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An approach for casting defect analysis employing finite element design optimisation, media axis transformation and neural networks

机译:一种利用有限元设计优化,介质轴转换和神经网络进行铸件缺陷分析的方法

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Our experience of using an approach based on the defect-metacause-rootcause relationship coupled with other novel computational techniques for casting defect analysis, has been discussed in this paper. A rootcause is a design, process or material parameter, which may be controlled to minimise the occurrence of defective castings. A metacause is defined as a scientific rationale that governs the occurrence of defects and is influenced by controlling one or more rootcauses. The defect-metacause-rootcause relationship has been linked to Finite Element modelling, as in most circumstances the objective of any modelling exercise is to understand the influence of rootcauses on defects by numerically modelling one or two metacauses. It has been shown that an optimal specification of rootcauses can be predicted by coupling the numerical modelling 1; techniques with optimisation techniques. Use of c the medial axis transformation has been explored S for defining objective functions within an optimisation analysis. The influence of process, q design or material parameters on the occurrence c of defects has been studied using the "learning p from examples" strategy of neural networks. Current limitations of these techniques have also c been highlighted.
机译:本文讨论了我们使用基于缺陷-因果-根因关系的方法以及其他新颖的计算技术进行铸造缺陷分析的经验。根本原因是设计,工艺或材料参数,可以对其进行控制以最大程度地减少次品的产生。元原因被定义为一种科学的原理,它控制缺陷的发生并受到控制一个或多个根本原因的影响。缺陷-因果-根因的关系已与有限元建模相关联,因为在大多数情况下,任何建模活动的目的都是通过对一个或两个元因进行数值建模来了解根因对缺陷的影响。已经表明,可以通过耦合数值模型1来预测根本原因的最佳规范。技术与优化技术。已经探索了使用c轴中间变换来在优化分析中定义目标函数。使用神经网络的“从实例中学习p”策略研究了工艺,q设计或材料参数对缺陷的发生c的影响。这些技术的当前局限性也得到了强调。

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