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Inverse modeling approach for transformation of propeller shaft angular deformation and velocity to propeller torque load

机译:螺旋桨轴角变形和速度转换的逆建模方法与螺旋桨扭矩负载

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摘要

In full-scale trials or model-scale tests, the propeller torque load is typically measured indirectly on the propeller shaft. Due to structural flexibility and mass of the propeller and propeller shaft, the measured propeller shaft torque response includes a time delay and amplitude difference compare to the propeller load. These differences are usually small during propeller operation, but may be significant during transient states (i. e. starting of the engine, rough sea, or operation in ice-covered waters). In this paper, an inverse model is used to calculate propeller load based on the propeller shaft response. The results indicate that the inverse model can be less complex than the complete propulsion machinery model and consider only the propeller and propeller shaft. Several modeling approaches are tested based on four proposed measuring setups and three forms of system discretization. Out of five inverse modeling approaches, two approaches showed the ability to transform measured propeller shaft angular deformation and velocity responses, colored with noise, into the corresponding rule-based propeller torque load with acceptable accuracy. Furthermore, the robustness of the inverse approaches to the random ice-propeller interaction, sampling frequency, measuring location along the propeller shaft and starting time (before and during ice-propeller interaction), is discussed.
机译:在全规模试验或模型尺度测试中,螺旋桨扭矩负载通常间接地在螺旋桨轴上测量。由于螺旋桨和螺旋桨轴的结构柔韧性和质量,所测量的螺旋桨轴扭矩响应包括与螺旋桨负载相比的时间延迟和幅度差。在螺旋桨操作期间,这些差异通常很小,但在瞬态状态期间可能是显着的(即,发动机,粗糙的大海或在冰覆盖的水域中操作)。在本文中,逆模型用于基于螺旋桨轴响应计算螺旋桨载荷。结果表明,逆模型可以比完整推进机械模型更易于复杂,并且仅考虑螺旋桨和螺旋桨轴。基于四个建议的测量设置和三种系统离散化测试了多种建模方法。在五种反转建模方法中,两种方法显示了在具有可接受的精度可接受的基于规则的基于螺旋桨扭矩负载的情况下改变测量的螺旋桨轴角变形和速度响应的能力。此外,讨论了随机冰螺旋桨相互作用,采样频率,沿螺旋桨轴的测量位置(在冰螺旋桨相互作用之前和期间的开始时间(冰螺旋桨相互作用)的逆接近逆接近的鲁棒性。

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