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Acoustic Guided Waves in Cylindrical Solid-Fluid Structures: Modeling with a Sweeping Frequency Finite Element Method and Experimental Validation

机译:圆柱形固体流体结构中的声学引导波:用扫描频率有限元方法建模和实验验证

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Modeling and understanding the complex elastic-wave physics prevalent in solid-fluid cylindrically-layered structures is of importance in many NDE fields, and most pertinently in the domain of well integrity evaluation of cased holes in the oil and gas industry. Current sonic measurements provide viable techniques for well integrity evaluation yet their practical effectiveness is hampered by the current lack of knowledge of acoustic wave fields particularly in complicated cased-hole geometry where for instance two or more nested steel strings are present in the borehole. In this article, we propose and implement a Sweeping Frequency Finite Element Method (SFFEM) for acoustic guided waves simulation in complex geometries that include double steel strings cemented to each other and to the formation and where the strings may be non-concentric. Transient dynamic finite element models are constructed with sweeping frequency signals being applied as the excitation sources. The sources and receivers disposition simulate current sonic measurement tools deployed in the oilfield. Synthetic wavetrains are recorded and processed with modified matrix pencil method to isolate both the dispersive and non-dispersive propagating guided wave modes. Scaled experiments of fluid-filled double strings with dimensions mimicking the real ones encountered in the field have also been carried out to generate reference data. A comparison of the experimental and numerical results indicates that the SFFEM is capable of accurately reproducing the rich and intricate higher-order multiple wave fields observed experimentally in the fluid-filled double string geometries.
机译:在许多NDE领域,普遍存在的普遍存在的复杂弹波物理学在许多NDE领域具有建模和理解,并且在石油和天然气工业中甲壳上的套管孔的井完整性评估领域中最具无所畏惧。电流的声波测量为井完整性评估提供可行的技术,但是由于目前在钻孔中存在两个或更多个嵌套钢带的复杂壳体几何形状中,它们的实际有效性受到了声波场的目前缺乏知识。在本文中,我们提出并实施了用于在复杂的几何形状中的声学引导波模拟的扫描频率有限元方法(SFFEM),其包括彼此覆盖的双钢串并形成弦可以是非同心的。瞬态动态有限元模型由扫描频率信号作为激励源构造。来源和接收器配置模拟油田部署的电流Sonic测量工具。用改进的矩阵铅笔方法记录和处理合成波形,以隔离分散和非分散传播引导波动模式。还进行了尺寸的流体填充双弦,其尺寸模仿在该领域遇到的真实的尺寸以产生参考数据。实验和数值结果的比较表明,SFFEM能够在流体填充的双弦几何形状中精确地再现实验观察到的富且复杂的高阶多波形场。

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