概括
这项研究引入了非线性系统的新主动故障耐受性控制 (AFTC) 框架. 它将观察器和控制器设计脱,使得分离原理 (SP) 的使用成为可能,以改善故障适应.
科学领域:
- 控制系统工程 控制系统工程
- 非线性系统分析 非线性系统分析
- 故障诊断和耐受性问题
背景情况:
- 在非线性系统中,实施主动故障耐受性控制 (AFTC) 是具有挑战性的,因为在非线性系统中,观察器和控制器设计是合的.
- 当干扰或非线性将观察者和控制器动态联系在一起时,很难应用分离原则 (SP).
研究的目的:
- 为不确定的非线性系统提出一个新的AFTC框架,将观察者和控制器设计脱.
- 为了恢复这些系统在AFTC设计中的分离原则 (SP) 的适用性.
主要方法:
- 开发了一个用于故障诊断和状态估计的观察员,保证了有限的估计错误.
- 设计了一种适应性主动故障耐受控制器,用于使用估计故障信息进行故障适应.
- 将估计错误和干扰视为新干扰,使用自适应更新术语进行补偿.
主要成果:
- 在拟议的AFTC框架中成功分离了观察员和控制器设计.
- 确保闭环主动故障耐受控制系统 (AFTCS) 中所有信号的边界性.
- 实现了输出跟踪错误的趋同到一个小小的小区,大约为零.
结论:
- 拟议的AFTC框架有效地解决了与合动态的非线性系统的挑战.
- 分离策略允许使用分离原理 (SP) 进行稳健的故障适应.
- 该方法通过模拟证明了稳定性和性能,验证了其实际适用性.
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