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A Study of the Stability Mechanism of the Dispersed Particle Gel Three-Phase Foam Using the Interfacial Dilational Rheology Method

机译:界面膨胀流变法研究分散颗粒凝胶三相泡沫的稳定性机理

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摘要

The dispersed particle gel (DPG) three-phase foam is a novel profile control and flooding system. The stability mechanism of the DPG three-phase foam was studied using an interfacial dilational rheology method. The results show that the elastic modulus of the DPG three-phase foam is up to 14 mN/m, which is much higher than the traditional foam. The increase in interface elasticity produces significantly positive effects on foam stability. Emphasis is given to the influences of frequency, temperature, pressure, and concentration on the viscoelasticity and interfacial adsorption of DPG particles, which change the modules of the foam interface and have a significant effect on foam stability. In addition, the microstructure of the DPG three-phase foam was observed. A viscoelastic shell is formed by the aggregation of the DPG particles on the interface. The irreversible adsorption gives the interface high elasticity and mechanical strength. The electrostatic repulsion between particles increases the spacing between bubbles. The combined effects of these factors give the interface higher mechanical strength, slow down the film drainage, effectively prevent gas permeation, and significantly improve the foam stability.
机译:分散粒子凝胶(DPG)三相泡沫是一种新颖的轮廓控制和驱油系统。使用界面膨胀流变学方法研究了DPG三相泡沫的稳定性机理。结果表明,DPG三相泡沫的弹性模量高达14 mN / m,远高于传统泡沫。界面弹性的增加对泡沫稳定性产生明显的积极影响。重点讨论了频率,温度,压力和浓度对DPG颗粒的粘弹性和界面吸附的影响,这些影响会改变泡沫界面的模数,并对泡沫稳定性产生重大影响。另外,观察到DPG三相泡沫的微观结构。通过界面上DPG颗粒的聚集形成粘弹性壳。不可逆的吸附使界面具有高弹性和机械强度。粒子之间的静电排斥作用增加了气泡之间的间距。这些因素的综合作用使界面具有更高的机械强度,减慢了膜的排泄,有效地防止了气体渗透,并显着提高了泡沫的稳定性。

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