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首页> 外文期刊>International journal of thermal & environmental engineering >Numerical Modelling of Sonicated, Continuous Transesterification and Evaluation of Reaction Kinetics for Optimizing Biodiesel Reactor Design
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Numerical Modelling of Sonicated, Continuous Transesterification and Evaluation of Reaction Kinetics for Optimizing Biodiesel Reactor Design

机译:超声处理,连续酯交换的数值模拟和反应动力学的评估,以优化生物柴油反应器的设计

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摘要

Biodiesel is an alternative and sustainable fuel that can reduce the dependence on fossil diesel. This commodity has not only been promoted in the developed world but also in Indonesia, Brazil and several developing counties. In a general procedure it is a product of a transesterification reaction of vegetable oils or waste cooking oils with an alcohol, in the presence of an acidic or basic catalyst. It is a slow reaction which is conventionally carried out in a mechanically stirred batch process. An advanced method to achieve high yield quality in less time is sonication of the reaction in an integrated continuous process. Sonication causes micro-cavitation in the reactant mixture. The cavitation bubbles can have an internal pressure and temperature as high as 1000 atm and 5000K, respectively. Violent collapse of these bubbles causes tremendous increase in mass transfer, thereby enhancing the reaction rates. To optimize the design of the reactor, high fidelity modeling assisted design is pursued. This enables the effective integration of the reactant transport and the sonication effect in a coupled acoustic, reactive multiple-specie flow. In this work, a cylindrical reactor is considered in which reactant mixture will be circulated and sonicated by a sonotrode type ultrasound equipment. To simulate the sonication effect the linear, time independent wave equation is solved for the fluid domain, which provides us with the acoustic pressure variation in the fluid. To account for the attenuation of the wave due to cavitation bubbles the modified wave number is used. To account for the chemical reactions, laminar reacting flow is assumed for the reactant mixture for which the Navier-Stokes equations and transport equation for dilute species is solved for the fluid. A logical reaction rate coupling model, which is dependent on the acoustic pressure and flow velocity, is used to evaluate the kinetics of the reaction, which are to be used as a judging factor for the reactor design.
机译:生物柴油是一种替代性的可持续燃料,可以减少对化石柴油的依赖。这种商品不仅在发达国家得到推广,而且在印度尼西亚,巴西和几个发展中县也得到了推广。通常,它是在酸性或碱性催化剂存在下,植物油或废食用油与醇进行酯交换反应的产物。这是一种缓慢的反应,通常在机械搅拌的分批过程中进行。在较短的时间内获得高收率质量的先进方法是在集成的连续过程中对反应进行声处理。超声处理在反应混合物中引起微空化。空化气泡的内部压力和温度分别高达1000 atm和5000K。这些气泡的剧烈破裂导致传质的极大增加,从而提高了反应速率。为了优化反应器的设计,追求高保真度建模辅助设计。这使得能够在耦合的声学反应性多物种流中有效整合反应物传输和超声处理效果。在这项工作中,考虑了一个圆柱形反应器,其中反应物混合物将通过超声焊极型超声设备进行循环和超声处理。为了模拟声处理效果,对流体域求解了线性,时间无关的波动方程,这为我们提供了流体中的声压变化。为了解决由于空化气泡引起的波衰减,使用了修改后的波数。为了说明化学反应,假定反应物混合物为层流反应流,针对该混合物,求解了流体的Navier-Stokes方程和稀物质的输运方程。取决于声压和流速的逻辑反应速率耦合模型用于评估反应动力学,该动力学将用作反应堆设计的判断因素。

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