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Pressure Depletion’s Impact on Induced Strain During Hydraulic Fracturing in Child Wells: The Key to Mitigate Fracture Hits and Pressure Interference

机译:压力耗尽在儿童水力压裂过程中对诱导应变的影响:减轻骨折击中和压力干扰的关键

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Productivity of hydraulically stimulated unconventional wells depends greatly on the successful interconnection of the enhanced permeability and the natural fracture system. Such success is achived by proper understanding of the distribution of mechanical properties of the rock, presence of natural fractures, and regional stresses characterisitcs. With this understanding of the reservoirthe response of the rock to the stimulation can be quantified. Currrently, there are multiples approaches adopted by the industry to support such a process, making fracture designs more robust and reliable. However, theseworkflows often neglect the underlying physics of pressure wave propagation throughout the reservoir, crossing geological features such as faults, natural fractures, ash and karst layers among others. Pressure depletion caused by production of the first well in a section(parent well)generates continuous changes in stress magnitude and orientation. Simplistic geomechanical models ignore such effects and usually are built based on original conditions, resulting in overestimation of induced strain which will be reflected in oversized hydraulic fracture jobs that negatively affect not only the subsequent wells(child wells)but also the first well in section itself. Negative effects such as frac hits are usually irreversible, and proper estimation of the potential damage needs to be quantified and understood in order to put in place a mitigation plan. This work presents a workflow where changes in the pressure field are incorporated and taken into consideration during geomechanical modeling of induced strain using full continuum mechanics. As a result, hydraulic fracture designs are adjusted to the reservoir conditions at the time a new child well will be drilled and completed, thus reducing thepotential for negative effects such as frac hits. A fracture design for a planned child well to be drilled after two years of production of its parentis presented under two scenarios: first, ascenario ignoring the effect of pressure depletion, second, a scenario using the full continuum geomechanical solution to account for the effects of parent depletion. Results of the fracture design are migrated to dynamic simulation to estimate the effect on the resulting EUR.
机译:液压刺激的非传统井的生产力大大取决于增强渗透性和自然骨折系统的成功互连。通过了解岩石的机械性能分布,自然骨折的存在和区域应激特征性,可以实现这种成功。通过这种理解,可以量化岩石对刺激的储存响应。娱乐,行业采用倍增方法来支持这种过程,使骨折设计更加坚固可靠。然而,TheMworkflows通常忽略整个储层中的压力波传播的基础物理学,交叉地质特征,如断层,自然骨折,灰和岩溶层等。由第一孔的生产引起的压力耗尽在一段(家长孔)中产生的应力幅度和方向的连续变化。简单的地质力学模型忽略了这种效果,通常基于原始条件构建,导致诱导菌株的高估,这将被反映在超大的液压骨折工作中,这不仅会影响随后的井(儿童井),而且还在部分井中影响。诸如FRAC命中的负面影响通常是不可逆转的,并且需要量化潜在损坏的正确估计,以便放置缓解计划。该工作提出了一种工作流程,其中使用全连续力学的诱导应变的地质力学建模期间结合了压力场的变化,并考虑了压力。结果,当钻井并完成新的儿童时,液压骨折设计调整到储层条件,从而减少了诸如FRAC命中的负面影响的主体。经过两年的父母生产后,将钻孔的骨折设计良好的计划在两种情况下展示:首先,Ascenario忽略了压力消耗的影响,第二,使用完整的连续性地质机械解决方案来占据效果父母消耗。骨折设计的结果迁移到动态模拟,以估计对所得欧元的影响。

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