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Analytical and experimental study of hydrodynamic and hydroacoustic effects of air injection flow rate in ventilated supercavitation

机译:通风超空化过程中注气流量的水动力和水声效应的分析和实验研究

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摘要

Formation of supercavity around an underwater vehicle improves the hydrodynamic performance of fluid flow and causes vehicle to reach higher speeds. However, sound generated by the supercavitation is very effective in recognition of the vehicle and reduction in its controlled precision. In this study, compressible Navier-Stocks equations were solved by using the method of Large Eddy Simulation and combining them with the physical source and sink model to simulate supercavitation flow numerically. The qualitative and quantitative parameters from numerical results compared and confirmed with experimental results. Subsequently, by considering a suitable control surface around the simulated supercavity, the needed parameters for acoustic analysis were provided. Eventually, by solving the hybrid hydroacoustic model presented by Riahi et al. the far field noise of supercavity was estimated. In light of important role of air injection flow rate in the formation of ventilated supercavity, hydrodynamic and hydroacoustic results for three different lengths of supercavity stemmed by different air injections, were compared with each other. According to the obtained results, acoustic behavior of the supercavity was changed by increasing of air injection.
机译:在水下航行器周围形成超腔改善了流体流动的流体力学性能,并使航行器达到更高的速度。但是,超气蚀产生的声音对于识别车辆和降低其控制精度非常有效。在这项研究中,通过使用大涡模拟方法,并将其与物理源和汇模型组合,以数值模拟超空化流,解决了可压缩的Navier-Stocks方程。将定性和定量参数由数值结果与实验结果进行比较并得到证实。随后,通过在模拟超腔周围考虑合适的控制面,提供了进行声学分析所需的参数。最终,通过解决由Riahi等人提出的混合水声模型。估计了超腔的远场噪声。鉴于空气喷射流量在通风超腔形成中的重要作用,将不同空气喷射引起的三种不同长度的超腔的流体动力和水声结果进行了比较。根据获得的结果,通过增加空气注入改变了超腔的声学性能。

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