A New Approach for Measuring Viscoelastic Properties of Soft Materials Using the Dynamic Response of a Spherical Object Placed at the Sample Interface

IF 2.4 3区 工程技术 Q2 MATERIALS SCIENCE, CHARACTERIZATION & TESTING Experimental Mechanics Pub Date : 2023-10-13 DOI:10.1007/s11340-023-01004-2
H. Koruk, H. O. Koc, S. B. Yurdaer, A. Besli, A. N. Pouliopoulos
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Abstract

Background

There are several techniques to characterize the mechanical properties of soft materials, such as the indentation method and the method based on the application of a spherical object placed inside the sample. The indentation systems usually yield the elastic properties of materials and their mathematical models do not consider the inertia of the sample involved in motion and radiation damping, while placing an object inside the sample is not practical and this procedure can alter the mechanical properties of the sample for the method based on the application of a bubble/sphere placed inside the sample.

Objective

A new approach for the identification of the viscoelastic properties of soft materials using the dynamic response of a spherical object placed at the sample interface was proposed.

Methods

The spherical object placed at the sample interface was pressed using an electromagnet and the dynamic response of the spherical object was tracked using a high-speed camera, while the dynamic response of the spherical object placed at the sample interface was estimated using a comprehensive analytical model. The effects of the shear modulus, viscosity, Poisson’s ratio and density of the soft sample, the radius and density of the spherical object and the damping due to radiation were considered in this mathematical model. The shear modulus and viscosity of the soft sample were determined by matching the experimentally identified and theoretically estimated responses of the spherical object.

Results

The shear moduli and viscosities of the three phantoms with the gelatin mass ratios of 0.20, 0.25 and 0.29 were measured to be 3450, 4300 and 4950 Pa and 12.5, 14.0 and 15.0 Pa⋅s, respectively. The shear modulus and viscosity of the phantom increases as the gelatin mass ratio increases. The frequency of oscillations of the hemisphere placed at the phantom interface increases as the gelatin mass ratio increases due to stiffness increase.

Conclusions

After matching the experimental and theoretical steady-state displacements and amplitudes of oscillations of the hemisphere at the sample interface, the comparison of the experimentally identified and theoretically predicted frequency of oscillations further confirmed the identified material properties of the samples. The approach presented here is expected to provide valuable information on material properties in biomedical and industrial applications.

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利用放置在样品界面上的球形物体的动态响应测量软材料粘弹性能的新方法
背景有几种表征软材料力学特性的技术,如压痕法和基于在样品内放置球形物体的方法。压痕系统通常得出材料的弹性特性,其数学模型没有考虑样品的运动惯性和辐射阻尼,而在样品内部放置一个物体是不切实际的,对于基于在样品内部放置气泡/球体的方法来说,这一过程可能会改变样品的机械特性。方法 使用电磁铁按压样品界面上的球形物体,并使用高速摄像机跟踪球形物体的动态响应,同时使用综合分析模型估算样品界面上球形物体的动态响应。该数学模型考虑了软样品的剪切模量、粘度、泊松比和密度、球形物体的半径和密度以及辐射阻尼的影响。结果测得明胶质量比为 0.20、0.25 和 0.29 的三个模型的剪切模量和粘度分别为 3450、4300 和 4950 Pa,以及 12.5、14.0 和 15.0 Pa⋅s。幻影的剪切模量和粘度随着明胶质量比的增加而增加。结论在对样品界面半球的实验和理论稳态位移和振荡振幅进行比对后,实验确定的振荡频率和理论预测的振荡频率的比较进一步证实了所确定的样品材料特性。本文介绍的方法有望为生物医学和工业应用中的材料特性提供有价值的信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Experimental Mechanics
Experimental Mechanics 物理-材料科学:表征与测试
CiteScore
4.40
自引率
16.70%
发文量
111
审稿时长
3 months
期刊介绍: Experimental Mechanics is the official journal of the Society for Experimental Mechanics that publishes papers in all areas of experimentation including its theoretical and computational analysis. The journal covers research in design and implementation of novel or improved experiments to characterize materials, structures and systems. Articles extending the frontiers of experimental mechanics at large and small scales are particularly welcome. Coverage extends from research in solid and fluids mechanics to fields at the intersection of disciplines including physics, chemistry and biology. Development of new devices and technologies for metrology applications in a wide range of industrial sectors (e.g., manufacturing, high-performance materials, aerospace, information technology, medicine, energy and environmental technologies) is also covered.
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