首页> 外文会议>Advances in Electronic Packaging 2005 pt.C >EXPERIMENTAL VALIDATION OF MACROMODELS FOR SIMULATING CAPILLARY DRIVEN MULTIPHASE FLOWS USED FOR MICROCHAMBER FILLING
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EXPERIMENTAL VALIDATION OF MACROMODELS FOR SIMULATING CAPILLARY DRIVEN MULTIPHASE FLOWS USED FOR MICROCHAMBER FILLING

机译:用于微室充填的毛细驱动多相流模拟宏模型的实验验证

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Macro-models (also called "reduced-order-models", "lumped parameter models", etc.) are convenient and efficient design tools that afford reasonable simulation accuracy by replacing the governing physical equations with behavioral models. Such models are easy to implement, usually do not require grid formulations, employ simple numerical schemes (systems of ordinary differential equations or algebraic equations), and have robust numerical convergence. In this study macro-models were developed for predicting the filling of micro-chambers for capillary driven flows as a function of geometric parameters and fluid properties (viscosity, surface tension and contact angle). It was found that bubble formation in filling of micro-chambers is a strong function of wall contact angles. A region of wall influence parameter was identified which was found to be relatively insensitive to flow parameters (flow rate, viscosity, etc.) and depends strongly on the wettability of the side walls of the micro-chambers.
机译:宏模型(也称为“降阶模型”,“集总参数模型”等)是便捷有效的设计工具,通过用行为模型代替控制物理方程式,可以提供合理的仿真精度。这种模型易于实现,通常不需要网格公式,采用简单的数值方案(常微分方程或代数方程组),并且具有鲁棒的数值收敛性。在这项研究中,开发了宏模型,用于预测毛细管驱动流的微型腔室的填充,该填充是几何参数和流体特性(粘度,表面张力和接触角)的函数。发现在微腔室的填充中气泡的形成是壁接触角的强函数。确定了壁影响参数的区域,发现该区域对流动参数(流速,粘度等)相对不敏感,并且强烈取决于微腔室侧壁的润湿性。

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