两架直升机运输刚性载荷的协同运输动力学与振荡控制

IF 4.4 2区 工程技术 Q1 ENGINEERING, MULTIDISCIPLINARY
Guanfu Li, Jie Huang, Jiajun Chen
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引用次数: 0

摘要

双悬架系统可以有效地用于处理刚性载荷。然而,由两架直升机、缆绳和悬挂载荷耦合动力学引起的强烈振荡使运输系统复杂化,降低了运输效率,并给飞行员带来了挑战。虽然对双架或多架直升机悬吊载荷进行了大量研究,但针对多架直升机姿态、多索摆动和悬索载荷俯仰之间耦合特性的研究较少。本文建立了双直升机在水平位置承载刚性载荷进行平面运动的解析动力学模型。该模型准确地描述了载荷大小对水平升降运动动力学的影响以及两架直升机和两根缆索之间耦合振荡的差异。此外,设计了一种混合控制结构,将双反馈模型跟踪控制器与两个级联不连续分段平滑器集成在一起,同时抑制外部干扰并最小化振荡。仿真结果验证了运输系统的动力学特性,并定量地证明了所提控制器与原有控制器相比的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cooperative-transportation dynamics and oscillation control of two helicopters transporting a rigid load
The twin helicopter slung system can be effectively utilized for handling rigid loads. Nevertheless, the intense oscillations caused by the coupling dynamics of two helicopters, cables, and slung loads complicate the transportation system, reduce transportation efficiency, and bring pilot challenges. While considerable research has been conducted on twin or multiple helicopters suspending a load, fewer studies have addressed the coupling characteristics among multi-helicopter attitudes, multi-cable swing, and cable-suspended loads pitch. This paper established an analytical dynamic model of twin helicopters carrying a rigid load in the horizontal position undergoing planar motions. The model accurately describes the effects of load size on the dynamics of horizontal lifting motions and the differences in the coupled oscillations between the two helicopters and two cables. Additionally, a hybrid control architecture, integrating a dual-feedback model-tracking controller with two cascaded discontinuous piecewise smoothers, was designed to simultaneously reject external disturbances and minimize oscillations. The simulation results verified the dynamics of transportation system, and quantitatively prove the effectiveness of the proposed controller in comparison to a prior controller.
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来源期刊
Applied Mathematical Modelling
Applied Mathematical Modelling 数学-工程:综合
CiteScore
9.80
自引率
8.00%
发文量
508
审稿时长
43 days
期刊介绍: Applied Mathematical Modelling focuses on research related to the mathematical modelling of engineering and environmental processes, manufacturing, and industrial systems. A significant emerging area of research activity involves multiphysics processes, and contributions in this area are particularly encouraged. This influential publication covers a wide spectrum of subjects including heat transfer, fluid mechanics, CFD, and transport phenomena; solid mechanics and mechanics of metals; electromagnets and MHD; reliability modelling and system optimization; finite volume, finite element, and boundary element procedures; modelling of inventory, industrial, manufacturing and logistics systems for viable decision making; civil engineering systems and structures; mineral and energy resources; relevant software engineering issues associated with CAD and CAE; and materials and metallurgical engineering. Applied Mathematical Modelling is primarily interested in papers developing increased insights into real-world problems through novel mathematical modelling, novel applications or a combination of these. Papers employing existing numerical techniques must demonstrate sufficient novelty in the solution of practical problems. Papers on fuzzy logic in decision-making or purely financial mathematics are normally not considered. Research on fractional differential equations, bifurcation, and numerical methods needs to include practical examples. Population dynamics must solve realistic scenarios. Papers in the area of logistics and business modelling should demonstrate meaningful managerial insight. Submissions with no real-world application will not be considered.
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