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Modified multiplicative decomposition model for tissue growth: Beyond the initial stress-free state

机译:修正的组织生长乘法分解模型:超越初始无应力状态

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摘要

The multiplicative decomposition model is widely employed for predicting residual stresses and morphologies of biological tissues due to growth. However, it relies on the assumption that the tissue is initially in a stress-free state, which conflicts with the observations that any growth state of a biological tissue is under a significant level of residual stresses that helps to maintain its ideal mechanical conditions. Here, we propose a modified multiplicative decomposition model in which the initial state (or reference configuration) of a biological tissue is endowed with a residual stress instead of being stress-free.Releasing theoretically the initial residual stress, the initially stressed state is first transmitted into a virtual stress-free state, thus resulting in an initial elastic deformation. The initial virtual stress-free state subsequently grows to another counterpart with a growth deformation, and the latter is further integrated into its natural configuration of a real tissue with an excessive elastic deformation that ensures tissue compatibility. With this decomposition, the total deformation arising during growth may be expressed as the product of elastic deformation, growth deformation and initial elastic deformation, while the corresponding free energy density should depend on the initial residual stress and the total deformation. Three key issues including the explicit expression of the free energy density, the predetermination of the initial elastic deformation, and the initial residual stress are addressed.Finally, we consider a tubular organ as a representative example to demonstrate the effects of the proposed initial residual stress on stress distribution and on shape formation through an incremental stability analysis. Our results suggest that the initial residual stress exerts a major influence on the growth stress and the morphology of biological tissues. The model bridges the gap between any two growth states of a biological tissue that is endowed with a certain level of residual stresses.
机译:乘法分解模型被广泛用于预测由于生长而引起的生物组织的残余应力和形态。但是,它基于这样的假设:组织最初处于无应力状态,这与以下观察结果相抵触:生物组织的任何生长状态都处于显着水平的残余应力下,这有助于维持其理想的机械状态。在这里,我们提出了一种改进的乘法分解模型,其中生物组织的初始状态(或参考配置)被赋予了残余应力而不是没有应力。理论上释放初始残余应力,首先传递了初始应力状态进入虚拟的无应力状态,从而导致初始的弹性变形。初始的虚拟无应力状态随后会随着增长变形而发展为另一个对应状态,并且后者会进一步整合到真实组织的自然构造中,并具有确保组织相容性的过度弹性变形。通过这种分解,生长过程中产生的总变形可以表示为弹性变形,生长变形和初始弹性变形的乘积,而相应的自由能密度应取决于初始残余应力和总变形。解决了三个关键问题,包括自由能密度的明确表达,初始弹性变形的确定以及初始残余应力。最后,我们以管状器官为代表实例,以证明所提出的初始残余应力的影响通过增量稳定性分析来分析应力分布和形状形成。我们的结果表明,初始残余应力对生长应力和生物组织的形态具有重要影响。该模型弥合了具有一定程度的残余应力的生物组织的任何两个生长状态之间的差距。

著录项

  • 来源
    《Journal of the Mechanics and Physics of Solids》 |2018年第9期|133-151|共19页
  • 作者单位

    Department of Engineering Mechanics, Zhejiang University;

    Department of Civil Engineering, Zhejiang University,Key Lab of Soft Machines and Smart Devices of Zhejiang Province, Zhejiang University,Soft Matter Research Center, Zhejiang University;

    Department of Engineering Mechanics, Zhejiang University,Key Lab of Soft Machines and Smart Devices of Zhejiang Province, Zhejiang University,Soft Matter Research Center, Zhejiang University;

    Department of Engineering Mechanics, Zhejiang University,School of Mathematics, Statistics and Applied Mathematics, NUI Galway;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Modified multiplicative decomposition model; Tissue growth; Initial residual stress; Virtual stress-free state; Morphology;

    机译:改进的乘法分解模型;组织生长;初始残余应力;虚拟无应力状态;形态;

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