Interlayer Crossflow Behavior in Vertically Heterogeneous Edge-Water Gas Reservoirs
Yang Zhao, Shuoshi Wang, Ping Guo, Zhouhua Wang, Na Yuan
Southwest Petroleum University State Key Laboratory of Oil and Gas Reservoir Geology and Exploitation New Mexico Institute of Mining and Technology
阅读操作
确认中在文库中上传 PDF 后可生成中文音频讲解。
摘要与影响
To address the challenges of nonuniform water invasion fronts and complex interlayer interference during the development of vertically heterogeneous edge-water gas reservoirs, this study integrates laboratory experiments with numerical simulations. First, a depletion experiment under edge-water drive was conducted using a self-developed large-scale 2D physical model operating under high-temperature and high-pressure conditions, equipped with a nonintrusive acoustic-electrical monitoring system. Based on the experimentally obtained dynamic pressure and fluid production data, a quantitative characterization method for interlayer crossflow that accounts for dynamic water saturation was established. Subsequently, a numerical model, rigorously calibrated through history matching, was employed to systematically examine the effects of aquifer size, production rate, and reservoir sequence on water invasion behaviors and crossflow characteristics. The results indicate that (1) the large-scale physical experiment confirmed that the high-permeability layer serves as a preferential flow path for edge water invasion. After water breakthrough occurred in this layer, the gas production rate dropped sharply while water production surged, precipitating drastic variations in interlayer and intralayer pressure differentials. Interlayer crossflow persists throughout the development process, primarily characterized by gas recharging from the medium- and low-permeability layers into the high-permeability layer. Quantitative calculations normalized to the total reservoir hydrocarbon pore volume (HCPV) reveal that the high-permeability layer (K3) acted as a macroscopic gas sink, receiving a cumulative gas influx equivalent to 22.35% of the total HCPV. Concurrently, the low-permeability (K1) and medium-permeability (K2) layers supplied this crossflow, experiencing gas outflows representing 11.58% and 10.76% of the total HCPV, respectively. (2) Numerical studies show that a larger aquifer size results in a faster water invasion velocity, earlier water breakthrough, a shorter water-free production period, and a lower recovery degree, while the intensity of interlayer crossflow is relatively weakened due to the rapid pressure maintenance in the high-permeability layer. Conversely, a lower production rate extends the water-free production period, delays water breakthrough, intensifies interlayer crossflow, and leads to a higher recovery degree. Reservoir sequence significantly dictates the water invasion pattern and sweep efficiency. In Fining-upward Sequence reservoirs (characterized by high permeability at the bottom), edge water preferentially fingers through the bottom high-permeability layer, whereas Coarsening-upward Sequence reservoirs are prone to top-water fingering. This study quantifies the gas–water two-phase interlayer interference mechanism under heterogeneous conditions. Furthermore, based on the numerical model calibrated by history matching, the effects of aquifer size, production rate, and reservoir sequence on development performance are systematically investigated. The methodologies and findings of this work provide effective tools for predicting water invasion behaviors, thereby offering a theoretical basis for the efficient development of vertically heterogeneous edge-water gas reservoirs.
逐年被引趋势
暂无年度引用数据
关键指标
同类平均 = 1
同领域 · 同年份 · 同类型
Google Scholar 与 OpenAlex 的被引统计范围不同,数值存在差异属正常。
AI 辅助阅读
依据:摘要
可就本文提问;依据不足时会说明。
学术脉络
学科主题
工程Hydrocarbon exploration and reservoir analysis
CO2 Sequestration and Geologic Interactions · Hydraulic Fracturing and Reservoir Analysis
参考文献 47
此处列出前 3 条