考虑高压还原吸附作用的水力压裂辅助驱油非线性渗流模型——以大庆油田中低渗透油藏为例

IF 8 Q1 ENERGY & FUELS
Fengjiao WANG , He XU , Yikun LIU , Xianghao MENG , Lyuchaofan LIU
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引用次数: 0

摘要

考虑到水力压裂辅助驱油剂在基质中的吸附损失,提出了用压差和渗透率表征水力压裂辅助驱油剂动态饱和吸附能力的方法。结合HFAD药剂的黏度-浓度关系,建立了考虑高压降吸附作用的HFAD非线性渗流模型,并分析了影响因素。研究结果表明,与HFAD技术相关的地层能量补充主要受基质渗透率、裂缝长度和HFAD剂初始浓度的影响。地层能量补充效果与基质渗透率、裂缝长度呈正相关,与HFAD剂初始浓度呈负相关。高压HFAD剂的初始浓度和注入量可以提高HFAD剂在基体中的浓度,提高洗油效率。然而,较长的裂缝不利于维持HFAD剂在基质中的高浓度。裂缝长度和泵排量是影响HFAD后基质中流体流速的直接因素。利用这些因素可以控制位移相锋的位置,从而影响had的扫掠面积。合理选择上述参数,可以有效补充地层能量,扩大HFAD剂的波及体积,提高HFAD的采收率,降低开发成本。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Non-linear seepage model of hydraulic fracturing assisted oil displacement coupled with effects of high-pressure reduced adsorption: A case study of low and medium permeability reservoirs in Daqing Oilfield, NE China
Considering the adsorption loss of the hydraulic fracturing assisted oil displacement (HFAD) agent in the matrix, a method is proposed to characterize the dynamic saturation adsorption capacity of the HFAD agent with pressure differential and permeability. Coupled with the viscosity-concentration relationship of the HFAD agent, a non-linear seepage model of HFAD was established, taking into account the adsorption effect of high pressure drops, and the influencing factors were analyzed. The findings indicate that the replenishment of formation energy associated with HFAD technology is predominantly influenced by matrix permeability, fracture length and the initial concentration of the HFAD agent. The effect of replenishment of formation energy is positively correlated with matrix permeability and fracture length, and negatively correlated with the initial concentration of the HFAD agent. The initial concentration and injection amount of the high-pressure HFAD agent can enhance the concentration of the HFAD agent in the matrix and improve the efficiency of oil washing. However, a longer fracture is not conducive to maintaining the high concentration of the HFAD agent in the matrix. Furthermore, the fracture length and pump displacement are the direct factors affecting the fluid flow velocity in the matrix subsequent to HFAD. These factors can be utilized to control the location of the displacement phase front, and thus affect the swept area of HFAD. A reasonable selection of the aforementioned parameters can effectively supplement the formation energy, expand the swept volume of the HFAD agent, improve the recovery efficiency of HFAD, and reduce the development cost.
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来源期刊
CiteScore
11.50
自引率
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发文量
473
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