流化床
逆流交换
膜反应器
体积流量
氢
体积热力学
体积分数
产量(工程)
滴流床反应器
分数(化学)
材料科学
核工程
化学工程
化学
色谱法
热力学
催化作用
工程类
复合材料
有机化学
物理
作者
Mohammad Osat,Faryar Shojaati
标识
DOI:10.1002/ceat.202200006
摘要
Abstract Three models were developed for a conventional fluidized‐bed reactor and a cocurrent and a countercurrent membrane fluidized‐bed reactor for methane trireforming. Firstly, the effects of the operating parameters on the reactor performance were assessed. Then, a single‐objective optimization was established. Finally, a membrane was added to the reactor to improve the reactor performance. The simulated results illustrate that the reaction rates are highest near the reactor entrance due to the high volume fraction of the dispersed phase and the existence of a hot zone. Moreover, the optimization process indicates that the maximum H 2 yield in the conventional fluidized‐bed reactor is obtained when the inlet temperature, inlet flow rate, and H 2 O/CH 4 ratio, are 804 °C, 3.6 × 10 5 L h −1 , and 2.5, respectively.
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