Optical monitoring system availability optimization via semi-Markov processes and genetic algorithms

M. das Chagas Moura, P. Firmino, E. Droguett, C.M. Jacinto
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引用次数: 2

Abstract

System availability optimization is one of the main issues to oil production managers: the greater the system availability the greater the production profits are. Provided that preventive maintenance actions promote rejuvenation impact on availability indicator, this paper proposes an approach to maximize the mean availability by identifying an optimal maintenance policy for downhole optical monitoring systems, which are modeled according to non-homogeneous semi-Markov processes. In order to solve the resulting optimization problem constrained by system performance costs, new real-coded GA operators are also presented. The proposed approach is exemplified by means of an application to a real scenario in onshore oil wells in Brazil.
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基于半马尔可夫过程和遗传算法的光学监测系统可用性优化
系统可用性优化是石油生产管理人员面临的主要问题之一:系统可用性越大,生产利润越大。鉴于预防性维护行动会促进可用性指标的恢复,本文提出了一种方法,通过确定井下光学监测系统的最佳维护策略来最大化平均可用性,该方法根据非齐次半马尔可夫过程建模。为了解决系统性能成本约束下的优化问题,提出了新的实编码遗传算子。该方法在巴西陆上油井的实际应用中得到了验证。
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