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首页> 外文期刊>Procedia Computer Science >A Smart Manufacturing Use Case: Furnace Temperature Balancing in Steam Methane Reforming Process via Kepler Workflows
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A Smart Manufacturing Use Case: Furnace Temperature Balancing in Steam Methane Reforming Process via Kepler Workflows

机译:智能制造用例:通过开普勒工作流在蒸汽甲烷重整过程中平衡炉温

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摘要

The industrial scale production of hydrogen gas through steam methane reforming (SMR) process requires an optimum furnace temperature distribution to not only maximize the hydrogen yield but also increase the longevity of the furnace infrastructure which usually operates around 1300 degree Kelvin (K). Kepler workflows are used in temperature homogenization, termed as balancing of this furnace through Reduced Order Model (ROM) based Matlab calculations using the dynamic temperature inputs from an array of infrared sensors. The outputs of the computation are used to regulate the flow rate of fuel gases which in turn optimizes the temperature distribution across the furnace. The input and output values are stored in a data Historian which is a database for real-time data and events. Computations are carried out on an OpenStack based cloud environment running Windows and Linux virtual machines. Additionally, ab initio computational fluid dynamics (CFD) calculation using Ansys Fluent software is performed to update the ROM periodically. ROM calculations complete in few minutes whereas CFD calculations usually take a few hours to complete. The Workflow uses an appropriate combination of the ROM and CFD models. The ROM only workflow currently runs every 30 minutes to process the real-time data from the furnace, while the ROM CFD workflow runs on demand. ROM only workflow can also be triggered by an operator of the furnace on demand.
机译:通过蒸汽甲烷重整(SMR)工艺进行的工业规模氢气生产需要最佳的炉温分布,以不仅使氢气产量最大化,而且还提高了通常在1300开氏温度(K)附近运行的炉基础设施的寿命。开普勒工作流程用于温度均质化,通过使用基于红外传感器阵列的动态温度输入的基于降阶模型(ROM)的Matlab计算,使该炉达到平衡。计算的输出用于调节燃气的流量,从而优化整个炉子的温度分布。输入和输出值存储在数据Historian中,该数据库是实时数据和事件的数据库。计算是在运行Windows和Linux虚拟机的基于OpenStack的云环境中进行的。此外,使用Ansys Fluent软件执行从头计算流体动力学(CFD)计算,以定期更新ROM。 ROM计算只需几分钟即可完成,而CFD计算通常需要几个小时才能完成。工作流使用ROM和CFD模型的适当组合。目前,仅ROM工作流程每30分钟运行一次,以处理来自熔炉的实时数据,而ROM CFD工作流程按需运行。仅ROM工作流也可以由熔炉操作员按需触发。

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