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Stress sensitivity of tight reservoirs during pressure loading and unloading process

机译:在压力加载和卸载过程中致密油藏的应力敏感性

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Laboratory experiments were conducted on laboratory-made tight cores to investigate the stress-dependent permeability hysteresis of tight reservoirs during pressure loading and unloading process. Based on experiment results, and Hertz contact deformation principle, considering arrangement and deformation of rock particles, a quantitative stress dependent permeability hysteresis theoretical model for tight reservoirs was established to provide quantitative analysis for permeability loss. The model was validated by comparing model calculated results and experimental results. The research results show that during the early pressure-loading period, structural deformation and primary deformation worked together, rock permeability reduced dramatically with increasing effective stress. When the effective stress reached a certain value, the structural deformation became stable while the primary deformation continued; the permeability variation tended to be smooth and steady. In the pressure unloading process, the primary deformation recovered with the decreasing effective stress, while the structural deformation could not. The permeability thus could not fully recover, and the stress-dependent hysteresis was obvious.
机译:在实验室制造的致密岩心上进行了实验室实验,以研究在压力加载和卸载过程中致密油藏的应力相关渗透率滞后。根据实验结果,结合赫兹接触变形原理,考虑岩石颗粒的排列和变形,建立了致密储层应力相关的渗透率滞后定量理论模型,为渗透率损失提供了定量分析方法。通过比较模型计算结果和实验结果来验证模型。研究结果表明,在早期压力加载阶段,结构变形和一次变形共同作用,岩石渗透率随着有效应力的增加而急剧下降。当有效应力达到一定值时,结构变形趋于稳定,而一次变形仍在继续。渗透率变化趋于平稳。在卸压过程中,主变形随着有效应力的减小而恢复,而结构变形则没有。因此渗透率不能完全恢复,并且应力相关的磁滞是明显的。

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