通过隐式Lyapunov方法和基于拉格朗基力学的神经网络进行可靠的跟踪控制
Hao Zheng1, Yufei Guo1, Zhaohui Wang1
1Key Laboratory of Metallurgical Equipment and Control Technology of Ministry of Education, Wuhan University of Science and Technology, Wuhan, 430081, Hubei, China; Hubei Key Laboratory of Mechanical Transmission and Manufacturing Engineering, Wuhan University of Science and Technology, Wuhan, 430081, Hubei, China.
ISA transactions
|September 5, 2025
概括
这项研究引入了自动装载的新控制策略,提高了基位振荡期间的稳定性. 该方法使用神经网络和莱普诺夫稳定理论进行强大的轨迹跟踪,提高安全性和性能.
科学领域:
- 机器人和控制系统
- 机械工程
- 人工智能
背景情况:
- 自动装载机对于主战坦克 (MBT) 操作至关重要,管理弹药的转移和装载.
- 在MBT的基础振荡带来不确定性,挑战自动加载器的稳定性和精确的轨迹跟踪.
- 现有的控制策略往往需要先前了解振荡或与模型不准确性作斗争.
研究的目的:
- 为MBT自动装载器开发一种新的轨迹跟踪控制策略.
- 解决基础振荡和模型不准确性的不确定性.
- 提高自动加载系统的稳定性和性能.
主要方法:
- 实现计算扭矩方法 (CTM) 用于轨迹跟踪.
- 基于拉格朗奇力学的神经网络的开发,以近似反向动力学.
- 基于Lyapunov的隐性稳定器的设计,以管理基础振荡的不确定性.
- 应用莱普诺夫理论来证明闭环系统的稳定性.
主要成果:
- 建议的控制策略有效地处理基准波动的不确定性.
- 与传统方法相比,证明了更高的轨迹跟踪精度.
- 经过广泛的模拟和硬件实验验证, 证实了它的稳定性和有效性.
结论:
- 新的基于CTM的控制策略显著提高了MBT自动加载器的稳定性和性能.
- 神经网络的集成和基于Lyapunov的稳定性为动态环境提供了强大的解决方案.
- 这些发现为要求更高的应用程序的可靠和精确的自动化系统铺平了道路.
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