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Study on the relationship between the water cutting rate and the remaining oil saturation of the reservoir by using the index percolating saturation formula with variable coefficients

机译:利用可变系数的指数渗透饱和公式研究水切割速率与储层剩余油饱和关系的研究

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The water cutting rate is recorded dynamically during the production process of a well. If the remaining oil saturation of the reservoir can be deduced based on the water cutting rate, it will give guidance to improve the reservoir recovery and can save expensive drilling costs. In the oil–water two-phase seepage experiment on core samples, the oil and water relative permeability reflects the relationship between the water cutting rate and water saturation, that is, percolating saturation formula. The relative permeability test data of 17 rock samples from six seal coring wells in Daqing Changyuan were used to optimize and construct the coefficients of the index percolating saturation formula that vary with the pore structure parameters of reservoirs, to form an index percolating saturation formula with variable coefficients that is more consistent with the regional geological characteristics of the reservoir. Based on this, the formula of water saturation calculated by the water cutting rate is deduced. And the high-precision formula for calculating the irreducible water saturation and residual oil saturation by effective porosity, absolute permeability, and shale content is given. The derivative formula of water saturation on the water cutting rate was established, and the parameters of 17 rock samples were calculated. It was found that the variation velocity of water saturation of each sample with the water cutting rate presented a “U” shape, which was consistent with the actual characteristics that the variation velocity of the water saturation in the early, middle, and late stages of oilfield development first decreased, then stabilized, and finally increased rapidly. The research results were applied to the prediction of remaining oil saturation in the research area, and the water saturation about six producing wells was calculated by using their present water cutting rates, and the remaining oil distribution profile was predicted effectively. The analysis of four layers of two newly drilled infill wells and reasonable oil recovery suggestions were given to achieve good results.
机译:在井的生产过程中动态地记录水切割速率。如果储层的剩余油饱和度可以根据水切割速度推断,它将导致提高储层恢复,并可以节省昂贵的钻井成本。在核心样品上的油水两相渗流实验中,油和水相对渗透率反映了水切割速率和水饱和度的关系,即渗透饱和配方。从大庆昌源的六个密封井的17岩样的相对渗透性测试数据用于优化和构造与储存器的孔结构参数不同的指数渗透饱和度的系数,以形成具有可变的透射饱和公式的指数与水库的区域地质特征更符合的系数。基于此,推导出通过水切割速率计算的水饱和度的公式。给出了通过有效孔隙率,绝对渗透率和页岩含量计算不可缩续的水饱和度和残留油饱和度的高精度公式。建立了水切割速率对水饱和度的衍生公式,并计算了17个岩石样品的参数。发现每个样品的水饱和的变化速度随着水切割速率呈现“U”形状,这与早期,中间和晚期水饱和度的变化速度的实际特征一致油田开发首先减少,然后稳定,最后迅速增加。将研究结果应用于研究区域中剩余的油饱和度的预测,通过使用其目前的水切割速率计算约六种产生孔的水饱和度,并且有效地预测了剩余的油分布曲线。给出了四层两层新钻孔井和合理的石油恢复建议,以取得良好的效果。

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