陈剑

个人信息Personal Information

副教授 博士生导师

招生学科专业:
机械 -- 【招收博士、硕士研究生】 -- 经济与管理学院
管理科学与工程 -- 【招收博士、硕士研究生】 -- 经济与管理学院
工商管理 -- 【招收非全日制硕士研究生】 -- MBA中心
工程管理 -- 【招收非全日制硕士研究生】 -- MBA中心
工业工程与管理 -- 【招收硕士研究生】 -- 经济与管理学院
物流工程与管理 -- 【招收硕士研究生】 -- 经济与管理学院

毕业院校:香港大学

学位:哲学博士学位

所在单位:经济与管理学院

办公地点:南京市江宁区将军大道29号经管楼1114室

联系方式:jchen@nuaa.edu.cn

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Performance Comparison of Improved Particle Filters for On-line Fatigue Crack Prognosis

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所属单位:航空学院

发表刊物:Struct. Health Monit.: Enabling Intell. Life-Cycle Health Manag. Ind. Internet Things (IIOT) - Proc. Int. Workshop Struct. Health Monit.

摘要:Fatigue crack growth prognosis is a fundamental task for ensuring structural integrity. Recently, attentions have been gradually paid to methods that combine on-line measurements of structural health monitoring (SHM) with the particle filter based prognostics. However, most studies used the basic particle filter algorithm, which has the intrinsic particle impoverishment problem. There are different kinds of improvements made to the basic particle filter in the field of particle filtering. Few studies have been carried out to discuss their applicability to on-line fatigue crack growth prognosis combining with the SHM technique. Therefore, this paper compares four different improved particle filter algorithms for the on-line application of fatigue crack growth prognosis by integrating the guide wave based SHM. Studies are carried out on the basis of fatigue tests performed on the attachment lug, which is a key structural element in engineering structures. Two cases are involved that the SHM measurement has relatively large or small errors, which are influenced by whether the measurement equation is accurately trained with historical data. The prognostic accuracy of these improved particle filters is discussed. Moreover, effects of the particle number on the performance and computational cost are analyzed. © International Workshop on Structural Health Monitoring. All rights reserved.

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发表时间:2019-01-01

合写作者:Chen, Jian,袁慎芳,Wang, Hui

通讯作者:陈剑,袁慎芳