Foam drainage modeling of vertical foam column and validation with experimental results

Q1 Earth and Planetary Sciences Petroleum Research Pub Date : 2024-05-21 DOI:10.1016/j.ptlrs.2024.05.001
S.M. Hosseini-Nasab , M. Rezaee , P.L.J. Zitha
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Abstract

The understanding of the mechanisms behind foam generation and the structure of foam itself form the basis of foam-related experiments for its application in Enhanced Oil Recovery and overcoming gas injection limitations. Novel insights in this paper towards the theory of foam generation can help explain experimental results and lead to improved formulas of the applied substances and concentrations. This study aims to investigate the mechanisms behind foam generation and the structure of foam by specific laboratory experiments and theoretical analyses. The liquid drainage through interconnected Plateau borders was found to be the most critical foam decay mechanism for this particular research. The justification of the foam drainage equation was demonstrated by comparing the numerical solution with the outcome of a few bulk experiments. The discrepancies were described according to the limitations of both the theory and the experimental settings. Foam modelling gives more profound knowledge in more detail of the different stages in foam drainage than experimental data can deliver, which is because of the lack of continuous measurement of foam conductivity for the foam bulk test. Therefore, a comprehension of foam modelling investigation and comparison is required to gain a deeper understanding of foam behaviour.
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垂直泡沫柱的泡沫排水模型及实验结果验证
了解泡沫产生的机理和泡沫本身的结构,是泡沫相关实验应用于提高石油采收率和克服注气限制的基础。本文对泡沫产生理论的新见解有助于解释实验结果,并改进应用物质和浓度的计算公式。本研究旨在通过具体的实验室实验和理论分析,研究泡沫产生的机理和泡沫结构。研究发现,液体通过相互连接的高原边界排出是本研究中最关键的泡沫衰减机制。通过比较数值解法和一些批量实验结果,证明了泡沫排水方程的合理性。根据理论和实验设置的局限性对差异进行了描述。与实验数据相比,泡沫模型对泡沫排水的不同阶段提供了更深入、更详细的了解,这是因为缺乏对泡沫散装试验的泡沫传导性的连续测量。因此,需要对泡沫建模调查和比较进行理解,以便更深入地了解泡沫行为。
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来源期刊
Petroleum Research
Petroleum Research Earth and Planetary Sciences-Geology
CiteScore
7.10
自引率
0.00%
发文量
90
审稿时长
35 weeks
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