基于水力裂缝扩展和生产模拟技术的水平井多级长度优化集成工作流程

Xiang Wang, Changyu Yao, Xinchun Zhu, Tao Yang, Chang Chang, Yueli Li, Jiaping Lu, Longjiao Li, Hanbing Xu, Xingning Huang
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摘要

低渗透气藏一般具有产量低、产能下降快、极限采收率低的特点。水平井通常采用分段压裂。水力压裂技术通常用于提高裂缝导流能力和油井产能。如何准确表征和模拟水力裂缝网络在三维空间上的分布特征显得尤为重要。水力裂缝之间的应力干涉作为分段压裂过程中的客观力学行为,影响着裂缝网络的几何形态和压裂后储层的产能。天然裂缝性储层的水力裂缝模拟形状复杂,主要是由于天然裂缝影响水力裂缝的扩展路径。用于描述均质储层水力压裂的理论模型不能准确反映天然裂缝性地层水力裂缝空间形态的复杂性。作业者迫切需要一种能够反映多裂缝间应力干扰行为和水力裂缝扩展方向的力学模型,用于模拟水平井分段压裂中多裂缝的空间形态及其在天然裂缝性地层中的扩展行为。针对储层天然裂缝对水力裂缝扩展路径的影响,建立了区分天然裂缝与水力裂缝干涉行为的力学模型。基于岩石力学和断裂力学的相关理论,分析了水力裂缝尖端的应力场和作用在天然裂缝面上的应力场。在三维地质力学模型与三维离散裂缝网络(DFN)模型耦合的基础上,建立了三维空间水力裂缝穿透天然裂缝的判别模型,对水平井进行水力裂缝扩展模拟。研究成果可用于优化水力压裂处理设计,为低渗透油藏资源的有效开采和盈利开发提供技术支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Integrated Workflow With Hydraulic Fracture Propagation and Production Simulation Technology for Multi-Stage Length Optimization in Horizontal Wells
Low-permeability gas reservoirs generally have the lowproduction, production rapid productivity decline, and low-ultimate recovery. Staged fracturing is usually conducted for horizontal wells. Hydraulic fracturing technology isgenerally used to improve fracture conductivity and well productivity. How to accurately characterize and simulate the distribution characteristics of hydraulic fracture network in 3D space is particularly important. The stress interference between hydraulic fractures as the objective mechanical behavior in the process of staged fracturing affects the geometry fracture network and the productivity of the reservoir post-fracturing. The hydraulic fractures simulation in natural fractured reservoirs is complex shapes, mainly because natural fractures affect the propagation path of hydraulic fractures. The theoretical model used to describe the hydraulic fracturing in homogeneous reservoirs cannot accurately show the complexity of the spatial morphology of hydraulic fractures in naturally fractured formations. The operatorurgently needs a mechanical model that can show the stress interference behavior between multiple fractures and the direction of hydraulic fracture propagation, and be used to simulate the spatial form of multiple hydraulic fractures in staged fracturing of horizontal wells and their propagation behavior in naturally fractured formations. Aiming at the impact of natural fractures in the reservoir on the propagation path of hydraulic fractures, this paper established a mechanical model for distinguishing interference behavior of natural fractures and hydraulic fractures. And analyzed the stress field at the tip of the hydraulic fracture and the stress field acting on the natural fracture surface based on the theories related to rock mechanics and fracture mechanics. On the basis of coupling the 3D geomechanical model and the 3D Discrete Fracture Network (DFN) model, this paper established the discriminant model for hydraulic fractures penetrating natural fractures in 3D space to conduct hydraulic fracture propagation simulation for the horizontal well. The research results can be used to optimize the hydraulic fracturing treatment design,and provide technical support for the effective production and profitable development of low-permeability reservoir resources.
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