阵列式涡流发生器对泵喷推进器减振降噪效果研究

Investigation of the Influence of Vortex-generator Array on Vibration and Noise Reduction of Pump-jet Propeller

  • 摘要: 摘 要:【目的】为有效抑制水下航行体尾翼马蹄涡向下游演进引发的推进器伴流场周向不均匀度与流动非定常性增强现象,本研究提出一种阵列式涡流发生器设计,旨在通过流动控制实现水动力噪声抑制与航行体隐身性能提升。【方法】首先基于有限体积法及改进的延迟分离涡湍流模型(IDDES)进行流场精细化仿真,搭建水下航行器推进器低频激振力高精度仿真数值模型,通过文献试验数据验证模型误差<4%;其次,对比计算加装涡流发生器的方案与基本方案,从激振力与噪声来评估其减振效果和声学抑制效果,并从流场演化的角度解释其作用机理;然后,提出不同数量阵列式涡流发生器方案,开展不同数量方案仿真计算,对涡流发生器数量进行优化;最后,开展高航速工况下仿真计算,以探究涡流发生器的减振降噪效果是否具有明显的航速相关性。【结果】涡流发生器减振降噪效果显著,其中最优方案能实现转子激振力一倍叶频峰值下降68.56%,远场辐射噪声1m等效声压级横剖面上能降低1.81dB,水平面上能降低2.84dB。【结论】阵列式涡流发生器通过分割大尺度涡结构显著改善伴流场,进而实现对推进器的减振降噪;涡流发生器数量不是越多越好,且在高航速下涡流发生器效果依然很稳定,为降低水下航行体推进器噪声提供了新途径。

     

    Abstract: Abstract:Objectives To effectively suppress the enhancement of circumferential inhomogeneity and flow unsteadiness in propeller wake fields caused by the downstream evolution of horseshoe vortices at underwater vehicle tail fins, this study proposes a vortex-generator array design. The proposed configuration aims to achieve hydrodynamic noise suppression and improve vehicle stealth performance through targeted flow control. Methods First, a refined flow field simulation was conducted using the finite volume method (FVM) and an improved delayed detached-eddy simulation (IDDES) turbulence model, establishing a high-precision numerical model for low-frequency excitation forces of underwater vehicle thrusters. The model was validated against published experimental data, showing an error margin <4%. Second, the vibration reduction and acoustic suppression effects were evaluated by comparing the vortex-generator-equipped scheme with the basic scheme through excitation force and noise analyses, with the mechanism explained from the perspective of flow field evolution. Subsequently, multiple VGA configurations with varying numbers of vortex generators were simulated to optimize their quantity. Finally, high-speed simulations were performed to investigate the speed dependency of the VGA’s vibration and noise reduction performance. Results The vortex-generators demonstrated significant vibration and noise reduction effects. The optimal scheme achieved a 68.56% reduction in the first blade-passing frequency (BPF) peak of rotor excitation forces, while the far-field radiated noise decreased by 1.81 dB in the transverse plane and 2.84 dB in the horizontal plane at a 1 m equivalent sound pressure level. Conclusions The vortex-generator array effectively improves the wake field by segmenting large-scale vortex structures, thereby mitigating thruster vibration and noise. The number of vortex generators should be optimized rather than maximized, and the performance remains stable at high speeds. This study provides a novel approach for reducing noise in underwater vehicle thrusters.

     

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