非常规生物气藏多级水力压裂动态建模工作流程以阿联酋阿布扎比中新世Gachsaran组为例

A. Gueddoud, Ahmed Al Hanaee, Riaz Khan, A. Abdelaal, Redy Kurniawan, Abdulla Al Ameri
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引用次数: 0

摘要

阿布扎比和迪拜的中新世Gachsaran组具有巨大的浅层生物气潜力。基于详细的油气分析生成动态模型和油田开发计划,以了解和评估其作为有潜力的天然气资源的能力。为容量和动态油藏模型生成的具体方法和工作流程,能够从经济和技术角度确定该油田最可行的开发战略。所提出的工作流程也适用于从单个油田规模到整个油田开发计划的开发计划。在3000平方公里的“甜点区”范围内,拥有数百个区块的精细网格化油田规模,包括构造、基于现有直井、新钻水平井构建的储层性质和地震解释。针对大型复杂非常规生物气藏的建模和仿真技术,建立了一套基于LGR水力裂缝和压裂面积的鲁棒工作流程。生成独立的工作流程,用于吸附气就地计算、解吸流动机理和Pads油田开发计划。利用(1)加压堆芯和吸附等温线容量实验,(2)各网格单元的Langmuir /BET函数和Vmax标度曲线,以及(3)气体浓度与TOC的关系,通过直接和间接测量气体总浓度,对现场计算、解吸流动机理和拟稳态流动进行了准确性研究。非常规浅层生物气藏的开发计划只有在通过水力裂缝建立的通信网络将巨大的储层区域有效地连接到井筒时才能实现。提出了一套完整的非常规油藏建模与仿真工作流程,包括水力裂缝的表征及其与储层基质的相互作用。通过缩放Langmuir函数,对全油田模型的每个网格单元进行Vmax计算,建立了精确的原位计算的双重孔隙度模型,开发方案中的单Pad设计方法在提高模型质量和灵活性,减少相同Pad模型设计的工作时间方面具有很大的优势,适用于全油田开发方案。提出的非常规建模与油田开发规划工作流程,为不确定性分析下的非常规动态模型构建和全油田开发规划提供了高效实用的方法。为了最大限度地减少非常规油藏现场计算和产量预测的不确定性,需要通过实验室测量对气体浓度和流动机理进行精确的直接和间接数据测量。非常规油藏的现场开发计划只有通过水力裂缝形成裂缝网络,通过垫块完井将巨大的油藏区域有效地连接到井筒,才能实现。
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Dynamic Modeling Workflow for an Unconventional Biogenic Gas Reservoir with Multistage Hydraulic Fracture. A Case Study of Miocene Gachsaran Formation, Abu Dhabi, United Arab Emirates
The Miocene Gachsaran Formation across Onshore Abu Dhabi and Dubai possesses high potential of generating shallow biogenic gas. A dynamic model and field development plan generated based on a detail G&G analysis to understand and evaluate its capability as promising gas resources. Specific approaches and workflow generated for volumetric and dynamic reservoir model capable of defining the most viable development strategy of the field from both an economic and technical standpoint. The proposed workflow adapts also the development plan from single pad-scale to full field development plan. A fine-grid field-scale with more than hundreds of Pads covering the sweet spot area of three thousands of square kilometers including structure, reservoir properties built based on existing vertical wells, newly drilled horizontal wells and seismic interpretation. In this paper, a robust workflow for big and complex unconventional biogenic gas reservoir modeling and simulation technique have been developed with hydraulic fracture and stimulated area created through LGR. Independent workflows generated for the adsorbed gas in place calculation, desorption flow mechanism, and Pads field development plan. An accuracy on in place calculation, desorption flow mechanism and Pseudo steady state flow through direct and indirect total gas concentration measured using (1) Pressurize core and sorption isotherm capacity experiment, (2) Langmuir /BET function and Vmax scaling curves for each grid cells, and (3) Gas concentration versus TOC relationship. Field development plan for unconventional shallow biogenic gas reservoirs is possible only if a communication network created through hydraulic fractures connects a huge reservoir area to the wellbore effectively. A complete workflow presented for modeling and simulation of unconventional reservoirs, which in-corporates the characterization of hydraulic fracture and their interaction with reservoir matrix. Dual porosity model has been constructed with accurate in place calculation through scaling the Langmuir function and calculation Vmax for each grid cell of the full field model, The single Pad design approach in the development plan has exhibited great advantages in terms of improvement in the quality and flexibility of the model, reduction of working time with the same Pad model design which is adapted for the full field development plan. The proposed unconventional modeling and field development plan workflow provides an efficient and useful unconventional dynamic model construction and full field development planning under uncertainty analysis. Minimizing the uncertainty in place calculation and production forecasting for unconventional reservoirs necessitates an accurate direct and indirect data measurement of gas concentration and flow mechanism through the laboratory measurement. Field development plan for unconventional reservoirs is possible only if fracture network can be created through hydraulic fractures that connects a huge reservoir area to the wellbore effectively through pad completion.
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