基于工程光纤声传感器的先进地球物理测量方法

M. Farhadiroushan, T. Parker, S. Shatalin, A. Gillies, Z. Chen, A. Clarke, G. Naldrett
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引用次数: 1

摘要

分布式声学传感(DAS)技术实现了先进的地球物理测量方法,其中光纤电缆以新颖的配置部署为密集的大孔径相控阵传感器。最近开发了一种传感系统,该系统结合了具有明亮散射中心的工程光纤和低噪声、宽动态范围的光电DAS询问器。与标准光纤相比,这种带有工程光纤的增强型DAS在灵敏度和动态范围方面提高了20dB(100倍)。新的DAS技术旨在颠覆传统的地球物理测量方法,从而实现新的应用。在非常规井中,除了地震和微地震测量外,改进的DAS系统的低频响应(低至毫赫级)可用于监测水力诱发的应变效应。在海上应用中,沿着生产井和注水井永久安装光纤,可以更频繁、更经济地获取地震数据。下一个挑战是进入海底油井。我们提供了一些初步的实验结果,证明了仅使用地面光电子技术,工程光纤在长连接海底井的先进地震采集方面的优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advanced Geophysical Measurement Methods Using Engineered Fiber Optic Acoustic Sensor
Summary Distributed Acoustic Sensing (DAS) technology enables advanced geophysical measurement methods, where the fibre optic cable is deployed as a dense, wide-aperture phase-array sensor in novel configurations. A sensing system has recently been developed that combines an engineered fiber with bright scatter centers with a low-noise, wide dynamic-range optoelectronics DAS interrogator. This enhanced DAS with engineered fiber offers a 20dB (100x) improvement in sensitivity and dynamic range compared to that achieved with standard fiber. The new DAS technology seeks to disrupt conventional geophysical surveying methods, and so enable the realisation of new applications. In unconventional wells, in addition to seismic and microseismic measurements, the improved low frequency response of the DAS system, down to the milli-Hertz level, is used to monitor hydraulically induced strain effects. In offshore applications, the permanent installation of the fiber optic along production and injection wells is enabling more frequent and cost-effective seismic data to be acquired. The next challenge is stepping out to subsea wells. We present some initial lab results demonstrating the benefits of the engineered fiber for advanced seismic acquisition in long-tie back subsea wells using only surface optoelectronics.
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