,决定其阻尼特性和在不同力下的行为。在这项研究中,我们提出了一种新的方法来准确地确定微观直径天然纤维(亚麻)的弯曲(弯曲)模量,使用微悬臂振动分析。传统上,纤维力学性能的表征依赖于宏观方法,如拉伸测试,这往往导致测量数据的高分散;此外,拉伸测试不能准确地代表微尺度或动态条件,并且在样品制备和加载方面可能很复杂。为了解决这个问题,受微机电系统(MEMS)方法的启发,我们开发了一种微尺度技术,涉及使用扁平聚丙烯支撑芯片制造微悬臂。我们的方法提供了一种精确表征亚麻纤维力学模量的精细方法,与传统的宏观测试相比,减少了数据的分散。此外,通过减少固有纤维缺陷的影响并保持沿纤维长度的均匀性,我们的微尺度技术提供了可靠的模量测定。这项工作为提高对天然纤维和人造纤维(如玻璃纤维和光纤)在各个领域的理解和应用开辟了道路。
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来源期刊
Journal of Micromechanics and Microengineering
Journal of Micromechanics and Microengineering 工程技术-材料科学:综合
CiteScore
4.50
自引率
4.30%
发文量
136
审稿时长
2.8 months
期刊介绍: Journal of Micromechanics and Microengineering (JMM) primarily covers experimental work, however relevant modelling papers are considered where supported by experimental data. The journal is focussed on all aspects of: -nano- and micro- mechanical systems -nano- and micro- electomechanical systems -nano- and micro- electrical and mechatronic systems -nano- and micro- engineering -nano- and micro- scale science Please note that we do not publish materials papers with no obvious application or link to nano- or micro-engineering. Below are some examples of the topics that are included within the scope of the journal: -MEMS and NEMS: Including sensors, optical MEMS/NEMS, RF MEMS/NEMS, etc. -Fabrication techniques and manufacturing: Including micromachining, etching, lithography, deposition, patterning, self-assembly, 3d printing, inkjet printing. -Packaging and Integration technologies. -Materials, testing, and reliability. -Micro- and nano-fluidics: Including optofluidics, acoustofluidics, droplets, microreactors, organ-on-a-chip. -Lab-on-a-chip and micro- and nano-total analysis systems. -Biomedical systems and devices: Including bio MEMS, biosensors, assays, organ-on-a-chip, drug delivery, cells, biointerfaces. -Energy and power: Including power MEMS/NEMS, energy harvesters, actuators, microbatteries. -Electronics: Including flexible electronics, wearable electronics, interface electronics. -Optical systems. -Robotics.
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