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Mathematical modeling and validation of a 320 MW tangentially fired boiler: A case study

机译:320 MW切向锅炉的数学建模与验证 - 以案例研究

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摘要

The main step to evaluate the effect of various parameters on optimal operation conditions and pollution reduction of a boiler is to create a detailed model. In this paper, a steady state integrated model of boiler has been developed. Besides implementing main components of boiler applying thermodynamics laws, heat transfer and pressure drop correlations, following aspects have been considered: equilibrium combustion to predict flue gas composition and temperature, recirculation gas in the furnace, furnace exit gas temperature, radiation of the flue gases to the waterwall and superheaters, desuperheaters and rotary regenerative air heater (Ljungstrom). Heat transfer surfaces are considered as heat exchangers including direct and inter-tube radiation energy. The model was successfully applied to 320 MW tangentially fired boiler of Bandar Abbas power plant in Iran at six different loads 240, 250, 260, 270, 280 and 290 MW. Inlet/outlet temperature of working fluids for each heat transfer surfaces of the boiler are presented, compared and validated against the actual measured data from the power plant with maximum relative error of 8.72%. Effect of each heat transfer surfaces of boiler on its efficiency is presented and analyzed by averaged energy distribution in the boiler.
机译:评估各种参数对锅炉的最佳操作条件和污染减少的主要步骤是创建详细的模型。本文开发了锅炉稳态集成模型。除了实现锅炉的主要部件,除了应用热力学定律,传热和压降相关性,还考虑了以下几个方面:平衡燃烧以预测烤烟气体组成和温度,炉内再循环气体,炉出口气体温度,烟道气的辐射辐射水墙和超级搅拌器,脱果和旋转再生空气加热器(Ljungstrom)。传热表面被认为是热交换器,包括直接和管间辐射能量。该模型在伊朗的320兆瓦切向于320 MW切割燃烧锅炉,六个不同的载荷240,250,260,270,280和290 MW。对锅炉的每个传热表面的每个传热表面的工作流体的入口/出口温度进行了比较,并验证来自电厂的实际测量数据,最大相对误差为8.72%。通过平均能量分布在锅炉中提出和分析了锅炉对锅炉的每个传热表面的影响。

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