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Numerical Study of Hub Taper Angle on Podded Propeller Performance

机译:枢纽螺旋桨性能对枢纽尖角的数值研究

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Presently, the majority of podded propulsion systems are of the pulling type, because this type provides better hydrodynamic efficiency than the pushing type. There are several possible explanations for the better overall performance of a puller type podded propulsor. One is related to the difference in hub shape. Puller and pusher propellers have opposite hub taper angles, hence different hub and blade root shape. These differences cause changes in the flow condition and possibly influence the overall performance. The current study focuses on the variation in performance of pusher and puller propellers with the same blade sections, but different hub taper angles. A hyperboloidal low order source- doublet steady/unsteady time domain panel method code was modified and used to evaluate effects of hub taper angle on the open water propulsive performance of some fixed pitch screw propellers used in podded propulsion systems. The modified code was first validated against measurements of two model propellers in terms of average propulsive performance and good agreement was found. Major findings include significant effects of hub taper angle on propulsive performance of tapered hub propellers and noticeable effects of hub taper angle on sectional pressure distributions of tapered hub propeller blades.
机译:目前,大多数腹部推进系统都是拉型,因为这种类型提供比推式型更好的流体动力学效率。有几种可能的解释,可以提高拉动仪型套件推进器的更好整体性能。一个与集线器形状的差异有关。拉拔器和推动器螺旋桨具有相对的轮毂锥形角度,因此不同的轮毂和叶片根形。这些差异导致流动条件的变化,可能影响整体性能。目前的研究侧重于具有相同叶片部分的推动器和拉拔器螺旋桨性能的变化,但是不同的轮毂锥形角度。复曲线低阶源 - 双峰稳定/不稳定时域面板方法代码被修改,并用于评估轮毂锥角对孔径推进系统中使用的一些固定俯仰螺旋桨的开放水推进性能的影响。在平均推进性能方面,首先验证修改的代码,针对两个模型螺旋桨的测量结果,并发现了良好的协议。主要发现包括轮毂锥角对锥形毂螺旋桨的推进性能的显着影响,以及轮毂锥角对锥形枢轴螺旋桨叶片的截面压力分布的显着效果。

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