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Multi-objective optimization of the flush-type intake duct for a waterjet propulsion system

机译:水射流推进系统冲洗式进气道的多目标优化

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The intake duct is an important component of waterjet propulsion system and its hydraulic performance is directly connected with the capability of the waterjet pump and even the propulsion performance of the system. In order to optimize the flush-type intake duct, the present paper proposes a multi-objective optimization system including Design of Experiments (DOE), Computational Fluid Dynamics (CFD), three-dimensional parametric design, approximate model, the modified Non-dominated Sorting Genetic Algorithm-II (NSGA-II) and a Technique for Ordering Preferences by Similarity to Ideal Solution (TOPSIS). The nonuniformity and perpendicularity of outflow, and hydraulic efficiency for the intake duct are treated as the optimization objectives with four geometrical parameters as the design variables. Local sensitivity analyses indicate that the optimization objectives are significantly affected by the inclination angle and slightly affected by the lip vertical distance of the intake duct. During IVR = 0.3-0.8, the outflow quality and hydraulic efficiency of the optimised intake duct are greatly improved. The nonuniformity after optimization decreases by 27.8% and perpendicularity increases by 3.07% at the design condition of IVR = 0.7 and V-s = 19.49 m/s. Based on the flow at the outlet plane of intake duct, the pressure distribution after optimization is very uniform and the tangential velocity is small without obvious secondary flow. During the application to a mixed-flow waterjet propulsion system at various navigation speeds, the nonuniformity of the optimized intake duct decreases by 20.4% and perpendicularity increases by 4.11% on average, demonstrating that the optimized intake duct performs a better outflow quality. It is also noted that the non-uniform flow from the intake duct mainly affects pressure distribution on the suction surface of impeller blade and causes different shaft power.
机译:进气管是水射流推进系统的重要组成部分,其水力性能与水射流泵的性能甚至系统的推进性能直接相关。为了优化冲洗式进气道,本文提出了一种多目标优化系统,包括实验设计(DOE),计算流体动力学(CFD),三维参数设计,近似模型,改进的非主导型。排序遗传算法II(NSGA-II)和通过与理想解决方案相似性来排序首选项的技术(TOPSIS)。以四个几何参数作为设计变量,将出水口的不均匀性和垂直性以及进气管道的水力效率视为优化目标。局部灵敏度分析表明,优化目标受倾斜角度的影响很大,而受进气管的唇缘垂直距离的影响则稍有不同。在IVR = 0.3-0.8期间,优化进气道的出水质量和水力效率大大提高。在IVR = 0.7和V-s = 19.49 m / s的设计条件下,优化后的不均匀性减少了27.8%,垂直性增加了3.07%。基于进气道出口平面的流量,优化后的压力分布非常均匀,切向速度较小,没有明显的二次流。在以各种航行速度应用于混流水喷射推进系统的过程中,优化的进气管的不均匀度平均降低了20.4%,垂直度平均提高了4.11%,这表明优化的进气管的出水质量更好。还应注意,来自进气道的不均匀流动主要影响叶轮叶片吸力表面上的压力分布,并导致不同的轴功率。

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