首页> 外文期刊>The Journal of Chemical Physics >Hydrodynamically Coupled Brownian Dynamics: A coarse-grain particle-based Brownian dynamics technique with hydrodynamic interactions for modeling self-developing flow of polymer solutions
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Hydrodynamically Coupled Brownian Dynamics: A coarse-grain particle-based Brownian dynamics technique with hydrodynamic interactions for modeling self-developing flow of polymer solutions

机译:流体动力学耦合的布朗动力学:一种粗粒颗粒基褐色动力学技术,具有用于模拟聚合物溶液自显式流动的流体动力学相互作用

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We present a novel coarse-grain particle-based simulation technique for modeling self-developing flow of dilute and semi-dilute polymer solutions. The central idea in this paper is the two-way coupling between a mesoscopic polymer model and a phenomenological fluid model. As our polymer model, we choose Responsive Particle Dynamics (RaPiD), a Brownian dynamics method, which formulates the so-called "conservative" and "transient" pair-potentials through which the polymers interact besides experiencing random forces in accordance with the fluctuation dissipation theorem. In addition to these interactions, our polymer blobs are also influenced by the background solvent velocity field, which we calculate by solving the Navier-Stokes equation discretized on a moving grid of fluid blobs using the Smoothed Particle Hydrodynamics (SPH) technique. While the polymers experience this frictional force opposing their motion relative to the background flow field, our fluid blobs also in turn are influenced by the motion of the polymers through an interaction term. This makes our technique a two-way coupling algorithm. We have constructed this interaction term in such a way that momentum is conserved locally, thereby preserving long range hydrodynamics. Furthermore, we have derived pairwise fluctuation terms for the velocities of the fluid blobs using the Fokker-Planck equation, which have been alternatively derived using the General Equation for the Non-Equilibrium Reversible-Irreversible Coupling (GENERIC) approach in Smoothed Dissipative Particle Dynamics (SDPD) literature. These velocity fluctuations for the fluid may be incorporated into the velocity updates for our fluid blobs to obtain a thermodynamically consistent distribution of velocities. In cases where these fluctuations are insignificant, however, these additional terms may well be dropped out as they are in a standard SPH simulation. We have applied our technique to study the rheology of two different concentrations
机译:我们提出了一种新型粗粒颗粒基础仿真技术,用于建模稀释和半稀聚合物溶液的自显现流动。本文中的中心思想是介观聚合物模型与现象学流体模型之间的双向耦合。作为我们的聚合物模型,我们选择响应粒子动力学(Rapid),褐色动力学方法,其制定了所谓的“保守”和“瞬态”对电位,除了根据波动耗散而在随机力之外相互作用。定理。除了这些相互作用之外,我们的聚合物BlOB也受到背景溶剂速度场的影响,我们通过使用平滑的粒子流体动力学(SPH)技术来求解在流体斑点的移动栅格上离散化的Navier-Stokes方程来计算。虽然聚合物经历相对于背景流场相对于其运动相反的摩擦力,但是我们的流体斑也又受聚合物通过相互作用项的运动的影响。这使得我们的技术是双向耦合算法。我们以这种相互作用术语构成了这种相互作用术语,这种相互作用术语是在本地保守的一种方式,从而保持远程流体动力学。此外,我们已得出的成对波动方面使用福克-Planck方程流体斑点,已使用常规公式用于平滑耗散粒子动力学非平衡可逆不可逆偶联(GENERIC)的方式被替换地导出的速度( SDPD)文献。这些流体的速度波动可以掺入我们的流体BloB的速度更新中,以获得热力学上一致的速度分布。然而,在这些波动是微不足道的情况下,这些附加条款可能很好地掉落,因为它们处于标准的SPH仿真中。我们已经应用了我们的技术来研究两种不同浓度的流变学

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