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A camera based closed loop control system for keyhole welding processes: Algorithm comparison

机译:基于摄像机的锁孔焊接闭环控制系统:算法比较

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Real time monitoring of laser welding has a more and more importance in several manufacturing processes ranging from automobile production to precision mechanics. Despite the huge improvement in welding technology, sophisticated image based closed loop control systems have not been integrated in commercially available equipments yet. Due to the high dynamics of laser beam welding (LBW) processes, robust closed loop control systems require fast real time image processing with frame rates in the multi kilo Hertz range. In the last few years, some new high speed Cellular Neural Network (CNN) based algorithms for the full penetration hole detection in keyhole welding processes have been introduced. In particular, they can be distinguished in two categories: Orientation dependent and orientation independent algorithms. The former can be used only for the welding of straight lines, while the latter has been implemented for the control of curved weld seams. Both algorithms have been used to build up a real time closed loop control system for LBW processes. An algorithm comparison by the description of some experimental results is addressed in this paper.
机译:在从汽车生产到精密机械的几个制造过程中,激光焊接的实时监控越来越重要。尽管焊接技术有了巨大的进步,但基于图像的复杂闭环控制系统尚未集成到商用设备中。由于激光束焊接(LBW)过程的高动态性,强大的闭环控制系统需要以几千赫兹范围内的帧速率进行快速实时图像处理。在最近几年中,已经引入了一些基于高速蜂窝神经网络(CNN)的新算法,用于在小孔焊接过程中进行全孔检测。特别地,它们可以分为两类:定向相关算法和定向独立算法。前者只能用于直线焊接,而后者已用于控制弯曲焊缝。两种算法都已用于为LBW过程建立实时闭环控制系统。本文通过描述一些实验结果来进行算法比较。

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