首页> 外文会议>MEMS-vol.7; American Society of Mechanical Engineers(ASME) International Mechanical Engineering Congress and Exposition; 20051105-11; Orlando,FL(US) >NON-EQUILIBRIUM MOLECULAR DYNAMICS APPROACH FOR NANO-ELECTRO-MECHANICAL SYSTEMS: NANO-FLUIDICS AND ITS APPLICATIONS
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NON-EQUILIBRIUM MOLECULAR DYNAMICS APPROACH FOR NANO-ELECTRO-MECHANICAL SYSTEMS: NANO-FLUIDICS AND ITS APPLICATIONS

机译:纳米机电系统的非平衡分子动力学方法:纳米流体及其应用

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摘要

A three-dimensional non-equilibrium molecular dynamics code has been developed and evaluated to provide fundamental understandings of nano-fluidics at molecular level. Intermolecular energy and force between fluid-fluid and fluid-wall particles were all included. Molecular dynamics results were verified by simulating both homogeneous and heterogeneous flows in a nano-tube and then compared with the classical Navier-Stokes solution with non-slip wall boundary conditions. At equilibration state, the macroscopic parameters were calculated using the statistical calculation. Liquid argon fluids within platinum walls were simulated for a homogeneous system. Also positively charged particles are mixed with water-like solvent particles to investigate the non-Newtonian behavior of the heterogeneous fluid. For an electrowetting phenomenon, a positive charged droplet moving on the negative charged ultra thin film was successfully simulated and compared with a macroscopic experiment. Nano-jetting mechanism was identified by simulating droplet ejection, breakup, wetting, and drying process in a consequent manner. In addition, conceptual nano/micropumps using electrowetting phenomenon are simulated. The present molecular dynamics approach showed its promising capability for the wide range of NEMS/MEMS applications.
机译:已经开发并评估了三维非平衡分子动力学代码,以在分子水平上提供对纳米流体的基本了解。流体-流体和流体-壁粒子之间的分子间能量和力都包括在内。通过模拟纳米管中的均相和非均相流动,验证了分子动力学结果,然后与具有防滑壁边界条件的经典Navier-Stokes解决方案进行了比较。在平衡状态下,使用统计计算来计算宏观参数。对铂壁内的液态氩流体进行了模拟,以得到均匀的系统。同样将带正电的粒子与水状溶剂粒子混合,以研究非均质流体的非牛顿行为。对于电润湿现象,成功模拟了在带负电的超薄膜上移动的带正电的液滴,并与宏观实验进行了比较。通过模拟液滴的喷射,破裂,润湿和干燥过程,从而确定了纳米喷射机理。此外,还模拟了使用电润湿现象的概念性纳米泵/微型泵。当前的分子动力学方法显示了其在各种NEMS / MEMS应用中的有前途的功能。

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