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Source Influence for Focusing Potential of Guided Waves in Hollow Cylinders by Using a Circumferential Phased Array

机译:通过使用圆周相位阵列对空心圆柱体引导波的聚焦电位的影响

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The phased array focusing technique is being developed with the intent to inspect hundreds of feet of pipeline from a single array position. The single array position is beneficial if access to a pipe is limited, e.g. steam pipes onboard U.S. Naval ships, nuclear power plant pipes, oil and natural gas pipelines. The steam pipes have a protective coating which would ordinarily be removed and replaced for an inspection. From a single array position, ultrasonic guided waves propagate under the coating, down the length of the pipe and return information about potential defects. Focusing the ultrasonic energy at a predetermined location along the length of the pipe enhances the ability to detect defects that current state of the art inspection systems cannot. Focusing is achieved by applying excitation time delays to a multi-channel signal generation system. The excitation sources are equally spaced about the circumference of the pipe. Time delays are calculated using theoretically generated angular displacement profiles in a hollow cylinder. These theoretical displacement profiles are dependent upon excitation source influences. In this paper, the excitation source influence on focusing potential in pipe was studied. Further, focusing potential contour plots for different frequencies and distances from the excitation source were created. Based on the contour plots, sample focusing experiments were carried out.
机译:分阶段阵列聚焦技术正在开发出从单个阵列位置检查数百英尺的管道。例如,如果对管道有限,则单个阵列位置是有益的,例如,蒸汽管船上美国海军舰艇,核电站管,石油和天然气管道。蒸汽管具有保护涂层,这些保护涂层通常被除去并替换为检查。从单个阵列位置,超声波引导波在涂层下传播,管道长度并返回有关潜在缺陷的信息。将超声能量沿着管道的长度聚焦在预定位置,增强了检测缺陷的能力,该缺陷是现有技术的检测系统的电流状态不能。通过将激励时间延迟应用于多通道信号生成系统来实现聚焦。激发源围绕管道的圆周等距间隔开。在空心圆柱体中使用理论产生的角位移型材计算时间延迟。这些理论位移轮廓取决于激发源的影响。在本文中,研究了对管中聚焦电位的激发源影响。此外,创建了针对不同频率的潜在轮廓图和来自激励源的距离。基于轮廓图,进行样品聚焦实验。

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