Dynamics of flow macro-formation and its interference with liquid surface in mixing vessel with pitched blade impeller |
| |
Authors: | T. Br?ha P. Smolka M. Jahoda I. Fo?t |
| |
Affiliation: | aFaculty of Chemical Engineering, Institute of Chemical Technology, Prague, Technická 5, 166 28 Prague 6, Czech Republic;bFaculty of Mechanical Engineering, Czech Technical University in Prague, Technická 4, 166 07 Prague 6, Czech Republic |
| |
Abstract: | The paper deals with the experimental and theoretical study of flow pattern dynamics and their manifestation on the liquid surface in a flat bottomed cylindrical stirred vessel with inner diameter T = 0.29 m, filled with water to the height H = T. The vessel was stirred by down pumping a six-pitched blade impeller with pitch angle 45°, pumping downwards. Based on flow visualization in a vertical, and three horizontal planes, parameters describing flow macro-formation behaviour during its generation by the primary circulation loop, including the total time of flow macro-formation existence, were obtained. These experimental results were compared with the results calculated from a proposed theoretical model of flow macro-formation dynamics.In the next part of the contribution, the theoretical solution of quantitative expression for liquid surface swell dimensions is presented. The liquid swell is supposed to be an effect resulting from an interaction between the surface level and the flow macro-formation. The data obtained from the theoretical solution are compared with swell dimensions determined from the visual analysis of the liquid surface behaviour. Finally, the comparison of experimental and theoretical results is statistically analyzed and corresponding summaries are concluded. |
| |
Keywords: | Abbreviations: ARD, average relative difference BPF, blade passage frequency CB, confidence border CFD, computational fluid dynamics CI LL, confidence interval lower limit CI UL, confidence interval upper limit df, degree of freedom FMF, flow macro-formation LES, large eddy simulation MI, flow macro-instability PBT, pitched blade turbine PCL, primary circulation loop POD, proper orthogonal decomposition SD, standard deviation TKE, turbulent kinetics energy |
本文献已被 ScienceDirect 等数据库收录! |
|