Honarvar F, Varvani-Farahani A
NDE Lab, Faculty of Mechanical Engineering, K. N. Toosi University of Technology, 7 Pardis St., Mollasadra Ave., Tehran, Iran.
Department of Mechanical and Industrial Engineering, Ryerson University, 350 Victoria St., Toronto, ON M5B 2K3, Canada.
Ultrasonics. 2020 Dec;108:106227. doi: 10.1016/j.ultras.2020.106227. Epub 2020 Jul 15.
Ultrasonic testing (UT) techniques are highly capable of detecting defects in engineering components. The present manuscript intends to review the ultrasonic testing techniques applied to additive manufacturing products; either in-situ or offline. While the in-situ applications of ultrasonic testing to additive manufacturing are more favorable, literature holds a few research works on this topic. On the other hand, most of the works reported on ultrasonic testing of additive manufacturing products deal with offline applications. In many of these works, samples with artificial defects are prepared and tested through ultrasonic testing techniques including laser ultrasonics, phased arrays, guided waves and immersion ultrasonic testing. These UT methods and their applications in damage detection of additive manufacturing products are discussed in detail. Moreover, the codes and standards which are currently being developed for ultrasonic testing of additive manufacturing products are introduced. The choice of UT methods in detecting defects and material characterization in additive manufacturing is found to be highly dependent on the manufacturing process and capabilities of UT techniques.
超声检测(UT)技术在检测工程部件缺陷方面能力很强。本手稿旨在综述应用于增材制造产品的超声检测技术,包括原位检测和离线检测。虽然超声检测在增材制造中的原位应用更具优势,但关于这一主题的文献研究较少。另一方面,大多数关于增材制造产品超声检测的报告都涉及离线应用。在许多此类研究中,制备了带有人工缺陷的样品,并通过包括激光超声、相控阵、导波和液浸超声检测在内的超声检测技术进行测试。详细讨论了这些超声检测方法及其在增材制造产品损伤检测中的应用。此外,还介绍了目前正在为增材制造产品的超声检测制定的规范和标准。结果发现,在增材制造中检测缺陷和进行材料表征时,超声检测方法的选择高度依赖于制造工艺和超声检测技术的能力。