阀体孔板
倒角(几何图形)
下游(制造业)
机械
雷诺数
噪音(视频)
还原(数学)
物理
流量(数学)
航程(航空)
体积热力学
旋涡脱落
散热器(发动机冷却)
喷射(流体)
材料科学
残余物
解决方案
声学
衰减
流量调节
几何学
降噪
圆柱
标量(数学)
谱线
唤醒
剪切(地质)
层流
基流
作者
Haoyuan Zhang,Hyung Jin Sung,Peng Wang,Liu Y
标识
DOI:10.1017/jfm.2026.12045
摘要
This study develops a resolvent-guided optimisation framework for reducing flow-induced noise in a confined finite-thickness orifice through downstream-edge chamfering under a pressure-drop constraint. The target response is the downstream transmitted in-duct pressure below the first higher-order duct-mode cut-on. A steady base flow is combined with eddy-viscosity-enhanced resolvent analysis to construct a wall-pressure-related source proxy, and the selected design is assessed using large-eddy simulation. The baseline circular orifice supports strong amplification and intense wall-pressure loading over the downstream inner-orifice wall and immediate postorifice region, where in-hole recirculation, separated shear-layer development, and downstream recovery are strongly coupled. The optimisation identifies an optimal downstream chamfer with a length equal to 55 % of the orifice thickness and a chamfer angle of 50°. Rather than eliminating separation, this geometry redistributes amplification-supporting structures, Reynolds-stress concentrations and wall-pressure fluctuations away from the sharp downstream corner, weakening the compact dipole-source region. The wall-pressure spectra are reduced over almost the entire frequency range below the first higher-order duct-mode cut-on frequency, with strong attenuation of the dominant narrow-band peaks. The duct-based surface-pressure contribution remains dominant in the low Mach-number confined flow but is suppressed more strongly than the volume Reynolds-stress contribution. The residual volume source support is redistributed farther downstream with the displaced shear layer. The selected chamfer further retains a clear source-reduction benefit over a moderate Reynolds number range near the design condition. These results demonstrate an efficient route for pressure-loss-constrained noise reduction in confined internal flows.
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