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From bubbling to turbulent fluidization: Advanced onset of regime transition in micro-fluidized beds

机译:从鼓泡到湍流:微流化床中态转变的提前开始

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摘要

Membrane fluidized bed reactors have been proposed and demonstrated as an effective reactor concept for ultrapure hydrogen production with integrated carbon dioxide capture. Recent experimental studies have shown that the hydrogen permeation rate through the membranes and the mass transfer rate from the bubble phase to the emulsion phase are the two main limiting factors in this type of reactors. To this end, we propose the concept of a micro membrane fluidized bed reactor (MMFBR) as a possible method to remove those two limitations. The idea of the MMFBR is that a significantly larger membrane area per unit reactor volume can be accommodated, thereby removing the limitation of the hydrogen permeation rate through the membranes. Furthermore, we numerically show with discrete particle simulations that the onset of turbulent fluidization is advanced significantly in a MMFBR, which allows the bed to be operated at the turbulent fluidization regime at a relatively low gas velocity. This is quite beneficial, since it provides a gentler environment for the membranes, and indicates a significant attenuation or possible removal of mass transfer limitations due to the well-known excellent mass transfer characteristic of turbulent fluidization.
机译:膜流化床反应器已被提出,并被证明是一种有效的反应器概念,可用于超纯制氢并集成二氧化碳捕集。最近的实验研究表明,通过膜的氢渗透速率和从气泡相到乳液相的传质速率是这类反应器的两个主要限制因素。为此,我们提出了微膜流化床反应器(MMFBR)的概念,作为消除这两个限制的一种可能方法。 MMFBR的思想是,可以容纳每单位反应器体积显着更大的膜面积,从而消除了氢通过膜的渗透速率的限制。此外,我们用离散粒子模拟数值显示了在MMFBR中湍流流化的发生显着提前,这使得床层可以在湍流流化状态下以相对较低的气体速度进行操作。这是非常有益的,因为它为膜提供了更温和的环境,并且由于众所周知的湍流流化的卓越传质特性,表明传质限制的显着衰减或可能的消除。

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