1 |
Dixon A G, Taskin M E, Nijemeisland M, et al. CFD method to couple three-dimensional transport and reaction inside catalyst particles to the fixed bed flow field [J]. Industrial and Engineering Chemistry Research, 2010, 49(19): 9012-9025.
|
2 |
Peng H, Dong H H, Ling X. Thermal investigation of PCM-based high temperature thermal energy storage in packed bed [J]. Energy Conversion and Management, 2014, 81: 420-427.
|
3 |
Zhu Q B, Xuan Y M. Pore scale numerical simulation of heat transfer and flow in porous volumetric solar receivers [J]. Applied Thermal Engineering, 2017, 120: 150-159.
|
4 |
Calis H P A, Nijenhuis J, Paikert B C, et al. CFD modelling and experimental validation of pressure drop and flow profile in a novel structured catalytic reactor packing [J]. Chemical Engineering Science, 2001, 56(4): 1713-1720.
|
5 |
Guo X Y, Dai R. Numerical simulation of flow and heat transfer in a random packed bed [J]. Particuology, 2010, 8(3): 293-299.
|
6 |
Gorman J M, Zheng A, Sparrow E M. Bounding wall effects on fluid flow and pressure drop through packed beds of spheres [J]. Chemical Engineering Journal, 2019, 373: 519-530.
|
7 |
Kim M H, Lim H S, Lee W J. Computational fluid dynamics assessment of the local hot core temperature in a pebble-bed type very high temperature reactor [J]. Journal of Engineering for Gas Turbines and Power, 2009, 131(1): 012905.
|
8 |
Yang J, Wang Q W, Zeng M, et al. Computational study of forced convective heat transfer in structured packed beds with spherical or ellipsoidal particles [J]. Chemical Engineering Science, 2010, 65(2): 726-738.
|
9 |
Yang J, Wang J, Bu S S, et al. Experimental analysis of forced convective heat transfer in novel structured packed beds of particles [J]. Chemical Engineering Science, 2012, 71(13): 126-137.
|
10 |
Crevacore E, Tosco T, Sethi R, et al. Recirculation zones induce non-Fickian transport in three-dimensional periodic porous media [J]. Physical Review E, 2016, 94(5): 053118.
|
11 |
Romkes S J P, Dautzenberg F M, van den Bleek C M, et al. CFD modelling and experimental validation of particle-to-fluid mass and heat transfer in a packed bed at very low channel to particle diameter ratio [J]. Chemical Engineering Journal, 2003, 96(1/2/3): 3-13.
|
12 |
Wang J Y, Yang J, Cheng Z L, et al. Experimental and numerical study on pressure drop and heat transfer performance of grille-sphere composite structured packed bed [J]. Applied Energy, 2018, 227: 719-730.
|
13 |
Hu Y X, Wang J Y, Yang J, et al. Experimental study of forced convective heat transfer in grille-particle composite packed beds [J]. International Journal of Heat and Mass Transfer, 2019, 129: 103-112.
|
14 |
Seguin D, Montillet A, Comiti J. Experimental characterisation of flow regimes in various porous media (I): Limit of laminar flow regime [J]. Chemical Engineering Science, 1998, 53(21): 3751-3761.
|
15 |
Bu S S, Yang J, Dong Q T, et al. Experimental study of transition flow in packed beds of spheres with different particle sizes based on electrochemical microelectrodes measurement [J]. Applied Thermal Engineering, 2014, 73(2): 1525-1532.
|
16 |
Dixon A G, Nijemeisland M, Stitt E H. Packed tubular reactor modeling and catalyst design using computational fluid dynamics [J]. Advances in Chemical Engineering, 2006, 31: 307-389.
|
17 |
Ergun S. Fluid flow through packed columns [J]. Chemical Engineering Progress, 1952, 48(2): 89-94.
|
18 |
Wakao N, Kagei S N. Heat and mass transfer in packed beds [J]. AIChE Journal, 1983, 1(2): 193-199.
|