Fiber Bragg grating sensors for dynamic machining applications

Matthew J. Bartow, S. Calvert, P. Bayly
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引用次数: 12

Abstract

Fiber Bragg grating sensors have attracted considerable attention for measurement applications due to their greatly reduced size, low weight, and immunity to electromagnetic interference in comparison with traditional sensing methods. Dynamic measurement of industrial machine tools is useful for gauging surface accuracy, monitoring tool condition, and predicting process stability, but requires a robust sensing scheme. The small size and high natural frequencies of micro machining tools coupled with a harsh manufacturing environment can render traditional sensors ineffective. This work presents a new method for measuring tool motion with fiber Bragg grating strain sensors. The feasibility of the sensing scheme is first demonstrated with a simple bench-top cantilever beam experiment. Then, a method for potting the sensors in the through coolant holes of a 1/8” carbide end mill with a high-viscosity gap-filling cyanoacrylate is demonstrated. Comparative structural analysis tests demonstrate the effectiveness of the sensors. Measurements of tool motion during cutting are presented. Finally, methods of noise reduction and improving signal accuracy are discussed.
用于动态加工的光纤光栅传感器
与传统传感方法相比,光纤布拉格光栅传感器具有体积小、重量轻、抗电磁干扰等优点,在测量应用中受到广泛关注。工业机床的动态测量有助于测量表面精度、监测刀具状态和预测过程稳定性,但需要一个强大的传感方案。微加工工具的小尺寸和高固有频率加上恶劣的制造环境可能会使传统的传感器失效。本文提出了一种用光纤光栅应变传感器测量刀具运动的新方法。通过简单的台架悬臂梁实验,验证了该传感方案的可行性。然后,展示了一种用高粘度氰基丙烯酸酯填充高粘度氰基丙烯酸酯填充1/8”硬质合金立铣刀的通冷剂孔中的传感器的方法。结构对比分析试验验证了传感器的有效性。给出了切削过程中刀具运动的测量方法。最后,讨论了降低噪声和提高信号精度的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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