Experimental investigation of the behavior of non-spherical particles in a small-scale gas-solid fluidized bed

被引:6
作者
Varghese, Mona Mary [1 ]
Devan, Chaithanya P. [1 ]
Masram, Samiksha M. [1 ]
Vakamalla, Teja Reddy [1 ]
机构
[1] Natl Inst Technol Calicut, Dept Chem Engn, Computat Multiphase Flow Lab, Calicut 673601, Kerala, India
关键词
Gas -solid fluidization; Non-spherical particles; Pressure drop; Solids holdup; Power spectral density; PHYSICAL-PROPERTIES; FLOW; REGIMES; DENSITY;
D O I
10.1016/j.flowmeasinst.2023.102493
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The present work examined the effect of particle shape on the fluidization behavior at different inlet superficial gas velocities. The experiments are performed in a laboratory-scale 3D circular fluidized bed column of 1 m height and 0.067 m inner diameter with Geldart D particles of four different shapes. The effect of particle shape on pressure drop, bed expansion, and solids holdup are analyzed. Non-spherical particles have lower minimum fluidization velocities and higher bed expansion than spherical particles. The shape of particles significantly impacts the solids holdup, and it has been observed that spherical particles exhibit a higher solids holdup at the same superficial velocity. The time series analysis of the pressure signals is investigated by the frequency domain method using the Fast Fourier Transform (FFT). The FFT is implemented in Matlab R2021b to obtain the Power Spectral Density (PSD). The analysis of the PSD pattern shows the flow regime transition with the change in the particle shape. PSD pattern has observed a broad range of frequencies between 1 and 5 Hz. The dominant frequency of around 3 Hz corresponds to the bubbles or slugs that pass the bed.
引用
收藏
页数:15
相关论文
共 49 条
[1]  
Arena U., 1986, Circulating Fluidized Bed Technology, P119
[2]   FLOW REGIME DIAGRAMS FOR GAS-SOLID FLUIDIZATION AND UPWARD TRANSPORT [J].
BI, HT ;
GRACE, JR .
INTERNATIONAL JOURNAL OF MULTIPHASE FLOW, 1995, 21 (06) :1229-1236
[3]   Experimental study on orientation and de-mixing phenomena of elongated particles in gas-fluidized beds [J].
Boer, L. ;
Buist, K. A. ;
Deen, N. G. ;
Padding, J. T. ;
Kuipers, J. A. M. .
POWDER TECHNOLOGY, 2018, 329 :332-344
[4]   Resolving dynamical features of fluidized beds from pressure fluctuations [J].
Brown, RC ;
Brue, E .
POWDER TECHNOLOGY, 2001, 119 (2-3) :68-80
[5]  
Cocco R, 2014, CHEM ENG PROG, V110, P21
[6]   Characterization of gas-solid flow in a cold fluidized bed from signals of a non-invasive electrical charge sensor [J].
dos Reis, Emerson ;
de Andrade, Matheus Ferreira Felix ;
Albuquerque, Giovani Martim ;
Pontes, Ruan Guilherme Bertoni ;
Frajuca, Carlos .
POWDER TECHNOLOGY, 2021, 382 :512-523
[7]   Effect of particle shape on the hydrodynamics of gas-solid fluidized bed [J].
Eppala, Venkata Charan Reddy ;
Varghese, Mona Mary ;
Vakamalla, Teja Reddy .
CHEMICAL ENGINEERING RESEARCH & DESIGN, 2023, 189 :461-473
[8]   Bed height and material density effects on fluidized bed hydrodynamics [J].
Escudero, David ;
Heindel, Theodore J. .
CHEMICAL ENGINEERING SCIENCE, 2011, 66 (16) :3648-3655
[9]   Time series analysis of pressure fluctuation in gas-solid fluidized beds [J].
Felipe, CAS ;
Rocha, SCS .
BRAZILIAN JOURNAL OF CHEMICAL ENGINEERING, 2004, 21 (03) :497-507
[10]   TYPES OF GAS FLUIDIZATION [J].
GELDART, D .
POWDER TECHNOLOGY, 1973, 7 (05) :285-292