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The Lowe-Andersen thermostat as an alternative to the dissipative particle dynamics in the mesoscopic simulation of entangled polymers

机译:Lowe-Andersen恒温器可替代纠缠聚合物的介观模拟中的耗散粒子动力学

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摘要

Dissipative Particle Dynamics (DPD) has shown a great potential in studying the dynamics and rheological properties of soft matter; however, it is associated with deficiencies in describing the characteristics of entangled polymer melts. DPD deficiencies are usually correlated to the time integrating method and the unphysical bond crossings due to utilization of soft potentials. One shortcoming of DPD thermostat is the inability to produce real values of Schmidt number for fluids. In order to overcome this, an alternative Lowe-Anderson (LA) method, which successfully stabilizes the temperature, is used in the present work. Additionally, a segmental repulsive potential was introduced to avoid unphysical bond crossings. The performance of the method in simulating polymer systems is discussed by monitoring the static and dynamic characteristics of polymer chains and the results from the LA method are compared to standard DPD simulations. The performance of the model is evaluated on capturing the main shear flow properties of entangled polymer systems. Finally the linear and nonlinear viscoelastic properties of such systems are discussed.
机译:耗散粒子动力学(DPD)在研究软物质的动力学和流变特性方面显示了巨大的潜力。然而,这与描述缠结的聚合物熔体的特征不足有关。 DPD缺陷通常与时间积分方法和由于利用软势导致的非物理键穿越有关。 DPD温控器的一个缺点是无法生成流体的施密特数的实际值。为了克服这个问题,在当前工作中使用了另一种Lowe-Anderson(LA)方法,该方法成功地稳定了温度。另外,引入了部分排斥势以避免非物理键交叉。通过监测聚合物链的静态和动态特性,讨论了该方法在模拟聚合物系统中的性能,并将LA方法的结果与标准DPD模拟进行了比较。在捕获缠结的聚合物系统的主要剪切流动特性时评估模型的性能。最后讨论了这类系统的线性和非线性粘弹性。

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