机电系统健康状态预测和维修决策的双向优化方法
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TH707

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国家重点研发计划(2018YFB1403300)、国家自然科学基金(51875018)项目资助


Bi-directional optimization method for health state prediction and maintenance decision-making of electromechanical systems
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    摘要:

    在以机电系统为代表的复杂装备健康管理的应用场景中,健康状态预测与维修决策操作依赖于装备的健康状态演化进 程,二者在所依赖的知识上具有明显的耦合性,对应的二元知识也因此具有双向融合的价值。 本文从健康状态评估与维修排故 二元知识的双向融合出发,提出一种面向机电系统的健康状态预测和维修决策双向优化方法,即定期利用该阶段累积的有限运 行记录,在该阶段的健康状态预测和即时维修决策模型上做出优化。 最后,本文基于实际机电系统中天线调平系统的仿真实验 对本文所提的双向优化方法进行了验证,健康状态预测误差稳定降低到 0. 002% ,维修决策收益稳定提升到 93. 57,验证了本文 提出的健康状态预测与维修决策协同方法的有效性。

    Abstract:

    In the application scenario of the actual health management for complex equipment health managements, represented by electromechanical systems, health perception and maintenance decision-making depend on the mined evolution mechanism of state of health. Both of them show an obvious coupling on their base knowledge whiling operating. The corresponding binary knowledge has the value of bi-directional fusion. Inspired by the bi-directional fusion of fault detection-maintenance binary knowledge, this article proposes a bi-directional optimization method of health perception and maintenance decision-making for electromechanical systems to regularly take advantage of the limited operation records accumulated in one period to optimize the previous health perception and maintenance decisionmaking model. Finally, the proposed bi-directional optimization method is evaluated by using the simulation experiment of the antenna leveling system in the actual electromechanical system, where the health prediction error is reduced to 0. 002% . The maintenance decision-making benefit is increased to 93. 57, which verifies the effectiveness of the proposed collaborative method of health state prediction and maintenance decision-making.

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梁思远,周金浛,高占宝,于劲松,宋 悦,张 健.机电系统健康状态预测和维修决策的双向优化方法[J].仪器仪表学报,2023,44(1):131-142

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  • 在线发布日期: 2023-07-04
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