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基于有限元分析和机器学习的跌落所致封装结构力学行为预测
引用本文:张筱迪,毛明晖,卢昶衡,王文武,贾冯睿,龙旭.基于有限元分析和机器学习的跌落所致封装结构力学行为预测[J].电子与封装,2021,21(2):73-80.
作者姓名:张筱迪  毛明晖  卢昶衡  王文武  贾冯睿  龙旭
作者单位:辽宁石油化工大学土木工程学院,辽宁抚顺113001;西北工业大学力学与土木建筑学院,先进电子封装材料与结构研究中心,西安710021;浙江清华长三角研究院,浙江嘉兴314006
摘    要:目前电子封装行业中,在进行封装结构力学可靠性研究时需要开展大量的有限元仿真分析,存在仿真模型建模流程复杂且计算过程漫长的常见问题.鉴于此方面的技术瓶颈,首先使用ABAQUS有限元软件对封装结构跌落过程动力响应进行数值模拟并获取特征候选值,建立了4×3的以抗跌落可靠性评估的关键特征变量为输入特征值和以应力和等效塑性应变为...

关 键 词:封装结构  力学可靠性  有限元模拟  机器学习  动力响应

Prediction of Mechanical Behavior of Package Structure Subjected to Drop Impact Based on Finite Element Analysis and Machine Learning
ZHANG Xiaodi,MAO Minghui,LU Changheng,WANG Wenwu,JIA Fengrui,LONG Xu.Prediction of Mechanical Behavior of Package Structure Subjected to Drop Impact Based on Finite Element Analysis and Machine Learning[J].Electronics & Packaging,2021,21(2):73-80.
Authors:ZHANG Xiaodi  MAO Minghui  LU Changheng  WANG Wenwu  JIA Fengrui  LONG Xu
Institution:(Liaoning Shihua University,Fushun 113001,China;Northwestern Polytechnical University,Xi’an 710021,China;Yangtze Delta Region Institute of Tsinghua University,Jiaxing 314006,China)
Abstract:In the electronic packaging industry,the evaluation of mechanical reliability of the packaging structures is usually studied by means of finite element simulations,which is however considerably time-consuming due to modeling creation and iterative analysis.To eliminate these technical limitations,the dynamic response of the packaging structure during the drop processwas firstly simulated by ABAQUS in the present study,and the values of feature candidates were obtained to construct a 4×3 data set.In fact,the main feature variables of the drop resistance evaluation is taken as the input features,while the stress and equivalent plastic strain are taken as the output feature values.Consequently,the data set was trained by the correlation-driven neural network to obtain the corresponding machine-learning based prediction model.Finally,compared with the finite element simulation,the predicted results of machine-learning based neural network are similar to those of finite element simulation results.The results of this paper show that the machine learning method based on finite element simulations has great potential in predicting the reliability of the mechanical performance of the packaging structure under complicated working conditions.
Keywords:packaging structure  mechanical reliability  finite element method  machine learning  dynamic response
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