Quaglini V, Vena P, Contro R
Department of Structural Engineering, Laboratory of Biological Structure Mechanics (LaBS), Politecnico di Milano, Piazza Leonardo da Vinci, 32, 20133, Milano, Italy.
Biomech Model Mechanobiol. 2004 Nov;3(2):85-97. doi: 10.1007/s10237-004-0050-y. Epub 2004 Jul 28.
This paper presents a novel approach to constitutive modeling of viscoelastic soft tissues. This formulation combines an anisotropic strain energy function, accounting for preferred material directions, to define the elastic stress-strain relationship, and a discrete time black-box dynamic model, borrowed from the theory of system identification, to describe the time-dependent behavior. This discrete time formulation is straightforwardly oriented to the development of a recursive time integration scheme that calculates the current stress state by using strain and stress values stored at a limited number of previous time instants. The viscoelastic model and the numerical procedure are assessed by implementing two numerical examples, the simulation of a uniaxial tensile test and the inflation of a thin tube. Both simulations are performed using parameter values based on previous experiments on preserved bovine pericardium. Parameters are then adjusted to investigate the sensitivity of the model. The hypotheses the model relies upon are discussed and the main limitations are stated.
本文提出了一种用于粘弹性软组织本构建模的新方法。该公式结合了一个各向异性应变能函数(考虑材料的优先方向)来定义弹性应力 - 应变关系,以及一个从系统识别理论借用的离散时间黑箱动态模型来描述随时间变化的行为。这种离散时间公式直接面向递归时间积分方案的开发,该方案通过使用存储在有限数量的先前时刻的应变和应力值来计算当前应力状态。通过实施两个数值示例来评估粘弹性模型和数值程序,即单轴拉伸试验的模拟和细管的膨胀。这两个模拟均使用基于先前对保存的牛心包进行实验的参数值进行。然后调整参数以研究模型的敏感性。讨论了模型所依赖的假设并阐述了主要局限性。