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Optimization of Organic Rankine Cycle Waste Heat Recovery for Power Generation in a Cement Plant via Response Surface Methodology

机译:响应面法优化水泥厂发电中有机朗肯循环余热回收

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A cement plant that produces 8,300 tons per day releases 265,000 Nm3/h of flue gas at 360°C from its Suspension Preheater (SP) and 400,000 Nm3/h of hot air at 310°C from its air quenching cooler (AQC). It is imperative to recover the waste heat emitted by the plant for power generation, i.e., Waste Heat Recovery Power Generation (WHRPG). This paper aims to optimize waste heat recovery from the cement plant using Response Surface Methodology (RSM), for which an Organic Rankine Cycle (ORC) is applied for electric power generation. The working fluid of an ORC power generation system was selected among candidates of organic working fluids (i.e., isobutane, isopentane, benzene, and toluene) by using the Technique for Order of Preference by Similarity to Ideal Solution (TOPSIS), a Multi-Criteria Decision Analysis (MCDA) method. The ORC power generation system configuration and the corresponding operating conditions employing the selected working fluid (i.e., pressures and temperatures) are optimized by applying RSM. Based on TOPSIS evaluation and considering factors of health, safety, environment impacts, cost, and power generated, isopentane was selected as the working fluid for the ORC WHRPG, which was configured to consist of a boiler, two expansion turbines, a reheater, and a recuperator. Implementation of RSM attained optimum operating conditions of high pressure turbine, low pressure turbine, and condenser at 11.3 bar-a saturated vapor, 4.3 bar-a and 184°C, and 1.8 bar-a, respectively. Finally, the gross electric power generated of 5.7 MW at 12.5 percent of energy conversion efficiency is generated by the pertinent ORC WHRPG.
机译:一家日产8300吨的水泥厂在360°C的悬浮式预热器(SP)中释放出265,000 Nm3 / h的烟气,在310°C的空气淬火冷却器(AQC)中释放出400,000 Nm3 / h的热空气。必须回收工厂排放的废热用于发电,即废热回收发电(WHRPG)。本文旨在使用响应表面方法(RSM)优化水泥厂的余热回收,为此将有机朗肯循环(ORC)应用于发电。 ORC发电系统的工作流体是通过使用多标准“理想溶液相似性优先选择技术”(TOPSIS)从有机工作流体(即异丁烷,异戊烷,苯和甲苯)的候选物中选择的决策分析(MCDA)方法。通过应用RSM可以优化ORC发电系统的配置以及采用所选工作流体的相应运行条件(即压力和温度)。在TOPSIS评估的基础上,考虑健康,安全,环境影响,成本和发电的因素,选择异戊烷作为ORC WHRPG的工作流体,该流体由锅炉,两个膨胀涡轮机,再热器和换热器。 RSM的实施分别在11.3 bar-a的饱和蒸汽,4.3 bar-a和184°C和1.8 bar-a的压力下达到了高压涡轮机,低压涡轮机和冷凝器的最佳运行条件。最后,相关的ORC WHRPG产生的总电能为5.7 MW,能量转换效率为12.5%。

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