DP和自主船舶仿真中恶劣环境干扰的有效建模

Hasanat Zaman, M. Islam, Osama Alagili, M. Khan, S. Imtiaz, Salim Ahmed
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引用次数: 1

摘要

具有实时仿真能力的北冰洋动力学数值建模对于动态定位(DP)和自主船舶/海上平台的设计、开发、测试和验证性能非常有用。由于这些系统与环境干扰的复杂相互作用,需要开发先进的仿真技术来预测这些系统的预期负荷。本文提出了海浪、海流、风和冰的模型,这些模型符合实时模拟要求,并充分捕捉了最相关物理过程的动态特征。在已知响应幅值算子(Response Amplitude Operators, RAO)的情况下,采用三维频散数值模型预测波浪参数,用于计算船舶上的波浪荷载。然后,通过使用能够表示相互作用波流场的波数的组合波流场色散关系,以叠加方式合并均匀电流负载。将平均值和阵风分量加到合力分量中。采用基于多元回归的冰场模型,对不同厚度、浓度、浮冰大小、漂移速度和方向的冰场荷载进行了预测。在一系列环境条件下,对受环境干扰的通用dp控制船舶的保持性能进行了评估。所提出的模型可以帮助设计、开发和评估动态定位和自主船舶控制器的性能。另一个应用可能是开发一个真实的模拟环境,以训练常规、dp控制和自主船舶操作员。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Efficient Modelling of Harsh Environment Disturbances for DP and Autonomous Ships Simulations
Numerical modelling of the Arctic ocean dynamics with real-time simulation capability is useful for designing, developing, testing, and validating the performance of Dynamically Positioned (DP) and Autonomous ships/offshore platforms. Advanced simulation technology needs to be developed to predict the expected loads on these systems due to the complex interactions with environmental disturbances. This paper presents models of waves, currents, wind, and ice that comply with the real-time simulation requirements and adequately capture the dynamic characteristics of the most relevant physical processes. A 3D dispersive numerical model is deployed to predict the wave parameters to be utilized to compute the wave loads on a ship with known Response Amplitude Operators (RAO). A uniform current load is then incorporated in a superposition manner by using a combined wave-current field dispersion relation capable of expressing the wavenumber of an interactive wave-current field. The mean and the gust wind components are added to the resultant force components. A multiple regression-based ice model is used to predict the loads caused by an ice field characterized by varied ice thickness, concentration, floe size, drift speed and directions. The stationkeeping performance of a generic DP-controlled ship subjected to environmental disturbances is evaluated for a range of environmental conditions. The proposed models can help design, develop, and evaluate dynamic positioning and autonomous ship controllers’ performance. Another application may be developing a realistic simulation environment to train conventional, DP-controlled and autonomous ship operators.
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