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A Potential Flow Theory and Boundary Layer Theory Based Hybrid Method for Waterjet Propulsion

机译:基于势流理论和边界层理论的喷水推进混合方法

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A hybrid method—coupled with the boundary element method (BEM) for wave-making resistance, the empirical method (EM) for viscous resistance, and the boundary layer theory (BLT) for capture of an area’s physical parameters—was proposed to predict waterjet propulsion performance. The waterjet propulsion iteration process was established from the force-balanced waterjet–hull system by applying the hybrid approach. Numerical validation of the present method was carried out using the 1/8.556 scale waterjet-propelled ITTC (International Towing Tank Conference) Athena ship model. Resistance, attitudes, wave cut profiles, waterjet thrust, and thrust deduction showed similar tendencies to the experimental curves and were in good agreement with the data. The application of the present hybrid method to the side-hull configuration research of a trimaran indicates that the side-hull arranged at the rear of the main hull contributed to energy-saving and high-efficiency propulsion. In addition, at high Froude numbers, the “fore-body trimaran” showed a local advantage in resistance and thrust deduction.
机译:为了预测水射流,提出了一种混合方法-结合用于波动阻力的边界元方法(BEM),用于粘性阻力的经验方法(EM)以及用于捕获区域物理参数的边界层理论(BLT)。推进性能。通过应用混合方法,从力平衡式水刀-船体系统建立了水刀推进迭代过程。本方法的数值验证是使用1 / 8.556比例水刀推进的ITTC(国际拖船会议)雅典娜船模型进行的。阻力,姿态,波切剖面,喷水推力和推力推减显示出与实验曲线相似的趋势,并且与数据非常吻合。该混合动力方法在三体船舷侧构型研究中的应用表明,布置在主机体后部的舷侧机有助于节能和高效推进。另外,在高弗洛德数下,“前体三体船”在阻力和推力减小方面显示出局部优势。

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