首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part B. Journal of engineering manufacture >Geometric shape errors in forging: developing a metric and an inverse model
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Geometric shape errors in forging: developing a metric and an inverse model

机译:锻造中的几何形状误差:建立度量和逆模型

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The complexity of the forging process ensures that there is inherent variability in the geometric shape of a forged part. While knowledge of shape error, comparing the desired versus the measured shape, is significant in measuring part quality the question of more interest is what can this error suggest about the forging process set-up? The first contribution of this paper is to develop a shape error metric which identifies geometric shape differences that occur from a desired forged part. This metric is based on the point distribution deformable model developed in pattern recognition research. The second contribution of this paper is to propose an inverse model that identifies changes in process set-up parameter values by analysing the proposed shape error metric. The metric and inverse models are developed using two sets of simulated hot-forged parts created using two different die pairs (simple and 'M'-shaped die pairs). A neural network is used to classify the shape data into three arbitrarily chosen levels for each parameter and it is accurate to at least 77 per cent in the worst case for the simple die pair data and has an average accuracy of approximately 80 per cent when classifying the more complex 'M'-shaped die pair data.
机译:锻造过程的复杂性确保了锻造零件的几何形状具有固有的可变性。尽管将形状误差的知识(将所需形状与测量形状进行比较)对于测量零件质量非常重要,但更令人感兴趣的问题是,该误差对锻造工艺设置有何建议?本文的第一个贡献是开发一种形状误差度量,该度量可识别从所需锻造零件产生的几何形状差异。该度量基于在模式识别研究中开发的点分布可变形模型。本文的第二个贡献是提出了一个逆模型,该模型可以通过分析所提出的形状误差度量来识别过程设置参数值的变化。度量模型和逆模型是使用两组模拟热锻零件开发的,该零件是使用两个不同的模具对(简单和“ M”形模具对)创建的。对于每个参数,使用神经网络将形状数据分为三个任意选择的级别,在最坏情况下,对于简单的模具对数据,其精度至少为77%,并且在分类时平均精度约为80%更复杂的“ M”形芯片对数据。

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