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牛脊髓白质在不同应变速率条件下的力学行为:拉伸试验和黏超弹本构建模。

The mechanical behavior of bovine spinal cord white matter under various strain rate conditions: tensile testing and visco-hyperelastic constitutive modeling.

机构信息

Department of Mechanical Engineering, Graduate School of Sciences and Technology for Innovation, Yamaguchi University, 2-16-1 Tokiwadai, Ube, Yamaguchi, 755-8611, Japan.

Department of Mechanical and Electrical Engineering, National Institute of Technology, Tokuyama College, Gakuendai, Shunan, Yamaguchi, 745-8585, Japan.

出版信息

Med Biol Eng Comput. 2023 Jun;61(6):1381-1394. doi: 10.1007/s11517-023-02787-1. Epub 2023 Jan 28.

Abstract

The mechanical behavior of the white matter is important for estimating the damage of the spinal cord during accidents. In this study, we conducted uniaxial tension testing in vitro of bovine spinal cord white matter under extremely high strain rate conditions (up to 100 s). A visco-hyperelastic constitutive law for modeling the strain rate-dependent behavior of the bovine spinal cord white matter was developed. A set of material constants was obtained using a Levenberg-Marquardt fitting algorithm to match the uniaxial tension experimental data with various strain rates. Our experimental data confirmed that the modulus and tensile strength increased when the strain rate is higher. For the extremely high strain rate condition (100 s), we found that both the modulus and failure stress significantly increased compared with the low strain rate case. These new data in terms of mechanical response at high strain rate provide insight into the spine injury mechanism caused by high-speed impact. Moreover, the developed constitutive model will allow researchers to perform more realistic finite element modeling and simulation of spinal cord injury damage under various complicated conditions.

摘要

白质的力学行为对于评估事故中脊髓的损伤程度非常重要。在这项研究中,我们对牛脊髓白质进行了极高应变速率条件下(高达 100s)的单轴拉伸测试。我们开发了一种黏超弹性本构模型来模拟牛脊髓白质的应变速率相关行为。通过使用 Levenberg-Marquardt 拟合算法,得到了一组材料常数,用于将单轴拉伸实验数据与各种应变速率匹配。我们的实验数据证实,当应变率增加时,模量和拉伸强度会增加。对于极高应变速率条件(100s),我们发现与低应变速率情况相比,模量和破坏应力都显著增加。这些在高应变速率下的力学响应的新数据为高速冲击引起的脊柱损伤机制提供了深入了解。此外,所开发的本构模型将允许研究人员在各种复杂条件下对脊髓损伤损伤进行更逼真的有限元建模和模拟。

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