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Eddy Current Probe Evaluation: Experimental Measurements and System Interaction

机译:涡流探头评估:实验测量和系统相互作用

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摘要

Eddy current testing is often considered an old and mature technology. However, the state of the art technology cannot meet the new stringent demands that the US Government has imposed on inspection of new aircraft engines under a program called ENSIP (engine structural integrity program). These demands require substantial improvements both in inspection sensitivity and speed — for instance, crack detection capability must improve by a factor of 3 over what is currently possible. In order to meet the new goals, all aspects of an eddy current inspection system must be addressed from probe selection and mechanical scanning noise to system electronics and signal processing. It has previously been shown [1,2] that imaging techniques provide improved flaw detection capability and also may be used to optimize system performance. This paper describes work that combines imaging with probe measurements to analyze eddy current probes and system performance from a practical point of view. Slightly different designs of a specific type of probe have been examined to evaluate differences in the designs and to determine how well the probe construction method is controlled. Parameters were calculated from electric measurements on the probes and plotted in an attempt to explain their significance and to provide a method for selection of probes with superior qualities. The probe/system interaction was also analyzed in order to learn why some probes with good electric properties did not perform well in the eddy current system. Finally, images were created and used to evaluate the impact of different imaging parameters on inspection performance.
机译:涡流测试通常被认为是一种古老而成熟的技术。但是,最新技术无法满足美国政府根据称为ENSIP(发动机结构完整性计划)的计划对新飞机发动机进行检查所提出的新的严格要求。这些需求要求在检测灵敏度和速度上都进行实质性的改进,例如,裂纹检测能力必须比目前的能力提高三倍。为了达到新的目标,必须解决涡流检查系统的所有方面,从探头选择和机械扫描噪声到系统电子和信号处理。以前已经显示[1,2],成像技术提供了改进的探伤能力,也可用于优化系统性能。本文从实际的角度介绍了将成像与探头测量相结合以分析涡流探头和系统性能的工作。已检查了特定类型探针的略有不同的设计,以评估设计中的差异并确定如何很好地控制探针的构造方法。从对探针的电学测量中计算出参数,并将其绘制出来,以试图解释其重要性并提供一种选择优质探针的方法。还分析了探头/系统的相互作用,以了解为什么某些具有良好电性能的探头在涡流系统中的性能不佳。最后,创建图像并将其用于评估不同成像参数对检查性能的影响。

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