案例研究:综合流量保证模型对碳捕集与封存CCS项目的重要性

Mohd Uzair Zakaria, Wan Mahsuri Wan Hashim, Nik Fauziah Nik Omar, Rohaizad M Norpiah, M. A. Abu Bakar, Wan Amni Wan Mohamad
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引用次数: 2

摘要

位于马来西亚近海的一个天然气田将采用碳捕集技术进行开发,该技术将从富含二氧化碳的渗透流中回收剩余的碳氢化合物,随后将二氧化碳浓缩到更高的纯度。分离出来的高浓度二氧化碳将被压缩,运输到储存地点并注入,将二氧化碳安全储存在地下地质地层中,这是一个枯竭的气田。CCS开发成功的关键标准之一是能够将二氧化碳注入储层,并从注入寿命的早期到结束进行永久储存。通常,地下工程师和地面工程师之间的界面限制是地面ITHP,因此最初的预测是基于独立的地下井建模。利用地面井模型进行验证,包括考虑三个主要状态方程(EOS)的灵敏度,即geg -2008、PR 1978和Advanced PR 1978,以便将压降范围转换为可量化的ITHP数。人们承认,二氧化碳流中的杂质对相行为和物理性质的预测有很强的影响。所研究的二氧化碳成分大于95mol%,含有杂质混合物。此外,环境温度也会影响压降的预测。将类似的方法扩展到管道研究中。随后,结果提供了一个清晰的画面,为设施设计压力提供了基础。井和管道之间的流动保证的综合方法非常重要,因为这影响到CO2源压力和地面设施的设计。本文解释了该研究是如何在概念工程阶段进行的,可以作为其他CCS项目的参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Case Study: The Importance of Integrated Flow Assurance Modelling for Carbon Capture and Storage CCS Project
A gas field located offshore Malaysia will be developed with carbon capture technology which will recover the remaining amount of hydrocarbon from CO2 rich permeate stream and subsequently concentrate the amount of CO2 to higher purity. The separated high concentration CO2 will be compressed, transported to storage site and injected to store the CO2 safely in a sub-surface geological formation which is a depleted gas field. One of the key success criteria for the CCS development is to be able to inject the CO2 to the reservoir for permanent storage from early to end of injection life. Typically, the battery limit of interface between the subsurface and surface engineer is the surface ITHP whereby the initial prediction was based on stand-alone sub-surface well modelling. A validation exercise was conducted using surface well modelling, including a sensitivity of three main Equation of State (EOS) being considered i.e., GERG-2008, PR 1978 and Advanced PR 1978, to allow the range of pressure drop to be translated to the ITHP number to be quantified. It is acknowledged that impurities within the CO2 stream have strong effect on phase behaviour and physical property predictions. The CO2 composition under study is >95mol% with a mixture of impurities. In addition, ambient temperature has also been found to influence pressure drop prediction. A similar approach is extended for pipeline study. Subsequently, the result provides a clear picture to develop a basis for facility design pressure. The integrated approach of flow assurance between wells and pipeline is important as this was found to affect the CO2 source pressure and design of the surface facility. This paper explains how the study was conducted during conceptual engineering stage and can serve as a reference to other CCS projects.
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