DEM-SJM combined 2D-hydraulic fracturing simulation for consideration of the influence of differential stress

H. Ohtani, H. Mikada, J. Takekawa
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Abstract

For improving the production of conventional oil and shale gas, the practice of hydraulic fracturing has been increasing in recent years. In addition, hydraulic fracturing is used for the development of geothermal energy known as hot dry rock (HDR) geothermal power, and enhanced geothermal system (EGS), and for measuring the rock failure strength and the orientation of principal stress direction, etc. On the other hand, hydraulic fracturing has some environmental impact, such as pollution caused by chemical substances in injected proppant or fluid, induced seismicity, etc. Since it is necessary to minimize the environmental impact, techniques to predict propagating directions and distances of fractures to be generated hydraulically, which are known still very difficult, have been waited for. In this paper, we demonstrate the influence of differential stress and the anisotropy using numerical experiments based on distinct element method (DEM) combined with smooth joint model (SJM). Hydraulic fractures in general propagate in the direction of maximum principal stress on large differential stress conditions. As the differential stress decreased, the propagating directions hydraulic fractures curves to the direction of bedding plane, i.e., anisotropic direction of weak rock strength, and sometimes fractures branch to plural directions. These results suggest that the behavior and propagating direction of hydraulic fractures are strongly influenced by both the differential stress and the rock strength anisotropy in the underground shallow layer.
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DEM-SJM结合二维水力压裂模拟,考虑差应力影响
为了提高常规石油和页岩气的产量,近年来水力压裂的实践越来越多。此外,水力压裂还用于地热能源的开发,即热干岩地热发电(HDR)和增强型地热系统(EGS),以及岩石破坏强度和主应力方向的测定等。另一方面,水力压裂有一定的环境影响,如注入支撑剂或流体中的化学物质造成污染,诱发地震活动等。由于有必要将对环境的影响降至最低,因此人们一直在等待水力压裂技术来预测裂缝的传播方向和距离,而这一技术目前仍然非常困难。本文采用离散元法(DEM)和光滑节理模型(SJM)相结合的数值实验方法,论证了不同应力和各向异性的影响。在大差应力条件下,水力裂缝一般沿最大主应力方向扩展。随着差应力的减小,水力裂缝的扩展方向向顺层面方向,即弱岩石强度的各向异性方向弯曲,有时裂缝会向多个方向分支。这些结果表明,地下浅层水力裂缝的行为和扩展方向受到差应力和岩石强度各向异性的强烈影响。
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