Extending FMC Based Ultrasonic Imaging Practices to Smaller Wall Thickness

N. Pörtzgen, Olaf Solem
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Abstract

During the construction of pipelines for the transportation of oil and gas, the inspection of girth welds is a critical step to ensure the integrity and thereby the safety and durability of the pipeline. In this paper we present an advanced technology ‘IWEX’ for the non-destructive testing of welds based on 2D and 3D ultrasonic imaging. This technology allows for safe, fast, and accurate inspection whereby the results are presented comprehensively. This will be illustrated with results from a recent project. The IWEX technology is based on an ultrasonic inspection concept, whereby ‘fingerprints’ of ultrasonic signals are recorded, also referred to as ‘full matrix capture’ (FMC) data. Then, an image area is defined, consisting out of pixels over an area large enough to cover the inspection volume. With the FMC data, image amplitudes are calculated for each pixel so that the shape of geometry (back wall, front wall, cap, and root) and possible indications are revealed. As opposed to traditional ultrasonic testing strategies, the detection and sizing of indications is therefore less dependent on its orientation. The project concerned the inspection of J and V welds from a 5.56″ diameter carbon steel pipe with an 8.4mm wall thickness. The wall thickness is relatively thin compared to common inspection scopes. Therefore, the inspection set-up was adapted, and procedural changes were proposed. Consequently, additional validation efforts were required to demonstrate compliance with the required inspection standard; DNVGL-ST-F101: 2017. As part of this, welds were scanned with seeded indications and the reported locations were marked for macro slicing under witnessing of an independent representative from DNVGL. The resulting images from the indications in the welds showed great detail with respect to the position, orientation and height of the indications. A quantitative comparison with the results from the macro slices was performed, including a statistical analysis of the height sizing and depth positioning accuracies. From the analysis, it could be observed that the expected improvements with respect to the resolution and sizing accuracy were indeed achieved. Thereby, the procedure has proven to be adequate for the inspection of carbon steel girth welds within the thin wall thickness range (~6mm to ~15mm). The IWEX technology is a member of the upcoming inspection strategy based on imaging of ultrasonic FMC data. This strategy can be considered as the next step in the evolution of inspection strategies after phased array inspection. The IWEX technology has been witnessed and qualified by independent 3rd parties like DNVGL, this makes the IWEX technology unique in its kind and it opens opportunities for further acceptance in the industry and other inspection applications.
将基于FMC的超声成像实践扩展到更小的壁厚
在油气输送管道施工过程中,环焊缝检测是保证管道完整性从而保证管道安全性和耐久性的关键环节。在本文中,我们提出了一种基于二维和三维超声成像的焊缝无损检测技术“IWEX”。该技术允许安全、快速和准确的检测,从而全面呈现结果。这将用最近一个项目的结果来说明。IWEX技术基于超声波检测概念,超声波信号的“指纹”被记录下来,也被称为“全矩阵捕获”(FMC)数据。然后,定义一个图像区域,由足够大的区域上的像素组成,以覆盖检测体积。使用FMC数据,计算每个像素的图像振幅,以便显示几何形状(后壁,前壁,帽和根)和可能的指示。与传统的超声波检测策略相反,检测和确定适应症的大小因此较少依赖于其方向。本项目是对直径5.56″、壁厚8.4mm的碳钢管进行J焊缝和V焊缝的检测。与普通检测范围相比,壁厚相对较薄。因此,对检查设置进行了调整,并提出了程序更改。因此,需要额外的验证工作来证明符合所需的检查标准;DNVGL-ST-F101: 2017。作为该工作的一部分,在DNVGL的独立代表的见证下,用种子指示扫描焊缝,并标记报告的位置进行宏观切片。从焊缝上的指示得到的图像显示了有关指示的位置、方向和高度的详细信息。与宏观切片的结果进行了定量比较,包括高度尺寸和深度定位精度的统计分析。从分析中可以看出,在分辨率和尺寸精度方面确实实现了预期的改进。因此,该程序已被证明足以检查薄壁厚度范围(~6mm至~15mm)内的碳钢环焊缝。IWEX技术是即将到来的基于超声FMC数据成像的检测策略的一员。该策略可视为相控阵检测后检测策略发展的下一步。IWEX技术已得到DNVGL等独立第三方的见证和认证,这使得IWEX技术在同类产品中独一无二,并为行业和其他检测应用提供了进一步接受的机会。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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