采用主动控制和机器学习策略的扭转振动缓解技术综述

IF 4.2 Q2 ENERGY & FUELS
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引用次数: 0

摘要

钻井是碳氢化合物开采和地热井开发过程中最具挑战性和最昂贵的工序之一。钻井过程中出现的故障会大大增加非生产时间(NPT),导致钻井成本增加,同时也会带来安全隐患。钻井振动是钻井过程中面临的主要问题之一,它会限制钻井设备和工具的使用寿命,降低系统的整体生产率。这些振动可分为三种模式:轴向、横向和扭转。粘滑振动是扭转振动的一种,在这种振动中,底孔组件(BHA)会周期性地停止旋转,随后底孔转速会急剧上升。本文全面回顾了用于控制和减轻扭转振动的技术,重点介绍了粘滑振动。首先简要介绍钻杆和摩擦建模,然后简要概述控制粘滑的被动控制技术。然后,重点转向对用于控制和缓解粘滑的主动控制和机器学习的最新回顾。论文最终强调了采用新颖的控制和缓解概念来改进粘滑检测并改善整个钻井过程的重要性。独特的解决方案不足以控制像钻孔这样的复杂过程,但将各种技术整合在一起则大有可为。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A review of torsional vibration mitigation techniques using active control and machine learning strategies

Drilling is one of the most challenging and expensive processes in hydrocarbon extraction and geothermal well development. Dysfunctions faced during drilling can increase the non-productive time (NPT) greatly, resulting in inflating the drilling cost and also pose a safety concern. One of the main problems faced during drilling that limits the life of drilling equipment and tools and decreases the overall productivity of the system is drilling vibrations. These vibrations can be categorized into three modes: axial, lateral, and torsional. Stick-slip vibrations are a type of torsional vibration in which the bottom hole assembly (BHA) periodically stops to rotate followed by a spike in the bottom hole RPM. This paper provides a comprehensive review of techniques used to control and mitigate torsional vibration with an emphasis on stick-slip. A brief introduction to drillstring and friction modeling is presented followed by a concise summary of passive control techniques to control stick-slip. Then the focus is shifted to an up-to-date review of active control and machine learning for stick-slip control and mitigation. The paper ultimately highlights the importance of adapting novel control and mitigation concepts to improve stick slip detection and improve the overall drilling process. A unique solution is insufficient to control a complex process such as drilling, but integration of various techniques has been found promising.

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来源期刊
Petroleum
Petroleum Earth and Planetary Sciences-Geology
CiteScore
9.20
自引率
0.00%
发文量
76
审稿时长
124 days
期刊介绍: Examples of appropriate topical areas that will be considered include the following: 1.comprehensive research on oil and gas reservoir (reservoir geology): -geological basis of oil and gas reservoirs -reservoir geochemistry -reservoir formation mechanism -reservoir identification methods and techniques 2.kinetics of oil and gas basins and analyses of potential oil and gas resources: -fine description factors of hydrocarbon accumulation -mechanism analysis on recovery and dynamic accumulation process -relationship between accumulation factors and the accumulation process -analysis of oil and gas potential resource 3.theories and methods for complex reservoir geophysical prospecting: -geophysical basis of deep geologic structures and background of hydrocarbon occurrence -geophysical prediction of deep and complex reservoirs -physical test analyses and numerical simulations of reservoir rocks -anisotropic medium seismic imaging theory and new technology for multiwave seismic exploration -o theories and methods for reservoir fluid geophysical identification and prediction 4.theories, methods, technology, and design for complex reservoir development: -reservoir percolation theory and application technology -field development theories and methods -theory and technology for enhancing recovery efficiency 5.working liquid for oil and gas wells and reservoir protection technology: -working chemicals and mechanics for oil and gas wells -reservoir protection technology 6.new techniques and technologies for oil and gas drilling and production: -under-balanced drilling/gas drilling -special-track well drilling -cementing and completion of oil and gas wells -engineering safety applications for oil and gas wells -new technology of fracture acidizing
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