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Mechanical Behavior of the Lamellar Structure in Semi-Crystalline Polymers

机译:半结晶聚合物中层状结构的力学行为

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We have employed molecular dynamics simulations to study the behavior of virtual polymeric materials under an applied uniaxial tensile load.Through computer simulations, one can obtain experimentally inaccessible information about phenomena taking place at the molecular and microscopic levels.Not only can the global material response be monitored and characterized along time, but the response of macromolecular chains can be followed independently if desired.The computer-generated materials were created by emulating the step-wise polymerization, resulting in self-avoiding chains in 3D with controlled degree of orientation along a certain axis.These materials represent a simplified model of the lamellar structure of semi-crystalline polymers, being comprised of an amorphous region surrounded by two crystalline lamellar regions.For the simulations, a series of materials were created, varying i) the lamella thickness, ii) the amorphous region thickness, iii) the preferential chain orientation, and iv) the degree of packing of the amorphous region.Simulation results indicate that the lamella thickness has the strongest influence on the mechanical properties of the lamella-amorphous structure, which is in agreement with experimental data.The other morphological parameters also affect the mechanical response, but to a smaller degree.This research follows previous simulation work on the crack formation and propagation phenomena, deformation mechanisms at the nanoscale, and the influence of the loading conditions on the material response.Computer simulations can improve the fundamental understanding about the phenomena responsible for the behavior of polymeric materials, and will eventually lead to the design of knowledge-based materials with improved properties.
机译:我们采用了分子动力学模拟,研究了虚拟聚合物材料在应用的单轴拉伸负荷下的行为。通过计算机模拟,可以获得关于在分子和微观级别进行的现象的实验无法访问的信息。仅限全球材料反应在时间监测和表征,但如果需要,可以独立地遵循大分子链的响应。通过模拟逐步聚合来产生计算机产生的材料,从而产生了3D的自避免链,沿着一定程度的定向程度轴。这些材料代表半结晶聚合物的层状结构的简化模型,由两个结晶层状区域包围的非晶区域组成。对于模拟,产生一系列材料,改变I)薄片厚度,II )非晶区域厚度,iii)优先链东方离子和IV)无定形区域的包装程度。刺激结果表明,薄片厚度对薄片 - 无定形结构的力学性能具有最强的影响,这与实验数据一致。其他形态参数也会影响机械响应,但到较小的程度。本研究遵循先前的抗裂形成和传播现象的模拟工作,纳米级的变形机制,以及负载条件对材料响应的影响可以提高关于的基本理解负责聚合物材料行为的现象,最终将导致知识的材料设计,具有改进的性质。

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