Research on Micropore Development Characteristics and Influencing Factors during CO2 Huff-n-Puff

Processes Pub Date : 2024-08-08 DOI:10.3390/pr12081665
Jilun Kang, Shenglai Yang, Wei Zhang, Hong Zhang, Changsong He, Xuechun Wang, Shuangbao Wei, Kun Yang, Lilong Wang
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Abstract

CO2 huff-n-puff is an important method for the development of shale oil reservoirs. In this study, HPMI and NMR technology was used to characterize the pore distribution of the cores. The CO2 huff-n-puff experiment experiments were conducted to study the effects of injection pressure, soaking time, and heterogeneity on the CO2 huff-n-puff. The results showed that the Jimsar core pores are predominantly nanopores. Mesopores with a pore radius between 2 nm and 50 nm accounted for more than 70%. CO2 huff-n-puff has been shown to effectively enhance shale oil recovery. When the injection pressure was greater than the miscible pressure, higher injection pressures were able to improve the recovery of macropores, particularly in cores with higher permeability. Appropriately extending the soaking time enhanced the diffusion of CO2 in the mesopores, and the recovery increased to above 10%. Determining the optimal soaking time is crucial to achieve maximum CO2 huff-n-puff recovery. Artificial fractures can enhance the recovery of mesopores around them, resulting in core recovery of up to 60%. However, artificial fractures exacerbate reservoir heterogeneity and reduce the CO2 huff-n-puff recovery of matrix. Increasing the cycles of CO2 huff-n-puff can effectively reduce the impact of heterogeneity on the recovery of matrix. In conclusion, expanding the area of the fracturing transformation zone and selecting the appropriate injection pressure and soaking time for the multiple cycles of CO2 huff-n-puff can effectively improve the recovery of shale oil reservoirs.
二氧化碳膨化过程中的微孔发育特征及影响因素研究
二氧化碳膨化法是开发页岩油藏的一种重要方法。本研究采用 HPMI 和 NMR 技术表征岩心的孔隙分布。进行了二氧化碳膨化实验,研究注入压力、浸泡时间和异质性对二氧化碳膨化的影响。结果表明,Jimsar 芯孔主要是纳米孔。孔半径在 2 纳米到 50 纳米之间的中孔占 70% 以上。研究表明,二氧化碳吹入能有效提高页岩油的采收率。当注入压力大于混溶压力时,较高的注入压力能够提高大孔隙的采收率,尤其是在渗透率较高的岩心中。适当延长浸泡时间可促进二氧化碳在中孔的扩散,使采收率提高到 10%以上。确定最佳浸泡时间对于实现最大的二氧化碳吸附回收率至关重要。人工裂缝可提高其周围中孔的回收率,使岩心回收率高达 60%。然而,人工裂缝会加剧储层的异质性,降低基质的二氧化碳吸附回收率。增加 CO2 huff-n-puff 循环次数可以有效降低异质性对基质回收率的影响。总之,扩大压裂转化带面积,选择合适的注入压力和浸泡时间进行多次二氧化碳吹洗,可以有效提高页岩油藏的采收率。
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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