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首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Analytical Approximate Expression for Cocurrent Imbibition during Immiscible Two-Phase Flow through Porous Media
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Analytical Approximate Expression for Cocurrent Imbibition during Immiscible Two-Phase Flow through Porous Media

机译:通过多孔介质的不混溶两相流流动中的CoCurrent Inbibitition的分析近似表达

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Cocurrent and countercurrent imbibitions are the crucial mechanism in many multiphase flow processes. In cocurrent imbibition wetting phase displaces nonwetting phase such that the nonwetting phase moves in the same direction to the wetting phase, whereas in countercurrent imbibitions wetting and non-wetting phase flow in opposite directions. However for cocurrent imbibitions, mathematical models need total flux condition as both phases flow in the same direction. Thus cocurrent imbibitions have been considered neglecting pressure gradient of nonwetting phase and only pressure gradient of displacing phase is considered which gives additional velocity to the displacing phase. An approximate analytical solution is derived by the method of small parameter; an approximate expression for the wetting phase saturation has been obtained. From analytical expression graphical presentation of saturation of wetting phase shows that cocurrent imbibition is faster than countercurrent imbibition. Also, the small parameter is chosen from initial wetting phase saturation and wetting phase saturation at imbibition phase, thus giving comparative behavior of imbibition at initial and later stage. It is shown that cocurrent imbibition proceeds faster with more amount of wetting phase present in porous matrix.
机译:并流和逆流吸液在许多多相流过程中的关键机制。在并流吸入润湿相位移不润湿阶段,使得在逆流吸液在相同方向上,以润湿阶段不润湿相位移动,而润湿性和非润湿以相反的方向相流动。然而,对于吸液并流,数学模型需要总通量条件作为两相以相同的方向流动。因此吸液并流已经考虑了非润湿阶段和位移相被认为赋予附加的速度到移位相位的仅压力梯度忽略压力梯度。一个近似解析溶液通过小参数的方法得到的;已经获得的润湿相饱和度的近似式。从润湿相显示,并流吸胀比逆流吸入更快的饱和度的解析表达式图形表示。此外,小参数是从初始润湿相饱和度,并在吸入相润湿相饱和度选择,从而在初始和后续阶段给予吸入的比较行为。结果表明,同向渗吸进与在多孔基体的润湿本相的量越多快。

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