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NUMERICAL STUDY OF THE FLOW AND TEMPERATURE DISTRIBUTIONS IN A 350 MW UTILITY BOILER

机译:350 MW电站锅炉内流动与温度分布的数值研究。

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A computational model is developed in order to analyze flow, temperature and species distributions inside a 350 MW utility boiler. It is assumed that identification of high temperature or high velocity zones will help in the prevention of failures in the boiler walls, superheaters, reheaters and economizers. For the analysis of these failures the modeling of the chemical and physical phenomena inside the boiler is important, because one of the known causes of tube failure is the non-uniform heating of the tubes, which strongly depends on the combustion gases flow and temperature distributions. The 3-D computational fluid dynamics (CFD) codes provide an effective tool for this type of calculations. CFD calculations were performed for the condition of 100% of total load for a 350 MW utility boiler using either pulverized coal or heavy oil as fuels. The CFD calculations adopt a 3D-formulation of the mean flow equations in combination with the standard high-Reynolds-number k-epsilon turbulence model and a probability density function to model fuel combustion. The tube banks are represented by a porous media model. Comparisons between calculations and key global parameters from the power plant show relatively good agreement. Velocity profiles show a very complex flow in the boiler, especially in the lower part of the boiler, where the injected streams form a cyclone at the center of the boiler.
机译:为了分析350 MW电站锅炉内的流量,温度和物质分布,开发了一个计算模型。假定识别高温或高速区域将有助于防止锅炉壁,过热器,再热器和节能器中的故障。对于这些故障的分析,锅炉内部化学和物理现象的建模非常重要,因为已知的导致管道故障的原因之一是管道的加热不均匀,这在很大程度上取决于燃烧气体的流量和温度分布。 3-D计算流体动力学(CFD)代码为此类计算提供了有效的工具。对于使用粉煤或重油作为燃料的350 MW电站锅炉,在总负荷为100%的条件下执行CFD计算。 CFD计算采用平均流量方程的3D公式,结合标准的高雷诺数k-ε湍流模型和概率密度函数来对燃料燃烧进行建模。管束由多孔介质模型表示。发电厂的计算与关键全局参数之间的比较显示出相对较好的一致性。速度曲线显示锅炉中的流量非常复杂,尤其是在锅炉的下部,注入的水流在锅炉的中心形成旋风分离器。

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