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Hybrid model and method for determining mechanical properties and processing properties of an injection-molded part

机译:确定注塑件机械性能和加工性能的混合模型和方法

摘要

A method of predicting the properties (e.g., mechanical and/or processing properties) of an injection-molded article is disclosed. The method makes use of a hybrid model which includes at least one neural network. In order to forecast (or predict) properties with respect to the manufacture of a plastic molded article, a hybrid model is used in the present invention, which includes: one or more neural networks NN1, NN2, NN3, NN4, . . . , NNk; and optionally one or more rigorous models R1, R2, R3, R4, . . . , which are connected to one another. The rigorous models are used to map model elements which can be described in mathematical formulae. The neural networks are used to map processes whose relationship is present only in the form of data, as it is in effect impossible to model such processes rigorously. As a result, a forecast relating to properties including the mechanical, thermal and Theological processing properties and relating to the process time of a plastic molded article is obtained.
机译:公开了一种预测注塑制品的性质(例如,机械和/或加工性质)的方法。该方法利用包括至少一个神经网络的混合模型。为了预测(或预测)关于塑料模制品的制造的特性,在本发明中使用了一种混合模型,其包括:一个或多个神经网络NN 1 ,NN < B> 2 ,NN 3 ,NN 4 、。 。 。 ,NN k ;以及可选的一个或更多个严格模型R 1 ,R 2 ,R 3 ,R 4 ,。 。 。 ,它们相互连接。严格的模型用于映射可以用数学公式描述的模型元素。神经网络用于映射其关系仅以数据形式存在的过程,因为实际上不可能严格地对此类过程进行建模。结果,获得了与包括机械,热和神学加工性能的性能有关并且与塑料模制品的加工时间有关的预测。

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