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Guided Wave Sensing In a Carbon Steel Pipe Using a Laser Vibrometer System

机译:使用激光振动器系统在碳钢管中的引导波感

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Non-Destructive Evaluation (NDE) techniques have achieved a great development during the last decades as a valuable tool for material characterization, manufacturing control and structural integrity tests. Among these tools, the guided wave technology has been rapidly extended because it reduces inspection time and costs compared to the ordinary point by point testing in large structures, as well as because of the possibility of inspecting under insulation and coating conditions. This fast development has motivated the creation of several inspection and material characterization systems including different technologies which can be combined with this technique. Different measurements systems based on laser techniques have been presented in order to inspect pipes, plates and diverse structures. Many of them are experimental systems of high cost and complexity which combine the employment of a laser for generation of waves in the structure and an interferometer for detection. Some of them employ air-coupled ultrasound generation transducers, with high losses in air and which demand high energy for exciting waves in materials of high stiffness. The combined employment of a commercial vibrometer system for Lamb wave sensing in plates has been successfully shown in the literature. In this paper we present a measurement system based on the combined employment of a piezoelectric wedge transducer and a laser vibrometer to sense guided acoustic waves in carbon steel pipes. The measurement system here presented is mainly compounded of an angular wedge transducer, employed to generate the guided wave and a commercial laser vibrometer used in the detection process. The wedge transducer is excited by means of a signal function generator whose output signal has been amplified with a power signal amplifier. A high precision positioning system is employed to place the laser beam at different points through the pipe surface. The signal detected by the laser vibrometer system is amplified with a signal amplifier and then it is displayed in a digital storage oscilloscope. This set-up offers the possibility of analyzing in a simpler way the wave propagation and the material evaluation in pipes of certain wall thickness. The material characterization considering distinct wave propagation modes can be easily achieved, changing the different incident angles of the wedge piezoelectric probe and their combined employment with several driving signals. Moreover, this experimental sensing system offers other possibilities of inspecting and analyzing the wave propagation in some features (bends, flange joints, welds,...) of the pipe surface which cause very large reflections and mode conversions and which in practice limits the inspection range when are inspected with conventional receiving transducer arrangements.
机译:未破坏性评估(NDE)技术在过去几十年中取得了巨大的发展,作为材料表征,制造控制和结构完整性测试的宝贵工具。在这些工具中,导波技术已经被迅速推广,因为它与通过在大型结构点测试,以及由于检查保温层下和涂布条件的可能性普通点减少检查时间和成本。这种快速发展有动力创造了几种检查和材料表征系统,包括不同技术,可以与这种技术相结合。已经提出了基于激光技术的不同测量系统,以检查管道,板和不同的结构。其中许多是高成本和复杂性的实验系统,其结合了激光器在结构和干涉仪中产生波浪的使用。其中一些采用空气耦合超声发电传感器,空气中具有高损失,这需要高能量在高刚度材料中激发波浪。在文献中成功地显示了用于板材的羊振波感的商业振动计系统的合并就业。在本文中,我们介绍了一种测量系统,基于压电楔换能器和激光振动计的组合使用,以在碳钢管中感测引导声波。这里呈现的测量系统主要包括角楔形换能器,用于产生在检测过程中使用的导向波和商业激光振动计。楔形换能器借助于信号函数发生器激励,其输出信号已经用电源信号放大器放大。采用高精度定位系统将激光束放置在不同点通过管表面。由激光振动器系统检测的信号用信号放大器放大,然后将其显示在数字存储示波器中。该设置提供了以更简单的方式分析波传播和某些壁厚管中的材料评估的可能性。考虑考虑不同的波传播模式的材料表征可以容易地实现,改变楔形压电探头的不同入射角及其具有多个驱动信号的组合就业。此外,该实验检测系统提供了在管道表面的一些特征(弯曲,法兰接头,焊接,...)中检查和分析波传播的其他可能性,这导致非常大的反射和模式转换,并且在实践中限制了检查随着传统接收换能器布置检查的范围。

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