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Digital image analysis of droplet patterns in polymer systems: Point pattern

机译:聚合物体系中液滴图案的数字图像分析:点图案

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New techniques of digital image analysis which are especially suitable for analyzing particle‐distribution patterns are presented. Statistical mathematical methods are applied to the quantitative analysis of a spatial distribution of points in polymer systems. The techniques are useful for studying the spatial patterns of particles or droplets which are commonly observed in nucleation‐growth‐type phase separation and late‐stage spinodal decomposition in polymer mixtures, crystallization process, microphase separation in block copolymers, incompatible polymer alloys, and composite materials, etc. We can divide point patterns into three typical point patterns: the Poisson pattern, the clustered pattern, and the regular pattern. The kind and strength of interaction or force between points can be determined from spatial point‐distribution patterns. The point‐pattern analysis has been applied to phase‐separated structures of a polymer mixture, and it has been revealed that the pattern belongs to the regular pattern. The appearance of the regular pattern is probably a result of the Brownian coalescence mechanism for the droplet growth and it might also be due to a long‐range interaction among droplets through diffusion field.
机译:提出了特别适用于分析粒子和连字符分布模式的数字图像分析新技术。统计数学方法应用于聚合物系统中点的空间分布的定量分析。该技术可用于研究聚合物混合物中成核生长和后期棘旋分解、结晶过程、嵌段共聚物中的微相分离、不相容性高分子合金和复合材料等中常见的颗粒或液滴的空间模式。我们可以将点模式分为三种典型的点模式:泊松模式、聚类模式和规则模式。点与点之间相互作用或力的种类和强度可以从空间点和连字符分布模式中确定。点&连字符-图案分析已应用于聚合物混合物的相&连字符分离结构,并且已经表明该图案属于规则图案。规则图案的出现可能是液滴生长的布朗聚结机制的结果,也可能是由于液滴之间通过扩散场的长&连字符相互作用。

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