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模型多孔介质中的泡沫流动:I. 泡沫粗化的影响。

Foam flow in a model porous medium: I. The effect of foam coarsening.

机构信息

TU Delft, The Netherlands.

出版信息

Soft Matter. 2018 May 9;14(18):3490-3496. doi: 10.1039/c7sm01903c.

Abstract

Foam structure evolves with time due to gas diffusion between bubbles (coarsening). In a bulk foam, coarsening behaviour is well defined, but there is less understanding of coarsening in confined geometries such as porous media. Previous predictions suggest that coarsening will cause foam lamellae to move to low energy configurations in the pore throats, resulting in greater capillary resistance when restarting flow. Foam coarsening experiments were conducted in both a model-porous-media micromodel and in a sandstone core. In both cases, foam was generated by coinjecting surfactant solution and nitrogen. Once steady state flow had been achieved, the injection was stopped and the system sealed off. In the micromodel, the foam coarsening was recorded using time-lapse photography. In the core flood, the additional driving pressure required to reinitiate flow after coarsening was measured. In the micromodel the bubbles coarsened rapidly to the pore size. At the completion of coarsening the lamellae were located in minimum energy configurations in the pore throats. The wall effect meant that the coarsening did not conform to the unconstricted growth laws. The coreflood tests also showed coarsening to be a rapid process. The additional driving pressure to restart flow reached a maximum after just 2 minutes.

摘要

泡沫结构随时间演变,因为气泡之间的气体扩散(粗化)。在整体泡沫中,粗化行为定义明确,但在多孔介质等受限几何形状中,对粗化的了解较少。先前的预测表明,粗化将导致泡沫薄片在孔隙喉道中移动到低能量配置,从而在重新开始流动时导致更大的毛细阻力。在模型多孔介质微模型和砂岩芯中进行了泡沫粗化实验。在这两种情况下,都是通过 coinjecting 表面活性剂溶液和氮气来产生泡沫。一旦达到稳定状态流动,就停止注入并将系统密封。在微模型中,使用延时摄影记录泡沫粗化。在岩芯驱替中,测量了粗化后重新开始流动所需的附加驱动压力。在微模型中,气泡迅速粗化到孔径。在粗化完成时,薄片位于孔隙喉道中的最小能量配置中。壁效应意味着粗化不符合无约束生长规律。岩芯驱替测试也表明粗化是一个快速的过程。重新开始流动的附加驱动压力仅在 2 分钟后就达到最大值。

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