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稠油油藏开发中多介质水平井溶解器联合氮气及泡沫辅助蒸汽驱协同效应的实验研究与数值模拟

Experimental Study and Numerical Simulations of Synergistic Effects for Multimedium Horizontal-Well Dissolver United N and Foam-Assisted Steam Flooding in Developing Heavy Oil Reservoirs.

作者信息

Wang Lu, Zhang Jipeng, Yang Jie, Liu Peng, Xi Changfeng, Liu Pengcheng

机构信息

School of Energy Resources, China University of Geosciences, Beijing 100083, China.

Luliang Oil Production Company of PetroChina Xinjiang Oilfield Company, Karamay 834000, China.

出版信息

ACS Omega. 2025 Jun 26;10(26):28412-28421. doi: 10.1021/acsomega.5c03943. eCollection 2025 Jul 8.

DOI:10.1021/acsomega.5c03943
PMID:40657083
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC12242613/
Abstract

The application of single-medium fluids is relatively ineffective due to their limited functionality in heavy oil reservoirs. To compensate for the limitations of single-medium fluid injection, multimedium collaborative technologies have been proposed and have become a primary focus of research. In this paper, a series of experiments were designed and conducted on multimedium-assisted steam flooding in horizontal wells based on the heavy oil samples from the W block in Xinjiang Oil fields, China. Production, pressure, and produced fluid characteristics were studied. Results indicated that the united N and foam-assisted steam flooding demonstrated the highest oil displacement efficiency and the lowest water cut in the horizontal well, at 44.6 and 88.2%, respectively. The horizontal-well dissolver united N and foam-assisted steam flooding (HDNF-SF) exhibited the longest pressure stabilization period with a higher oil content in the produced fluid. Extended numerical simulations corroborated the effectiveness of HDNF-SF in heavy oil reservoirs to explore multimedium collaborative mechanisms. The HDNF-SF achieved the highest oil recovery and oil-to-steam ratio, at 43.5% and 0.35, respectively. In HDNF-SF, N facilitates energy replenishment and thermal insulation; the dissolver reduces crude oil viscosity, and the foam aids in profile control by providing plugging functionality. Through the synergistic effects of these substances, HDNF-SF can prevent steam channeling, improve the displacement efficiency, enhance sweep efficiency, and ultimately increase oil recovery. These findings hold significant theoretical and practical implications for improving sweep efficiency in heavy oil reservoirs.

摘要

由于单介质流体在稠油藏中的功能有限,其应用效果相对较差。为弥补单介质流体注入的局限性,人们提出了多介质协同技术,该技术已成为研究的重点。本文基于中国新疆油田W区块的稠油样品,设计并开展了一系列水平井多介质辅助蒸汽驱实验,研究了产量、压力和产出流体特性。结果表明,联合氮气和泡沫辅助蒸汽驱在水平井中的驱油效率最高,含水率最低,分别为44.6%和88.2%。水平井溶解器联合氮气和泡沫辅助蒸汽驱(HDNF-SF)的压力稳定期最长,产出流体含油率更高。扩展数值模拟证实了HDNF-SF在稠油藏中的有效性,以探索多介质协同机制。HDNF-SF的采收率和油汽比最高,分别为43.5%和0.35。在HDNF-SF中,氮气有助于能量补充和隔热;溶解器降低原油粘度,泡沫通过提供封堵功能有助于调剖。通过这些物质的协同作用,HDNF-SF可以防止蒸汽窜流,提高驱替效率,增强波及效率,最终提高采收率。这些发现对提高稠油藏的波及效率具有重要的理论和实际意义。

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