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GPU-accelerated molecular dynamics simulation for study of liquid crystalline flows

机译:GPU加速的分子动力学模拟,用于研究液晶流

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We have developed a GPU-based molecular dynamics simulation for the study of flows of fluids with anisotropic molecules such as liquid crystals. An application of the simulation to the study of macroscopic flow (backflow) generation by molecular reorientation in a nematic liquid crystal under the application of an electric field is presented. The computations of intermolecular force and torque are parallelized on the GPU using the cell-list method, and an efficient algorithm to update the cell lists was proposed. Some important issues in the implementation of computations that involve a large number of arithmetic operations and data on the GPU that has limited high-speed memory resources are addressed extensively. Despite the relatively low GPU occupancy in the calculation of intermolecular force and torque, the computation on a recent GPU is about 50 times faster than that on a single core of a recent CPU, thus simulations involving a large number of molecules using a personal computer are possible. The GPU-based simulation should allow an extensive investigation of the molecular-level mechanisms underlying various macroscopic flow phenomena in fluids with anisotropic molecules.
机译:我们已经开发了基于GPU的分子动力学模拟,用于研究具有各向异性分子(例如液晶)的流体的流动。提出了该模拟方法在研究电场作用下向列型液晶中分子重新取向产生宏观流动(回流)的应用。利用单元列表方法将分子间力和扭矩的计算并行化,并提出了一种有效的更新单元列表的算法。广泛解决了涉及GPU上具有大量算术运算和数据的有限高速存储器资源的计算实现中的一些重要问题。尽管在分子间力和扭矩的计算中GPU占用率相对较低,但最近的GPU的计算速度比最近的CPU的单核大约快50倍,因此使用个人计算机进行的涉及大量分子的模拟可能。基于GPU的模拟应允许对具有各向异性分子的流体中各种宏观流动现象背后的分子水平机理进行广泛研究。

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