首页> 外文期刊>Advanced Powder Technology: The internation Journal of the Society of Powder Technology, Japan >Preparation and artificial neural networks analysis of ultrafine beta-Sialon powders by microwave-assisted carbothermal reduction nitridation of sol-gel derived powder precursors
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Preparation and artificial neural networks analysis of ultrafine beta-Sialon powders by microwave-assisted carbothermal reduction nitridation of sol-gel derived powder precursors

机译:微波辅助碳热还原硝化溶胶-凝胶衍生粉末前驱体制备β-赛隆超细粉体及其人工神经网络分析

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摘要

beta-Sialon powders were synthesized by microwave-assisted carbothermal reduction of powder materials resultant from a sol-gel process using Si(OC2H5)(4), Al(NO3)(3)center dot 9H(2)O and sucrose (C12H22O11) as the main starting materials and artificial neural networks (ANNs) was applied to model and predict relative contents of beta-Sialon in the final product samples. beta-Sialon was formed at as low as 1250 degrees C by using the technique developed with the present work. Furthermore, addition of Fe2O3 promoted the beta-Sialon formation. As-prepared beta-Sialon ultrafine powders were granular with primary size of about 69 nm. A back propagation (BP) ANNs was used to establish a model to predict the reaction extents (relative contents of beta-Sialon) under various processing conditions. The results indicated that the BP ANNs could be effectively used to establish the nonlinear relationships between the relative contents of beta-Sialon and the processing conditions. (C) 2015 The Society of Powder Technology Japan. Published by Elsevier B.V. and The Society of Powder Technology Japan. All rights reserved.
机译:使用Si(OC2H5)(4),Al(NO3)(3)中心点9H(2)O和蔗糖(C12H22O11)通过溶胶-凝胶法对粉末材料进行微波辅助碳热还原来合成β-赛隆粉末作为主要原料,人工神经网络(ANN)用于建模和预测最终产品样品中β-Sialon的相对含量。通过使用本工作开发的技术,β-Sialon在低至1250摄氏度时形成。此外,添加Fe 2 O 3促进了β-Sialon的形成。制备的β-Sialon超细粉末呈颗粒状,初级尺寸约为69 nm。使用反向传播(BP)人工神经网络建立模型,以预测在各种加工条件下的反应程度(β-赛隆的相对含量)。结果表明,BP神经网络可以有效地建立β-Sialon的相对含量与加工条件之间的非线性关系。 (C)2015年日本粉末技术学会。由Elsevier B.V.和日本粉末技术学会出版。版权所有。

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