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首页> 外文期刊>Journal of Fluids Engineering: Transactions of the ASME >A Numerical Analysis of Hydrogen Underexpanded Jets Under Real Gas Assumption
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A Numerical Analysis of Hydrogen Underexpanded Jets Under Real Gas Assumption

机译:真实气体假设下氢气过膨胀射流的数值分析

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摘要

This work examines the fluid dynamic structure of underexpanded gas jets by using a high-performance computing (HPC) methodology in order to untangle the question of whether it is necessary to include the real gas assumption dealing with hydrogen jets. The answer to this question is needed in order to guarantee accurate numerical simulations of such jets in practical engineering applications, such as direct-injection hydrogen engines. An axial symmetric turbulent flow model, which solves the Favre-averaged Navier-Stokes equations for a multicomponent gas mixture, has been implemented and validated. The flow model has been assessed by comparing spreading and centerline property decay rates of subsonic jets at different Mach numbers with those obtained by both theoretical considerations and experimental measurements. Besides, the Mach disk structure of underexpanded jets has been recovered, thus confirming the suitability and reliability of the computational model. To take into account the effects of real gases, both van der Waals and Redlich-Kwong equations of state have been implemented. The analysis of a highly underexpanded hydrogen jet with total pressure equal to 75 MPa, issuing into nitrogen at 5 MPa, shows that the use of real gas equations of state affects significantly the jet structure in terms of temperature, pressure, and Mach, number profiles along the jet centerline and also in terms of jet exit conditions, with differences up to 38%.
机译:这项工作通过使用高性能计算(HPC)方法检查了膨胀不足的气体射流的流体动力学结构,以解决是否有必要包括处理氢射流的真实气体假设这一问题。为了确保在实际工程应用(例如直接喷射式氢发动机)中此类射流的精确数值模拟,需要该问题的答案。已经实现并验证了一个轴向对称的湍流模型,该模型解决了多组分混合气体的Favre平均Navier-Stokes方程。通过比较在不同马赫数下的亚音速射流的扩展和中心线特性衰减速率与通过理论考虑和实验测量获得的扩散速率和中心线特性衰减速率,对流动模型进行了评估。此外,恢复了膨胀不足射流的马赫盘结构,从而确定了该计算模型的适用性和可靠性。考虑到实际气体的影响,范德华和Redlich-Kwong状态方程均已实现。对总压力等于75 MPa的高度过度膨胀的氢射流的分析,并在5 MPa下将其释放到氮气中,结果表明,使用真实的气体状态方程对温度,压力和马赫数,数量分布等方面的射流结构产生重大影响沿射流中心线,以及射流出口条件,相差高达38%。

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