Study on the coupling mechanism of nozzle structure-cavitation impact under submerged environment.

IF 9.7 1区 化学 Q1 ACOUSTICS
Xiuneng Li, Xide Cheng, Wenjiang Hou, Shidong Fan, Xiaofeng Guo, Xiangshu Lei, Zhenlong Fang, Yan Chen
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引用次数: 0

Abstract

Water jet technology has broad potential in marine engineering due to its high efficiency, energy efficiency, and environmental friendliness. This study aims to enhance the cavitation fragmentation performance of jets by integrating underwater erosion experiments with large eddy simulations to investigate the influence of petal-shaped nozzle structural parameters on cavitation impact characteristics. A multiscale analysis method integrating cavitation impact and damage mechanisms, along with a metric for cavitation intensity, has been established to quantify the cavitation impact performance of jets. Experimental and computational fluid dynamics results show that the organ-pipe nozzle (O.N40) with a diffusion angle of 40° has the maximum cavitation strength at target distance L/De = 6. The optimum target distance L/De = 8 occurs for a petal-shaped nozzle (P.N27) with a diffusion angle of 27°. Under these conditions, the cavitation erosion intensity is 2.29 times greater than that of O.N40. Microporous regions caused by bubble collapse were identified via scanning electron microscopy (SEM). Localized high-pressure phenomena emerge during cavitation cloud collapse, accompanied by outwardly propagating pressure waves. P.N60 cavitation bubbles exhibit a greater development rate and spatial range with higher bubble density, generating stronger cavitation impacts at the target surface. Dynamic mode decomposition (DMD) was applied to cavitation data in the shock flow field. The steady cavitation flow field was captured in the high-energy modes. The spatio-temporal evolution of microbubbles was accurately characterized by higher-order modes. This study elucidated the interaction mechanisms between nozzle structure and cavitation impact and provided theoretical foundations for optimizing nozzle designs in submerged rock-breaking applications.

水下环境下喷管结构-空化冲击耦合机理研究。
水射流技术具有高效、节能、环保等特点,在海洋工程中具有广阔的应用前景。本研究旨在通过水下侵蚀实验与大涡模拟相结合,研究花瓣形喷管结构参数对空化冲击特性的影响,提高射流的空化破碎性能。建立了一种综合空化冲击与损伤机理的多尺度分析方法,并结合空化强度指标对射流的空化冲击性能进行了量化。实验和计算流体力学结果表明,扩散角为40°的风琴管喷嘴(O.N40)在目标距离处的空化强度最大,L/De = 6。当扩散角为27°时,花瓣状喷嘴(P.N27)的最佳靶距L/De = 8。在此条件下,空化侵蚀强度是O.N40的2.29倍。通过扫描电镜(SEM)鉴定了气泡破裂引起的微孔区域。空化云坍缩过程中出现局部高压现象,并伴有向外传播的压力波。P.N60空化泡密度越大,发育速度越大,空化范围越大,在靶表面产生的空化冲击越强。将动态模态分解(DMD)应用于激波流场中的空化数据。在高能模式下捕获了稳定的空化流场。用高阶模态准确表征了微气泡的时空演化过程。该研究阐明了喷管结构与空化冲击的相互作用机理,为水下破岩喷管优化设计提供了理论依据。
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
Ultrasonics Sonochemistry
Ultrasonics Sonochemistry 化学-化学综合
CiteScore
15.80
自引率
11.90%
发文量
361
审稿时长
59 days
期刊介绍: Ultrasonics Sonochemistry stands as a premier international journal dedicated to the publication of high-quality research articles primarily focusing on chemical reactions and reactors induced by ultrasonic waves, known as sonochemistry. Beyond chemical reactions, the journal also welcomes contributions related to cavitation-induced events and processing, including sonoluminescence, and the transformation of materials on chemical, physical, and biological levels. Since its inception in 1994, Ultrasonics Sonochemistry has consistently maintained a top ranking in the "Acoustics" category, reflecting its esteemed reputation in the field. The journal publishes exceptional papers covering various areas of ultrasonics and sonochemistry. Its contributions are highly regarded by both academia and industry stakeholders, demonstrating its relevance and impact in advancing research and innovation.
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