共查询到15条相似文献,搜索用时 46 毫秒
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吊舱推进器定常水动力性能计算 总被引:1,自引:0,他引:1
采用FLUENT软件进行拖式吊舱推进器水动力性能的计算,将整体计算域划分为三个区域进行从而达到合理减少计算网格的目的。对于吊舱推进器的整体计算由于涉及到转子/定子物体的相互干扰问题,文中在模拟相互干扰平均效果的定常情况计算中,采用混合面模型进行。对计算方法及边界条件的设置进行了详细介绍。讨论了两种壁面函数对计算结果的影响。计算了不同进速系数下吊舱推进器的推力系数、扭矩系数。采用四套网格进行了吊舱推进器水动力性能计算的比较分析,给出了详细的计算网格参数。分析了计算网格数对吊舱推进器理论预报精度的影响。 相似文献
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吊舱推进器及其螺旋桨的敞水性能估算 总被引:1,自引:2,他引:1
对影响吊舱推进器螺旋桨性能的因素进行了分析,提出应用常规螺旋桨图谱估算POD桨敞水特性曲线的方法,根据已知POD桨的敞水特性资料,通过保持盘面比不变改变螺距比迭代计算得到等效常规螺旋桨,根据得到的螺距比变化规律和常规桨图谱,设计POD桨和估算其敞水特性,并给出算例。 相似文献
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基于粘性流体理论,采用CFD技术数值预报双桨式吊舱推进器的敞水水动力性能。通过对某单桨吊舱推进器进行数值模拟,并与实验值进行比较,验证数值计算方法的准确性。最后数值计算了双桨式吊舱推进器在不同偏转角时的水动力性能,通过数值计算、结果比较和特性分析,计算结果呈现出一定的规律性,达到了给出双桨式全回转吊舱推进器数值预报的方法和一般性规律的目的,可以对此类推进器水动力性能的预报提供参考。 相似文献
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基于势流理论面元法建立了吊舱推进器定常性能的计算方法.分别建立螺旋桨和吊舱的积分方程,通过在表面上布置双曲面元将方程离散为以面元上偶极强度为未知量的矩阵.螺旋桨和吊舱之间的相互影响通过迭代计算来处理.Newton-Raphson迭代过程被用来在桨叶随边满足压力Kutta条件.为避免数值求导中的奇异性,用柳泽(Yanagizawa)方法求得物体表面的速度分布.支架作为升力体处理,并通过迭代计算更新支架的尾涡形状.计算了拖式吊舱推进器的定常水动力性能,与实验结果的比较表明,计算误差在5%以内.分析了舱体对螺旋桨的影响,舱体的伴流会引起螺旋桨的载荷增大. 相似文献
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全回转吊舱推进器作为现代最先进的特种推进设备之一,近几年来其整体的水动力性能研究一直备受行业热点关注,但是针对吊舱螺旋桨设计的研究却相对较少,由于吊舱的独特结构形式,螺旋桨、舱体、吊柱等结构相互影响,因此螺旋桨设计方法和常规推进器的设计有着较大的差别,本文使用数值升力面的理论设计方法结合CFD计算方法,探索出吊舱螺旋桨水动力变化规律,分析吊舱结构对螺旋桨的水动力性能影响,为吊舱推进器的螺旋桨设计提供了一种可靠的方法。 相似文献
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为研究鳍的影响,建立了吊舱推进器的水动力性能的计算模型.计算了吊舱推进器安装和不安装鳍时的水动力性能,螺旋桨与吊舱及鳍之间的相互影响通过迭代计算加以考虑.采用基于速度势的基本积分微分方程,并采用双曲面元以消除面元间的间隙.采用Newton-Raphson迭代求解压力分布使得桨叶的随边满足压力库塔条件,用柳泽的方法求得物体表面的速度分布以避免数值求导的奇异性.无鳍.单鳍和双鳍的吊舱推进器水动力性能计算结果表明,附加鳍时吊舱推进器的螺旋桨推力增加,由于鳍上产生推力导致吊舱阻力减小.附加双鳍时的吊舱推进器水动力性能最好,附加单鳍时次之,无鳍时最低. 相似文献
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Jungyong Wang Ayhan Akinturk Neil Bose Stephen J. Jones Yun Young Song Ho Hwan Chun Moon Chan Kim 《Journal of Marine Science and Technology》2008,13(3):244-255
The objective of this study was to investigate the performance of a model azimuthing podded propulsor in ice-covered water.
Model tests were carried out with two different depths of cut into the ice (15 and 35 mm), two different ice conditions (presawn
and pack ice conditions), and four different azimuthing angles. The depth of cut is the maximum penetration depth of the propeller
blade into the ice block. The 0.3-m-diameter model propeller was operated in a continuous ice milling condition. Ice loads
were measured by several sensors which were installed in various positions on the model. Six one-axis pancake-style load cells
on the top of the model measured the global loads and two six-component dynamometers were installed on the shaft to measure
the shaft loads. One six-component dynamometer was attached to the one of the propeller blades inside the hub to measure the
blade loads. The pod unit and propeller performance in ice are presented. Ice-related loads, which were obtained when the
blade was inside the ice block, are introduced and discussed. During the propeller–ice interaction, a blade can experience
the path generated by the previous blade, which is called the shadowing effect. The effects of shadowing, depth of cut, azimuthing
angle, and advance coefficient on propulsor performance are presented and discussed. 相似文献
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Experimental tests were conducted to evaluate the hydrodynamic performance of an L-type podded propulsor in straight-ahead motion and off-design conditions using an open-water measuring instrument developed by the authors for podded propulsors, a ship model towing tank, and under water particle image velocimetry (PIV) measurement systems. Under the three types of conditions, the main parameters of an L-type podded propulsor were measured, including the propeller thrust and torque, as well as the thrust, side force, and moment of the whole pod unit. In addition, the flow field on the section between the propeller and the strut was analyzed. Experimental results demonstrate that the dynamic azimuthing rate and direction and the turning direction affect the forces on the propeller and the whole pod unit. Forces are asymmetrically distributed between the left and right azimuthing directions because of the effect of propeller rotation. The findings of this study provide a foundation for further research on L-type podded propulsors. 相似文献