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Experimental validation of a new heat transfer intensification method for FCC external catalyst coolers

机译:用于FCC外催化剂冷却器的新型传热强化方法的实验验证

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In petroleum refining industry, external catalyst cooler is a key device in FCC units processing heavy residue feedstock. In this study, a new heat transfer intensification method was proposed for FCC external catalyst coolers, which aims to increase their bed-to-wall heat transfer coefficient by enhancing the internal solids mixing and thus the particle renewal on heat tube surface by a double-distributor design. To validate this idea, a large cold model with similar heat tube design and heat transfer mechanism to industrial catalyst coolers was built. Heat transfer coefficient and axial profiles of particle concentrations were measured under different operating conditions. The experimental results proved the feasibility of this heat transfer intensification idea. Higher bed-to-wall heat transfer coefficient, smaller fluidizing gas usage and higher adjustment flexibility are realizable in the new catalyst cooler. It is also learned from this study that uniform gas distribution, limited wall effect, good fluidization state are necessary to achieve good heat transfer performance in FCC external catalyst coolers. An effective height was speculated from the axial tube wall temperature distributions, within which the heat transfer intensification of the new catalyst cooler is effective. This effective height is also found to rise with increasing superficial gas velocity.
机译:在石油精炼工业中,外部催化剂冷却器是加工重质残留原料的FCC单位的关键装置。在该研究中,提出了一种新的传热强化方法,用于FCC外部催化剂冷却器,其目的是通过增强内固体混合,从而通过双重 - 热管表面上更新颗粒更新来增加床壁传热系数。经销商设计。为了验证这个想法,建造了一种具有类似热管设计和传热机制的大型冷模型,建造了工业催化剂冷却器。在不同的操作条件下测量颗粒浓度的传热系数和轴向谱。实验结果证明了这种传热强化理念的可行性。在新的催化剂冷却器中可实现更高的床到壁传热系数,较小的流化气体使用和更高的调节灵活性。从这项研究中还可以了解到,在FCC外部催化剂冷却器中实现良好的传热性能,均匀的气体分布,有限的壁效应,良好的流化状态是必要的。从轴向管壁温度分布推出有效高度,在此内的新型催化剂冷却器的热传递增强是有效的。还发现这种有效高度随着浅表气体速度的增加而上升。

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