Measurement of Young’s Modulus and Internal Damping of Pork Muscle in Dynamic Mode

M. Chakroun, M. H. B. Ghozlen
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引用次数: 0

Abstract

Automotive shocks involve various tiers’ speed for different human body tissues. Knowing the behavior of these tissues, including muscles, in different vibration frequency is therefore necessary. The muscle has viscoelatic properties. Dynamically, this material has variable mechanical properties depending on the vibration frequency. A novel technique is being employed to examine the variation of the mechanical impedance of pork muscle as a function of frequency. A force is imposed on the lower surface of the sample and acceleration is measured on its upper surface. These two parameters are measured using sensors. The sample is modeled by Kelvin–Voigt model. These measures allow deducing the change in the mechanical impedance modulus (/Zexp/ = /Force: Acceleration/) of pork muscle as a function of vibration frequency. The measured impedance has a resonance of approximately 60Hz. Best-fit parameters of theoretical impedance can be deduced by superposition with the experiment result. The variation of Young’s modulus and internal damping of pig’s muscle as a function of frequency are determined. The results obtained between 5Hz and 30Hz are the same as determined by Aimedieu and al in 2003, therefore validating our technique. The Young’s modulus of muscle increases with the frequency, on the other hand, we note a rating decrease of internal damping.
动态模式下猪肉肌肉杨氏模量和内阻尼的测量
汽车冲击涉及人体不同组织的不同层次速度。因此,了解包括肌肉在内的这些组织在不同振动频率下的行为是必要的。肌肉有粘弹性。动态上,这种材料的力学性能随振动频率的变化而变化。一种新的技术被用来检查猪肉肌肉的机械阻抗的变化作为一个函数的频率。在样品的下表面施加一个力,并在其上表面测量加速度。这两个参数是用传感器测量的。采用Kelvin-Voigt模型对样品进行建模。这些方法可以推导出猪肉肌肉的机械阻抗模量(/Zexp/ = /力:加速度/)随振动频率的变化。所测阻抗的共振频率约为60Hz。理论阻抗的最佳拟合参数可通过与实验结果的叠加得到。确定了猪肌肉的杨氏模量和内阻尼随频率的变化规律。在5Hz和30Hz范围内得到的结果与2003年Aimedieu等人测定的结果相同,因此验证了我们的技术。肌肉的杨氏模量随频率的增加而增加,另一方面,我们注意到内部阻尼的额定值降低。
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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