Numerical study on the evolution of cavitating flow and collapse-induced erosion characteristics in high-speed hydraulic tunnel.

IF 9.7 1区 化学 Q1 ACOUSTICS
Bin Liu, Hao Yu, Zhanchao Yin, Xiao Zhang
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引用次数: 0

Abstract

While hydrodynamic cavitation and the associated erosion during cavity collapse have received significant attention, existing research has predominantly focused on small-scale geometries like Venturi tubes. In this study,afirst high-resolution numerical simulation is conducted to investigate cavitation and erosion phenomena within a large-scale, high-speed hydraulic tunnel.We employthe large eddy simulation approachto investigatethe characteristics of cavitation structures under varying cavitation numbers.The study elucidatesthe pressure loss process induced by cavitation blockage flow, anddiscussesthe vortex-induced cavitation mechanism along with the feedback effect of cavity collapse on vortical structures. Ata representative cavitation number of 0.89, the cavitation dynamics are dominated by a spatially partitioned coexistence mechanism of condensation shock and re-entrant jet-induced shedding. This partitioning phenomenon is primarily attributed to the tunnel's asymmetric geometry and the significant gravitational effects inherent to large-scale hydraulic tunnels. Novel methods based on physical theory are proposed for identifying cavity collapse regions within the flow field and predicting wall erosion risk regions;these methods have beenexperimentally validated. The wall erosion risk under the condensation shock shedding cycle is found to be significantly higher than that under the re-entrant jetcycle. Furthermore, wall erosion in hydraulic tunnels is more likely to occur near the boundaries, with high-risk areas concentrated primarilyin the downstream regions. Conversely, cavitation occurs withintheextensive middle regions of each wall. This disparity arises because cavitation initiates more readily on smooth surfaces, whereas collapse-induced erosion is favored in pressure recovery zones.

高速水工隧洞空化流演化及溃落侵蚀特性数值研究。
虽然水动力空化和空腔崩塌过程中相关的侵蚀受到了极大的关注,但现有的研究主要集中在文丘里管等小尺寸几何结构上。本文首先对大型高速水工隧洞内的空化和冲蚀现象进行了高分辨率数值模拟研究。采用大涡模拟的方法研究了不同空化数下空化结构的特性。研究阐明了空化阻塞流引起的压力损失过程,讨论了涡致空化机理以及空腔塌陷对涡结构的反馈效应。具有代表性的空化数为0.89,空化动力学以凝结激波和再入射流诱导脱落的空间分割共存机制为主。这种分块现象主要是由于隧洞的不对称几何形状和大型水工隧洞固有的显著重力效应所致。提出了基于物理理论的流场空腔塌陷区识别和壁面侵蚀危险区预测的新方法;这些方法已经过实验验证。发现凝结激波脱落循环下的壁面侵蚀风险显著高于再入式喷射循环下的壁面侵蚀风险。此外,水工隧洞壁面侵蚀更容易发生在边界附近,高风险区域主要集中在下游区域。相反,空化发生在每个壁的广泛的中间区域。这种差异的产生是因为在光滑的表面上更容易产生空化,而在压力恢复区则更容易发生塌陷引起的侵蚀。
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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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