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SURFACE TENSION MODEL FOR PARTICLE METHOD USING INTER-PARTICLE FORCE DERIVED FROM POTENTIAL ENERGY

机译:利用势能推导粒子间力的颗粒法表面张力模型

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Fluid-flow simulation within microano spaces is essential for designing microano devices, such as those in micro-electro-mechanical systems and nanoimprint processes. Surface tension is a dominant force in the fluid flow within microano spaces. Surface-tension models can be classified into two groups: models based on continuous surface force in immiscible phases, and models based on inter-particle force in miscible phases. The surface-tension model based on inter-particle force for modeling interactions between materials would fit fluid-flow simulation within microano spaces better than the surface-tension model based on continuous surface force.We developed a surface tension model using inter-particle force for use with a particle method in a past study. However, workings of inter-particle forces in miscible phases were not verified. Furthermore, accuracy in three-dimensional simulation needed to be verified. These subjects were verified in this study using simple benchmark tests. First, cohesion based on potential energy was validated to qualitatively check the workings of inter-particle force. The phase separation from the mixed two-phase flow due to inter-particle force was simulated. Next, the inter-particle force at the gas-liquid interface was quantitatively verified using the theory of the Young-Laplace equation; the pressure in a droplet was compared in two- and three-dimensional simulations, and the predicted pressures in a droplet agreed well with this theory. The inter-particle force at the gas-liquid-solid interface for the wall adhesion of a droplet was also verified; the results for wall adhesion in three-dimensional space agreed much better than that in two-dimensional space. We found that our surface tension model was useful for simulating the fluid flow within microano spaces.
机译:在微/纳米空间内进行流体流动仿真对于设计微/纳米设备至关重要,例如微机电系统和纳米压印工艺中的设备。表面张力是微/纳米空间内流体流动中的主导力。表面张力模型可分为两类:基于在不混溶相中的连续表面力的模型,以及基于在混溶相中的粒子间力的模型。与基于连续表面力的表面张力模型相比,基于颗粒间力的表面张力模型更适合在微/纳米空间内进行流体流动模拟,从而建立了材料之间相互作用的表面张力模型。过去的研究中使用粒子法的力。但是,在互溶相中的粒子间作用力尚未得到验证。此外,需要验证三维仿真的准确性。这些受试者在本研究中使用简单的基准测试进行了验证。首先,验证了基于势能的内聚性,以定性检查粒子间作用力的工作情况。模拟了由于颗粒间作用力导致的混合两相流的相分离。接着,利用杨-拉普拉斯方程的理论定量地验证了气液界面处的粒子间力。在二维和三维模拟中比较了液滴中的压力,并且液滴中的预测压力与该理论非常吻合。还验证了气-液-固界面处的颗粒间力对液滴壁的附着力;三维空间中的壁粘附性结果要好于二维空间中的结果。我们发现我们的表面张力模型对于模拟微/纳米空间内的流体流动很有用。

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