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Mechanical behavior and performance of injection molded semi-crystalline polymers.

机译:注塑半结晶聚合物的机械性能和性能。

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I have used computer simulations to investigate the behavior of polymeric materials at the molecular level. The simulations were performed using the molecular dynamics method with Lennard-Jones potentials defining the interactions between particles in the system.; Significant effort was put into the creation of realistic materials on the computer. For this purpose, an algorithm was developed based on the step-wise polymerization process. The resulting computer-generated materials (CGMs) exhibit several features of real materials, such as molecular weight distribution and presence of chain entanglements.; The effect of the addition of a liquid crystalline (LC) phase to the flexible matrix was also studied. The concentration and distribution of the second phase (2P) were found to influence the mechanical and tribological properties of the CGMs. The size of the 2P agglomerates was found to have negligible influence on the properties within the studied range. Moreover, although the 2P reinforcement increases the modulus, it favors crack formation and propagation. Regions of high LC concentration exhibit high probability of becoming part of the crack propagation path.; Simulations of the tensile deformation under a uniaxial force have shown that the molecular deformation mechanisms developing in the material depend on several variables, such as the magnitude of the force, the force increase rate, and the level of orientation of the chains.; Three-dimensional (3D) graphical visualization tools were developed for representation and analysis of the simulation results. These also present interesting educational possibilities.; Computer simulations provide us information which is inaccessible experimentally. From the concomitant use of simulations and experiments, a better understanding of the molecular phenomena that take place during deformation of polymers has been established.
机译:我已经使用计算机模拟来研究聚合物材料在分子水平上的行为。使用分子动力学方法进行了模拟,其中Lennard-Jones势定义了系统中粒子之间的相互作用。在计算机上创建 realistic 资料的工作量很大。为此,基于逐步聚合过程开发了一种算法。所得的计算机生成材料(CGM)具有真实材料的多个特征,例如分子量分布和链缠结的存在。还研究了向柔性基质中添加液晶(LC)相的影响。发现第二相(2P)的浓度和分布会影响CGM的机械和摩擦学性能。发现2P团聚体的尺寸对所研究范围内的性能影响可忽略不计。而且,尽管2P增强增加了模量,但它有利于裂纹的形成和扩展。 LC浓度高的区域很可能成为裂纹扩展路径的一部分。对单轴力作用下的拉伸变形的仿真表明,材料中形成的分子变形机理取决于几个变量,例如力的大小,力的增加速率和链的取向水平。开发了用于表示和分析仿真结果的三维(3D)图形可视化工具。这些也提供了有趣的教育可能性。计算机模拟为我们提供了实验上无法获得的信息。通过伴随使用模拟和实验,已经建立了对聚合物变形期间发生的分子现象的更好的理解。

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