用倾斜龙骨实现横摇稳定

IF 4.9 2区 计算机科学 Q1 AUTOMATION & CONTROL SYSTEMS
Hossein Ramezani;Shouvik Chaudhuri;Jerome Jouffroy;Arnd Baurichter;Steen Mattrup Hansen
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引用次数: 0

摘要

本文研究了船舶减摇倾斜龙骨机构的建模和控制,通过仿真和实验验证了两种不同的配置。从第一性原理出发,考虑了不平衡载荷和波浪的影响,建立了倾斜龙骨船横摇系统的综合非线性数学模型。在龙骨的正浮力配置中,被称为“气龙骨(AK)”,系统显示出由局部不稳定的零动力学引起的非最小相位(NMP)行为,这反过来又对控制器设计提出了重大挑战。这个问题可以通过选择合适的坐标来解决,这些坐标允许超扭转控制(STC)算法与扩展状态观测器(ESO)一起减轻匹配和不匹配的干扰。通过对横摇阻尼、不平衡载荷和随机模型产生的波动引起的干扰等几个案例的仿真研究,证明了所提出方案的有效性。然后,在室内模拟不均匀载荷条件的小型模型船上进行了实验,并进行了海浪对滚动行为影响的现场测试,客观地验证了结果。研究结果表明,通过选择适当的控制参数,船舶的横摇响应可以根据其运行模式进行调整,从而优化系统性能并增强抗扰性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On Roll Stabilization Using a Canting Keel
This article investigates the modeling and control of a canting keel mechanism for roll reduction in marine vessels, examining two distinct configurations through simulation and experimental validation. A comprehensive nonlinear mathematical model of the system describing the roll motion of a vessel equipped with the canting keel, derived from first principles and accounting for the influence of unbalanced loading and waves, is provided. In the positively buoyant configuration of the keel, known as “airkeel (AK),” the system is shown to exhibit nonminimum phase (NMP) behavior arising from locally unstable zero dynamics, which, in turn, poses significant challenges for controller design. This issue is addressed by selecting proper coordinates that allow the supertwisting control (STC) algorithm to mitigate both matched and unmatched disturbances in conjunction with an extended state observer (ESO). The effectiveness of the proposed scheme is demonstrated in simulation through several case studies involving roll damping, unbalanced loading, and disturbances caused by waves generated by a stochastic model. The results are then objectively validated by experiments conducted on a small-scale model boat within an indoor test setting that emulates uneven loading conditions, as well as a field test examining the impact of sea waves on rolling behavior. The findings indicate that by appropriately selecting control parameters, the vessel’s roll response can be tailored to its operational mode, thereby optimizing system performance and enhancing disturbance rejection.
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来源期刊
IEEE Transactions on Control Systems Technology
IEEE Transactions on Control Systems Technology 工程技术-工程:电子与电气
CiteScore
10.70
自引率
2.10%
发文量
218
审稿时长
6.7 months
期刊介绍: The IEEE Transactions on Control Systems Technology publishes high quality technical papers on technological advances in control engineering. The word technology is from the Greek technologia. The modern meaning is a scientific method to achieve a practical purpose. Control Systems Technology includes all aspects of control engineering needed to implement practical control systems, from analysis and design, through simulation and hardware. A primary purpose of the IEEE Transactions on Control Systems Technology is to have an archival publication which will bridge the gap between theory and practice. Papers are published in the IEEE Transactions on Control System Technology which disclose significant new knowledge, exploratory developments, or practical applications in all aspects of technology needed to implement control systems, from analysis and design through simulation, and hardware.
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