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Components For Atomistic-to-continuum Multiscale Modeling Of Flow In Micro- And Nanofluidic Systems

机译:微流控和纳米流控系统中原子到连续性多尺度流动建模的组件

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Micro- and nanofluidics pose a series of significant challenges for science-based modeling. Key among those are the wide separation of length- and timescales between interface phenomena and bulk flow and the spatially heterogeneous solution properties near solid-liquid interfaces. It is not uncommon for characteristic scales in these systems to span nine orders of magnitude from the atomic motions in particle dynamics up to evolution of mass transport at the macroscale level, making explicit particle models intractable for all but the simplest systems. Recently, atomistic-to-continuum (A2C) multiscale simulations have gained a lot of interest as an approach to rigorously handle particle-level dynamics while also tracking evolution of large-scale macroscale behavior. While these methods are clearly not applicable to all classes of simulations, they are finding traction in systems in which tight-binding, and physically important, dynamics at system interfaces have complex effects on the slower-evolving large-scale evolution of the surrounding medium. These conditions allow decomposition of the simulation into discrete domains, either spatially or temporally. In this paper, we describe how features of domain decomposed simulation systems can be harnessed to yield flexible and efficient software for multiscale simulations of electric field-driven micro- and nanofluidics.
机译:微流体和纳米流体对基于科学的建模提出了一系列重大挑战。其中的关键是界面现象与整体流动之间的长度和时间尺度的广泛分离以及固液界面附近的空间异质溶液性质。这些系统中的特征尺度从粒子动力学中的原子运动一直到宏观尺度的质量输运演化,跨越九个数量级的情况并不少见,这使得除了最简单的系统以外,所有其他系统都难以理解明确的粒子模型。最近,原子间连续(A2C)多尺度模拟作为一种严格处理粒子级动力学同时跟踪大规模宏观行为演变的方法引起了广泛的兴趣。尽管这些方法显然不适用于所有类型的仿真,但它们正在系统中找到牵引力,在这些系统中,系统接口处的紧密绑定且具有物理重要性的动力学对周围介质的缓慢发展的大规模演化具有复杂的影响。这些条件允许将模拟分解为空间或时间上的离散域。在本文中,我们描述了如何利用域分解仿真系统的功能来生成灵活高效的软件,用于电场驱动的微流体和纳米流体的多尺度仿真。

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