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Detectability of corrosion damage with circumferential guided waves in reflection and transmission

机译:反射和透射中具有周向导波的腐蚀损伤的可检测性

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There is an increasing interest in high frequency short range guided waves to screen or monitor for corrosion. This contrasts with long range guided waves (LRGWs) which screen pipes for large patches of corrosion and have been successfully used in corrosion management for the past twenty years. The fundamental setup described in this paper uses circumferential guided waves, which are excited at a single location on a pipe and travel around the pipe wall and are detected at the same location. The study uses a finite element model assisted method to evaluate the detection capability of two short range circumferential guided wave setups which use both the reflected and transmitted signals. The setups themselves consist of either an axial array of transducers, for monitoring, or a single transducer which axially scans a pipe. Both setups have an array or scan pitch between either adjacent transducers or measurements. The detection capability of the fundamental Lamb wave modes (A0 and S0) in both reflection and transmission have been compared, as well as a hybrid shear horizontal wave setup, which uses the SH0 mode in reflection and the SH1 mode in transmission. A sensitivity analysis was conducted using two separate methods to determine the probability of detection (POD) for either the reflection or transmission signals. Both methods determine a POD for a specific defect, noise level, and array or scan pitch. Probability images are produced which map the POD for a range of defect sizes. For the parameters investigated in this study, it was found that in transmission large diameter defects have a higher detectability, whereas deep, narrow diameter defects are more detectable in reflection. A generalised overview of the sensitivity of short range guided waves is presented by combining both the reflection and transmission PODs. The data fused sensitivity of the S0 and SH hybrid modes are given as 0.6% and 0.75% cross sectional area (CSA) respectively, allowing for the comparison with LRGWs. The A0 mode was excluded from the POD analysis because it was much less sensitive than the other two modes.
机译:人们越来越需要高频短程导波来筛选或监测腐蚀。这与长距离导波(LRGW)形成对比,后者对管道进行大范围的腐蚀筛分,并已在过去的20年中成功用于腐蚀管理。本文介绍的基本设置使用圆周导波,这些圆周导波在管道上的单个位置被激发并在管道壁上传播,并在同一位置被检测到。该研究使用有限元模型辅助方法评估使用反射和透射信号的两个短程圆周导波装置的检测能力。设置本身包括用于监视的换能器的轴向阵列或轴向扫描管道的单个换能器。两种设置在相邻换能器或测量之间都具有阵列或扫描间距。比较了基本兰姆波模式(A0和S0)在反射和透射中的检测能力,以及混合剪切水平波设置,该设置使用反射中的SH0模式和透射中的SH1模式。使用两种单独的方法进行了灵敏度分析,以确定反射或透射信号的检测概率(POD)。两种方法都针对特定缺陷,噪声水平以及阵列或扫描间距确定POD。生成的概率图将POD映射到一系列缺陷大小。对于本研究中研究的参数,发现在透射中大直径缺陷具有更高的可检测性,而深而窄的直径缺陷在反射中更可检测。通过组合反射POD和透射POD,可以大致了解短距离导波的灵敏度。 S0和SH混合模式的数据融合灵敏度分别以0.6%和0.75%的横截面积(CSA)给出,从而可以与LRGW进行比较。 POD分析中排除了A0模式,因为它比其他两种模式敏感得多。

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