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Research on creep constitutive model of TC11 titanium alloy based on RBFNN

机译:基于RBFNN的TC11钛合金蠕变本构模型研究

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The paper is aimed to exploit a creep constitutive mode of TC11 titanium alloy based on RBF neural network. Creep testing data of TC11 titanium alloy obtained under the same temperature and different stress are considered as knowledge base and the characteristics of rheological forming of materials and radial basis function neural network (RBFNN) are also combined when exploiting the model. A part of data extracted from knowledge base is divided into two groups: one is learning sample and the other testing sample, which are being performed training, learning and simulating. Then predicting value is compared with the creep testing value and the theoretical value deduced by primary model, which validates that the RBFNN model has higher precision and generalizing ability.
机译:本文旨在研究基于RBF神经网络的TC11钛合金的蠕变本构模式。在相同温度和不同应力下获得的TC11钛合金的蠕变测试数据被视为知识库,并且在开发该模型时,还结合了材料的流变成型特性和径向基函数神经网络(RBFNN)。从知识库中提取的一部分数据分为两组:一组是学习样本,另一组是测试样本,它们正在接受培训,学习和模拟。将预测值与蠕变试验值和一次模型推导的理论值进行比较,验证了RBFNN模型具有较高的精度和泛化能力。

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