Numerical Simulation and Mechanism Investigations of Cavitating Noise Around a Two-Dimension Valve Pilot Stage

Zhao Yonghua, Ruan Jian, Lu Qianqian
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引用次数: 2

Abstract

The two-dimensional valve integrates the pilot stage and the power stage on one spool, which makes it easy to achieve a fast valve operation and a high frequency response. It has the advantages of simple structure, stable performance and high power to weight ratio. In this paper, the fluid flow in the pilot stage of a 2D valve is analyzed by computational fluid dynamics, and the influence of cavitation on the flow field in the valve is the main study objective. The result shows that the throttling action of the valve port forms a high-speed jet in the chute area of the valve sleeve, and a large area of cavitation cavitation is generated at the same time. The velocity vortex and cavitation work together to intensify the pulsation of the fluid in the valve and become the main source of the noise. In the 2D valve pilot stage, the sound pressure level at the back of the chute of the valve sleeve reaches 175dB, and the maximum sound pressure level at the middle and outlet reaches 168dB. The sound pressure level at the back and middle of the chute decreases first and then increases, and the sound pressure level at the outlet of the chute decreases slowly. In the range of 0 - 5000Hz, the noise energy is concentrated in the low frequency band of less than 1000Hz, showing typical cavitation noise characteristics. The numerical result is favorable with the experimental result.
二维阀导级空化噪声数值模拟及机理研究
二维阀门将先导级和动力级集成在一个阀芯上,这使得它很容易实现快速的阀门操作和高频率响应。它具有结构简单、性能稳定、功率重量比高等优点。本文采用计算流体动力学的方法对2D阀先导级流体流动进行了分析,以汽蚀对阀内流场的影响为主要研究目标。结果表明,阀口的节流作用在阀套溜槽区形成高速射流,同时产生大面积的空化空化。速度涡和空化共同作用加剧了阀内流体的脉动,成为阀内噪声的主要来源。在2D阀导级,阀套溜槽后部声压级达到175dB,中间和出口最大声压级达到168dB。溜槽后部和中部的声压级先降低后升高,溜槽出口的声压级降低缓慢。在0 ~ 5000Hz范围内,噪声能量集中在小于1000Hz的低频带,表现出典型的空化噪声特征。数值计算结果与实验结果吻合较好。
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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