Dobashi Toshiaki, Yamamoto Takao
Division of Molecular Science, Graduate School of Science and Technology, Gunma University, Kiryu, Gunma 376-8515, Japan.
Division of Pure and Applied Science, Graduate School of Science and Technology, Gunma University, Kiryu, Gunma 376-8515, Japan.
Gels. 2018 Jul 9;4(3):59. doi: 10.3390/gels4030059.
We present a scaling model based on a moving boundary picture to describe heterogeneous gelation dynamics. The dynamics of gelation induced by different gelation mechanisms is expressed by the scaled equation for the time taken for development of the gel layer with a few kinetic coefficients characterizing the system. The physical meaning obtained by the analysis for a simple boundary condition from the standpoint of the phase transition shows that the time development of the gelation layer depends on whether the dynamics of the order parameter expressing the gelation of the polymer solution is fast or slow compared with the diffusion of the gelators in the heterogeneous gelation. The analytical method is used to understand the coagulation of blood from various animals. An experiment using systems with plasma coagulation occurring at interfaces with calcium chloride solution and with packed erythrocytes is performed to provide the data for model fitting and it is clarified that a few key kinetic coefficients in plasma coagulation can be estimated from the analysis of gelation dynamics.
我们提出了一种基于移动边界图景的标度模型,以描述非均相凝胶化动力学。由不同凝胶化机制诱导的凝胶化动力学通过凝胶层形成时间的标度方程来表示,该方程带有几个表征系统的动力学系数。从相变的角度对简单边界条件进行分析所获得的物理意义表明,凝胶化层的时间发展取决于与非均相凝胶化中凝胶剂扩散相比,表达聚合物溶液凝胶化的序参量动力学是快还是慢。该分析方法用于理解各种动物的血液凝固。进行了一项实验,使用血浆在与氯化钙溶液和压实红细胞的界面处发生凝固的系统,以提供用于模型拟合的数据,并且通过凝胶化动力学分析明确了血浆凝固中的几个关键动力学系数是可以估计的。