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首页> 外文期刊>The Journal of Chemical Physics >Multi-chain slip-spring model for entangled polymer dynamics
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Multi-chain slip-spring model for entangled polymer dynamics

机译:纠缠聚合物动力学的多链滑移弹簧模型

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It has been established that entangled polymer dynamics can be reasonably described by single chain models such as tube and slip-link models. Although the entanglement effect is a result of hard-core interaction between chains, linkage between the single chain models and the real multi-chain system has not been established yet. In this study, we propose a multi-chain slip-spring model where bead-spring chains are dispersed in space and connected by slip-springs inspired by the single chain slip-spring model [A. E. Likhtman, Macromolecules 38, 6128 (2005)10.1021/ma050399h]. In this model the entanglement effect is replaced by the slip-springs, not by the hard-core interaction between beads so that this model is located in the niche between conventional multi-chain simulations and single chain models. The set of state variables are the position of beads and the connectivity (indices) of the slip-springs between beads. The dynamics of the system is described by the time evolution equation and stochastic transition dynamics for these variables. We propose a simple model which is based on the well-defined total free-energy and detailed balance condition. The free energy in our model contains a repulsive interaction between beads, which compensate the attractive interaction artificially generated by the slip-springs. The explicit expression of linear relaxation modulus is also derived by the linear response theory. We also propose a possible numerical scheme to perform simulations. Simulations reproduced expected bead number dependence in transitional regime between Rouse and entangled dynamics for the chain structure, the central bead diffusion, and the linear relaxation modulus.
机译:已经确定,缠结的聚合物动力学可以通过单链模型(例如管和滑模模型)合理地描述。尽管纠缠效应是链之间的核心交互作用的结果,但单链模型与实际的多链系统之间的链接尚未建立。在这项研究中,我们提出了一种多链滑移弹簧模型,其中,胎圈弹簧链分散在空间中,并由受单链滑移弹簧模型启发的滑移弹簧连接。 E. Likhtman,Macromolecules 38,6128(2005)10.1021 / ma050399h]。在该模型中,纠缠效应由滑移弹簧代替,而不是由小珠之间的硬核相互作用取代,因此该模型位于常规多链模拟和单链模型之间的利基市场中。状态变量集是磁珠的位置和磁珠之间的滑动弹簧的连通性(指标)。系统动力学由时间演化方程和这些变量的随机跃迁动力学来描述。我们提出了一个基于明确定义的总自由能和详细平衡条件的简单模型。我们模型中的自由能包含磁珠之间的排斥相互作用,从而抵消了滑移弹簧人工产生的吸引力相互作用。线性弛豫模量的明确表达也可以通过线性响应理论得出。我们还提出了一种可能的数值方案来执行仿真。模拟重现了预期的磁珠数量在链结构,中心磁珠扩散和线性弛豫模量之间的过渡过程中在Rouse和纠缠动力学之间的过渡状态。

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