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REDUCTION OF UNSTEADY UNDERWATER PROPELLER FORCES VIA ACTIVE TAIL ARTICULATION

机译:通过活跃的尾部铰接减少不稳定的水下螺旋桨力

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This study investigated the use of biologically-inspired tail articulation as a means to reduce unsteady propeller forces and by extension, noise due to stator wake blade interaction. This study was experimental in nature and testing was completed in a closed-channel water tunnel at the Naval Undersea Warfare Center in Newport, RI. A propeller-force measurement apparatus was designed and built to measure the forces and moments created by a spinning propeller behind a life scale stator model. Tests were conducted at a Reynolds number of 75,000 and stator tail articulation was carried out in the range of Strouhal number 0.0 < St < 0.13. A variety of non-lifting propellers were used to investigate sinusoidal articulation profiles in the range of amplitudes (2°,5°,10°), and phase angles between propeller blades and stator (0°-360°). It was found that stator articulation is capable of reducing the RMS of both unsteady thrust force and its time derivative as compared with a baseline static stator wake by choosing a suitable Strouhal number and phase angle. Tail articulation at St < 0.08 showed reduced unsteady forces for certain phase angles, while other phase angles demonstrated unsteady forces greater than the baseline wake. Articulation at St > 0.08 also showed unsteady forces that varied with phase but the associated unsteady forces were greater than the baseline wake for all phase angles. A reduced order wake model was used to calculate the relative position of wake vortices and propeller blades which was used in turn to visualize the effect of phase angle on propeller blade-wake interaction.
机译:本研究调查了使用生物学激发的尾部铰接作为减少不稳定螺旋桨力和延伸,由于定子唤醒刀片相互作用的噪声的方法。该研究在自然实验中,在纽波特的海军海底战争中心的闭路水隧道中完成了测试。设计并构建螺旋桨力测量装置,以测量由寿命级定子模型后面的旋转螺旋桨产生的力和时刻。在雷诺数为75,000的雷诺数和定子尾部铰接的测试中进行了测试,在STROUHAL数0.0 0.08的关节也表现出不稳定的力,其变化,但相关的不稳定力大于所有相角的基线唤醒。还用于计算唤醒涡旋和螺旋桨叶片的相对位置,其依次用于可视化相位角在螺旋桨叶片 - 唤醒相互作用上的效果。

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