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Simulation-based optimization of operating parameters for methanol synthesis process: Application of response surface methodology for statistical analysis

机译:基于模拟的甲醇合成工艺运行参数优化:响应面方法在统计分析中的应用

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摘要

In this study, the effect of changes in operating conditions is considered following a three-step procedure. Firstly, the process is simulated based on the design data for model validation and model based optimization. The presented best-fitted kinetic and thermodynamic models in the literatures are utilized to analyze the trends and kinetic features related to methanol synthesis. The variations in the operating conditions such as the inlet temperature and the mole fractions of CO and CO2 significantly affect the methanol production rate. Low operating performance of the heat exchangers and the alterations in operating conditions contribute to increase of the amount of purge gas of the process from its predicted quantity in the design condition. Since it has been anticipated that the purge gas may rise, a no-flow flare (zero flaring) has been designed and the excess of purge gas is burnt in this flare. Secondly, the process is simulated based on the operating data to calculate the streams conditions. Thirdly, the analysis and statistical optimization are performed. Applying response surface methodology (RSM), the operating conditions of this plant are optimized via simulator based experimental design in order to maximize methanol production. RSM is a collection of mathematical and statistical techniques useful for modeling and analysis of problems in which a response of interest is influenced by several variables and the objective is to optimize this response. Consequently, the results of the statistical analysis prove that the methanol production rate increases by 7% applying the optimal operating conditions. (C) 2016 Elsevier B.V. All rights reserved.
机译:在这项研究中,按照三步程序考虑了运行条件变化的影响。首先,基于设计数据对过程进行仿真,以进行模型验证和基于模型的优化。文献中提出的最适合的动力学和热力学模型用于分析与甲醇合成相关的趋势和动力学特征。操作条件的变化(例如入口温度以及CO和CO2的摩尔分数)会显着影响甲醇的生产率。换热器的低运行性能和运行条件的改变导致工艺吹扫气体的量从其在设计条件下的预测量增加。由于已经预料到净化气体可能会上升,因此设计了无流量的火炬(零火炬),多余的净化气体在该火炬中燃烧。其次,基于操作数据对过程进行仿真,以计算流条件。第三,进行分析和统计优化。应用响应面方法(RSM),可通过基于模拟器的实验设计来优化该工厂的运行条件,以最大程度地提高甲醇产量。 RSM是数学和统计技术的集合,可用于对问题进行建模和分析,在这些问题中,目标响应受多个变量影响,目的是优化此响应。因此,统计分析结果证明,在最佳操作条件下,甲醇生产率提高了7%。 (C)2016 Elsevier B.V.保留所有权利。

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