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Challenges and Solutions for Ultrasonic Phased-Array Inspection of Polymer-Matrix Composites at Production Rates

机译:超声相位阵列检测在生产率下超声阶段复合材料的挑战与解决方案

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More than ten years of Research and Development focused on phased-array inspection of aerospace Polymer Matrix Composites (PMCs) is presented. This work includes basic research designed to understand the propagation of ultrasound through composite materials, as well as optimization of phased-array probes and inspection strategies for composite parts. Successful implementations of these strategies for fully automated on-line inspections are presented including a discussion of how challenges were overcome and the promise of new acquisition and analysis tools. Composite materials present unique challenges for ultrasonic inspection including complex shapes and a wide range of potential flaws and defects. For automated inspections, part-to-part variability and the need to inspect at production rates pose additional challenges. The methodologies presented are based upon laboratory experiments performed in conjunction with modeling and simulations, which are used to optimize inspection strategies. A significant challenge that should not be under estimated is creating industrial-quality test specimens with realistic defects of known size and location that can be independently verified. In projects with industry and the Air Force Research Laboratory (AFRL), work has focused specifically on using surface-adaptive techniques to inspect parts with complex shapes including small convex and concave radii that are typically found on stringers, blades and wing structures. Experimental and simulation results have been evaluated for flat and curved linear arrays as well as matrix arrays, which are used with and without surface-adaptive techniques for purposes of comparison. Fully automated on-line inspections that have been operating for several years as well as recent large-scale implementations demonstrate the ability to inspect a wide range of different composite parts at production rates. Rapidly increasing computer processing power together with ultra-high data-transfer rates wi
机译:提出了十多年的研究和开发,专注于航空航天聚合物基质复合材料(PMC)的分阶段阵列检查。这项工作包括基本研究,旨在了解超声波通过复合材料的传播,以及优化复合部件的分阶段探头和检测策略。提出了这些战略的成功实施,包括讨论如何克服挑战以及新收购和分析工具的承诺。复合材料具有超声波检查的独特挑战,包括复杂形状和广泛的潜在缺陷和缺陷。对于自动检查,部分零件可变性和在生产率下检查的必要性造成额外的挑战。所提出的方法是基于与建模和模拟进行的实验室实验,用于优化检查策略。估计不应估计的重大挑战正在创造工业质量试样,具有可独立验证的已知尺寸和位置的现实缺陷。在工业和空军研究实验室(AFRL)的项目中,工作专注于使用表面自适应技术来检查具有复杂形状的零件,包括通常在桁条,叶片和机翼结构上发现的小凸和凹形半径。对于平坦和弯曲的线性阵列以及矩阵阵列,已经评估了实验和仿真结果,其用于比较的表面自适应技术。完全自动化的在线检查,已经运营了几年,并且最近的大规模实施展示了在生产率下检查各种不同复合部件的能力。快速增加计算机处理能力以及超高数据传输速率Wi

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