用于海上起重机的新型磁流变防摆动系统:系统建模与控制器设计

Chenxu Deng, Yunlong Li, Guangdong Han, Shenghai Wang, Haiquan Chen, Yu-qing Sun
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摘要

受特殊作业条件和有效载荷摆动运动的限制,海上起重机在运行过程中表现出较低的起重效率和定位精度。本文首次将磁流变(MR)技术应用于海工起重机的有效载荷防摆动和定位领域。防摆动系统采用并联机械结构设计,结构简单,不占用起重机的工作空间,具有很高的坚固性。根据机器人学原理,推导出了防摆动系统的运动学和动力学模型。通过联合仿真分析,评估了起重机有效载荷在不规则海浪中整个起吊和转移过程中的摆动响应。研究结果表明,磁共振防摆动系统可有效缓解有效载荷的摆动,防摆动效果超过 80%。在类似的防摆动效果下,采用时变电流的磁共振防摆动系统比采用固定电流的系统降低了 54% 的能耗。随后,物理原型的实验结果表明,在货物转移过程中,防摆动系统可以抑制有效载荷摆动 80% 以上。这凸显了磁共振防摆动系统在提高有效载荷转移效率和定位精度方面的能力。
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A novel magnetorheological anti-swing system for offshore crane: System modeling and controller design
Constrained by the unique operational conditions and the swinging motion of the payload, offshore cranes exhibit low lifting efficiency and positioning accuracy during operation. In this paper, magnetorheological (MR) technology is applied in the realm of payload anti-swing and positioning of offshore cranes for the first time. The anti-swing system adopts a parallel mechanical configuration design, offering a simple structure that does not encroach upon the crane's working space and exhibits high levels of robustness. Based on the principle of robotics, the kinematic and dynamic model of anti-swing system is derived. Co-simulation analysis is conducted to assess the swing response of the crane's payload throughout the lifting and transfer process amidst irregular ocean waves. The findings demonstrate that the MR anti-swing system effectively mitigates payload swing, achieving an anti-swing effect of over 80%. With a similar anti-swing effect, the MR anti-swing system with time-varying current reduces energy consumption by 54% compared to the system with fixed current. Subsequently, experimental results from the physical prototype reveal that the anti-swing system can suppress payload swing by over 80% during cargo transfer processes. This underscores the capability of the MR anti-swing system to enhance payload transfer efficiency and positioning accuracy.
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