首页> 外文会议>2002 ASME International Mechanical Engineering Congress and Exposition , Nov 17-22, 2002, New Orleans, Louisiana >MATHEMATICAL AND EXPERIMENTAL INVERSTIGATION OF LIQUID-GAS INTERFACES IN POROUS WICKS
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MATHEMATICAL AND EXPERIMENTAL INVERSTIGATION OF LIQUID-GAS INTERFACES IN POROUS WICKS

机译:多孔芯中液体-气体界面的数学和实验研究

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This paper focuses on the investigation of the liquid-gas (or vapor) interface, which occurs in very small diameter pores. A mathematical model is built to formulate the movements of a liquid column trapped in a capillary pore. The Navier-Stokes equations are applied to the liquid side with assumed no-slip conditions, while the Young-Laplace equation is used to formulate the shape of the interface. This theoretical model calculates both velocity profiles in the liquid side and transient profiles of the interface itself; and of particular interest, it predicts the pressure difference, oscillation frequency and amplitude required to burst this interface. These predicted parameters are examined by the experiments with both oscillating Coherent Porous Silicon (CPS) wicks and porous plastic wicks. This research helps better understanding the phenomena such as multiphase flow in porous media or de-watering process that happens in vibro-separators.
机译:本文重点研究液-气(或蒸汽)界面,该界面发生在直径非常小的孔中。建立数学模型以制定陷在毛细孔中的液柱的运动。 Navier-Stokes方程在假定不打滑的情况下应用于液体侧,而Young-Laplace方程用于表示界面的形状。这个理论模型既可以计算液体侧的速度分布图,也可以计算界面本身的瞬态分布图。特别令人感兴趣的是,它预测了爆破该界面所需的压力差,振荡频率和振幅。这些预测参数通过振荡相干多孔硅(CPS)吸液芯和多孔塑料吸液芯的实验进行检验。这项研究有助于更好地理解诸如多孔介质中的多相流或振动分离器中发生的脱水过程等现象。

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