Simulation study on the cavitation distribution in the ball valve of a common rail injector

IF 2.2 4区 工程技术 Q2 ENGINEERING, MECHANICAL International Journal of Engine Research Pub Date : 2024-03-16 DOI:10.1177/14680874241238607
Jianhui Zhao, Shuo Chen, Guichun Yang, Heng Zhang
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Abstract

A transient-state numerical simulation is conducted to investigate the cavitation flow in the ball valve of a common rail (CR) injector. The computational fluid dynamics (CFD) software, employing the RANS turbulence model, is employed for this purpose. The study aims to analyze the characteristics and underlying causes of the uneven distribution of cavitation in the ball valve. The results reveal a significant occurrence of cavitation, exhibiting an uneven distribution along the walls of both the ball and the valve seat. Notably, the initiation position of the intense cavitation region on the wall of the ball is observed to lag behind that on the wall of the valve seat. The intense cavitation region on the wall of the ball is found to reside behind the sealing surface of the ball valve. The intense cavitation region on the wall of the ball is located behind the sealing surface of the ball valve. This region experiences flow separation caused by main flow detour, resulting in the formation of vortices that entrapped the cavitation cloud, thus fostering the development of intense cavitation. Conversely, the intense cavitation region on the wall of the valve seat originates from the entrance of the ball valve. This can be attributed to the sudden change in geometry at the entrance, leading to a significant pressure drop and inducing cavitation based on geometric factors. Furthermore, the stagnation effect caused by the ball exacerbates the discrepancy in the distribution of the intense cavitation region between the ball and the valve seat.
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共轨喷油器球阀中气蚀分布的模拟研究
为研究共轨 (CR) 喷油器球阀中的气蚀流,进行了瞬态数值模拟。计算流体动力学(CFD)软件采用了 RANS 湍流模型。研究旨在分析球阀中气蚀不均匀分布的特征和根本原因。研究结果表明,气蚀的发生非常明显,沿球体和阀座壁的分布不均匀。值得注意的是,观察到球体壁上强烈气蚀区域的起始位置落后于阀座壁上的起始位置。球体壁上的强烈空化区位于球阀密封面的后面。球体壁上的强烈气蚀区域位于球阀密封面的后面。该区域由于主流迂回而导致流体分离,从而形成涡流,夹带空化云,从而促进了强烈空化的发展。相反,阀座壁上的强烈气蚀区域则来自球阀入口。这可归因于入口处几何形状的突然改变,导致压力大幅下降,并根据几何因素诱发气蚀。此外,球体造成的停滞效应加剧了球体和阀座之间强烈气蚀区域分布的差异。
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来源期刊
International Journal of Engine Research
International Journal of Engine Research 工程技术-工程:机械
CiteScore
6.50
自引率
16.00%
发文量
130
审稿时长
>12 weeks
期刊介绍: The International Journal of Engine Research publishes high quality papers on experimental and analytical studies of engine technology.
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