共查询到17条相似文献,搜索用时 734 毫秒
1.
2.
3.
对引起螺旋桨毂帽鳍系统推进性能变化的细节及流动本质问题的研究,有助于对毂帽鳍的节能机理产生新的认识,并为改进该系统的推进性能提供新的思路。通过模型试验和大涡模拟方法对螺旋桨毂帽鳍系统进行了力的测量及精细流场的分析,从能量的角度,分析了毂帽鳍节能机理。数值模拟显示,在毂帽鳍的作用下,在紧邻桨毂后方区域的流速比无毂帽鳍时小且低速区域更广,桨毂后方流体轴向和横向动能均有所减小。由此可知,毂帽鳍通过回收一部分螺旋桨释放在尾流中的动能实现节能;在桨毂后安装一种圆锥形导流帽可避免流动分离,能进一步提高推进系统的整体效率。 相似文献
4.
5.
6.
7.
8.
9.
10.
11.
CFD simulation of propeller and rudder performance when using additional thrust fins 总被引:2,自引:0,他引:2
HUANG Sheng ZHU Xiang-yuan GUO Chun-yu CHANG Xin 《船舶与海洋工程学报》2007,6(4):27-31
To analyse a possible way to improve the propulsion performance of ships,the unstructured grid and the Reynolds Average Navier-Stokes equations were used to calculate the performance of a propeller and rudder fitted with additional thrust fins in the viscous flow field.The computational fluid dynamics software FLUENT was used to simulate the thrust and torque coefficient as a function of the advance coefficient of propeller and the thrust efficiency of additional thrust fins. The pressure and velocity flow behind the propeller was calculated. The geometrical nodes of the propeller were constituted by FORTRAN program and the NUMBS method was used to create a configuration of the propeller,which was then used by GAMMBIT to generate the calculation model. The thrust efficiency of fins was calculated as a function of the number of additional fins and the attack angles. The results of the calculations agree fairly well with experimental data,which shows that the viscous flow solution we present is useful in simulating the performance of propellers and rudders with additional fins. 相似文献
12.
Numerical simulation is investigated to disclose how propeller boss cap fins (PBCF) operate utilizing Reynolds-averaged Navier-Stokes (RANS) method. In addition, exploration of the influencing mechanism of PBCF on the open water efficiency of one controllable-pitch propeller is analyzed through the open water characteristic curves, blade surface pressure distribution and hub streamline distribution. On this basis, the influence of parameters including airfoil profile, diameter, axial position of installation and circumferential installation angle on the open water efficiency of the controllable-pitch propeller is investigated. Numerical results show: for the controllable-pitch propeller, the thrust generated is at the optimum when the radius of boss cap fins is 1.5 times of propeller hub with an optimal installation position in the axial direction, and its optimal circumferential installation position is the midpoint of the extension line of the front and back ends of two adjacent propeller roots in the front of fin root. Under these optimal parameters, the gain of open water efficiency of the controllable-pitch propeller with different advance velocity coefficients is greater than 0.01, which accounts for approximately an increase of 1%-5% of open water efficiency. 相似文献
13.
吊舱式电力推进船舶螺旋桨匹配设计仿真研究 总被引:2,自引:0,他引:2
在国内,吊舱推进器的设计还处于理论起步阶段,尤其是吊舱推进器螺旋桨,其设计方法尚未成熟,而螺旋桨的设计对于整个推进系统推进性能的影响又尤为关键,关系到船—机—桨匹配的综合推进性能。为此,采用常规螺旋桨敞水特性图谱等效设计POD螺旋桨参数的方法对吊舱推进器螺旋桨进行设计,分析吊舱式推进船舶船—机—桨的匹配性能。为了提高设计效率及优化推进系统的推进性能,针对吊舱式电力推进船舶,采用常规螺旋桨等效设计方法设计POD螺旋桨参数,同时基于LabVIEW图形化编程语言开发船—机—桨匹配数值分析软件以对设计参数进行静态匹配计算,并与母船的推进效率进行对比,选取最优化的螺旋桨参数作为POD螺旋桨参数,以优化推进效率。研究结果表明:采用常规螺旋桨等效设计方法设计POD螺旋桨参数的方案,同时结合开发的船—机—桨匹配数值仿真分析平台,可以方便、快捷地对吊舱式推进船舶进行船—机—桨匹配分析计算比较,提高推进性能。 相似文献
14.
15.
Takafumi Kawamura Kazuyuki Ouchi Takeo Nojiri 《Journal of Marine Science and Technology》2012,17(4):469-480
Computational fluid dynamics (CFD) analyses of propeller boss cap fins (PBCF) were carried out for two different propellers at model and full scale Reynolds numbers with two different inflow conditions. Computations corresponding to the reverse propeller open test (POT) experiment were confirmed to be in a good agreement with the measurement. The results of computations at different conditions have shown that increased Reynolds number and presence of hull wake both positively influence the effects of PBCF. Due to the combined effect of the Reynolds number and the wake, the gain in the propeller efficiency at the full scale condition was found to be significantly larger than that at the model test condition. The detailed investigation of the results suggested that the fin drag becomes smaller and the reduction of the boss drag becomes larger at the full scale condition. However, the predicted gain is still smaller than the values reported in the sea trial and logbook analysis. The remaining gap may be attributed to the difference in the estimated and actual wake distribution or to other factors such as interactions with hull and rudder, surface roughness, unsteadiness and hub vortex cavitation. 相似文献
16.
文章对桨后普通舵和扭曲舵的水动力性能进行了试验研究,并采用计算流体力学方法对桨舵系统的水动力性能进行计算,得到了不同进速系数下的推力系数、扭矩系数以及敞水效率,并绘制了敞水性能曲线。通过桨舵模型试验值与计算值的对比,验证了计算方法的可靠性。为了进一步提高扭曲舵的节能效果,在扭曲舵前安装了舵球,优化舵球的半径后在舵球两端安装推力鳍,通过优选推力鳍的各个参数(安装位置、展弦比和安装角),使桨舵系统的敞水效率逐步提高。确定了舵球鳍的最优参数后,桨—扭曲舵系统的效率进一步提高1.2%。最后通过观察舵表面压力分布、舵附近轴向速度和迹线分布,分析了舵球鳍对桨舵干扰的影响。 相似文献