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Mechanical characterisation of human and porcine scalp tissue at dynamic strain rates

机译:动态应变率的人与猪头皮组织的机械表征

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摘要

Several biomedical applications require knowledge of the behaviour of the scalp, including skin grafting, skin expansion and head impact biomechanics. Scalp tissue exhibits a non-linear stress-strain relationship, anisotropy and its mechanical properties depend on strain rate. When modelling the behaviour of the scalp, all these factors should be considered in order to perform realistic simulations. Here, tensile tests at strain rates between 0.005 and 100 s(-1) have been conducted on porcine and human scalp in order to investigate the non-linearity, anisotropy, and strain rate dependence of the scalp mechanical properties. The effect of the orientation of the sample with respect to the Skin Tension Lines (STLs) was considered during the test. The results showed that anisotropy is evident in the hyperelastic response at low strain rates (0.005 s(-1)) but not at higher strain rates (15-100 s(-1)). The mechanical properties of porcine scalp differ from human scalp. In particular, the elastic modulus and the Ultimate Tensile Strength (UTS) of the porcine scalp were found to be almost twice the values of the human scalp, whereas the stretch at failure was not found to be significantly different. An anisotropic hyperelastic model (Gasser-Ogden-Holzapfel) was used to model the quasi-static behaviour of the tissue, whereas three different isotropic hyperelastic models (Fung, Gent and Ogden) were used to model the behaviour of scalp tissue at higher strain rates. The experimental results outlined here have important implications for those wishing to model the mechanical behaviour of scalp tissue both under quasi-static and dynamic loading conditions.
机译:若干生物医学应用需要了解头皮的行为,包括皮肤移植,皮肤膨胀和头部冲击生物力学。头皮组织表现出非线性应力 - 应变关系,各向异性及其机械性能取决于应变率。在模拟头皮的行为时,应考虑所有这些因素以便执行现实的模拟。这里,在猪和人头皮上进行了0.005和100s(-1)的应变率的拉伸试验,以研究头皮机械性能的非线性,各向异性和应变率依赖性。在测试期间考虑样品取向对皮肤张力线(STL)的影响。结果表明,低应变率下的高速响应中的各向异性是明显的(0.005秒(-1)),但不是较高的应变率(15-100秒(-1))。猪头皮的力学性质与人头皮不同。特别地,发现猪头皮的弹性模量和极限拉伸强度(UTS)几乎是人头皮的值的两倍,而失败的伸展率未被发现显着不同。使用各向异性的超弹性模型(Gasser-ogden-holzapfel)来模拟组织的准静态行为,而三种不同的各向同性超弹性模型(Fung,Gent和Ogden)用于模拟高应变率下皮组织的行为。这里概述的实验结果对那些希望在准静态和动态负载条件下模拟头皮组织的机械行为的人具有重要意义。

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