在不同地形和环境下运行二氧化碳管道的流动保证和热力学挑战

Terence George Wood, S. Campbell, N. Smith
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引用次数: 0

摘要

在未来十年,捕获和储存二氧化碳的需求将继续增长,其中一个基本部分是能够在许多地形和环境中长距离运输流体。流体供应和储存特性的不断变化确保了管道在整个使用寿命期间的运行仍然是一个挑战。本文将研究流体组成、储存位置、环境条件和管道在整个生命周期中所看到的各种操作模式的变化的影响,强调技术设计和操作挑战,并最终为未来的发展提供指导。利用流体表征软件MultiflashTM,将演示含和不含杂质的CO2的热力学行为。流体行为和水力性能将在整个现场寿命期间的管道预期运行范围内进行计算,突出在OLGATM中使用单一组件模块的优点和局限性,同时与处理杂质时的组合方法进行比较。本文将通过两个不同性质的案例研究,包括地理环境、储存位置(含水层与废弃油气储层)和环境条件,展示以下问题:储存类型对管道运行的影响以及这种影响将如何随着时间的推移而演变;环境条件及其对工艺设备和操作程序选择的影响(即停机);以及二氧化碳成分对二氧化碳管道设计的影响。最后,本文将提出一套针对流体成分、储存地点和环境条件变化进行二氧化碳管道设计分析的指导方针,以及一些关键的操作策略。本文利用了当前最先进的工具,以及这些不断发展的工具如何使这一技术上具有挑战性的领域更加主流。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Flow Assurance and Thermodynamic Challenges of operating CO2 Pipelines for variations in terrains and environments
The requirement for capturing and storing Carbon Dioxide will continue to grow in the next decade and a fundamental part of this is being able to transport the fluid over large geographical distances in numerous terrains and environments. The evolving nature of the fluid supply and the storage characteristics ensure the operation of the pipeline remains a challenge throughout its operational life. This paper will examine the impact of changes in the fluid composition, storage locations, ambient conditions and the various operating modes the pipeline will see throughout the lifecycle, highlight the technical design and operational challenges and finally give guidance on future developments. The thermodynamic behaviour of CO2 with and without impurities will be demonstrated utilising the fluid characterisation software, MultiflashTM. The fluid behaviour and hydraulic performance will be calculated over the expected operational envelope of the pipeline throughout field life, highlighting the benefits and constraints of using the single component module in OLGATM whilst comparing against a compositional approach when dealing with impurities. The paper will demonstrate through two case studies of varying nature including geographical environment, storage location (aquifer vs. abandoned hydrocarbon reservoir) and ambient conditions, the following issues: The impact of the storage type on the pipeline operations and how this will evolve with time; The environmental conditions and the impact these have on selection of process equipment and operational procedures (i.e. shutdown); and The impact the CO2 composition has on the design of the CO2 pipeline, and The paper will conclude with a set of guidelines for undertaking design analysis of CO2 pipelines for variations in fluid composition, storage locations and ambient conditions as well as some key operational strategies. This paper utilises the current state of the art tools and how these evolving tools are making this technically challenging area more mainstream.
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