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Stern Flap-Waterjet-Hull Interactions and Mechanism: A Case of Waterjet-Propelled Trimaran With Stern Flap

机译:船尾襟翼-水射流-船体相互作用及机理:以船尾襟翼的水射流推进三体船为例

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摘要

To research the stern flap (SF) and waterjet-hull interaction, unsteady Reynolds-averaged Navier-Stokes (URANS) simulations for a waterjet-propelled trimaran considering sinkage and trim are performed. Uncertainty analysis of the numerical results for the bare hull (BH) model is presented. At the design speed Froude number (Fr) of 0.6 and under displacement state, the model-scaled trimaran, installed with stern flaps of varied angle and length, tests the BH and self-propulsion (SP) performance based on URANS simulations. For the resistance, the global effects due to motions and the local effects of SF, water jets (WJ), and the coupled term between SF and WJ on the hull are separately analyzed. Taking the waterjet propulsion system into account, an SP model with reasonable stern flap effectively reduces the trim, the resistance acting on the hull and the waterjet thrust deduction which contributes to energy-saving and high-efficiency propulsion. The mechanism of the improved performance of the waterjet-propelled trimaran with stern flaps is discussed. For the resistance increment, the global effects, the local effects of SF and WJ are the major reason for resistance increase, and the nonlinear coupled term of local effects contributes to the resistance reduction most. In addition, the different resistance components of frictional, hydrostatic, and hydrodynamic are separately researched, which shows that the pressure resistance components plays a leading role in the total resistance reduction in the SP model with the suitable SF.
机译:为了研究船尾襟翼(SF)和水射流与船体的相互作用,对考虑下沉和纵倾的水射流推进三体船进行了非稳态雷诺平均Navier-Stokes(URANS)模拟。提出了对裸船(BH)模型的数值结果的不确定性分析。在设计速度Froude数(Fr)为0.6且处于位移状态下时,模型尺寸的三体船安装了不同角度和长度的船尾襟翼,并根据URANS仿真测试了BH和自推进(SP)性能。对于阻力,分别分析了由于运动引起的整体效应以及SF,水射流(WJ)的局部效应以及SF和WJ在船体上的耦合项。考虑到水刀推进系统,具有合理尾部襟翼的SP模型可有效减少修剪,减小作用在船体上的阻力以及水刀推力的减小,从而有助于节能和高效推进。讨论了带尾翼的水刀推进三体船改进性能的机理。对于电阻的增加,整体效应,SF和WJ的局部效应是电阻增加的主要原因,而局部效应的非线性耦合项对电阻降低的贡献最大。此外,分别研究了摩擦,静水和流体动力的不同阻力分量,这表明在具有合适SF的SP模型中,压力阻力分量在总阻力减小中起着主导作用。

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