School of Mechanical and Power Engineering, Harbin University of Science and Technology, Harbin, China.
Comput Methods Biomech Biomed Engin. 2020 Dec;23(16):1277-1286. doi: 10.1080/10255842.2020.1795839. Epub 2020 Jul 21.
It is obvious that the mechanical properties of arterial tissue include compressibility, anisotropy, and the fact that the out-of-plane shear modulus is smaller than the shear modulus in the plane of the fibers. However, the last point is rarely considered when it comes to compressible anisotropic hyperelastic models. In order to acquire different shear moduli, we propose a modified hyperelastic model including the influence of strain invariants and The convergence and correctness of this model are verified through the hydrostatic tension test, uniaxial tension test, and shear deformation test. It turns out that our model correctly predicts an anisotropic response and volume change to hydrostatic tensile test and the fact that the out-of-plane shear modulus is always smaller than the shear modulus in the plane of the fibers in shear deformation test. We conclude that the influence of strain invariants and is great, especially in the shear deformation, so that it is necessary to include and in the compressible anisotropic hyperelastic model.
很明显,动脉组织的力学性能包括可压缩性、各向异性以及平面外剪切模量小于纤维平面内剪切模量的事实。然而,在涉及可压缩各向异性超弹性模型时,很少考虑最后一点。为了获得不同的剪切模量,我们提出了一种改进的超弹性模型,包括应变不变量 和 的影响。通过静水张力试验、单轴拉伸试验和剪切变形试验验证了该模型的收敛性和正确性。结果表明,我们的模型正确地预测了各向异性响应和体积变化对静水拉伸试验,以及剪切变形试验中平面外剪切模量始终小于纤维平面内剪切模量的事实。我们得出结论,应变不变量 和 的影响很大,特别是在剪切变形中,因此有必要在可压缩各向异性超弹性模型中包含 和 。