Active flow control on unsteady cloud cavitation: Insights into jet dynamics

IF 4.3 2区 工程技术 Q1 ENGINEERING, OCEAN Applied Ocean Research Pub Date : 2024-08-10 DOI:10.1016/j.apor.2024.104152
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Abstract

Unsteady cloud cavitation significantly impairs the performance of marine systems. Active flow control method has shown promise in effectively reducing cavitation, yet its specific mechanisms of action require elucidation. This study investigates continuous water injection on a NACA66 (MOD) hydrofoil as an active control against unsteady cloud cavitation. Results show notable reductions in cavitation volume: 52.57 % at a cavitation number of 0.83 and 86.24 % at 1.29. Employing the Lagrangian approach, the study tracks ideal particles to explore the jet's behavior and its interaction with cavitation. The interaction between the jet and cavitation is reciprocal: cavitation draws the jet, which in turn alters the cavitation's structure. The jet's movement is synchronized with the evolution process of cavitating flow, effectively limiting the spread of attached cavitation, disrupting cloud integrity, and encircling scattered clouds to prevent their growth. The analysis identifies the jet's streamwise direction as critical in suppressing cavitation, with the normal direction providing supplementary support, and the spanwise direction having minimal impact. Furthermore, the jet promotes a condensation-dominant state in local flow regions, hindering cavitation growth by altering the water-vapor mass transport process.

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非稳定云空化的主动流控制:对射流动力学的见解
不稳定云气蚀严重损害了海洋系统的性能。主动流量控制方法有望有效减少气蚀,但其具体的作用机制尚需阐明。本研究调查了在 NACA66(MOD)水翼上持续注水作为对不稳定云气蚀的主动控制。结果显示空化体积显著减少:空化数为 0.83 时减少 52.57%,空化数为 1.29 时减少 86.24%。研究采用拉格朗日方法跟踪理想粒子,以探索射流的行为及其与气蚀的相互作用。射流与空化之间的相互作用是相互的:空化吸引射流,射流反过来又改变空化的结构。射流的运动与空化流的演化过程同步,有效地限制了附着空化的扩散,破坏了云的完整性,并包围了分散的云,防止其增长。分析表明,喷流的流向是抑制空化的关键,法线方向提供辅助支持,而跨度方向的影响微乎其微。此外,喷流还促进了局部流区的凝结主导状态,通过改变水汽质量传输过程来阻碍气蚀的增长。
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来源期刊
Applied Ocean Research
Applied Ocean Research 地学-工程:大洋
CiteScore
8.70
自引率
7.00%
发文量
316
审稿时长
59 days
期刊介绍: The aim of Applied Ocean Research is to encourage the submission of papers that advance the state of knowledge in a range of topics relevant to ocean engineering.
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