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Beam Element Modelling Of Vehicle Body-in-white Applying Artificial Neural Network

机译:车辆白车身梁单元的人工神经网络建模

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In this study a large knowledge base is first established through numerous designs of experiments on beam elements, based on a validated finite element model of a reference vehicle body-in-white. Then a recurrent artificial neural network is applied to extract the input/output relationship between the crash dynamic characteristics and beam element features. With such established relationship, beam element features are predicted according to expected crash dynamic characteristics. Our analyses show that the predicted beam element model enables generating essential crash dynamic characteristics for concept BIW design evaluation at a reasonable level of accuracy. Last, a data assurance criterion is developed to quantitatively validate the beam element modelling.
机译:在这项研究中,首先基于经过验证的参考白车身的有限元模型,通过对梁单元进行多种实验设计,建立了庞大的知识库。然后应用递归人工神经网络提取碰撞动态特征和梁单元特征之间的输入/输出关系。通过这种建立的关系,根据预期的碰撞动态特性来预测梁单元特征。我们的分析表明,预测的梁单元模型能够以合理的准确度为概念BIW设计评估生成必要的碰撞动力学特性。最后,开发了一种数据保证标准来定量验证梁单元建模。

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