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首页> 外文期刊>Advanced Powder Technology: The internation Journal of the Society of Powder Technology, Japan >Numerical simulation of a commercial FCC regenerator using Multiphase Particle-in-Cell methodology (MP-PIC)
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Numerical simulation of a commercial FCC regenerator using Multiphase Particle-in-Cell methodology (MP-PIC)

机译:利用多相粒子粒细胞方法的商业FCC再生器的数值模拟(MP-PIC)

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Catalyst regeneration process has recently been the subject of comprehensive research investigations focusing mainly on the chemistry of the regeneration while overlooking the bed hydrodynamics and its effects on the regeneration performance. For this purpose, an industrial Fluid Catalytic Cracking (FCC) regenerator is simulated using a Multi-Phase Particle-In-Cell (MP-PIC) approach. The simulation is performed using a three-dimensional regenerator design with complex internals in order to study bed hydrodynamics, thermal effects, and chemical kinetics. The numerical model is then used to study typical industrial issues linked to the operation of industrial regenerators such as erosion areas, standpipe drainage, and CO emission levels. It is noticed that total outlet gas flow exceeds total inlet flow due to the formation of coke combustion products, an undersized standpipe, and inefficient placement of the air distributor rings. Highest erosion occurs in the feed line and plate. A low-temperature column exists in the center of the unit, and the highest temperatures are outside of the diplegs in the periphery of the freeboard. Elevated CO levels are present in the outlet gas because of poorly designed air distributor rings and lower than optimal temperatures in the unit. These simulation results show the numerous modeling capabilities of the MP-PIC approach to identify possible performance and reliability issues of an industrial process. Some redesign proposals have been made to enhance the FCC regenerator operations. (C) 2017 The Society of Powder Technology Japan. Published by Elsevier B.V. and The Society of Powder Technology Japan. All rights reserved.
机译:催化剂再生过程最近是全面研究调查的主题,主要关注再生的化学性,同时俯瞰床流体动力学及其对再生性能的影响。为此目的,使用多相粒子 - 细胞(MP-PIC)方法模拟工业流体催化裂化器(FCC)再生器。使用三维再生器设计进行模拟,其中包含复杂的内部,以研究床流体动力学,热效应和化学动力学。然后使用数值模型研究与工业再生器的操作相关的典型工业问题,例如侵蚀区域,立管排水和共同发射水平。注意到,由于焦炭燃烧产物的形成,尺寸尺寸的立管和空气分配器环的低效放置,总出口气体流量超过总入口流量。进料管线和板中发生最高的侵蚀。在单元的中心存在低温柱,最高温度位于干舷外围的DIPLES之外。出口气体中存在升高的CO水平,因为设计不良的空气分配器环并低于装置中的最佳温度。这些仿真结果显示了MP-PIC方法的众多建模能力,以确定工业过程的可能性能和可靠性问题。已经进行了一些重新设计的建议,以提高FCC再生器操作。 (c)2017年日本粉末科技学会。由elsevier b.v发表。和日本粉末科技会。版权所有。

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