Damage Localization in 3D-Printed Plates with Different Infill Densities

M. Fakih, S. K. Singh, S. Mustapha, P. Malinowski
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Abstract

The growth in the use of additive manufacturing techniques for prototypes and industrial components implies the need to find robust and reliable tools for damage detection, localization, size estimation, and identification. This study focuses on guided-wave propagation in 3D-printed components and their sensitivity to damage. The material under investigation is 3D-printed poly(lactic acid) (PLA), which was used to manufacture flat plates. Several plates were prepared with varying infill densities. Lower infill density allows to save printing material, but it influences the guided-wave propagation behavior. To study the damage localization capability, plates with and without internal artificial defects were prepared. For each infill density, a healthy and a damaged plate were prepared. The guided waves were excited in the plates using surface-mounted piezoelectric transducers, while the sensing was realized by a scanning laser Doppler vibrometer. Five-cycle-long tone-burst excitation signals of different central frequencies were used, for comparison, where it was demonstrated that lowering the plate's infill density results in the appearance of higher-order modes at lower cut-off frequencies. Additionally, it was shown that guided-wave-based imaging can reveal hidden flaws and even the inner structure of 3D-printed polymers. This shows the good potential of guided-wave-based techniques for the structural health monitoring of 3D-printed structures.
不同填充密度的3d打印板损伤定位
在原型和工业部件中使用增材制造技术的增长意味着需要找到强大而可靠的工具来进行损伤检测、定位、尺寸估计和识别。本文主要研究了导波在3d打印部件中的传播及其对损伤的敏感性。正在调查的材料是3d打印聚乳酸(PLA),用于制造平板。用不同的填充密度制备了几种板。较低的填充密度可以节省打印材料,但会影响导波的传播行为。为了研究损伤定位能力,制备了内部有和不含人工缺陷的板。每个填充密度分别制备一个健康板和一个受损板。导波通过表面贴装的压电换能器在板内激发,通过扫描式激光多普勒测振仪实现感应。使用不同中心频率的五周期长音调突发激励信号进行比较,结果表明,降低板的填充密度会导致在较低的截止频率下出现高阶模式。此外,研究表明,基于导波的成像可以揭示隐藏的缺陷,甚至3d打印聚合物的内部结构。这显示了基于导波技术的3d打印结构健康监测的良好潜力。
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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