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Thermodynamic analysis of an improved flue gas pre-dried lignite-fired power system integrated with water recovery and drying exhaust gas recirculation

机译:热力学分析改进的烟气预干燥褐煤发射电力系统,其与水回收和干燥废气再循环

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Lignite is a domestic strategic reserve of low rank coals in many countries owing to its abundant resource and competitive price. Combustion for power generation is still an imperative approach to lignite utilization. However, the high moisture content invariably results in the low efficiency of lignite-direct-fired power plants. The present work focuses on an improved concept of the flue gas pre-dried lignite-fired power system (FPLPS), which integrates fan mill drying, deep water recovery and drying exhaust gas recirculation. A thermodynamic analysis model was developed to investigate the energy and water saving potentials of the FPLPS with various design parameters. Different configuration alternatives of FPLPS design were provided and compared in terms of energy and water conservation. Results indicated that flue gas pre-drying and waste heat recovery into the boiler contributed to 1.47%-pts plant thermal efficiency improvement (Delta eta(tot)) in a 660 MW supercritical power unit. Drying exhaust gas recirculation could be implemented for flame temperature reduction and emission control given effective removal and recovery of the moisture in lignite. The Delta eta(tot) in this case was determined as 0.87%-pts. Moreover, the Delta eta(tot) could be enhanced to 1.09%-pts with utilization of waste heat from the water recovery process into the steam cycle. The plant water saving rate of the improved FPLPS ranged from 0.22 to 0.32 t center dot MW h(-1). Overall, an environmentally-friendly, energy-efficient and water-saving lignite power generation could be accomplished through the improved FPLPS.
机译:褐煤由于其丰富的资源和具有竞争力的价格,在许多国家是国内低阶煤的战略储备。燃烧发电仍然是褐煤利用的必要途径。然而,褐煤直燃电厂的高含水量必然导致发电效率低下。目前的工作重点是改进烟气预干燥褐煤发电系统(FPLPS)的概念,该系统集成了风机磨干燥、深水回收和干燥废气再循环。建立了一个热力学分析模型,以研究不同设计参数下FPLP的节能和节水潜力。提供了FPLPS设计的不同配置方案,并在节能和节水方面进行了比较。结果表明,在660MW超临界发电机组中,烟气预干燥和余热回收有助于提高1.47%的pts电厂热效率(δeta(tot))。由于褐煤中水分的有效去除和回收,干燥废气再循环可用于火焰温度降低和排放控制。本例中的δeta(tot)确定为0.87%-pts。此外,将水回收过程中的废热利用到蒸汽循环中,可将Delta eta(tot)提高到1.09%-pts。改进后的FPLPS的工厂节水率在0.22到0.32 t中心点MW h(-1)之间。总体而言,通过改进的FPLP,可以实现环保、节能和节水的褐煤发电。

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