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Mean velocity and moments of turbulent velocity fluctuations in the wake of a model ship propulsor

机译:模型船推进器尾流的平均速度和湍流速度波动矩

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Pod drives are modern outboard ship propulsion systems with a motor encapsulated in a watertight pod, whose shaft is connected directly to one or two propellers. The whole unit hangs from the stern of the ship and rotates azimuthally, thus providing thrust and steering without the need of a rudder. Force/momentum and phase-resolved laser Doppler anemometry (LDA) measurements were performed for in line co-rotating and contra-rotating propellers pod drive models. The measurements permitted to characterize these ship propulsion systems in terms of their hydrodynamic characteristics. The torque delivered to the propellers and the thrust of the system were measured for different operation conditions of the propellers. These measurements lead to the hydrodynamic optimization of the ship propulsion system. The parameters under focus revealed the influence of distance between propeller planes, propeller frequency of rotation ratio and type of propellers (co- or contra-rotating) on the overall efficiency of the system. Two of the ship propulsion systems under consideration were chosen, based on their hydrodynamic characteristics, for a detailed study of the swirling wake flow by means of laser Doppler anemometry. A two-component laser Doppler system was employed for the velocity measurements. A light barrier mounted on the axle of the rear propeller motor supplied a TTL signal to mark the beginning of each period, thus providing angle information for the LDA measurements. Measurements were conducted for four axial positions in the slipstream of the pod drive models. The results show that the wake of contra-rotating propeller is more homogeneous than when they co-rotate. In agreement with the results of the force/momentum measurements and with hypotheses put forward in the literature (see e.g. Poehls in Entwurfsgrundlagen für Schraubenpropeller, 1984; Schneekluth in Hydromechanik zum Schiffsentwurf, 1988; Breslin and Andersen in Hydrodynamics of ship propellers, 1996; Schneekluth and Bertram in Ship design for efficiency and economy, 1998), the co-rotating propellers model showed a much stronger swirl in the wake of the propulsor. The anisotropy of turbulence was analyzed using the anisotropy tensor introduced by Lumley and Newman (J Fluid Mech 82(1):161–178, 1977). The invariants of the anisotropy tensor of the wake flow were computed and were plotted in the Lumley–Newman-diagram. These measurements revealed that the anisotropy tensor in the wake of ship propellers is located near to the borders of the invariant map, showing a large degree of anisotropy. They will be presented and will be discussed with respect to applications of turbulence models to predict swirling flows.
机译:吊舱驱动器是现代的舷外推进系统,其电机封装在防水吊舱中,其轴直接连接至一个或两个螺旋桨。整个装置悬挂在船尾,并沿方位角旋转,从而无需推力即可提供推力和转向。力/动量和相位分辨激光多普勒风速仪(LDA)测量用于直线同向旋转和反向旋转螺旋桨吊舱驱动模型。可以通过测量来表征这些船舶推进系统的水动力特性。针对螺旋桨的不同运行条件,测量了传递到螺旋桨的扭矩和系统的推力。这些测量结果导致了船舶推进系统的水动力优化。重点关注的参数揭示了螺旋桨平面之间的距离,螺旋桨转速比和螺旋桨类型(同向或反向旋转)对系统总体效率的影响。基于其水动力特性,选择了两个正在考虑中的船舶推进系统,以通过激光多普勒风速仪对旋流尾流进行详细研究。两分量激光多普勒系统用于速度测量。安装在后螺旋桨马达轴上的光栅提供了一个TTL信号来标记每个周期的开始,从而为LDA测量提供了角度信息。在吊舱驱动器模型的滑流中对四个轴向位置进行了测量。结果表明,反向旋转螺旋桨的尾流比它们共同旋转时的尾流更均匀。与力/动量测量的结果以及文献中提出的假设相一致(参见例如,Poehls在EntwurfsgrundlagenfürSchraubenpropeller中,1984; Schneekluth在Hydromechanik zum Schiffsentwurf中,1988; Breslin和Andersen在船用螺旋桨的水动力学中,1996; Schneekluth和Bertram在《船舶设计中的效率和经济性》(1998年)中,在推进器之后,同向旋转螺旋桨模型显示出更强的旋涡。使用Lumley和Newman引入的各向异性张量分析了湍流的各向异性(J Fluid Mech 82(1):161-178,1977)。计算了尾流的各向异性张量的不变量,并将其绘制在Lumley-Newman图中。这些测量结果表明,船舶螺旋桨尾流中的各向异性张量位于不变图的边界附近,显示出很大程度的各向异性。将针对湍流模型在预测旋流中的应用进行介绍和讨论。

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  • 来源
    《Experiments in Fluids》 |2007年第3期|463-473|共11页
  • 作者单位

    LSTM Erlangen Lehrstuhl für Strömungsmechanik Universität Erlangen-Nürnberg Cauerstraße 4 91058 Erlangen Germany;

    LSTM Erlangen Lehrstuhl für Strömungsmechanik Universität Erlangen-Nürnberg Cauerstraße 4 91058 Erlangen Germany;

    LSTM Erlangen Lehrstuhl für Strömungsmechanik Universität Erlangen-Nürnberg Cauerstraße 4 91058 Erlangen Germany;

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