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Investigation of the heat transfer intensification mechanism for a new fluidized catalyst cooler

机译:新型流化催化剂冷却器传热强化机理的研究

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摘要

A small cold model was employed to investigate the heat-transfer mechanism for a new fluidized catalyst cooler. Local heat-transfer coefficients (h) and tube surface hydrodynamics were systematically measured by a specially designed heat tube and an optical fiber probe. The higher total h further validated the feasibility of the heat transfer intensification method used in the new catalyst cooler, which indicated that the induced higher packet renewal frequency due to the nonuniform gas distribution played a dominant role in its increased hs. Strongest heat transfer intensification effect was located at r/R-w>0.8 below the heat transfer intensification height. The changes of the mean packet residence time in the radial and axial directions and with superficial gas velocity were all agreeable with the measured hs according to the packet renewal theory. This further demonstrated the feasibility of the experimental method for tube surface hydrodynamics. (c) 2015 American Institute of Chemical Engineers AIChE J, 61: 2415-2427, 2015
机译:采用小型冷模型研究新型流化催化剂冷却器的传热机理。通过专门设计的热管和光纤探头系统地测量了局部传热系数(h)和管表面流体动力学。较高的总h进一步证实了新型催化剂冷却器中采用的传热强化方法的可行性,这表明由于气体分布不均匀而引起的更高的包更新频率在其hs的增加中起了主导作用。最强的传热强化作用位于传热强化高度以下r / R-w> 0.8。根据小包更新理论,平均小包停留时间在径向和轴向的变化以及表观气体速度均与实测hs一致。这进一步证明了用于管表面流体动力学的实验方法的可行性。 (c)2015年美国化学工程师学会AIChE J,61:2415-2427,2015

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