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應(yīng)用人工神經(jīng)網(wǎng)絡(luò)模型預(yù)測Ti+10V-2Fe-3A合金的力學(xué)性能
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TG146.2 TP13

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Artificial Neural Network Model for the Prediction of Mechanical Properties of Ti-10V-2Fe-3Al Titanium Alloy
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    摘要:

    采用人工神經(jīng)網(wǎng)絡(luò)方法建立了Ti-10V-2Fe-3Al合金機(jī)械性能預(yù)測的神經(jīng)網(wǎng)絡(luò)模型。模型的輸入?yún)?shù)包括變形溫度、變形程度、固溶溫度、時效溫度等熱加工工藝參數(shù)和熱處理制度。模型的輸出為鈦合金最重要的5個機(jī)械性能指標(biāo),即抗拉強(qiáng)度、屈服強(qiáng)度、延伸率、斷面收縮率和斷裂韌性。與傳統(tǒng)回歸擬合公式相比,該模型具有容錯性好、通用性強(qiáng)等優(yōu)點(diǎn)。該模型可以預(yù)測Ti-10V-2Fe-3Al合金在不同熱加工工藝參數(shù)和熱處理制度下的機(jī)械性能,也可以用于優(yōu)化熱加工參數(shù)和熱處理制度。

    Abstract:

    An artificial neural network (ANN) model is proposed to predict mechanical properties of Ti-10V-2Fe-3Al titanium alloys. The input parameters of the neural network (NN) model are deformation temperature, degree of reduction, cooling rate, solution temperature and aging temperature. The outputs of the NN model are five most important mechanical properties namely ultimate tensile strength, tensile yield strength, elongation, reduction of area, and fracture toughness. Extensive experiments for correlating forging technology to mechanical properties were conducted in Ti-10V-2Fe-3Al alloy to train the NN. Compared to the traditional regression method, the ANN model has a better compatibility and adaptability. The model can be used for the prediction of properties of Ti-10V-2Fe-3Al alloy as functions of processing parameters and heat treatment cycle. It can also be used for the optimization of the processing and heat treatment parameters.

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曾衛(wèi)東 舒瀅 周義剛.應(yīng)用人工神經(jīng)網(wǎng)絡(luò)模型預(yù)測Ti+10V-2Fe-3A合金的力學(xué)性能[J].稀有金屬材料與工程,2004,33(10):1041~1044.[Zeng Weidong, Shu Ying, Zhou Yigang . Artificial Neural Network Model for the Prediction of Mechanical Properties of Ti-10V-2Fe-3Al Titanium Alloy[J]. Rare Metal Materials and Engineering,2004,33(10):1041~1044.]
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  • 最后修改日期:2003-06-11
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