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Applied Ultrasonic Technology in Wellbore-Leak Detection and Case Histories in Alaska North Slope Wells

机译:超声波技术在阿拉斯加北坡井眼井眼泄漏检测和病历中的应用

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When operators are faced with well-integrity problems, a variety of methods may be used to detect the source of annular communication. Methods for detecting downhole leak points include spinners, temperature logs, downhole cameras, thermal-decay logs, and noise logs. However, many of these methods are ineffective when dealing with very small leaks and can result in collected data that require a significant amount of logging finesse to interpret.rnUltrasonic listening devices have been used for a number of years to detect leak sources effectively in surface production equipment. Ultrasonic energy has some properties that, when compared to audible-frequency energy, make it ideal for accurate leak detection (Beranek 1972; Povey 1997; Evans and Bass 1972). Like audible-frequency energy, ultrasonic energy can pass through steel. However, ultrasonic energy propagates relatively short distances through fluids when compared to equal-energy audible-frequency sound. Thus, when an ultrasonic signal of this nature is detected, the detection tool will be in close proximity to the energy source.rnOn this premise, an ultrasonic leak-detection tool was developed for downhole applications to take advantage of the unique properties of ultrasonic-energy propagation through various media. Data-acquisition equipment and filtering algorithms were developed to allow continuous logging conveyed on standard electric line at common logging speeds. Continuous logging has proved to be significantly more efficient in locating anomalies than static logging techniques commonly used in noise-logging operations.rnDuring development, the tool was shown to be effective in locating leaks as small as 0.026 gal/min with an accuracy of 3 ft in production tubing, casing, and other pressure-containing completion equipment. Leaks also have been detected through multiple strings of tubing and casing. The tool has proved to be effective in locating leaks that other diagnostic methods were unable to locate.
机译:当操作员面临良好的完整性问题时,可以使用多种方法来检测环形通信的来源。检测井下泄漏点的方法包括旋转器,温度记录,井下摄像机,热衰减记录和噪声记录。但是,这些方法中的许多方法在处理非常小的泄漏时均无效,并且可能导致收集到的数据需要大量的测井技巧来解释。超声监听设备已经使用了很多年,以有效地检测地表生产中的泄漏源设备。与可听频率能量相比,超声能量具有某些特性,使其成为精确泄漏检测的理想选择(Beranek 1972; Povey 1997; Evans和Bass 1972)。像音频能量一样,超声波能量也可以穿过钢。但是,与等能量的可听频率的声音相比,超声能量在流体中传播的距离相对较短。因此,当检测到这种性质的超声波信号时,检测工具将紧邻能源。rn在此前提下,开发了一种用于井下应用的超声波泄漏检测工具,以利用超声波的独特特性。能量通过各种介质传播。开发了数据采集设备和过滤算法,以允许以常规测井速度在标准电线上连续进行测井。事实证明,连续测井比常规的噪声测井技术能够更有效地定位异常。rn在开发过程中,该工具被证明可以有效地定位小至0.026 gal / min的泄漏,精度为3 ft用于生产油管,套管和其他含压完井设备。还通过多根管子和套管串检测到泄漏。实践证明,该工具可有效地定位其他诊断方法无法定位的泄漏。

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