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Guided ultrasonic wave tomography of a pipe bend exposed to environmental conditions: A long-term monitoring experiment

机译:引导超声波断层扫描的管弯暴露于环境条件:长期监测实验

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摘要

Continuous monitoring of corrosion damage in pipelines requires sensor systems that can achieve high precision (repeatability) to detect and size subtle wall thickness (WT) losses. In fact, corrosion typically progresses at a rate of 1 mm per year or less which poses very demanding performance requirements if the state of the pipe has to be assessed on a weekly or even monthly basis. Guided ultrasonic wave tomography (GUWT) has emerged as an attractive approach for continuous monitoring owing to its ability to map WT losses over an extended pipe section. This is possible because GUWT employs ultrasonic waves that are guided by the pipe wall to travel a large distance from the source transducer. Defects along the path of the guided wave cause a perturbation of the signal which is then interpreted by model-based inversion schemes to determine the WT loss. In addition to damage, there is a vast number of time-dependent operational and environmental (O & E) factors that can perturb the signal also when damage is not present. To achieve high precision, it is therefore essential that GUWT can detect the changes in the signal due to damage and suppress those caused by other benign factors such as temperature variations. Although numerous studies have been conducted to estimate the accuracy of various implementations of GUWT, precision has received less attention due to the challenges associated with reproducing realistic O & E conditions in the lab. This work focuses on the effect of temperature and presents the results of a continuous monitoring experiment conducted on a pipe bend kept outdoors and exposed to weather conditions for a period 21 months. It is shown that the pipe undergoes a relatively severe temperature cycling with typical daily peak-to-trough variations of 20 degrees C that cover the range from -15 degrees C to +51 degrees C as the seasons alternate. The effect of temperature is suppressed by exploiting the spatial diversity of array measurements and combining multiple datasets measured during the monitoring period. The maximum WT loss is estimated with high precision exhibiting a standard deviation not exceeding 0.4% of the nominal WT.
机译:持续监测管道中的腐蚀损坏需要传感器系统,可以实现高精度(可重复性)以检测和尺寸微妙的壁厚(WT)损耗。实际上,腐蚀通常以每年1毫米的速度或更少的速度进行,这是如果必须每周或甚至月度评估管道的状态,则造成非常苛刻的性能要求。引导超声波断层扫描(GUWT)由于其在扩展管道部分上造影WT损耗的能力而被出现为连续监测的有吸引力的方法。这是可能的,因为GUWT采用由管壁引导的超声波从源换能器行进大距离。沿着引导波的路径缺陷导致信号的扰动,然后通过基于模型的反转方案解释以确定WT损耗。除了损坏外,还有大量的时间依赖的操作和环境(O&e)因素,当不存在损坏时,也可以扰乱信号。为了实现高精度,因此GUWT可以通过损坏检测信号的变化,并抑制由温度变化等其他良性因素引起的那些。虽然已经进行了许多研究来估计GUWT各种实施的准确性,但由于与实验室中的恢复现实的O&E条件相关的挑战,精确受到关注。这项工作侧重于温度的效果,并提出了在管弯上进行的连续监测实验的结果,在户外保持伴随,并暴露于天气条件21个月。结果表明,该管经历了相对严重的温度循环,其具有20摄氏度的典型日峰 - 槽变化,其覆盖-15摄氏度至+51摄氏度的范围。通过利用阵列测量的空间分集并组合在监视期间测量的多个数据集来抑制温度的影响。最大WT损耗估计高精度,表现出不超过标称WT的0.4%的标准偏差。

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