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首页> 外文期刊>Numerical Heat Transfer, Part A. Application: An International Journal of Computation and Methodology >Numerical simulation and optimization of steam-assisted gravity drainage with temperature, rate, and well distance control using an efficient hybrid optimization technique
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Numerical simulation and optimization of steam-assisted gravity drainage with temperature, rate, and well distance control using an efficient hybrid optimization technique

机译:用高效杂交优化技术用温度,速率和远程控制蒸汽辅助重力排水的数值模拟与优化

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摘要

Steam-assisted gravity drainage (SAGD) is a thermal enhanced oil recovery technique through drilling of two horizontal wells. Effects of steam injection temperature, well rates, and their distance on oil recovery were analyzed and optimized. Steam temperature and well distances remarkably affect SAGD performance. Four metaheuristic algorithms (particle swarm optimization (PSO), imperialist competitive algorithm, cultural algorithm, and Bees algorithm) and pattern search optimization algorithm (PSA) are used for optimization. PSO performs better than other metaheuristics and PSA is the fastest one, while it is probable to be trapped in local optimums. Hybrid PSO-PS is proposed that starts with PSO and proceeds with PSA, and tested in an SAGD project and showed excellence over other techniques.
机译:蒸汽辅助重力排水(SAGD)是通过钻两个水平孔的热增强的采油技术。 分析蒸汽喷射温度,速率率及其对油回收距离的影响。 蒸汽温度和距离距离显着影响SAGD性能。 四种成分型算法(粒子群优化(PSO),帝国主义竞争算法,文化算法和蜜蜂算法)和模式搜索优化算法(PSA)用于优化。 PSO比其他美容学和PSA更快地执行,而PSA是最快的,虽然可能被困在局部最佳上。 提出了Hybrid PSO-PS,以PSO开始,并与PSA进行,并在SAGD项目中进行测试,并在其他技术中显示出卓越。

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