Avoiding segregation during the loading of a catalyst-inert powder mixture in a packed micro-bed

被引:28
作者
van Herk, Daniel [1 ]
Castano, Pedro [1 ]
Quaglia, Massimiliano [1 ]
Kreutzer, Michiel T. [1 ]
Makkee, Michiel [1 ]
Moulijn, Jacob A. [1 ]
机构
[1] Delft Univ Technol, Fac Sci Appl, NL-2628 BL Delft, Netherlands
关键词
Gravity flow; Catalyst loading; Microreactor loading; PARTICLE-SIZE; FLOW; SOLIDS; PERFORMANCE; SEPARATION; DILUTION; REACTORS; BEHAVIOR; PACKING; FORCES;
D O I
10.1016/j.apcata.2009.06.003
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The optimal loading protocol of a microreactor (catalyst and inert: 0.1 mm, column: 2 mm internal diameter) with a catalyst-inert mixture is fundamentally different from that of a conventional lab-scale reactor (typical values: catalyst, 2 mm; inert, 0.2 mm; column, 10 mm internal diameter). This is shown to be due to segregation, occurring during loading. The following loading procedure has been used: premix the powders, funnel the mixture down, drop it within the reactor, and densify the bed. The average time a particle takes, from the mixing vial to reach its final position, depends on its properties, which in general results in an axially segregated bed. Radial segregation is observed for particles smaller than 60 mu m, as a result of electrostatic forces. This paper describes for each handling step how to minimise segregation during the loading of a catalyst-diluent solid mixture. This includes using a funnel with a low-friction and steep wall, minimising difference in velocity of particle-gravity flow, and adding more inert after the mixture, prior to the densification step. The term rho(p)d(p)(2) is shown to sufficiently predict segregation due to the velocity difference during gravity flow. Segregation can be observed relatively easily in a glass mock-up reactor. Optimising all the handling steps to minimise segregation results in a visually homogeneous bed. (C) 2009 Elsevier B.V. All rights reserved.
引用
收藏
页码:110 / 121
页数:12
相关论文
共 47 条
[1]   REPRODUCIBLE TECHNIQUE FOR PACKING LABORATORY-SCALE TRICKLE-BED REACTORS WITH A MIXTURE OF CATALYST AND FINES [J].
ALDAHHAN, MH ;
WU, YX ;
DUDUKOVIC, MP .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 1995, 34 (03) :741-747
[2]  
*ASTM, 2006, ASTM, pB329
[3]  
*ASTM, 2006, ASTM, pB527
[4]   Studies on the performance of a microscale trickle bed reactor using different sizes of diluent [J].
Bej, SK ;
Dabral, RP ;
Gupta, PC ;
Mittal, KK ;
Sen, GS ;
Kapoor, VK ;
Dalai, AK .
ENERGY & FUELS, 2000, 14 (03) :701-705
[5]   Shape separation on a rotating cone [J].
Beunder, EM ;
van Olst, KA ;
Rem, PC .
INTERNATIONAL JOURNAL OF MINERAL PROCESSING, 2002, 67 (1-4) :145-160
[6]   FUNDAMENTAL POWDER MIXING MECHANISMS [J].
BRIDGWATER, J .
POWDER TECHNOLOGY, 1976, 15 (02) :215-236
[7]   The relationship between attractive interparticle forces and bulk behaviour in dry and uncharged fine powders [J].
Castellanos, A .
ADVANCES IN PHYSICS, 2005, 54 (04) :263-376
[8]   THE DEFINITION AND MEASUREMENT OF SOME CHARACTERISTICS OF MIXTURES [J].
DANCKWERTS, PV .
APPLIED SCIENTIFIC RESEARCH SECTION A-MECHANICS HEAT CHEMICAL ENGINEERING MATHEMATICAL METHODS, 1952, 3 (04) :279-296
[9]   Microscopic measurements for the determination of particle size of pigments and powders [J].
Dunn, EJ .
INDUSTRIAL AND ENGINEERING CHEMISTRY-ANALYTICAL EDITION, 1930, 2 :0059-0062
[10]   Applications of electrical tomography for gas-solids and liquid-solids flows - a review [J].
Dyakowski, T ;
Jeanmeure, LFC ;
Jaworski, AJ .
POWDER TECHNOLOGY, 2000, 112 (03) :174-192