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A Modified Iterative Learning Control Approach for the Active Suppression of Rotor Vibration Induced by Coupled Unbalance and Misalignment
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作者 Yifan Bao Jianfei Yao +1 位作者 Fabrizio Scarpa Yan Li 《Chinese Journal of Mechanical Engineering》 SCIE EI CAS CSCD 2024年第1期242-253,共12页
This paper proposes a modified iterative learning control(MILC)periodical feedback-feedforward algorithm to reduce the vibration of a rotor caused by coupled unbalance and parallel misalignment.The control of the vibr... This paper proposes a modified iterative learning control(MILC)periodical feedback-feedforward algorithm to reduce the vibration of a rotor caused by coupled unbalance and parallel misalignment.The control of the vibration of the rotor is provided by an active magnetic actuator(AMA).The iterative gain of the MILC algorithm here presented has a self-adjustment based on the magnitude of the vibration.Notch filters are adopted to extract the synchronous(1×Ω)and twice rotational frequency(2×Ω)components of the rotor vibration.Both the notch frequency of the filter and the size of feedforward storage used during the experiment have a real-time adaptation to the rotational speed.The method proposed in this work can provide effective suppression of the vibration of the rotor in case of sudden changes or fluctuations of the rotor speed.Simulations and experiments using the MILC algorithm proposed here are carried out and give evidence to the feasibility and robustness of the technique proposed. 展开更多
关键词 Rotor vibration suppression modified iterative learning control UNBALANCE Parallel misalignment active magnetic actuator
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基于代价敏感主动学习的氧化铝蒸发过程故障检测(英文) 被引量:2
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作者 唐明珠 阳春华 +1 位作者 桂卫华 谢永芳 《化工学报》 EI CAS CSCD 北大核心 2011年第8期2108-2115,共8页
针对氧化铝蒸发过程故障检测中标注者不切实际的假设和控制参数难以确定问题,提出改进的代价敏感主动学习方法。给出了代价敏感主动学习形式化描述和放松了标注者不切实际的假设。为了提高分类精度和减少标注代价,该方法结合粒子群优化... 针对氧化铝蒸发过程故障检测中标注者不切实际的假设和控制参数难以确定问题,提出改进的代价敏感主动学习方法。给出了代价敏感主动学习形式化描述和放松了标注者不切实际的假设。为了提高分类精度和减少标注代价,该方法结合粒子群优化和代价敏感主动学习。利用连续的粒子群优化代价敏感主动学习的控制参数,该参数用于最大化未标注样本的信息度和最小化标注代价。将所提出的方法应用于氧化铝蒸发过程故障检测,实验结果表明,该方法能正确地选择控制参数,有效地减少了误分类代价和标注代价,提高了故障检测率。 展开更多
关键词 粒子群优化 氧化铝蒸发过程 改进的代价敏感主动学习 故障检测
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