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CFD Design of Hydrogenation Reactor for Transformation of Levulinic Acid to γ-Valerolactone (GVL) by using High Boiling Point Organic Fluids

机译:高沸点有机流体将丙戊酸转化为γ-戊内酯(GVL)的加氢反应器CFD设计

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Levulinic acid (LA) has been ranked as one of the “Top 10” building blocks for future bio-refineries as proposed by the US Department of Energy. It is considered one of the most important platform molecules for the production of fine chemicals and fuels based on its compatibility with existing processes, market economics, and industrial ability to serve as a platform for the synthesis of important derivatives. Hydrogenation of LA to produce γ-valerolactone (GVL) is an active area of research due to the potential of GVL to be used as a biofuel in its own right and for its subsequent transformation into hydrocarbon fuels. This paper contains a new design for a simple, cost effective, and safe hydrogenation reactor for the transformation of levulinic acid to γ-valerolactone (GVL) by utilizing high boiling point organic fluid. The hydrogenation reactor is composed of a heating source—organic fluid (called “DOWTHERM A” or “thermex”) and the catalytic reactor. The advantages of high boiling temperature fluids, along with advances in hydrocracking and reforming technologies driven by the oil and gas industries, make the organic concept more suitable and safer (water coming in contact with liquid metal is well understood in the metallurgical industry to be a steam explosion hazard) for heating the hydrogenation reactor. COMSOL multi-physics software version 4.3b was applied in this work and simultaneously solves the continuity, Navier-Stokes (fluid flow), energy (heat transfer), and diffusion with chemical reaction kinetics equations. It was shown that the heat flux supplied by the DOWTHERM A organic fluid could provide the necessary heat flux required for maintaining the hydrogenation process. It was found that the mass fractions of hydrogen and levulinic acid decreased along the reactor axis. The GVL mass fraction increased along the reactor axis.
机译:根据美国能源部的建议,左旋戊酸(LA)被列为未来生物炼油厂的“十大”组成部分之一。由于它与现有工艺的相容性,市场经济以及可作为重要衍生物合成平台的工业能力,它被认为是生产精细化学品和燃料的最重要的平台分子之一。 LA的加氢生成γ-戊内酯(GVL)是研究的一个活跃领域,因为GVL本身具有用作生物燃料并随后转化为烃类燃料的潜力。本文提出了一种新的设计方案,该方案设计了一种简单,经济高效且安全的加氢反应器,该反应器可通过利用高沸点有机流体将乙酰丙酸转化为γ-戊内酯(GVL)。氢化反应器由加热源-有机流体(称为“ DOWTHERMA A”或“ thermex”)和催化反应器组成。高沸点流体的优点,以及由石油和天然气工业推动的加氢裂化和重整技术的进步,使有机概念更合适和更安全(与液态金属接触的水在冶金工业中被广泛理解为一种蒸汽爆炸危险)加热加氢反应器。在此工作中使用了COMSOL多物理软件版本4.3b,它同时使用化学反应动力学方程式求解了连续性,Navier-Stokes(流体流),能量(传热)和扩散。结果表明,由DOWTHERM A有机流体提供的热通量可以提供维持氢化过程所需的必要热通量。发现氢和乙酰丙酸的质量分数沿反应器轴降低。 GVL质量分数沿反应器轴线增加。

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