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首页> 外文期刊>Topics in Catalysis >Optimal Design of A CPO-Reformer of Light Hydrocarbons with Honeycomb Catalyst: Effect of Frontal Heat Dispersions on the Temperature Profiles
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Optimal Design of A CPO-Reformer of Light Hydrocarbons with Honeycomb Catalyst: Effect of Frontal Heat Dispersions on the Temperature Profiles

机译:蜂窝状催化剂的轻烃CPO重整器的优化设计:正面热扩散对温度分布的影响

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This paper extends a previous investigation on the thermal behavior of CH4-CPO reformers with honeycomb catalysts. Modeling and experimental studies on the short contact time catalytic partial oxidation (CPO) of CH4 to syngas from our and from other groups have shown that Rh-catalysts rapidly deactivate at the very high temperatures, close to 1000 °C, that establish in the inlet zone of the reactor. We have previously shown that a significant reduction of the surface hot-spot temperature can be obtained by properly designing the catalyst: beneficial effects are observed at increasing opening of the honeycomb channels, which decreases the rate of O2 inter-phase mass transfer, and at increasing catalyst activity, which promotes the rate of the endothermic reactions. In this work, we explore the effect of the reactor configuration, namely the effect of heat dispersion from the glowing front face of the monolith. Three reactor configurations were compared in CH4-CPO experiments: (i) a configuration with perfect continuity between the front heat shield (FHS) and the catalytic module, which behaved close to an ideal adiabatic reactor, (ii) a configuration where the FHS was separated from the catalytic monolith and (iii) a configuration where the FHS was at large distance from the catalytic module. State of the art experimental tools, including the spatially resolved measurement of temperature and concentration profiles were used to characterize the thermal behavior of the various configurations. Detailed kinetic modeling supported the analysis of data. The results showed that, at the expense of a small loss of thermalefficiency, a very moderate loss of performance in terms of conversion and selectivity, but, remarkably, an important reduction of the surface inlet temperatures were achieved. Preliminary experiments with propane/air mixtures suggest that the adoption of a moderately dispersive reactor can represent a promising solution for the stable operation of catalytic units treating heavier fuels than methane.
机译:本文扩展了以前对使用蜂窝状催化剂的CH4-CPO重整器的热行为的研究。关于我们和其他小组的CH4与合成气的短接触时间催化部分氧化(CPO)的建模和实验研究表明,Rh催化剂会在入口附近建立的非常高的温度(接近1000°C)下迅速失活。反应器区域。先前我们已经表明,通过适当设计催化剂,可以显着降低表面热点温度:在增加蜂窝状通道的开放度,降低O2相间传质速率以及降低温度下观察到有益效果。增加催化剂活性,从而促进吸热反应的速率。在这项工作中,我们探索了反应堆配置的影响,即从整体的发光正面散发出的热量。在CH4-CPO实验中比较了三种反应器配置:(i)前隔热屏(FHS)和催化模块之间具有完美连续性的配置,其性能接近理想的绝热反应器;(ii)FHS为(iii)FHS与催化模块之间的距离较远的构型。使用最先进的实验工具,包括温度和浓度分布图的空间解析测量,来表征各种配置的热行为。详细的动力学建模支持数据分析。结果表明,以小的热效率损失为代价,就转化率和选择性而言,性能的损失是非常适度的,但是,显着降低了表面入口温度。丙烷/空气混合物的初步实验表明,采用适度分散的反应器可以为处理比甲烷重的燃料的催化装置的稳定运行提供有希望的解决方案。

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