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A hybrid neural network and genetic algorithm approach to the determination of initial process parameters for injection moulding

机译:确定注射成型初始工艺参数的混合神经网络和遗传算法

摘要

Determination of the initial process parameters for injection moulding is highly skilled task and is based on a skilled operator's "know-how" and intuitive sense acquired through long-term experience rather than on a theoretical and analytical approach. In the face of global competition, the current trial-and-error practice is inadequate. In this paper, a hybrid neural network and genetic algorithm approach is described to determine a set of initial process parameters for injection moulding. A hybrid neural network and genetic algorithm system for the determination of initial process parameter settings for injection moulding based on the proposed appraoch was developed and validated. The preliminary validation test of the system has indicated that the system can determine a set of initial process parameters for injection moulding quickly from which good quality moulded parts can be produced without relying on experienced moulding personnel.
机译:确定注塑成型的初始工艺参数是一项非常熟练的任务,它基于熟练的操作员的“诀窍”和通过长期经验获得的直觉,而不是基于理论和分析方法。面对全球竞争,当前的试错做法是不够的。在本文中,描述了一种混合神经网络和遗传算法的方法,以确定注射成型的一组初始工艺参数。基于提出的方法,确定了混合神经网络和遗传算法,用于确定注塑的初始工艺参数设置。该系统的初步验证测试表明,该系统可以快速确定用于注塑成型的一组初始工艺参数,从中可以生产高质量的成型零件,而无需依赖经验丰富的成型人员。

著录项

  • 作者

    Mok SL; Kwong CK; Lau WS;

  • 作者单位
  • 年度 2001
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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