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神經網絡在制備氮化硅多孔陶瓷中的應用
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武器裝備預研基金(9140C5602040805); 新世紀優(yōu)秀人才支持計劃(NECT-05-0838); “973”項目(2006CB601201)


Artificial Neural Network Modeling and Analysis of Preparation of Porous Si3N4 Ceramics
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    摘要:

    以凝膠注模法制備多孔氮化硅陶瓷正交試驗結果作為樣本,建立3層Back Propagation(BP)神經網絡,并進行訓練以預測陶瓷性能。通過附加試驗值對建立的神經網絡預測能力進行驗證,證明該BP神經網絡模型是有效的,能準確預測多孔氮化硅陶瓷性能。通過BP神經網絡模型研究多孔氮化硅陶瓷性能的結果表明,隨著固含量的增加,氣孔率單調下降;固含量存在一優(yōu)化值,此時陶瓷抗彎強度最大;單體含量越大,氣孔率越大,而抗彎強度降低。

    Abstract:

    Based on orthogonal experimental results of porous Si3N4 ceramics by gel casting preparation, a three-layer back propagation (BP) artificial neural network (BP ANN) was developed for prediction of the flexural strength and porosity. The BP ANN is composed of three neurons in the input layer, two neurons in the output layer and six neurons the hidden layer. This study demonstrates that the proposed neural network approach can predict the performances of porous Si3N4 ceramics by gel casting preparation to a high degree of accuracy, and the neural network is a very useful and accurate tool for performances analysis of porous Si3N4 ceramics. By the proposed neural network prediction and analysis, the results suggest that the porosity monotonically decreases with the increase of solid loading, flexural strength is low when solid loading was too low or too high, and flexural strength has an optimum value.

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余娟麗,王紅潔,張 健,嚴友蘭,喬冠軍,金志浩.神經網絡在制備氮化硅多孔陶瓷中的應用[J].稀有金屬材料與工程,2010,39(3):464~468.[Yu Juanli, Wang Hongjie, Zhang Jian, Yan Youlan, Qiao Guanjun, Jin Zhihao. Artificial Neural Network Modeling and Analysis of Preparation of Porous Si3N4 Ceramics[J]. Rare Metal Materials and Engineering,2010,39(3):464~468.]
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  • 收稿日期:2009-04-13
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