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Markov-based performance evaluation and availability optimization of the boiler–furnace system in coal-fired thermal power plant using PSO

机译:基于Markov的PSO燃煤热电厂锅炉系统的性能评价和可用性优化

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The appropriate maintenance strategy is essential for maintaining the thermal power plant highly reliable. The thermal power plant is a complex system that consists of various subsystems connected either in series or parallel configuration. The boiler–furnace (BF) system is one of the most critical subsystems of the thermal power plant. This paper presents availability based simulation modeling of the boiler–furnace system of thermal power plant with capacity (500MW). The Markov based simulation model of the system is developed for performance analysis. The differential equations are derived from a transition diagram representing various states with full working capacity, reduced capacity, and failed state. The normalizing condition is used for solving the differential equations. Furthermore, the performance of the system is analyzed for a possible combination of failure rate and repair rate, which revealed that failure of the boiler drum affects the system availability at most, and the failure of reheater affects the availability at least. Based on the criticality ranking, the maintenance priority has been provided for the system. The availability of the boiler–furnace system is optimized using particle swarm optimization method by varying the number of particles. The study results revealed that the maximum system availability level of 99.9845% is obtained. In addition, the optimized failure rate and repair rate parameters of the subsystem are used for suggesting an appropriate maintenance strategy for the boiler–furnace? system of the plant. The finding of the study assisted the decision-makers in planning the maintenance activity as per the criticality level of subsystems for allocating the resources.
机译:适当的维护策略对于维持热电厂高度可靠的维护策略至关重要。热电厂是一种复杂的系统,包括串联或并联配置连接的各种子系统。锅炉 - 炉(BF)系统是热电厂最关键的子系统之一。本文介绍了具有容量(500mW)的热电厂锅炉炉系统的可用性基于仿真建模。为性能分析开发了基于Markov的系统仿真模型。微分方程源自表示具有完全工作容量,减少容量和失败状态的各种状态的转换图。标准化条件用于求解微分方程。此外,分析了系统的性能,以进行故障率和修复速率的可能组合,这揭示了锅炉鼓的故障最多影响系统可用性,并且再热器的失败至少影响可用性。基于临界排名,为系统提供了维护优先权。通过改变粒子的数量,使用粒子群优化方法优化锅炉 - 炉系统的可用性。研究结果表明,获得了99.9845%的最大系统可用性水平。此外,子系统的优化故障率和维修率参数用于锅炉炉的适当维护策略?植物系统。该研究的调查协助决策者根据用于分配资源的子系统的临界程度规划维护活动。

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