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首页> 外文期刊>Journal of manufacturing science and engineering: Transactions of the ASME >Toward Automation of Friction Stir Welding Through Temperature Measurement and Closed-Loop Control
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Toward Automation of Friction Stir Welding Through Temperature Measurement and Closed-Loop Control

机译:通过温度测量和闭环控制实现搅拌摩擦焊接的自动化

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摘要

The objectives of this work are to determine an accurate temperature feedback strategy and to develop a closed-loop feedback control system for temperature in friction stir welding (FSW). FSW is a novel joining technology enabling welds with excellent metallurgical and mechanical properties, as well as significant energy consumption and cost savings. However, numerous parameter and condition variations are present in the FSW production environment that can adversely affect weld quality, which has made extensive automation of this process impossible to date. To enable large scale automation while maintaining weld quality, techniques to control the FSW process in the presence of unknown disturbances must be developed. One process variable that must be controlled to maintain uniform weld quality under the inherent workpiece variability (thermal constraints, material properties, geometry, etc.) is the weld zone temperature. Our hypothesis is that the weld zone temperature can be controlled, which can help in controlling the weld quality. A wireless data acquisition system was built to measure temperatures at the tool-workpiece interface. A thermocouple was placed in a through hole right at the interface of tool and workpiece so that the tip is in contact with the workpiece material. This measurement strategy reveals temperature variations within a single rotation of the tool in real time. In order to automate the system, a first order process model with transport delay was experimentally developed that captures the physics between spindle speed and measured interface temperature.
机译:这项工作的目的是确定准确的温度反馈策略,并开发用于摩擦搅拌焊(FSW)中温度的闭环反馈控制系统。 FSW是一种新颖的连接技术,可使焊缝具有出色的冶金和机械性能,并显着降低能耗和成本。但是,FSW生产环境中存在许多参数和条件变化,可能会对焊接质量产生不利影响,这迄今为止尚未实现对该过程的广泛自动化。为了在保持焊接质量的同时实现大规模自动化,必须开发出在存在未知干扰的情况下控制FSW过程的技术。在工件固有的可变性(热约束,材料特性,几何形状等)下必须控制以保持均匀焊接质量的一种工艺变量是焊接区温度。我们的假设是可以控制焊接区域的温度,这可以帮助控制焊接质量。建立了无线数据采集系统以测量工具-工件界面的温度。将热电偶放在工具和工件之间的通孔中,使尖端与工件材料接触。这种测量策略可实时显示工具旋转一圈内的温度变化。为了使系统自动化,通过实验开发了具有运输延迟的一阶过程模型,该模型捕获了主轴速度和测得的界面温度之间的物理关系。

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