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基于BP神经网络的铝青铜超塑性流变应力预测模型
引用本文:李合军,陈拂晓,杨永顺,杨正海,董文杰. 基于BP神经网络的铝青铜超塑性流变应力预测模型[J]. 热加工工艺, 2007, 36(5): 88-90
作者姓名:李合军  陈拂晓  杨永顺  杨正海  董文杰
作者单位:河南科技大学,材料科学与工程学院,河南,洛阳,471003
摘    要:运用BP神经网络方法建立了铝青铜超塑性状态下流变应力与变形参数之间关系的预测模型。并利用该模型预测在不同拉伸条件下材料的流变应力。结果发现预测数据与试验数据吻合良好,误差小于8.5%。

关 键 词:BP神经网络  铝青铜  超塑性  流变应力  预测模型
文章编号:1001-3814(2007)01-0088-03
修稿时间:2006-09-05

Predicting Model for Flow Stress of Aluminum Bronze in Superplastic State Based on BP Neural Network
LI He-jun,CHEN Fu-xiao,YANG Yong-shun,YANG Zheng-hai,DONG Wen-jie. Predicting Model for Flow Stress of Aluminum Bronze in Superplastic State Based on BP Neural Network[J]. Hot Working Technology, 2007, 36(5): 88-90
Authors:LI He-jun  CHEN Fu-xiao  YANG Yong-shun  YANG Zheng-hai  DONG Wen-jie
Affiliation:College of Material Science and Engineering, Henan University of Science and Technology, Luoyang 471003, China
Abstract:The prediction model which reflects the relation between flow stress and superplastic forming parameters of aluminum bronze was founded by the method of BP neural network, and using the model, the values of flow stress at different tensile conditions were predicted.The results show that the predicted values of the flow stress by the BP neural network are well in accordance with the test data and its errors are less than 8.5%.
Keywords:BP neural network  aluminum bronze   superplasticity   flow stress   prediction model
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