A Coupling Enhanced Emergency Braking Approach for Double Pendulum Cranes

He Chen, Mengyuan Li, Yinan Wu
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Abstract

Crane systems are commonly used transportation tools in industry to transport heavy cargoes to corresponding target positions. If the cargo shape is large which could not be regarded as a mass point or the hook mass also needs to be taken into account, the cranes would perform as double pendulum systems, whose dynamics are more complex than those of single pendulum systems. Since the working environment for crane systems can be very complex in practice, unavoidable emergency situations may occur, which are very dangerous. To avoid possible accidents, effective emergency braking methods are urgently needed, especially for double pendulum cranes with large cargoes. Considering this fact, this paper presents a coupling enhanced braking strategy for double pendulum cranes, which stops the trolley fast and achieves double pendulum vibration elimination objectives simultaneously. Specifically, an elaborately designed variable consisting of the trolley movement, the hook’s swing, and the payload’s swing, is utilized as feedback, which enhances the system couplings and improves the vibration elimination ability. Some constraint items are also introduced to restrict the payload in a safety domain and further avoid possible collisions. The effectiveness is rigorously analyzed and proved by mathematical analysis. Some experiments are executed to show the performance of the designed strategy.
双摆起重机耦合强化紧急制动方法
起重机系统是工业中常用的运输工具,用于将重型货物运输到相应的目标位置。如果货物形状较大,不能作为质量点,或者还需要考虑吊钩质量,则起重机表现为双摆系统,其动力学比单摆系统更为复杂。由于起重机系统的工作环境在实际应用中非常复杂,不可避免地会发生紧急情况,这是非常危险的。为了避免可能发生的事故,迫切需要有效的紧急制动方法,特别是对于载重较大的双摆起重机。考虑到这一点,本文提出了一种双摆起重机的耦合强化制动策略,使小车快速停止,同时达到双摆减振的目的。设计了小车运动、吊钩摆动和载荷摆动作为反馈变量,增强了系统的耦合性,提高了系统的消振能力。还引入了一些约束项,将载荷限制在安全域内,进一步避免可能的碰撞。通过数学分析对其有效性进行了严格的分析和证明。通过实验验证了所设计策略的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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