激光钻孔后基材残余应力和热变形的原位测量

Cheng-Lun Kan, Han-San Xie, Chao-Ching Ho, Ching-Yuan Chang
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引用次数: 0

摘要

本研究成功地将先进的激光钻孔机(LDM)和光弹性(PE)系统集成在一起,测量了丙烯酸基板钻孔后的残余应力。条纹的全场分布表示钻孔后试样的应变浓度,并基于自建的试样光弹性效应测量系统收集了大量数据。这项工作使用了自主开发的PE系统,包含了制造过程中的参数,并产生了定量的传感器融合结果,有望对LDM进行预防性维护。诊断维护系统可以通过信号处理和人工智能算法实现这一目标。特别是,边缘计算架构可以有效地实时诊断故障。传统上,由加工引起的轮廓的外观是用表面轮廓计测量的,但现在我们正在尝试通过光弹性测量形状和残余应力。本文介绍了新兴材料的蓝宝石基片,并与丙烯酸样品的性能进行了比较。我们已经建设了5G试验场,并对开发的架构和方法进行了验证,成熟的技术已经在行业中推广。测量结果和数据可以配合即将到来的5G通信,并利用增强型移动宽带(eMBB)、大规模机器类型传输(mMTC)和超可靠低延迟通信(URLLC)的优势。本工作运用PE领域知识和5G技术优势,为激光钻孔机提供诊断维护系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
In-situ Measurement of Residual Stress and Thermal Deformation of Substrate after Laser Drilling
This study has successfully integrated an advanced laser drilling machine (LDM) and a photo-elastic (PE) system to measure the residual stress of acrylic substrates after drilling manufacturing. The full-field distribution of fringe denotes the strain concentration of the specimen after hole drilling, and we collect massive data based on a self-built system of measuring the photo-elasticity effect of the samples. The work uses the self-developed PE system, contains parameters during manufacturing, and yields quantitative sensor fusion results promising the preventative maintenance of the LDM. The diagnostic maintenance system can achieve this through signal processing and artificial intelligence algorithms. In particular, edge computing architectures can effectively diagnose faults in real-time. The appearance of contours caused by machining is traditionally measured with a surface profile meter, but now we are experimenting with measuring shapes and residual stresses through photo-elasticity. This paper introduces the sapphire substrate for the emerging material and compares its properties with those of acrylic specimens. We have constructed a 5G experimental field and verified the developed architecture and methods, and well-developed technologies have been promoted in the industry. The measured results and data can cooperate with upcoming 5G communication and utilize the advantages of enhanced mobile broadband (eMBB), massive machine type transmissions (mMTC), and ultra-reliable and low latency communications (URLLC). This work applies the domain knowledge of PE and the advantage of 5G technology, providing a diagnostic maintenance system for the laser drilling machine.
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