非常规天然裂缝性储层水力压裂创新高效数值模拟模型及参数化研究

Chong Hyun Ahn , Robert Dilmore , John Yilin Wang
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引用次数: 23

摘要

非常规油藏增产最有效的方法是采用合理设计和成功实施的水力压裂措施。现有天然裂缝与工程扩展水力裂缝之间的相互作用是影响复杂裂缝网络的关键因素。然而,现有的许多数值模拟器采用简化模型,忽略或未充分考虑预先存在裂缝对水力裂缝扩展的重要影响。开发能够准确表征天然裂缝地层中水力裂缝扩展的数值模型,对于更好地了解其行为并优化其性能至关重要。本文开发并实现了一种创新高效的建模方法,实现了水力裂缝网络扩展、水力裂缝与天然裂缝相互作用、压裂液漏出和储层流体流动的综合模拟。这提高了稳定性和收敛性,并提高了准确性和计算速度。与使用单一孔隙率模型相比,使用个人计算机进行一级处理的计算时间从12.5分钟减少到2.2分钟。然后进行参数化研究,量化水平差应力、天然裂缝间距(已存在裂缝的密度)、基质渗透率和压裂液粘度对水力裂缝网络几何形状的影响。利用参数化研究的知识,对裂缝-储层接触面积进行了研究,并提出了增大裂缝-储层接触面积的方法。这一新知识有助于我们理解和改进天然裂缝非常规油藏的增产措施。
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Development of innovative and efficient hydraulic fracturing numerical simulation model and parametric studies in unconventional naturally fractured reservoirs

The most effective method for stimulating unconventional reservoirs is using properly designed and successfully implemented hydraulic fracture treatments. The interaction between pre-existing natural fractures and the engineered propagating hydraulic fracture is a critical factor affecting the complex fracture network. However, many existing numerical simulators use simplified model to either ignore or not fully consider the significant impact of pre-existing fractures on hydraulic fracture propagation. Pursuing development of numerical models that can accurately characterize propagation of hydraulic fractures in naturally fractured formations is important to better understand their behavior and optimize their performance.

In this paper, an innovative and efficient modeling approach was developed and implemented which enabled integrated simulation of hydraulic fracture network propagation, interactions between hydraulic fractures and pre-existing natural fractures, fracture fluid leakoff and fluid flow in reservoir. This improves stability and convergence, and increases accuracy, and computational speed. Computing time of one stage treatment with a personal computer is now reduced to 2.2 min from 12.5 min than using single porosity model.

Parametric studies were then conducted to quantify the effect of horizontal differential stress, natural fracture spacing (the density of pre-existing fractures), matrix permeability and fracture fluid viscosity on the geometry of the hydraulic fracture network. Using the knowledge learned from the parametric studies, the fracture–reservoir contact area is investigated and the method to increase this factor is suggested. This new knowledge helps us understand and improve the stimulation of naturally fractured unconventional reservoirs.

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