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基于多次数据吸收集合平滑算法的自动油藏历史拟合研究
引用本文:王泽龙,刘先贵,唐海发,吕志凯,刘群明. 基于多次数据吸收集合平滑算法的自动油藏历史拟合研究[J]. 特种油气藏, 2021, 28(3): 99-105. DOI: 10.3969/j.issn.1006-6535.2021.03.015
作者姓名:王泽龙  刘先贵  唐海发  吕志凯  刘群明
作者单位:1.中国科学院大学,北京 100049;2.中国科学院大学渗流流体力学研究所, 河北 廊坊 065007;3.中国石油国际勘探开发有限公司,北京 100034;4.中国石油勘探开发研究院,北京 100083
基金项目:国家科技重大专项“页岩气气藏工程及采气工艺技术”(2017ZX05037-001)
摘    要:针对常见历史拟合方法存在计算量大、油藏参数更新异常、油藏模型修正失真等问题.采用集合平滑算法,通过引入集合卡尔曼滤波算法(EnKF)中多次迭代思路,对相同数据重复吸收,推导出多次数据吸收集合平滑算法(ES-MDA)的核心公式,并编写了自动油藏历史拟合软件.以北海布伦特油田海相砂岩油藏为例,将基于ES-MDA算法的油藏自...

关 键 词:历史拟合  数学模型  模拟算法  数据吸收  集合平滑  集合卡尔曼滤波
收稿时间:2020-12-28

Study on Automatic Reservoir History Matching Based on ES-MDA Algorithm
Wang Zelong,Liu Xiangui,Tang Haifa,Lyu Zhikai,Liu Qunming. Study on Automatic Reservoir History Matching Based on ES-MDA Algorithm[J]. Special Oil & Gas Reservoirs, 2021, 28(3): 99-105. DOI: 10.3969/j.issn.1006-6535.2021.03.015
Authors:Wang Zelong  Liu Xiangui  Tang Haifa  Lyu Zhikai  Liu Qunming
Affiliation:1. University of Chinese Academy of Sciences, Beijing 100049, China;2. Institute of Porous Flow and Fluid Mechanics, University of Chinese Academy of Sciences, Langfang, Hebei 065007, China;3. China National Oil and Gas Exploration and Development Co., Ltd., Beijing 100034, China;4. Research Institute of Petroleum Exploration & Development, Beijing 100083, China
Abstract:To address the shortcomings of common history matching methods such as large amounts of computation, abnormal update of reservoir parameters, and distortion of reservoir model corrections, ensemble smoother algorithm was adopted to repeatedly assimilate the same data by multiple iterations in the ensemble Kalman filter (EnKF) algorithm to derive the core formula of the ES-MDA algorithm (ensemble smoother with multiple data assimilations) and write automatic reservoir history matching software. In a case study of marine sandstone reservoir of Brent Oilfield in the North Sea, the automatic history matching program of the reservoir based on the ES-MDA was applied to the reservoir to conduct history matching for water injection, oil production and development of the oilfield. The results showed that the predicted data obtained from the numerical modeling of the reservoir matched the actual measured data by more than 90%, and characterized the porosity distribution of the real reservoir more accurately. The ES-MDA algorithm is advantaged by stable algorithm, high operation efficiency and accurate model updating. The research results are of great significance for realizing computer-based automatic reservoir history matching and real-time optimization of reservoir production.
Keywords:history matching  mathematical model  simulation algorithm  data assimilation  ensemble smoother  ensemble Kalman filter  
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