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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Fractal analysis implementation for tool wear monitoring based on cutting force signals during CFRP/titanium stack machining
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Fractal analysis implementation for tool wear monitoring based on cutting force signals during CFRP/titanium stack machining

机译:基于CFRP /钛堆加工过程中切割力信号的工具磨损监测分形分析

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摘要

Hybrid structures of metals and composite materials are increasingly common in aerospace industry, and the optimization and monitoring of the machining of these stacks are an area of active research. Online tool condition monitoring in particular is a valuable capability and is facilitated by real-time treatment of cutting force signals. Cutting force signals are considered one of the most important measures for tool condition monitoring. The present work treats online cutting force time series with fractal analysis. The signal features generated are central to tool wear assessment. This work evaluates the fractal dimension of the cutting force signals from orbital drilling of a stack of carbon fiber-reinforced plastics (CFRP) and Ti6Al4V titanium alloy as a measure of the "roughness" of these signals. It is shown that distinct wear stages are adequately identified using fractal signal features. Low machining quality may thereby be prevented. Additionally, to address the inconvenient need for long machining tests when studying the application of these techniques to CFRP and titanium alloys, a novel fractal index is proposed to improve the monitoring process without requiring extensive experimentation.
机译:金属和复合材料的杂化结构在航空航天工业中越来越普遍,并且对这些堆叠的加工的优化和监测是积极研究的领域。特别是在线工具状态监测是一种有价值的能力,通过实时处理切割力信号进行促进。切割力信号被认为是工具状况监测的最重要措施之一。目前的作品将在线切削力时间序列进行分形分析。产生的信号功能是工具磨损评估的核心。这项工作评估了从轨道钻叠叠层的切割力信号的分形尺寸,碳纤维增强塑料(CFRP)和Ti6Al4V钛合金作为这些信号的“粗糙度”的量度。结果表明,使用分形信号特征充分识别出不同的磨损阶段。由此可以防止低加工质量。另外,为了解决这些技术对CFRP和钛合金的应用时对长加工试验的不方便需求,提出了一种新的分形指数,以改善监测过程而不需要大量实验。

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