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Acoustically Responsive Cement for Enhanced Well Integrity

机译:声响应水泥,可增强井的完整性

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Cementing is an integral part of well construction. Cement provides the seal, protection, and support for the casing to maintain the strong barriers that isolate the well. The benefits of cement are well known and a compendium of knowledge on well cement design and durability has been building since the development of engineered cement application over a century ago. To achieve effective isolation, cement needs to fill the area around the pipe and produce a channel-free section of cement over a length of the cement column suitable to isolate zones and prevent leakage into or out of a hydrocarbon productive zone. In many published case histories of cement bond studies and several multi-well studies, logs of cement quality show channels over short zones, even where isolation has been proven by decades of production. Channels probably exist for short intervals in many cemented intervals that are still effectively isolated. Unless the channels extend through the entire length of the cemented column, the isolation potential of a cement column is still acceptable. Wells can experience integrity failure due to structural instability in cemented regions due to subsidence and compaction caused by reservoir depletion over the lifetime of the well. Unique environmental conditions present significant operational and safety risks to the operator. Increased knowledge of cement placement, integrity, and condition will help to better guide well construction and operation. In this paper, a novel solution to well integrity monitoring is presented to address these issues to improve HSSE, enhance the economics of production, mitigate costs of catastrophic failure, and support commitments to improving environmental sustainability. We have developed a smart well cement with specific enhanced acoustic signatures that can be detected by traditional sonic logging tools. This smart acoustically responsive cement utilizes a specially engineered particulate filler that acts as an acoustic band gap filter and contrast agent at specific frequencies. The cement can be used to harness the potential of the unified digital oil field in increasing productivity and consistency. The acoustic signature of the cement can be analyzed to determine the integrity of the cement, contamination in the cement, and, importantly, mechanical loading on the cement. Finite element modeling and simulation were used to determine the acoustic response of the novel material and guide the design of the particle additive. The material was produced on the lab scale and the acoustic band gap features were confirmed using vibrational measurements. Ultrasonic measurements were used to determine the acoustic response of subscale composite structures, including under mechanical load and in simulated environmental tests. Shallow buried pipes with cemented annuli and engineered voids were constructed at a field site. A monopole sonic logging tool was then used to map the cement location and determine the location and relative degree of mechanical loading. Stress was applied using a variety of methods and mapped along the length of the wellbore. The results indicated improved acoustic detection using sonic bond log tools including uniquely identifiable cement placement, enhanced void discrimination, and localization of loaded regions. This provides significant value for a smart acoustically responsive cement in detecting and thereby reducing well integrity risks due to cementing and formation issues. The acoustically responsive cement allows discrimination between fluids and lightweight cement, monitoring of formation depletion and reservoir compaction, and increased knowledge of wellbore stresses in the oil field. Furthermore, the material has the potential to be continuously monitored with an acoustic interrogation system for remote real-time indication of cement stress and integrity on a zone-by-zone basis. These results provide confidence in the next steps to further mature and de-risk the acoustically responsive cement technology for well integrity evaluation.
机译:固井是油井建设不可或缺的一部分。水泥为套管提供了密封,保护和支撑,以维持隔离井眼的坚固屏障。水泥的好处是众所周知的,并且自一个多世纪以来工程水泥应用的发展以来,就已经在水泥井设计和耐久性方面建立了丰富的知识。为了实现有效的隔离,水泥需要填充管道周围的区域,并在水泥柱的整个长度范围内生产水泥的无通道段,以隔离各个区域并防止泄漏到烃类生产区中或从中泄漏出来。在许多已发表的水泥胶结研究和几口多井研究的案例历史中,即使几十年的生产已经证明了隔离性,但水泥质量的测井记录却显示出了短区域内的通道。通道可能在许多固定间隔中仍存在很短的间隔,但仍然有效地隔离了。除非通道延伸到整个水泥柱的整个长度,否则水泥柱的隔离电位仍然可以接受。由于在井的整个生命周期中,由于储层的枯竭引起的沉降和压实作用,井在胶结区的结构不稳定会导致完整性下降。独特的环境条件对操作员造成重大的操作和安全风险。对水泥放置,完整性和状况的了解将有助于更好地指导油井的建设和运营。在本文中,提出了一种用于井眼完整性监控的新颖解决方案,以解决这些问题,以改善HSSE,提高生产经济性,减轻灾难性故障的成本并支持改善环境可持续性的承诺。我们已经开发了一种具有特定增强声学特征的智能井水泥,可以通过传统的声波测井工具进行检测。这种智能的声响应水泥采用了专门设计的颗粒填料,可在特定频率下用作声带隙过滤器和造影剂。该水泥可用于利用统一数字油田的潜力,以提高生产率和稠度。可以分析水泥的声学特征以确定水泥的完整性,水泥中的污染以及重要的是水泥上的机械负荷。有限元建模和仿真用于确定新型材料的声学响应,并指导颗粒添加剂的设计。该材料是在实验室规模生产的,并且使用振动测量证实了声带隙特征。超声波测量被用来确定超小型复合结构的声学响应,包括在机械载荷下和在模拟的环境测试中。在现场现场建造了带有水泥环和工程空洞的浅埋管道。然后使用单极声波测井工具来绘制水泥位置图,并确定机械载荷的位置和相对程度。使用多种方法施加应力,并沿井眼长度方向绘制应力。结果表明,使用声波粘合测井工具改善了声学检测,包括唯一可识别的水泥放置,增强的孔隙识别度和加载区域的定位。这为智能声学响应胶结剂的检测提供了重要价值,并因此降低了由于胶结和地层问题而引起的井完整性风险。声响应水泥可以区分流体和轻质水泥,监测地层枯竭和储层压实,并增加对油田井眼应力的了解。此外,该材料具有通过声讯查询系统进行连续监测的潜力,可在每个区域的基础上远程实时显示水泥应力和完整性。这些结果为进一步完善声响应水泥技术并降低其风险进行井完整性评估的下一步提供了信心。

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