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Simulation of elevated temperature combined water gas shift and solid sorbent CO_2 capture for pre-combustion applications using computational fluid dynamics

机译:用计算流体动力学模拟升高温度综合水煤气变换和固体吸附剂CO_2捕获

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摘要

Water gas shift reaction combined with CO2 adsorption is a novel promising technology for pre-combustion CO2 capture in IGCC applications. By combining the two processes in an IGCC, reduction in plant capital cost (by eliminating the separate shift reactors) and in heat rate (by reducing their steam injection rates) may be realized. CFD modeling was employed to predict the CO2 adsorption, desorption and shift reaction rates, CO2 loading, CO2 breakthrough curve and temperature distribution within the reactor. The model was validated against experimental data. It was shown that significant increase in temperature occurs near the bottom region of the combined catalyst and sorbent mixed zone because majority of the reaction occurs over a small region where the feed syngas contacts the WGS catalyst. Injection of liquid water between beds is investigated for temperature control. CFD simulation model of the combined WGS and CO2 capture would be useful in reactor design, developing thermal management strategies to avoid the high temperature zones, and developing IGCC overall plant design as well as in assessing the plant thermo-economics.
机译:与CO2吸附相结合的水煤气变换反应是IGCC应用中预燃烧二氧化碳捕获的新颖有前途的技术。通过组合IGCC中的两个过程,可以实现植物资本成本的降低(通过消除单独的换档反应器)和热速率(通过降低蒸汽喷射率)。使用CFD造型预测反应器内的CO 2吸附,解吸,移位反应速率,CO 2负载,CO 2突破曲线和温度分布。该模型针对实验数据验证。结果表明,在组合催化剂和吸附剂混合区的底部区域附近发生显着增加,因为大部分反应发生在进料合成气与WGS催化剂接触的小区域上。研究了床之间的液态水进行了温度控制。 CFD仿真模型的WGS和CO2捕获的CFD仿真模型可用于反应堆设计,开发热管理策略,以避免高温区域,以及开发IGCC整体工厂设计以及评估植物热经济学。

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