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Analytical solution of a heat transfer model for a tubular co-current diluted moving bed reactor with indirect heating and intraparticle gradients

机译:具有间接加热和骨盆梯度的管式助流稀释运动床反应器传热模型的分析解

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The understanding of the multiphase flow and the thermal behavior in moving beds is important for design and process optimization. Thus, in the present work, the heat transfer in a tubular moving bed reactor indirect heated by a flue gas is modeled, considering the thermal interactions: "conveyor fluid-flue gas", "conveyor fluidparticle", as well as the intraparticle heat transfer. The model is solved analytically by the powerful Self-Adjoint Operators Method (SAO), which allows the maximum maintenance of the physical characteristics of the problem. The consistency of this novel solution is shown through limiting solutions and comparison with simpler models: a lumped capacity model (LP), whose solution is independently obtained through the Laplace Transform Method, and an existing isothermal wall moving bed heat exchanger (MBHE) solution. For low particle Biot numbers systems, the LP and SAO solutions showed a very good agreement. The results also showed good validation of the solutions by comparing with experimental data. A numerical hybrid solution, through a combination of the Finite Difference Method (FD) and the Finite Analytical Method (FA), is also given and the comparison with the analytical solution shows excellent agreement. Finally, a scale analysis is proposed and performed. The scale analysis made it possible to assign a physical meaning to the model's parameters, to infer about the thermal behavior of the system, to evaluate the use of simpler models and to present semi-theoretical expressions for the maximum temperature difference into the particle and between particle surface and conveyor fluid, for systems with low Bip. (C) 2019 Elsevier B.V. All rights reserved.
机译:对移动床中的多相流和热行为的理解对于设计和过程优化是重要的。因此,在本作工作中,考虑热相互作用:“输送流体烟道气”,“输送机液体”,“输送机液体”,“输送机液体”以及粒前传热。该模型通过强大的自伴运算符(SAO)分析地解决,这允许最大限度地维护问题的物理特征。通过限制解决方案和与更简单的模型的比较示出了这种新型解决方案的一致性:集总容量模型(LP),其解决Laplace变换方法独立地获得,现有的等温壁移动床热交换器(MBHE)溶液。对于低粒子生物数据系统,LP和SAO解决方案表现出非常良好的一致性。结果还通过与实验数据进行比较,对解决方案进行了良好的验证。还给出了数控杂化解决方案,通过有限差分法(FD)和有限分析方法(FA)的组合,并与分析解决方案的比较显示了良好的一致性。最后,提出并进行了规模分析。规模分析使得可以将物理意义分配给模型的参数,以推断系统的热行为,以评估使用更简单的模型和将半理论表达呈现在颗粒中的最大温度差异的半理论表达式颗粒表面和输送液,用于低弯曲的系统。 (c)2019年Elsevier B.V.保留所有权利。

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