Fluidised bed agglomeration of particles with different glass transition temperatures

被引:33
作者
Aviles-Aviles, Carlos
Dumoulin, Elisabeth
Turchiuli, Christelle [1 ]
机构
[1] AgroParisTech, UMR Ingn Proc Aliments 1145, F-91300 Massy, France
关键词
Agglomeration; Fluidised bed; Growth mechanisms; Stickiness; GRANULATION; BEHAVIOR; BINDER;
D O I
10.1016/j.powtec.2014.03.026
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Fluidised bed agglomeration of particles consists in spraying liquid drops (water or binder solution) on the surface of particles, fluidised by hot air, in order to create sticky regions to allow formation of agglomerates when the sticky particles collide. Many parameters influence agglomerate growth, especially those controlling the particle circulation, and the water and temperature conditions within the bed that determine drying and particle stickiness linked to the glass transition of amorphous components and to the viscosity of moist zones at the particle surface. Maltodextrin DE12 and DE21 particles with different glass transition temperature domains were agglomerated in a batch bench scale fluidised bed, under constant mechanical constraints, changing the sprayed water feed rate and the fluidisation air temperature in order to investigate the influence of particle stickiness on agglomerate growth kinetics and mechanism. The two powders showed a different sensitivity to the water and temperature constraints applied. Whilst for maltodextrin DE12, the size and growth rate increased significantly with the sprayed water flow rate, only a small variation was observed for maltodextrin DE21. In both cases, agglomeration occurred in two stages: firstly, the association of initial particles and secondly the agglomeration of intermediate agglomerates into larger and more porous structures. The change from one growth mechanism to the other depended on the conditions, and influenced the size distribution and structure of agglomerates. (C) 2014 Elsevier B.V. All rights reserved.
引用
收藏
页码:445 / 452
页数:8
相关论文
共 21 条
[1]  
Aulton ME, 1981, INT J PHARM TECHNOL, V2, P24
[2]   Maltodextrin molecular weight distribution influence on the glass transition temperature and viscosity in aqueous solutions [J].
Avaltroni, F ;
Bouquerand, PE ;
Normand, V .
CARBOHYDRATE POLYMERS, 2004, 58 (03) :323-334
[3]   Relating the stickiness property of foods undergoing drying and dried products to their surface energetics [J].
Bhandari, B ;
Howes, T .
DRYING TECHNOLOGY, 2005, 23 (04) :781-797
[4]   Molecular characteristics of maltodextrins and rheological behaviour of diluted and concentrated solutions [J].
Dokic, P ;
Jakovevic, J ;
Dokic-Baucal, L .
COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 1998, 141 (03) :435-440
[5]   A MICROLEVEL-BASED CHARACTERIZATION OF GRANULATION PHENOMENA [J].
ENNIS, BJ ;
TARDOS, G ;
PFEFFER, R .
POWDER TECHNOLOGY, 1991, 65 (1-3) :257-272
[6]  
Gianfrancesco A., 2009, Ph.D. thesis.
[7]   New measurements of the sticky behavior of skim milk powder [J].
Hennigs, C ;
Kockel, TK ;
Langrish, TAG .
DRYING TECHNOLOGY, 2001, 19 (3-4) :471-484
[8]   Effect of operational conditions on the properties of pectin powder agglomerated in pulsed fluid bed [J].
Hirata, T. A. M. ;
Dacanal, G. C. ;
Menegalli, F. C. .
POWDER TECHNOLOGY, 2013, 245 :174-181
[9]   Particles agglomeration in a conical fluidized bed in relation with air temperature profiles [J].
Jimenez, Teresa ;
Turchiuli, Christelle ;
Dumoulin, Elisabeth .
CHEMICAL ENGINEERING SCIENCE, 2006, 61 (18) :5954-5961
[10]   Establishing temperature and humidity profiles in fluidized bed particulate coating [J].
Maronga, SJ ;
Wnukowski, P .
POWDER TECHNOLOGY, 1997, 94 (02) :181-185