Head David A, Mizuno Daisuke
School of Computing, Leeds University, Leeds LS2 9JT, United Kingdom.
Phys Rev E Stat Nonlin Soft Matter Phys. 2013 Aug;88(2):022717. doi: 10.1103/PhysRevE.88.022717. Epub 2013 Aug 28.
Analytical and numerical calculations are presented for the mechanical response of fiber networks in a state of axisymmetric prestress, in the limit where geometric nonlinearities such as fiber rotation are negligible. This allows us to focus on the anisotropy deriving purely from the nonlinear force-extension curves of individual fibers. The number of independent elastic coefficients for isotropic, axisymmetric, and fully anisotropic networks are enumerated before deriving expressions for the response to a locally applied force that can be tested against, e.g., microrheology experiments. Localized forces can generate anisotropy away from the point of application, so numerical integration of nonlinear continuum equations is employed to determine the stress field, and induced mechanical anisotropy, at points located directly behind and in front of a force monopole. Results are presented for the wormlike chain model in normalized forms, allowing them to be easily mapped to a range of systems. Finally, the relevance of these findings to naturally occurring systems and directions for future investigation are discussed.
本文给出了轴对称预应力状态下纤维网络力学响应的解析和数值计算结果,其中诸如纤维旋转等几何非线性可忽略不计。这使我们能够专注于纯粹源于单个纤维非线性力-伸长曲线的各向异性。在推导局部施加力的响应表达式之前,先列举了各向同性、轴对称和完全各向异性网络的独立弹性系数数量,这些表达式可用于与例如微观流变学实验进行对比测试。局部力可在远离施力点处产生各向异性,因此采用非线性连续介质方程的数值积分来确定力单极子正后方和正前方各点的应力场以及诱导的机械各向异性。结果以归一化形式给出了蠕虫状链模型的情况,便于将其轻松映射到一系列系统。最后,讨论了这些发现与自然存在的系统的相关性以及未来研究方向。