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Modelling plant cell expansion in VirtualLeaf.

机译:在VirtualLeaf中模拟植物细胞扩展。

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摘要

At the cellular level the mechanical properties of cell walls have a direct influence on cell size, shape and expansion as well as the cell's water relations. The aim of this study is the construction of realistic models for plant cell wall mechanics describing correctly the wall elasticity, plasticity and viscoelasticity, and the extension of the capabilities of the VirtualLeaf software framework.;A more robust criterion for Monte Carlo (MC) energy minimization method in VirtualLeaf was developed where a use of gradient norm is impossible due to multivariable and complex systems. This sliding window criterion is based on the continuous checking a threshold value within some energy difference window sliding along the energy change of the system. In this method the correctness of finding a stable state increases drastically in comparison with a single value method used in original VirtualLeaf.;A robust method based a MC evolution of total energy during equilibration cycle was elaborated for choosing the good values of MC parameters. It was shown that the values of parameters found in this way were optimal for the fast reaching the equilibrated state.;An Elastic Wall method of Hamiltonian has been developed and implemented in VirtualLeaf. In this method the whole wall between cells is used in Hamiltonian instead of its edges. In this new approach the individual resting lengths for each wall were introduced. Using the wall is physically correct in relation of its whole extension/compression than the local changing within one of its edges.;Irreversible deformation of wall has been improved by introducing a threshold turgor pressure (as in Lockhart equation) and a continuous irreversible deformation of wall with growth rate Elastic Wall method and a new irreversible deformation approach have been validated with experimental data on the maize leaf tissue expansion.;To better describe the cell wall mechanics a Maxwell's viscoelastic model has been introduced in VirtualLeaf. This model is time dependent: the rest length of each wall and the turgor pressure in each cell are updated at each time step by solving an ordinary differential equation.
机译:在细胞水平,细胞壁的机械性能直接影响细胞的大小,形状和膨胀以及细胞的水关系。这项研究的目的是构建植物细胞壁力学的现实模型,以正确描述壁的弹性,可塑性和粘弹性,并扩展VirtualLeaf软件框架的功能。由于多变量和复杂的系统,在VirtualLeaf中开发了最小化方法,无法使用梯度范数。该滑动窗口标准基于连续检查沿着系统的能量变化滑动的一些能量差窗口内的阈值。与原始VirtualLeaf中使用的单值方法相比,该方法找到稳定状态的正确性急剧增加。阐述了一种稳定的方法,该方法基于平衡周期内总能量的MC演化来选择MC参数的良好值。结果表明,用这种方法求出的参数值对于快速达到平衡状态是最佳的。哈密顿算法的弹性墙方法已经在VirtualLeaf中开发并实现。在这种方法中,单元格之间的整个墙用哈密顿量代替边缘。在这种新方法中,引入了每个壁的单独的静止长度。与壁的整个延伸/压缩关系相比,使用壁在物理上是正确的,而不是在其边缘之一内的局部变化。通过引入阈值膨胀压力(如Lockhart方程式)和壁的连续不可逆变形,改善了壁的无用变形。具有生长速率的壁弹性壁方法和一种新的不可逆变形方法已通过玉米叶片组织膨胀的实验数据得到验证。为了更好地描述细胞壁力学,在VirtualLeaf中引入了Maxwell的粘弹性模型。该模型与时间有关:通过求解一个常微分方程,可以在每个时间步更新每个壁的剩余长度和每个单元中的膨胀压力。

著录项

  • 作者

    Dzhurakhalov, Abdiravuf.;

  • 作者单位

    Universiteit Antwerpen (Belgium).;

  • 授予单位 Universiteit Antwerpen (Belgium).;
  • 学科 Computer engineering.;Biomechanics.;Botany.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 152 p.
  • 总页数 152
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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