基于数据驱动的旋翼机螺旋桨和舵模型

Bradford G. Knight, K. Silva, K. Maki
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摘要

要准确地预测船舶的操纵特性,就必须准确地表示作用在螺旋桨和舵上的力。计算流体动力学(CFD)可以准确地预测船舶的机动特性,但其成本主要集中在螺旋桨的离散化上,且长时间的模拟成本过高,难以实际应用。螺旋桨和方向舵模型可以减少计算成本,但也会降低精度。这项工作的目标是通过高保真数据驱动的螺旋桨和方向舵模型,精确模拟海军研究办公室(ONR)的Tumblehome进行转弯和之字形机动。数据驱动的螺旋桨和方向舵模型的使用大大降低了执行机动的计算成本。螺旋桨和舵的力是作为螺旋桨转速、船体刚体速度和舵角的函数来计算的。采用一定数量的CFD仿真,对离散化后的螺旋桨和方向舵模型进行了训练。对于用于验证的CFD模拟,螺旋桨和方向舵模型保持了使用离散螺旋桨和方向舵模型的精度。该模型计算了作用在船舶螺旋桨和舵上的多自由度力。为了进行比较,还采用简化体力螺旋桨模型和惠勒费纳舵模型分析了该船的操纵特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Data-Driven Propeller and Rudder Modeling for Maneuvering Analysis of the ONR Tumblehome
The accurate prediction of ship maneuvering characteristics requires accurate representation of the forces on the propellers and rudders. Computational Fluid Dynamics (CFD) can accurately predict the maneuvering characteristics of a vessel, but the expense is dominated by the discretization of the propellers, and long-time simulations are too expensive for practical use. Propeller and rudder models can reduce the computational cost, but can also reduce the accuracy. The objective of this work is to accurately model the Office of Naval Research (ONR) Tumblehome performing both turning circle and zig-zag maneuvers with high-fidelity data-driven propeller and rudder models. The use of the data-driven propeller and rudder models significantly reduces the computational cost of performing a maneuver. The forces of the propeller and rudder are calculated as a function of the propeller revolution rate, the rigid body velocity of the vessel, and the rudder angle. The propeller and rudder models are trained with a select number of CFD simulations with the discretized propeller and rudder operating in the behind condition. The propeller and rudder models maintain the accuracy of using a discretized propeller and rudder with respect to CFD simulations used for validation. The models calculate the multi-degree of freedom force acting on the propellers and rudders of the vessel. For comparison, the maneuvering characteristics of the vessel are also analyzed with a simplified body-force propeller and a Whicker and Fehlner rudder model.
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