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首页> 外文期刊>Journal of Energy Resources Technology >Laboratory Investigation on Oil Increment and Water Cut Control of CO_2, N_2, and Gas Mixture Huff-n-Puff in Edge-Water Fault-Block Reservoirs
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Laboratory Investigation on Oil Increment and Water Cut Control of CO_2, N_2, and Gas Mixture Huff-n-Puff in Edge-Water Fault-Block Reservoirs

机译:铁边缘砌块储层中CO_2,N_2和气体混合物Huff-N-Puff的实验室调查

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摘要

Excessive water production is a common matter that seriously affects production efficiency during the development of edge-water fault-block reservoirs. Gas huff-n-puff is an effective water shutoff technology that has the characteristics of small injection volume, no interwell connectivity impact, and minor gas channeling. However, gas injection can destroy the stability of the asphaltene to induce asphaltene deposition. In this article, the laboratory experiment had been conducted to investigate the effect of injection ratio and injection sequence on oil increment and water cut control for gas mixture huff-n-puff. Experimental results indicated that the effect of N_2 huff-n-puff on water cut control was the most obvious, while CO_2 huff-n-puff had the best performance on oil increment. Oil increment and water cut control of gas mixture huff-n-puff with CO_2 injected in advance were obviously better than that of N_2 injection preferentially. Subsequently, PVTsim Nova was utilized to investigate whether reducing CO_2 injection volume can inhibit asphaltene deposition and predict the possibility of asphaltene deposition at reservoir conditions. Simulation results demonstrated that the asphaltenes were easily deposited with CO_2 injection while N_2 injection will be unlikely to induce asphaltene deposition. Asphaltene deposition pressure envelope can qualitatively analyze the possibility of asphaltene deposition and provide a reference for screening the appropriate gas injection ratio based on giving full play to the synergistic effect of CO_2 and N_2. In this study, 7∶3 is selected as the optimum injection ratio considering the synergistic effect and the possibility of asphaltene deposition.
机译:水生产过高是一种常见的事情,严重影响了边缘水断层储层在开发过程中的生产效率。天然气Huff-N-Puff是一种有效的水截止技术,具有小注射体积的特点,无间隙连接撞击和轻微的气体沟渠。然而,气体喷射会破坏沥青质的稳定性以诱导沥青质沉积。在本文中,已经进行了实验室实验,以探讨注射率和注射序列对气体混合物Huff-N-P-Puff对油增量和水切割控制的影响。实验结果表明,N_2 Huff-N-Puff对水切口控制的影响是最明显的,而CO_2 Huff-N-P-Puff对油增量具有最佳性能。燃气含量和预先注入的CO_2的气体混合物的油增量和水切割控制明显优于N_2注射的CO_2。随后,利用PVTSIM NOVA来研究还原CO_2注射体积是否可以抑制沥青质沉积并预测储存条件下沥青质沉积的可能性。仿真结果表明,沥青质易于用CO_2注射沉积,而N_2注射将不太可能诱导沥青质沉积。沥青质沉积压力包络可以定性地分析沥青质沉积的可能性,并提供基于充分发挥Co_2和N_2的协同作用的适当气体注入比的参考。在本研究中,考虑到协同效应和沥青质沉积的可能性,选择7:3作为最佳注射率。

著录项

  • 来源
    《Journal of Energy Resources Technology》 |2021年第8期|083001.1-083001.15|共15页
  • 作者单位

    China University of Petroleum (Beijing) Beijing 102249 China State Key Laboratory of Petroleum Resources and Prospecting Beijing 102249 China;

    China University of Petroleum (Beijing) Beijing 102249 China State Key Laboratory of Petroleum Resources and Prospecting Beijing 102249 China;

    China University of Petroleum (Beijing) Beijing 102249 China State Key Laboratory of Petroleum Resources and Prospecting Beijing 102249 China;

    China University of Petroleum (Beijing) Beijing 102249 China State Key Laboratory of Petroleum Resources and Prospecting Beijing 102249 China;

    China University of Petroleum (Beijing) Beijing 102249 China State Key Laboratory of Petroleum Resources and Prospecting Beijing 102249 China;

    China University of Petroleum (Beijing) Beijing 102249 China State Key Laboratory of Petroleum Resources and Prospecting Beijing 102249 China;

    China University of Petroleum (Beijing) Beijing 102249 China State Key Laboratory of Petroleum Resources and Prospecting Beijing 102249 China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    CO_2/N_2/gas mixture huff-n-puff; oil increment and water cut control; edge-water fault-block reservoir; injection ratio; injection sequence; asphaltene deposition pressure;

    机译:CO_2 / N_2 /气体混合物HUFF-N-PUFF;油增量和污水控制;边缘水故障块水库;注射率;注射序列;沥青质沉积压力;

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