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Mathematical modelling of an industrial steam methane reformer.

机译:工业蒸汽甲烷重整器的数学模型。

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A mathematical model of a steam-methane reformer (SMR) was developed for use in process performance simulations and on-line monitoring of tube-wall temperatures. The model calculates temperature profiles for the outer-tube wall, inner-tube wall, furnace gas and process gas. Reformer performance ratios and composition profiles are also computed. The model inputs are the reformer inlet-stream conditions, the geometry and material properties of the furnace and catalyst-bed. The model divides the furnace and process sides of the reformer into zones of uniform temperature and composition. Radiative-heat transfer on the furnace side is modeled using the Hottel Zone method. Energy and material balances are performed on the zones to produce non-linear algebraic equations, which are solved using the Newton-Raphson method with a numerical Jacobian. Model parameters were ranked from most-estimable to least estimable using a sensitivity-based estimability analysis tool, and model outputs were fitted to limited data from an industrial SMR. The process-gas outlet temperatures were matched within 4°C, the upper and lower peep-hole temperatures within 12°C and the furnace-gas outlet temperature within 4°C. The process-gas outlet pressure, composition and flow rate are also accurately matched by the model. The values of the parameter estimates are physically realistic. The model developed in this thesis has the capacity to be developed into more specialized versions. Some suggestions for more specialized models include modeling of separate classes of tubes that are in different radiative environments, and detailed modeling of burner configurations, furnace-gas flow patterns and combustion heat-release patterns.
机译:开发了蒸汽甲烷重整器(SMR)的数学模型,用于过程性能模拟和管壁温度在线监测。该模型计算外管壁,内管壁,炉气和工艺气的温度曲线。还计算了重整器的性能比和组成曲线。模型输入是重整器的进料流条件,熔炉和催化剂床的几何形状和材料特性。该模型将重整炉的炉膛和过程侧分为温度和成分均匀的区域。使用Hottel Zone方法对炉膛侧的辐射热传递进行建模。在区域上进行能量和材料平衡,以生成非线性代数方程式,使用牛顿-拉夫森法和数值雅可比方程求解该方程式。使用基于灵敏度的可估计性分析工具,将模型参数从最高估计值到最低估计值进行排名,并将模型输出与来自工业SMR的有限数据进行拟合。工艺气体出口温度在4°C之内,上下窥视孔温度在12°C之内,而炉膛气体出口温度在4°C之内。该模型还可以精确匹配工艺气体出口压力,成分和流速。参数估计值在物理上是现实的。本文开发的模型具有被开发成更专业的版本的能力。对于更专业模型的一些建议包括对处于不同辐射环境中的不同管子类别进行建模,以及对燃烧器配置,炉气流动模式和燃烧放热模式进行详细建模。

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