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Simulation and modeling of ultrasonic pitch-catch through-tubing logging

机译:超声波节流通管测井的仿真与建模

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摘要

Cased petroleum wells must be logged to determine the bonding and hydraulic isolation properties of the sealing material and to determine the structural integrity status. Although ultrasonic pitch-catch logging in single-casing geometries has been widely studied and is commercially available, this is not the case for logging in double-casing geometries despite its increasing importance in plug and abandonment operations. It is therefore important to investigate whether existing logging tools can be used in such geometries. Using a finite-element model of a double-casing geometry with a two-receiver pitch-catch setup, we have simulated through-tubing logging, with fluid between the two casings. We found that there appears a cascade of leaky Lamb wave packets on both casings, linked by leaked wavefronts. By varying the geometry and materials in the model, we have examined the effect on the pulse received from the second wave packet on the inner casing, sometimes known as the third interface echo. The amplitude of this pulse was found to contain information on the bonded material in the outer annulus. Much stronger amplitude variations were found with two equally thick casings than with a significant thickness difference; relative thickness differences of up to one-third were simulated. Finally, we have developed a simple mathematical model of the wave packets’ time evolution to encapsulate and validate our understanding of the wave packet cascade. This model shows a more complex time evolution in the later wave packets than the exponentially attenuated primary packet, which is currently used for single-casing logging. This indicates that tools with more than two receivers, which could measure wave packets’ amplitude at more than two points along their time evolution, would be able to draw more information from these later packets. The model was validated against simulations, finding good agreement when the underlying assumptions of the model were satisfied.
机译:必须对套管的石油井进行测井,以确定密封材料的粘结和水力隔离特性,并确定结构完整性状态。尽管已经对单套管几何中的超声波俯仰捕捞法进行了广泛的研究,并且可以在市场上买到,但双套管几何中的超声螺距捕捞却不是这种情况,尽管它在插拔作业中的重要性日益提高。因此,重要的是调查现有的测井工具是否可以在这种几何结构中使用。使用双套管几何结构的有限元模型和两个接收器的螺距捕获装置,我们模拟了在两个套管之间有流体的直管测井。我们发现,在两个套管上都出现了由泄漏的波阵面链接的泄漏兰姆波包的级联。通过改变模型中的几何形状和材料,我们检查了对从内壳上的第二波包接收到的脉冲的影响,有时也称为第三界面回波。发现该脉冲的幅度包含有关外环中粘结材料的信息。发现两个相等厚度的外壳比明显的厚度差要强得多。相对厚度差异最多可模拟三分之一。最后,我们开发了一个简单的波包时间演化数学模型,以封装并验证我们对波包级联的理解。该模型显示了在较晚的波包中的时间演化比当前用于单套管测井的指数衰减的主包更复杂。这表明具有两个以上接收器的工具可以测量沿其时间演变的两个以上点处的波包幅度,从而能够从这些后来的包中获取更多信息。通过仿真验证了该模型,并在满足模型的基本假设时找到了良好的一致性。

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