螺旋桨
研磨
噪音(视频)
磨料
表面粗糙度
材料科学
降噪
声学
空化
沟槽(工程)
涡流
机械工程
海洋工程
工程类
复合材料
计算机科学
机械
物理
冶金
图像(数学)
人工智能
作者
Shengwang Zhu,Guijian Xiao,Yi He,Gang Liu,Shayu Song,Suolang Jiahua
出处
期刊:Journal of advanced manufacturing science and technology
[Huatuo Culture Media Co., Limited]
日期:2022-01-01
卷期号:2 (1): 2022003-2022003
被引量:19
标识
DOI:10.51393/j.jamst.2022003
摘要
The processed surface integrity of the propeller has a vital impact on the performance, efficiency, and noise of the entire power energy conversion device, and the bionic micro-structured surface is conducive to improving the noise reduction performance of the working parts. In this paper, the microstructure of the propeller blade surface is machined by precision abrasive belt grinding. Based on the surface roughness detection and 3D morphology analysis results, a univariate model of propeller surface groove with V-shaped section is established. The flow field analysis, numerical analysis of cavitation, and noise performance analysis of general marine propellers and bionic marine propellers are also carried out. The results show that the maximum noise of the propeller with the bionic grooved surface is 94.7 decibels, and the maximum noise of the general propeller is 146 decibels. The noise reduction effect is increased by 35%, which provides a new method of precision abrasive belt grinding for the noise reduction of the propeller.
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