二氧化碳输送管道破裂瞬态研究及二氧化碳羽流遏制新方法

Haidan Lu, C. Kwok, N. G. Bustamante, S. Atmaca, Sean Roy
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引用次数: 0

摘要

二氧化碳(CO2)管道的安全和有效运行对于遵守联邦法规和碳捕获与封存(CCS)项目的运行安全至关重要。在这项研究中,我们的目标是深入了解全孔破裂过程中的水力条件和二氧化碳相变化,并研究在这种压力损失事件中使用管中管配置来更好地遏制二氧化碳羽流的潜力。在这项研究中,我们使用压力焓闪蒸程序模拟了杂质含量低于1%的高浓度二氧化碳。我们采用瞬态多相流分析方法对CO2管道中点全孔破裂到大气中的过程进行建模,以预测管道内的温度、压力和流体热力学性质。通过提取破裂两侧管道温度曲线随时间的变化、最低温度位置以及恢复到环境温度所需的时间等关键结果,可以了解二氧化碳管道破裂对管道完整性的风险和影响。然后,研究了在管道破裂情况下使用偏心管中管系统进行水力变化的问题。在此基础上,探讨了利用套管控制泄漏的CO2并防止CO2羽流逸入大气的可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Transient Study of Carbon Dioxide Transportation Pipeline Rupture and a Novel Approach for the Carbon Dioxide Plume Containment
The safe and efficient operation of carbon dioxide (CO2) pipelines is essential for compliance with federal regulations and the operational safety of carbon capture and sequestration (CCS) projects. In this study, we aim to gain insights into the hydraulic conditions and CO2 phase changes during fullbore rupture and investigate the potential of using pipe-in-pipe configuration to achieve better CO2 plume containment during this pressure loss event. In this study, we modeled high-concentration CO2 with less than 1% impurities using a pressure-enthalpy flashing routine. We applied the transient multiphase flow analysis to model the CO2 pipeline midpoint fullbore rupture to the atmosphere to predict temperature, pressure, and fluid thermodynamic properties within the pipeline. Key results such as pipe bore temperature profile change over time on either side of the rupture, the minimum temperature locations, and the time to return to ambient temperature were extracted to understand the risk and impact on the pipeline integrity because of the CO2 pipeline rupture. Then the investigation of the use of eccentric pipe-in-pipe systems for hydraulic changes in the event of a pipeline rupture was carried out. Based on the results, the potential of using the casing pipe to contain the leaked CO2 and prevent CO2 plumes from escaping into the atmosphere was explored.
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