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An Intelligent Hybrid System of Welding Parameters for Robotic Arc Welding Task-level Off-line Programming

机译:机器人弧焊任务级离线编程的焊接参数智能混合系统

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Welding process parameters are indispensable to program are welding robot. To simplify off-line programming (OLP) for robotic arc welding, we develop an arc welding expert system which can generate welding process parameters automatically. Its input data come from the feature database of welding part, which is set up by our feature modeling system. The expert system has become has become an important module of our RAWTOLPS (Robotic Arc Welding Task-level Off-Line System). It combines case-based reasoning with heuristic rule-based reasoning methods to deal with the welding process design. Moreover, artificial neural networks are introduced to the systems for reasoning and machine learning, and several network modules are developed to learn from welding process database, based on back-propagation neural networks. After some groups of actual welding rpocess data were used to train the network models, several network models are established both to design the welding process and to predict the weld bead shape. Besides the ANN-based learning, cased-based learning are used in the expert system. These two methods have respectively their own characteristics, and can meet qualifications of different users. The experimental data show that the system can accomplish re-learning and expanding of welding process knowledge, and satisfy and command of the off-line programming system.
机译:焊接工艺参数对焊接机器人来说是必不可少的。为了简化机器人电弧焊的离线编程(OLP),我们开发了一种电弧焊专家系统,该系统可以自动生成焊接过程参数。它的输入数据来自焊接零件的特征数据库,该数据库由我们的特征建模系统建立。专家系统已成为我们RAWTOLPS(机器人弧焊任务级离线系统)的重要模块。它结合了基于案例的推理和基于启发式规则的推理方法来处理焊接工艺设计。此外,将人工神经网络引入到系统中进行推理和机器学习,并基于反向传播神经网络,开发了一些网络模块以从焊接过程数据库中学习。在使用了几组实际的焊接工艺数据来训练网络模型之后,建立了几个网络模型来设计焊接过程和预测焊缝形状。除了基于ANN的学习外,专家系统还使用基于案例的学习。这两种方法各有特点,可以满足不同用户的使用条件。实验数据表明,该系统可以完成焊接工艺知识的再学习和扩展,并满足离线编程系统的要求。

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