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首页> 外文期刊>Journal of Petroleum Science & Engineering >Modeling of pressure dissolution, proppant embedment, and the impact on long-term conductivity of propped fractures
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Modeling of pressure dissolution, proppant embedment, and the impact on long-term conductivity of propped fractures

机译:压力溶解,支撑剂嵌入的建模和对突破骨折的长期导电性的影响

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摘要

The production performance of fracturing wells depends greatly upon hydraulic fracture conductivity. A novel long-term propped fracture conductivity model is presented that considers the effects of diagenesis incorporated pressure dissolution processes at grain-to-grain contact interfaces, dissolved mass transfer processes that are controlled by diffusion on the edges of particles and precipitation processes at free surfaces, as well as upon elastic compressed deformation, arrangement, and the embedment of grains. Studies using the model have shown that propped fracture conductivity will decrease gradually with the influence of proppant crushing, formation fines migration, fracturing fluid damage, scale precipitation, and proppant dissolution and rearrangement under reservoir conditions. The simulation results were consistent with experimentally obtained data and presented a reasonable explanation for observed phenomena in the field. Therefore, it is considered that this novel model can predict conveniently and accurately the varying relationships of long-term propped fracture conductivity under complicated formation conditions.
机译:压裂井的生产性能大大取决于液压断裂电导率。提出了一种新的长期支撑骨折导电性模型,其考虑了成岩作用掺入的压力溶解过程在谷物对晶粒接触界面的效果,溶解的传质方法通过在自由表面的颗粒边缘和沉淀过程的边缘上控制来控制以及弹性压缩变形,布置和谷物的嵌入。使用该模型的研究表明,由于支撑剂破碎,形成细粒迁移,压裂液损伤,尺度沉淀以及储层条件下的支撑剂溶解和重新排列,逐渐降低突破性的断裂电导率。仿真结果与实验获得的数据一致,并呈现了在该领域中观察到的现象的合理解释。因此,认为这种新型模型可以在复杂的形成条件下方便,准确地预测长期支撑断裂导电性的变化关系。

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