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Systems Modelling of the Internal Process Variables for Friction Stir Welding Using Genetic Multi-Objective Fuzzy Rule-Based Systems

机译:基于遗传多目标模糊规则的搅拌搅拌内部过程变量系统建模

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In order to design and implement a safe and practical Friction Stir Welding (FSW) process, it is crucial to understand the intricate correlations between the controllable process conditions and some internal process variables, such as tool temperature, torque and forces of tool bearing. However, because of the complexity of the FSW process, it is often difficult to derive simple and yet precise enough mathematical models to predict the correlations. In this paper, a systematic data-driven fuzzy modelling approach is developed and employed for the purpose of modelling the internal process properties of FSW, consisting of both the static and dynamic behaviours relating to welding of the AA5083 aluminium alloy. The modelling methodology includes a training data selection mechanism and a hierarchical optimisation structure, which greatly improves the modelling efficiency. The elicited models prove to be accurate and transparent, and they can be used to enhance the welding efficiency and process reliability.
机译:为了设计和实施安全实用的搅拌摩擦焊(FSW)工艺,了解可控工艺条件与某些内部工艺变量(例如刀具温度,扭矩和刀具轴承力)之间的复杂关系至关重要。但是,由于FSW过程的复杂性,通常难以推导简单而又足够精确的数学模型来预测相关性。在本文中,开发了一种系统的数据驱动的模糊建模方法,并将其用于对FSW的内部过程特性进行建模的目的,该特性包括与AA5083铝合金焊接相关的静态和动态行为。该建模方法包括训练数据选择机制和分层优化结构,极大地提高了建模效率。证明的模型是准确和透明的,可用于提高焊接效率和过程可靠性。

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