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Preventive Soot Blowing Strategy Based on State of Health Prediction for Coal-fired Power Plant Boiler

机译:基于健康预测的燃煤电厂锅炉预防性吹灰策略

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摘要

This paper seeks the optimization of soot-blowing operations for heat transfer surfaces in coal- fired power plant boiler. A preventive soot blowing strategy based on state of health prediction for heat transfer surface was proposed. The average state of health of heat transfer surface was forecasted as the threshold to draft preventive soot blowing strategy. According to the theory of renewal process, an optimization model with the system prediction interval and the threshold of preventive soot blowing operation as the optimization variables and minimize average energy losses as the target function was established. By using Particle Swarm Optimization (PSO), the optimal preventive cycle and soot-blowing threshold were obtained, and the long-run average cost rate was the lowest. The model is validated with experiment data of a 300MW coal-fired power plant boiler and the parameters of prediction model are obtained. The results can verify the feasibility of proposed strategy. It can be used as the guide for the optimization of soot blowing in coal-fired power plant to improve the energy conservation level.
机译:本文寻求对燃煤电厂锅炉传热表面吹灰操作的优化。提出了一种基于健康状态预测的传热面吹灰预防策略。预测传热表面的平均健康状况是起草预防性吹灰策略的门槛。根据更新过程理论,建立了以系统预测间隔和吹灰预防门槛为优化变量,以平均能量损失最小为目标函数的优化模型。通过使用粒子群优化算法(PSO),获得了最佳的预防周期和吹灰阈值,长期平均成本率最低。利用某300MW燃煤电厂锅炉的试验数据对该模型进行了验证,得到了预测模型的参数。结果可以验证所提出策略的可行性。可以作为燃煤电厂烟灰优化,提高节能水平的指南。

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