首页> 外文会议>2011 IEEE Conference on Prognostics and Health Management >Extended Kalman Filter models and resistance spectroscopy for prognostication and health monitoring of leadfree electronics under vibration
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Extended Kalman Filter models and resistance spectroscopy for prognostication and health monitoring of leadfree electronics under vibration

机译:扩展的卡尔曼滤波器模型和电阻谱用于振动条件下无铅电子设备的预后和健康监测

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A technique has been developed for monitoring the structural damage accrued in BGA interconnects during operation in vibration environments. The technique uses resistance spectroscopy based state space vectors, rate of change of the state variable, and acceleration of the state variable in conjunction with Extended Kalman Filter and is intended for the pre-failure time-history of the component. Condition monitoring using the presented technique can provide knowledge of impending failure in high reliability applications where the risks associated with loss-of-functionality are too high to bear. The methodology has been demonstrated on SAC305 leadfree area-array electronic assemblies subjected to vibration. Future state of the system has been estimated based on a second order Extended Kalman Filter model and a Bayesian Framework. The measured state variable has been related to the underlying interconnect damage using plastic strain. Performance of the prognostication health management algorithm during the vibration test has been quantified using performance evaluation metrics. Model predictions have been correlated with experimental data. The presented approach is applicable to functional systems where corner interconnects in area-array packages may be often redundant. Prognostic metrics including α-λ metric, beta, and relative accuracy have been used to assess the performance of the damage proxies. The presented approach enables the estimation of residual life based on level of risk averseness.
机译:已经开发出一种用于监视在振动环境下运行期间BGA互连中累积的结构损坏的技术。该技术结合扩展卡尔曼滤波器使用基于电阻光谱的状态空间矢量,状态变量的变化率和状态变量的加速度,旨在用于组件的故障前时间历史。使用提出的技术进行状态监视可以提供有关与功能丧失相关的风险过高而无法承受的高可靠性应用中即将发生的故障的知识。该方法已在经受振动的SAC305无铅面阵电子组件上得到了证明。已经基于二阶扩展卡尔曼滤波器模型和贝叶斯框架估计了系统的未来状态。所测量的状态变量已与使用塑性应变的潜在互连损坏相关。已使用性能评估指标对振动测试期间的预测健康管理算法的性能进行了量化。模型预测已与实验数据相关。所提出的方法适用于功能系统,在这些功能系统中,面阵封装中的角互连通常可能是多余的。包括α-λ度量,β和相对准确度在内的预后度量已用于评估损坏代理的性能。所提出的方法使得能够基于风险厌恶程度来估计剩余寿命。

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