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Application of terahertz time domain spectroscopy for NDT of oxide-oxide ceramic matrix composites

机译:太赫兹时域光谱法在氧化氧化物陶瓷基复合材料NDT中的应用

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摘要

Fiber-reinforced oxide-oxide ceramic matrix composites (CMC) find increasing applications in aircraft turbines due to their higher strength, toughness and erosion resistance. Research and development of new technologies for non-destructive testing (NDT) of these kinds of components become important to ensure the safe and reliable use in harsh turbine combustion environments. The well-known NDT techniques such as air-coupled ultrasound, x-ray computed tomography and pulse- or lock-in thermography can be used for characterization of material properties and for detection of defects in materials. Due to higher porosity and lower heat diffusivity of CMC materials these conventional NDT methods are quite limited or not suitable for quality control of CMC materials in manufacturing or in maintenance. Terahertz technologies as subsurface quantitative detection techniques are applicable for various materials and structures such as foams or heat resistant spacecraft components. Terahertz time domain spectroscopy (THz-TDS) becomes an alternative NDT-technique for layered materials because of its sensitivity to refractive index changes and high penetration of Terahertz pulses in polymer, ceramics, ceramic coatings and semiconductor materials. Terahertz reflection and transmission measurement modes in combination with a scanning stage can achieve contactless imaging of samples in a short time, which is well suited for characterizing CMC materials. In order to improve quantitative analysis for NDT of CMC materials, the impulse response deconvolution algorithm was developed for two mapping modes: time delay map and maximum correlation amplitude map. The time delay map shows depth-dependent material changes in the samples e.g. depth of boundary changes or depth of hidden defects, whereas the amplitude of a back-wall reflection signal is much more sensitive to small defects because of enhanced reflections and scatterings of incident terahertz pulsed waves in small defects in materials. These two imaging modes are complementary and can be useful for NDT applications. The measurement results in this paper show the feasibility of the pulsed terahertz technique for NDT of oxide-oxide CMC materials. Hidden defects, delamination or moist areas can be detected quantitatively.
机译:由于其较高的强度,韧性和耐磨性,纤维增强氧化物氧化物陶瓷基质复合材料(CMC)在飞机涡轮机中发现了增加的应用。对这些组件的非破坏性测试(NDT)的新技术的研究与开发变得重要,以确保在苛刻的涡轮机燃烧环境中安全可靠地使用。众所周知的NDT技术,例如空气耦合超声波,X射线计算机断层扫描和脉冲或锁定热成像可用于表征材料特性和用于材料中的缺陷。由于CMC材料的孔隙率和较低的热扩散性,这些常规的NDT方法非常有限或不适用于制造或维护中CMC材料的质量控制。 Terahertz技术作为地下定量检测技术适用于各种材料和结构,例如泡沫或耐热空间组分。 Terahertz时域光谱(THz-TDS)成为分层材料的替代NDT技术,因为其对聚合物,陶瓷,陶瓷涂层和半导体材料中的太赫兹脉冲的敏感性和高渗透性的敏感性。与扫描阶段结合的太赫兹反射和传输测量模式可以在短时间内实现样品的非接触式成像,这非常适合于表征CMC材料。为了改善CMC材料NDT的定量分析,为两个映射模式开发了脉冲响应折叠算法:时间延迟图和最大相关幅度图。时间延迟图显示了样品中的深度依赖性材料。隐藏缺陷的边界变化或深度的深度,而背壁反射信号的幅度对于小缺陷的幅度要敏感,因为事件的反射和散射在材料中的小缺陷中的缺陷中的缺陷。这两种成像模式是互补的,可用于NDT应用。本文的测量结果表明,氧化氧化物CMC材料NDT的脉冲太赫兹技术的可行性。可以定量地检测隐藏的缺陷,分层或潮湿区域。

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