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Convolution theory for dynamic systems: A bottom-up approach to the viscoelasticity of polymeric networks

机译:动态系统的卷积理论:自下而上的聚合物网络粘弹性方法

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摘要

Biological materials such as the cytoskeleton are characterized by remarkable viscoelastic properties and therefore represent the subject of numerous micro- and macrorheological experimental studies. By generalizing the previously introduced dynamic convolution theory (DCT) to two dimensions, we devise a bottom-up approach for the viscoelastic properties of extended, crosslinked semiflexible polymer networks. Brownian dynamics (BD) simulations serve to determine the dynamic linear self- and cross-response properties of isolated semiflexible polymers to externally applied forces and torques; these response functions are used as input to the DCT. For a given network topology, the frequency-dependent response of the network subject to a given external force/torque distribution is calculated via the DCT allowing to resolve both micro- and macrorheological properties of the networks. A mapping on continuum viscoelastic theory yields the corresponding viscoelastic bulk moduli. Special attention is drawn to the flexibility of crosslinkers, which couple angular degrees of freedom at the network nodes and which are found to sensitively affect the resulting rheological properties of the polymeric meshwork.
机译:诸如细胞骨架之类的生物材料具有显着的粘弹性质,因此代表了众多微观和宏观流变实验研究的主题。通过将先前介绍的动态卷积理论(DCT)概括为两个维度,我们为扩展的,交联的半柔性聚合物网络的粘弹性质设计了一种自下而上的方法。布朗动力学(BD)仿真用于确定隔离的半柔性聚合物对外部施加的力和扭矩的动态线性自响应和交叉响应特性。这些响应函数用作DCT的输入。对于给定的网络拓扑,通过DCT计算网络在给定外力/转矩分布下的频率相关响应,从而可以解析网络的微观和宏观流变特性。连续粘弹性理论的映射产生相应的粘弹性体模量。特别要注意交联剂的柔韧性,交联剂在网络节点处耦合自由角,并且发现它们会敏感地影响所得聚合物网的流变性。

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