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ANALYSIS OF THE CHAOTIC DYNAMICS OF A HIGH-FLUX CFB RISER USING SOLIDS CONCENTRATION MEASUREMENTS

机译:基于固体浓度测量的高通量CFB立管混沌动力学分析

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摘要

A high-flux circulating fluidized bed (CFB) riser (0.076-m I.D. and 10-m high) was operated in a wide range of operating conditions to study its chaotic dynamics, using FCC catalyst particles (d_p = 67 μm, ρ_p = 1500 kg·m~(-3)). Local solids concentration fluctuations measured using a reflective-type fiber optic probe were processed to determine chaotic invariants (Kolmogorov entropy and correlation dimension). Radial and axial profiles of the chaotic invariants at different operating conditions show that the core region exhibits higher values of the chaotic invariants than the wall region. Both invariants vary strongly with local mean solids concentration. The transition section of the riser exhibits more complex dynamics while the bottom and top sections exhibit a more uniform macroscopic and less-complex microscopic flow structure. Increasing gas velocity leads to more complex and less predictable solids concentration fluctuations, while increasing solids flux generally lowers complexity and increases predictability. Very high solids flux, however, was observed to increase the entropy.
机译:使用FCC催化剂颗粒(d_p = 67μm,ρ_p= 1500)在宽范围的运行条件下运行高通量循环流化床(CFB)立管(0.076-m ID,高10-m) kg·m〜(-3))。处理使用反射型光纤探头测量的局部固体浓度波动,以确定混沌不变量(Kolmogorov熵和相关维)。在不同的工作条件下,混沌不变量的径向和轴向轮廓表明,核心区域显示的混沌不变量的值比壁区域高。两个不变量随局部平均固体浓度变化很大。立管的过渡段表现出更复杂的动力学,而底部和顶部表现出更均匀的宏观和较不复杂的微观流动结构。气体速度的增加会导致更复杂且更难以预测的固体浓度波动,而增加固体通量通常会降低复杂性并提高可预测性。然而,观察到非常高的固体通量会增加熵。

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