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Method for Dynamic Material Property Characterization of Soft-Tissue-Mimicking Isotropic Viscoelastic Materials Using Fractional Damping Models

机译:分数阻尼模型的模拟软组织各向同性粘弹性材料的动态材料特性表征方法

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摘要

Characterization of the mechanical properties of human-tissue-mimicking silicone elastomers is important for producing accurate tissue models for experimentation. However, the viscoelastic and frequency-dependent material properties of elastomers are difficult to quantify. We present a material characterization technique for a silicone elastomer used to mimic human soft tissue based on generalized-Maxwell-type material models with and without fractional dissipating mechanisms. The silicone specimens were prestressed and had the shape of cylindrical rods. It was possible to consistently identify material properties of all specimen samples from different batches of the material obtained from the manufacturer. As a general trend, material models with a higher number of parameters performed better, with the exception of models with fractional order damping mechanisms. Fractional models had the highest success for nearly all the samples in representing the dynamic behavior of the elastomer in the frequency range of 5-100 Hz, where the specimen structure displays a strong modal response.
机译:模仿人体组织的有机硅弹性体的机械性能表征对于产生用于实验的精确组织模型非常重要。然而,弹性体的粘弹性和随频率变化的材料特性难以量化。我们提出了一种有机硅弹性体的材料表征技术,该技术用于基于具有和不具有分数耗散机制的广义Maxwell型材料模型来模拟人体软组织。硅树脂样品经过预应力处理,并具有圆柱棒的形状。从制造商获得的不同批次的材料中,可以始终如一地识别所有样本样品的材料特性。作为一般趋势,具有分数阶阻尼机制的模型除外,具有更多参数的材料模型的性能更好。对于几乎所有样品而言,分数模型在表示弹性体在5-100 Hz频率范围内的动态行为方面均具有最高的成功率,其中样品结构表现出很强的模态响应。

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