基于瞬态多相流建模和分布式光纤传感的MPD设备立管气体处理压力控制方法评价

Chen Wei, Yuanhang Chen, O. Santos, Mahendra Kunju, Shahriar Mahmud, M. Almeida, P. Sonnemann
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引用次数: 3

摘要

在过去的十年中,控压钻井(MPD)设备的使用越来越多,极大地提高了气体流入管理的安全性和效率。然而,业界仍然不清楚什么是最安全、最有效的压力控制方法来去除立管中的气体流入。本研究的目的是对立管气体处理的不同压力控制方法进行系统评估,包括恒定表面背压法、恒定立管底压法、固定节流和恒定流出法。基于漂移通量模型,开发了一种瞬态多相流模拟器,用于模拟水基泥浆(WBM)系统中的立管气体处理事件。利用多组全尺寸实验数据对模拟器进行了标定和验证。在全尺寸实验中,通过向实验井底注入气体来模拟立管气体事件,然后采用不同的压力控制方法。除了常规的井下和地面压力和流量测量仪器外,还使用分布式光纤传感(DFOS)系统对环空气体流入进行高分辨率监测。根据仿真结果,评估了不同压力控制方法的性能,包括地表和隔水管底部压力的变化、峰值地表流出速率以及隔水管气体处理所需的时间。该研究的数值模拟有助于更好地理解不同的压力控制方法,改进立管气体处理策略的设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Evaluation of Pressure Control Methods During Riser Gas Handling with MPD Equipment Based on Transient Multiphase Flow Modeling and Distributed Fiber Optic Sensing
During the past decade, the increased use of Managed Pressure Drilling (MPD) equipment has significantly improved the safety and efficiency of gas influx management. However, it is still not clear to the industry what should be the safest and most effective pressure control method for removing gas influxes out of a riser. The objective of this study is to perform a systematic evaluation of different pressure control methods for riser gas handling, including the constant surface backpressure method, the constant riser bottom pressure method, and the fixed choke and constant outflow method. A transient multiphase flow simulator based on a Drift Flux Model was developed to simulate riser gas handling events in a Water Based Mud (WBM) system. Multiple sets of full-scale experimental data were used for the calibration and validation of the simulator. In the full-scale experiments, riser gas events were simulated by injecting gas into the bottom of an experimental well, followed by applying different pressure control methods. Besides conventional downhole and surface pressure and flow measurement instrumentations, a Distributed Fiber Optic Sensing (DFOS) system was used for the high-resolution monitoring of gas influxes in the annulus. The performance of different pressure control methods was evaluated based on the simulation results, including the behaviors of surface and riser bottom pressures, peak surface outflow rates, and the time required for riser gas handling. The numerical simulations carried out in this study can help better understand the different pressure control methods and improve the design of riser gas handling strategies.
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