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PREDICTING GASKET LEAK RATES USING A LAMINAR-MOLECULAR FLOW MODEL

机译:使用层分子流量模型预测垫圈泄漏率

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The tightness characterization of gaskets used in static seal applications, such as bolted flanged connections, is achieved by performing leakage tests with a single fluid, usually a gas like helium. Attempts made in the past to predict gasket leakage with other gases had limited success unless the leak flow regime through the gasket was predominately laminar, which is not the case with most of the gaskets. In this work, a new gasket leak flow model that combines both molecular and laminar flow regimes is developed to predict the gasket leak rate under different pressures and with different gases. The Laminar-Molecular Flow (LMF) model is first constructed around a reference pressure for which the fraction of the total leakage that occurs through laminar flow channels is established. This fraction is computed using a simple leakage test performed with one gas and at least two different pressures. The model is then tested against experimental leak data obtained from two different gaskets and four gases and is shown to produce accurate predictions.
机译:通过用单个流体进行泄漏测试,实现了静态密封应用中使用的垫圈中使用的垫圈的紧张表征,通常是氦气这样的气体。除非通过垫圈的泄漏流动状态主要是层状的,否则过去曾经预测与其他气体的漏洞预测垫片泄漏的尝试是有限的,除了层状,这不是大多数垫圈的情况。在这项工作中,开发了一种新的垫片泄漏流动模型,其结合了分子和层流变改造,以预测不同压力和不同气体下的垫圈泄漏率。首先围绕通过层流通道发生的总泄漏部分的参考压力构造层状分子流量(LMF)模型。使用用一个气体和至少两个不同压力进行的简单泄漏测试来计算该部分。然后测试模型针对从两种不同的垫圈和四个气体获得的实验泄漏数据进行测试,并且被示出了产生精确的预测。

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