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Intuitionistic Mechanism for weak components identification method of complex electromechanical system

机译:复杂机电系统弱组件识别方法的直觉机制

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The aim of this study is to introduce a novel weakness measure based on Interval-Valued Intuitionistic Hesitant Fuzzy Choquet Integral (IVIHFCI), and to illustrate the applicability of the proposed weakness measure to the identification problem for weak component of complex electromechanical systems. First, the definition of weak component, which has a great impact on system performance, especially on system reliability during actual operation, is proposed along with the comparison of critical component. Then, the properties of components, such as reliability measures, centrality measures and failure consequence, are pre-chosen in terms of the holistic topological network and historical fault data. However, complete records of failure data, such as a component for a same car of a same high-speed train, are in shortage due to special structural designs of the holistic electromechanical system and complex operating environments. The proposed Interval-Valued Intuitionistic Hesitant Fuzzy Number (IVIHFN) is used to solve the problem of insufficient data of single component when the properties of components are calculated. Subsequently, IVIHFCI-based weakness measure, which takes into account the various attributes of components, is proposed to integrate IVIHFNs of all nodes' properties and then, identify weak components. Finally, an illustrative example is provided for illustration-of-method purposes and to demonstrate difference between the proposed weakness measure used for weak component and the existing measures which are used to identify critical components.
机译:本研究的目的是引入基于间隔值直觉犹豫不决的模糊Choquet积分(IVIHFCI)的新型弱点度量,并说明所提出的弱点测量对复杂机电系统弱组件的识别问题的适用性。首先,随着关键组分的比较,提出了对系统性能产生很大影响的弱组件的定义,特别是在实际操作期间的系统可靠性。然后,在整体拓扑网络和历史故障数据方面预先选择组件的性能,例如可靠性措施,中心度量和失败后果。然而,由于整体机电系统的特殊结构设计和复杂的操作环境,因此缺乏故障数据的完整记录,例如同一高速列车的同一汽车的组件。所提出的间隔值直觉犹豫不决的模糊数(IVIHFN)用于解决当计算组件的特性时单个组分数据不足的问题。随后,考虑到组件各种属性的IviHFCI的弱点测量值被建议集成所有节点属性的IViHFN,然后识别弱组件。最后,提供了一种用于方法目的的说明性示例,并且在弱组件和用于识别关键组分的现有措施中表明所提出的弱点措施之间的差异。

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