基于微流体技术的气泡置换提高采油效率研究

Fan Xu, Yujie Jin, Yiqiang Fan
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摘要

致密砂岩蕴藏着大量油气资源,但由于其孔隙度、渗透率超低,亲水性强,石油采收率低。微流控技术作为一种新兴的研究技术,具有流体流动可视化、减少实验试剂消耗、利用微流控芯片精确模拟砂岩孔隙结构等优势。本研究提出了一种提高砂岩三次采油效率的有效研究方法。该研究通过分析砂岩岩心的孔隙切片图像并采用图像处理技术,提取了砂岩的特征尺寸并设计了微流控芯片。利用高速摄像机、恒压泵和显微镜构建了一个置换系统,以监测石油置换过程。提出了一种基于超滤膜的气泡生成装置,将生成的气泡引入具有砂岩结构的微流控芯片,用于石油置换研究。对置换过程进行了实时监测。使用水和泡沫作为置换剂,研究了模拟砂岩岩芯结构的微流控芯片中的置换过程。此外,还对泡沫配方、表面活性剂浓度和泡沫比例进行了分析和比较,定量评估了各种实验条件下的石油置换效率。该研究有助于在微尺度上理解泡沫淹没过程,在砂岩油藏提高石油采收率方面具有重要的应用潜力。
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A study on enhancing oil recovery efficiency through bubble displacement based on microfluidic technology
Tight sandstone contains a large number of oil and gas resources, but because of its ultra‐low porosity, permeability, and strong hydrophilicity, the oil recovery is low. Microfluidic technology, as an emerging research technique, offers advantages in visualizing fluid flow, reducing experimental reagent consumption, and accurately simulating the pore structure of sandstone using microfluidic chips. This study presents an effective research methodology for improving tertiary oil recovery efficiency in sandstone. By analyzing pore slice images of sandstone cores and employing image processing techniques, the study extracted characteristic dimensions of the sandstone and designed a microfluidic chip. A displacement system was constructed using high‐speed cameras, constant‐pressure pumps, and microscopes to monitor the oil displacement process. A bubble generation device based on ultrafiltration membranes was proposed to introduce generated bubbles into the microfluidic chip with a sandstone structure for oil displacement studies. Real‐time monitoring of the displacement process was conducted. Water and foam were used as displacing agents to investigate the displacement process in the microfluidic chip mimicking the sandstone core structure. Additionally, analysis and comparison were performed on foam formulation, surfactant concentration, and foam proportion, quantitatively evaluating the oil displacement efficiency under various experimental conditions. The proposed research is helpful for the understanding of the foam flooding process on a micro‐scale and of significant application potential for the enhanced oil recovery of sandstone reservoirs.
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