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Efficient planning of energy production and maintenance of large-scale combined heat and power plants

机译:大型热电厂联合生产的能源生产和维护的有效计划

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摘要

In this study, an efficient optimization framework is presented for the simultaneous planning of energy production and maintenance in combined heat and power plants, and applied in the largest coal-fired cogeneration plant of Kazakhstan. In brief, the proposed optimization model considers: (i) unit commitment constraints for boilers and turbines; (ii) minimum and maximum runtimes as well as minimum idle times for boilers and turbines; (iii) bounds on the operating levels for boilers and turbines within desired operating regions; (iv) extreme operating regions for turbines; (v) energy balances for turbines; (vi) total electricity and heat balances for satisfying the corresponding demands for electricity and heat (for each heat network); and (vii) maintenance tasks for units that must occur within given flexible time-windows. The minimization of the annual total cost of the cogeneration plant constitutes the optimization goal here, and consists of startup and shutdown costs, fixed operating and fuel costs, maintenance costs, and penalties for deviation from heat and electricity demands, and penalties for turbines for operating outside the desired operating regions. An extensive data analysis of historical data has been performed to extract the necessary input data. In comparison to the implemented industrial solution that follows a predefined maintenance policy, the solutions derived by the proposed approach achieve reductions in annual total cost more than 21% and completely avoid turbines operation outside their desired operating regions. Our solutions report substantial reductions in startup/shutdown, fuel and fixed operating costs (about 85%, 15%, and 13%, respectively). The comparative case study clearly demonstrates that the proposed approach is an effective means for generating optimal energy production and maintenance plans, enhancing significantly the resource and energy efficiency of the plant. Importantly, the proposed optimization framework could be readily applied to other cogeneration plants that have a similar plant structure.
机译:在这项研究中,提出了一个有效的优化框架,用于同时规划热电厂和热电厂的能源生产和维护,并应用于哈萨克斯坦最大的燃煤热电联产厂。简而言之,建议的优化模型考虑:(i)锅炉和涡轮机的机组承诺约束; (ii)锅炉和涡轮机的最小和最大运行时间以及最小闲置时间; (iii)锅炉和水轮机在预期工作区域内的工作水平界限; (iv)涡轮的极端工作区域; (v)涡轮机的能量平衡; (vi)满足所有电力和热量需求的总电力和热量平衡(针对每个热网); (vii)必须在给定的灵活时间范围内发生的设备维护任务。最小化热电厂的年度总成本构成了此处的优化目标,包括启动和关闭成本,固定运行和燃料成本,维护成本以及偏离热和电需求的罚款以及对运行涡轮机的罚款在所需的操作区域之外。已对历史数据进行了广泛的数据分析,以提取必要的输入数据。与遵循预定义维护策略的已实施工业解决方案相比,通过本提议方法得出的解决方案可将年度总成本降低21%以上,并完全避免了涡轮机在其期望的工作区域之外运行。我们的解决方案报告说,大大减少了启动/关闭,燃料和固定运营成本(分别约为85%,15%和13%)。对比案例研究清楚地表明,该方法是产生最佳能源生产和维护计划的有效手段,可显着提高工厂的资源和能源效率。重要的是,所提出的优化框架可以容易地应用于具有相似植物结构的其他热电联产植物。

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