Investigation of the Motion of a Spherical Object Located at Soft Elastic and Viscoelastic Material Interface for Identification of Material Properties

H. Koruk, A. N. Pouliopoulos
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引用次数: 1

Abstract

Measuring the properties of soft viscoelastic materials is challenging. Here, the motion of a spherical object located at the soft elastic and viscoelastic material interface for the identification of material properties is thoroughly investigated. Formulations for different loading cases were derived. First, the theoretical models for a spherical object located at an elastic medium interface were derived, ignoring the medium viscosity. After summarizing the model for the force reducing to zero following the initial loading, we developed mathematical models for the force reducing to a lower non-zero value or increasing to a higher non-zero value, following the initial loading. Second, a similar derivation process was followed to evaluate the response of a spherical object located at a viscoelastic medium interface. Third, by performing systematic analyses, the theoretical models obtained via different approaches were compared and evaluated. Fourth, the measured and predicted responses of a spherical object located at a gelatin phantom interface were compared and the viscoelastic material properties were identified. It was seen that the frequency of oscillations of a spherical object located at the sample interface during loading was 10–15% different from that during unloading in the experimental studies here. The results showed that different loading cases have immense practical value and the formulations for different loading cases can provide an accurate determination of material properties in a multitude of biomedical and industrial applications.
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研究位于软弹性和粘弹性材料界面的球形物体的运动,以确定材料特性
测量软粘弹性材料的特性具有挑战性。在此,我们对位于软弹性和粘弹性材料界面的球形物体的运动进行了深入研究,以确定材料特性。研究得出了不同加载情况下的计算公式。首先,在忽略介质粘度的情况下,推导了位于弹性介质界面的球形物体的理论模型。在总结了初始加载后力减小为零的模型后,我们建立了初始加载后力减小为较低的非零值或增加为较高的非零值的数学模型。其次,我们采用类似的推导过程来评估位于粘弹性介质界面的球形物体的响应。第三,通过系统分析,对不同方法得到的理论模型进行比较和评估。第四,比较了位于明胶模型界面上的球形物体的测量响应和预测响应,并确定了粘弹性材料特性。在这里的实验研究中,位于样品界面的球形物体在加载时的振荡频率与卸载时的振荡频率相差 10-15%。结果表明,不同的加载情况具有巨大的实用价值,不同加载情况下的配方可以准确测定材料在多种生物医学和工业应用中的特性。
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来源期刊
Applied Science and Engineering Progress
Applied Science and Engineering Progress Engineering-Engineering (all)
CiteScore
4.70
自引率
0.00%
发文量
56
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