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On the structural and material properties of mammalian skeletal muscle and its relevance to human cervical impact dynamics

机译:论哺乳动物骨骼肌的结构和材料特性及其与人宫颈影响动力学的相关性

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The absence of constitutive data on muscle has limited the development of models of cervical spinal dynamics and our understanding of the forces developed in the cervical spine during impact injury. Therefore, the purpose of this study is to characterize the structural and material properties of skeletal muscle. The structural responses of the tibialis anterior of the rabbit were characterized in the passive state using the quasi-linear theory of viscoelasticity (r = 0.931±0.032). In passive muscle, the average modulus at 20% strain was 1.75±1.18, 2.45±0.80, and 2.79±0.67 MPa at test rates of 4, 40, and 100 cm{sup}(-1), respectively. In simulated muscle, the mean initial stress was 0.44±0.15 MPa and the average modulus was 0.97±0.34 MPa. These data define a corridor of responses of skeletal muscle during injury, and are in a form suitable for incorporation into computational models of cervical spinal dynamics.
机译:没有关于肌肉的组成型数据限制了颈椎动力学模型的发展,以及我们对冲击损伤期间宫颈脊柱中发育的力的理解。因此,本研究的目的是表征骨骼肌的结构和材料特性。使用粘弹性的准线性理论(r = 0.931±0.032),兔胫骨上的胫骨前侧的结构应答表征在被动状态下(r = 0.931±0.032)。在被动肌肉中,在4,40和100cm}(-1)的测试速率下,20%菌株的平均模量为1.75±1.18,2.45±0.80和2.79±0.67MPa。在模拟肌肉中,平均初始应力为0.44±0.15MPa,平均模量为0.97±0.34MPa。这些数据在损伤期间定义了骨骼肌响应的走廊,并且是适合于掺入颈椎动力学计算模型的形式。

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