Hydrodynamics of Supersonic Steam Jets Injected into Cross-Flowing Water

IF 1.8 Q3 MECHANICS
Fluids Pub Date : 2023-09-12 DOI:10.3390/fluids8090250
Hassan Ali Ghazwani, Khairuddin Sanaullah, Afrasyab Khan
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Abstract

High-speed gas/vapour jets injected into a cross-moving sonic liquid signifies a vital phenomenon which bears useful applications in environmental and energy processes. In the present experimental study, a pulsating jet of supersonic steam was injected into cross-flowing water. Circulation zones of opposite vorticity owing to the interaction between the steam jet and cross-water flow were found. However, a large circulation appeared in front of the nozzle exit. Also, most small circulation regions were observed at higher water-flow rates (>2 m3/s). Among the prime mixing variables (i.e., turbulence kinetic energy (TKE) and Reynolds shear stress (RSS)), the RSS estimations backed a small diffusive phenomenon within a region far from the nozzle exit. Further information extracted from the PIV images indicated the existence of Kelvin–Helmholtz (KH) instabilities. The counter-rotating vortex pairs (CVPs) appeared to be significant in the region close to the nozzle exit, and they exhibited leeward side folds. Moreover, the effects of the operating conditions on the pressure recovery and mixing efficiency as well as the penetration and the separation height were evaluated to determine the optimisation of the phenomenon. By applying extreme difference analysis, the mixing efficiency was found as the most influential parameter.
横流水中超音速蒸汽射流的流体力学
高速气体/蒸汽射流注入到交叉运动的声波液体中是一种重要的现象,在环境和能源过程中具有有用的应用。在本实验中,将超声速蒸汽脉冲射流注入交叉流动的水中。由于蒸汽射流与横流的相互作用,形成了涡度相反的环流区。然而,喷嘴出口前出现了较大的循环。此外,在较高的水流速率(2 m3/s)下观察到大多数小循环区域。在主要混合变量(即湍流动能(TKE)和雷诺剪切应力(RSS))中,RSS估计支持在远离喷嘴出口的区域内存在较小的扩散现象。从PIV图像中提取的进一步信息表明存在开尔文-亥姆霍兹(KH)不稳定性。在靠近喷嘴出口的区域,反向旋转涡对(CVPs)明显存在,并表现出背风侧褶皱。此外,还评估了操作条件对压力恢复和混合效率以及渗透和分离高度的影响,以确定该现象的优化。通过极差分析,发现混合效率是影响最大的参数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Fluids
Fluids Engineering-Mechanical Engineering
CiteScore
3.40
自引率
10.50%
发文量
326
审稿时长
12 weeks
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