Fast, Environmentally Sound and Efficient Well Clean-Up Operations: Lessons Learned and Best Practices from Operations Around the World

Y. Shumakov, F. Hollaender, A. Zhandin
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引用次数: 1

Abstract

Well clean-up is one of the most complex operations performed at the wellsite today. During clean-up, a well is flowing for the first time after initial completion or workover operations through temporary surface facilities to either conduct a welltest or to simply condition the well before connecting it to production facilities. Currently, there are no practical recommendations available that would summarize clean-up experiences and guide operating companies through the process of efficiently planning well clean-up operations. Conventional well clean-up operations are inherently challenging owing to the requirements for accurate data measurements, safe handling and disposal of produced fluids (hydrocarbons, completion brine, water, and solids). Experience has shown that it is nearly impossible to perform well clean up within pre-defined constraints and target criteria without an appropriate design, equipment selection and operations planning to account for the specificities of each situation. Steady-state flow simulators have been the standard tool to model pressure and temperature changes along the wellbore and through temporary production system during well clean-up process. Those assume either final stabilized conditions or a limited number of intermediate ones and formed the basis for equipment selection. But this approach has critical limitations in modelling flowing well behavior and fast-changing flowing conditions, and therefore in assessing operational flow assurance risks and the dynamic capability of the surface plant to handle produced fluids. The paper describes in detail today's challenges during well clean-up operations that combine the need for operational safety, minimal environmental footprint and flow assurance considerations that have to be balanced with costs and production performance optimization. The paper provides practical recommendations and presents multiple case studies highlighting the results and lessons learned from applying a novel, unique workflow based on the application of a transient-multiphase flow simulator. Combined with modern well-testing equipment such as modern test separators, remotely actuated adjustable chokes or environmentally friendly fluid disposal techniques, such advanced design allows performing clean-up operations efficiently while remaining within time, rates, pressure or emissions limits.
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快速、环保、高效的油井清理作业:世界各地作业的经验教训和最佳实践
目前,油井清理是井场最复杂的作业之一。在清理过程中,井在首次完井或修井作业后,通过临时地面设施进行第一次流动,进行试井或在连接到生产设施之前对井进行简单的调整。目前,还没有实用的建议来总结清理经验,并指导作业公司有效地规划油井清理作业。由于需要精确的数据测量、安全处理和处置产出流体(碳氢化合物、完井盐水、水和固体),常规的油井清理作业本身就具有挑战性。经验表明,如果没有适当的设计、设备选择和作业计划来考虑每种情况的特殊性,几乎不可能在预定义的限制条件和目标标准内进行良好的清理。稳态流动模拟器一直是模拟井筒和临时生产系统在油井清理过程中压力和温度变化的标准工具。这些假设要么是最终稳定的条件,要么是有限数量的中间条件,并构成设备选择的基础。但是,这种方法在模拟流动井的行为和快速变化的流动条件方面存在严重的局限性,因此在评估作业流动保障风险和地面设备处理产出流体的动态能力方面也存在严重的局限性。本文详细介绍了目前在油井清理作业中所面临的挑战,这些挑战结合了对作业安全、最小环境足迹和流动保证的需求,必须与成本和生产性能优化相平衡。本文提供了实用的建议,并提出了多个案例研究,重点介绍了基于瞬态多相流模拟器应用的新颖独特工作流程的结果和经验教训。结合现代测试设备,如现代测试分离器、远程驱动可调节流器或环保流体处理技术,这种先进的设计可以有效地进行清理作业,同时保持在时间、速率、压力或排放限制内。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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