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Investigation of Palladium Membrane Reactor Performance during Ethanol Steam Reforming using CFD Method

机译:CFD法研究乙醇蒸汽重整过程中钯膜反应器的性能

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The main purpose of present study is the analysis of dense palladium membrane reactor (MR) performance during ethanol steam reforming (ESR) reaction using computational fluid dynamic (CFD). To this aim, a two-dimensional and isothermal model based on CFD method was developed and results validation was tested by our experimental data achieved in ITM-CNR of Italy. In this work, Pd-based MR modeling was performed by using COMSOL-MULTIPHYSICS software. Regarding to model validation results, a good agreement was found between CFD model results and experimental data. Moreover, in this study, the effects of the some important operating parameters (reaction temperature and pressure) on the performance of Pd-based MR was studied in terms of ethanol conversion and hydrogen recovery. Concerning to simulation results, the CFD model presented velocity and pressure profiles in both side of MR and also compositions of various species in permeate and retentate streams. The simulation results indicated that the Pd-based MR has better performance with respect to traditional reactor (TR) in terms of the ethanol conversion, especially, at lower reaction temperatures and higher reactions pressures. As a consequence, CFD model results illustrated that Pd-based MR performance was improved by increasing the reaction pressure, while this parameter had negative effect on the TR performance. This result related to enhancement of hydrogen permeance through the palladium membrane by increasing the pressure gradient. Indeed, this shift effect can provide a higher ethanol conversion in lower temperatures in the Pd-based MR. In particular, 98% ethanol conversion and 37% hydrogen recovery was achieved at 350°C and 2 atm.
机译:本研究的主要目的是使用计算流体力学(CFD)分析乙醇蒸汽重整(ESR)反应过程中致密钯膜反应器(MR)的性能。为此,建立了基于CFD方法的二维等温模型,并通过在意大利ITM-CNR上获得的实验数据对结果验证进行了测试。在这项工作中,使用COMSOL-MULTIPHYSICS软件进行了基于Pd的MR建模。关于模型验证结果,CFD模型结果与实验数据之间找到了很好的一致性。此外,在这项研究中,从乙醇转化率和氢气回收率方面研究了一些重要的操作参数(反应温度和压力)对基于Pd的MR性能的影响。关于模拟结果,CFD模型显示了MR两侧的速度和压力曲线,以及渗透流和截留流中各种物质的组成。仿真结果表明,就乙醇转化率而言,基于Pd的MR相对于传统反应器(TR)具有更好的性能,尤其是在较低的反应温度和较高的反应压力下。结果,CFD模型结果表明,通过增加反应压力可以改善基于Pd的MR性能,而该参数对TR性能具有负面影响。该结果与通过增加压力梯度来提高通过钯膜的氢渗透性有关。实际上,这种转移效应可以在较低的温度下在基于Pd的MR中提供更高的乙醇转化率。特别地,在350℃和2atm下实现98%的乙醇转化率和37%的氢回收率。

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