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首页> 外文期刊>Journal of manufacturing science and engineering: Transactions of the ASME >Phononic Crystal Artifacts for Real-Time In Situ Quality Monitoring in Additive Manufacturing
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Phononic Crystal Artifacts for Real-Time In Situ Quality Monitoring in Additive Manufacturing

机译:存放晶体伪影,用于添加制造中的实时原位监测

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摘要

Additive manufacturing (AM) is rapidly becoming a local manufacturing modality in fabricating complex, custom-designed parts, providing an unprecedented form-free flexibility for custom products. However, significant variability in part geometric quality and mechanical strength due to the shortcomings of AM processes has often been reported. Presently, AM generally lacks in situ quality inspection capability, which seriously hampers the realization of its full potential in delivering qualified practical parts. Here, we present a monitoring approach and a periodic structure design for developing test artifacts for in situ real-time monitoring of the material and bonding properties of a part at fiber/bond-scale. While the production method used in current work is filament based, the proposed approach is generic as defects are always due to materials in a bonding zone and their local bonding attributes in any production modality. The artifact design detailed here is based on ultrasonic wave propagation in phononic coupons consisting of repeating substructures to monitor and eventually to assess the bond quality and placement uniformity-not only for geometry but also for defect states. Periodicity in a structure leads to the dispersion of waves, which is sensitive to geometric/materials properties and irregularities. In this proof-of-concept study, an experimental setup and basic artifact designs are described and off-line/real-time monitoring data are presented. As a model problem, the effects of printing speed on the formation of stop bands, wave propagation speeds and fiber placement accuracy in samples are detected and reported.
机译:添加剂制造(AM)正在迅速成为制造复杂的定制零件的局部制造方式,为定制产品提供了前所未有的无形式的柔韧性。然而,通常报道了由于AM过程的缺点而部分几何质量和机械强度的显着变化。目前,AM通常缺乏原位质量检验能力,这严重妨碍了实现其在提供合格的实际部分的全部潜力。这里,我们提出了一种监测方法和用于开发用于在纤维/键合的部分的原位实时监测测试伪影的周期性结构设计。虽然当前工作中使用的生产方法是基于灯丝的云,但是所提出的方法是通用的,因为缺陷总是由于粘合区中的材料及其在任何生产方式中的局部粘接属性。这里详述的伪影设计基于声波优惠券中的超声波传播,包括重复的子结构来监测,并且最终是为了评估键合质量和放置均匀性 - 不仅用于几何形状,还用于缺陷状态。结构中的周期性导致波的分散,这对几何/材料性质和不规则性敏感。在该概念证明研究中,描述了实验设置和基本的伪影设计,并呈现了离线/实时监控数据。作为模型问题,检测和报道了样本中的印刷速度对止动频带,波传播速度和光纤放置精度的影响。

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