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EFFECT OF NOZZLE GEOMETRY ON THE NEAR-FIELD FLOW CHARACTERISTICS OF HIGH-PRESSURE GAS LEAK JETS

机译:喷嘴几何形状对高压燃气泄漏近场流动特性的影响

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Three-dimensional large eddy simulations of high-pressure jets at the same nozzle pressure ratio of 5.60 but issuing from different nozzles are conducted. Four different nozzle geometries, i.e., the circular, elliptic, square, and rectangular nozzles, are used to investigate the effect of the nozzle geometry on the near-field jet flow behavior. A high-resolution, hexahedral, and block-structured grid containing about 31.8 million computational cells is applied. The compressible flow solver, astroFoam, which is developed based on the OpenFOAM C++ library, is used to perform the simulations. The time-averaged near-field shock structures and the mean axial density are compared with the experiment data to validate the fidelity of the LES results, and the reasonable agreement is observed. The results indicate that the remarkable differences exist in the near-field flow structures of the jets. In particular, the circular and square jets correspond to a three-dimensional helical instability mode, while the elliptic and rectangular jets have a two-dimensional lateral instability in their minor axis planes. A subsonic flow zone exists after the Mach disk in the circular and square jets, but is lacking in the elliptic and rectangular jets. The intercepting shocks in the circular jet originate near the nozzle exit, and appear to be circular in cross-section. The intercepting shocks in the square jet originate at the four corners of the nozzle exit at first, and then are observed along the major axis plane some distance downstream of the nozzle exit. However, the formation of the intercepting shock is observed in the major axis planes but is lacking in the minor axis planes for the elliptic and rectangular jets. In addition, the real mass flow rates and discharge coefficients for different jets are computed based on the LES modeling, and their differences are explored.
机译:在相同的喷嘴压力比为5.60但从不同的喷嘴发出的情况下,对高压射流进行了三维大涡模拟。四种不同的喷嘴几何形状,即圆形,椭圆形,方形和矩形喷嘴,用于研究喷嘴几何形状对近场射流行为的影响。应用了高分辨率,六面体和块结构的网格,其中包含约3180万个计算单元。基于OpenFOAM C ++库开发的可压缩流求解器astroFoam用于执行模拟。将时均近场冲击结构和平均轴向密度与实验数据进行比较,以验证LES结果的保真度,并观察到合理的一致性。结果表明,射流的近场流动结构存在显着差异。特别地,圆形和方形射流对应于三维螺旋不稳定性模式,而椭圆形和矩形射流在其短轴平面中具有二维横向不稳定性。在马赫盘之后,在圆形和方形射流中存在亚音速流动区,但是在椭圆形和矩形射流中则缺少该亚音速流动区。圆形射流中的拦截冲击起源于喷嘴出口附近,并且在横截面上呈圆形。方形射流中的拦截冲击首先起源于喷嘴出口的四个角,然后沿着主轴平面在喷嘴出口下游一定距离处观察到。然而,在椭圆形和矩形射流的长轴平面上观察到了拦截激波的形成,但在短轴平面上却没有。此外,基于LES模型计算了不同射流的实际质量流量和排放系数,并探讨了它们之间的差异。

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