Computational modelling of the complex dynamics of chemically blown polyurethane foam

被引:19
作者
Ireka, I. E. [1 ,2 ]
Niedziela, D. [1 ]
Schaefer, K. [3 ]
Troeltzsch, J. [3 ]
Steiner, K. [1 ]
Helbig, F. [3 ]
Chinyoka, T. [2 ]
Kroll, L. [3 ]
机构
[1] Fraunhofer Inst Ind Math, Kaiserslautern, Germany
[2] Univ Cape Town, Dept Math & Appl Math, ZA-7925 Cape Town, South Africa
[3] Tech Univ Chemnitz, Dept Mech Engn, Chemnitz, Germany
关键词
DIRECT 3D SIMULATION; NUMERICAL-SIMULATION; EXPANSION; POLYMER;
D O I
10.1063/1.4935788
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
This study presents computational analysis of the complex dynamics observed in chemically blown polyurethane foams during reaction injection molding process. The mathematical formulation introduces an experimentally motivated non-divergence free setup for the continuity equations which reflects the self expanding behaviour observed in the physical system. The foam growth phenomena which is normally initiated by adequate pre-mixing of necessary reactant polymers, leading to an exothermic polymerization reaction, bubble nucleation, and gas formation, is captured numerically. We assume the dependence of material viscosity on the degree of cure/polymerization, gas volume fraction, and temperature as well as non-dependence of mixture density on pressure. The set of unsteady nonlinear coupled partial differential equations describing the dynamics of the system are solved numerically for state variables using finite volume techniques such that the front of the flow is tracked with high resolution interface capturing schemes. Graphical representation of the foam volume fraction, evolution of foam heights, and temperature distributions is presented. Results from our simulations are validated with experimental data. These results show good quantitative agreement with observations from experiments. (C) 2015 AIP Publishing LLC.
引用
收藏
页数:16
相关论文
共 39 条
[1]  
Ashida Kaneyoshi., 2007, Polyurethane and Related Foams: Chemistry and Technology
[2]   MODELING OF THE DYNAMICS OF R-11 BLOWN POLYURETHANE FOAM FORMATION [J].
BASER, SA ;
KHAKHAR, DV .
POLYMER ENGINEERING AND SCIENCE, 1994, 34 (08) :632-641
[3]   Numerical simulation of 3D polyurethane expansion during manufacturing process [J].
Bikard, J. ;
Bruchon, J. ;
Coupez, T. ;
Silva, L. .
COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2007, 309 (1-3) :49-63
[4]   Numerical prediction of the foam structure of polymeric materials by direct 3D simulation of their expansion by chemical reaction based on a multidomain method [J].
Bikard, J ;
Bruchon, J ;
Coupez, T ;
Vergnes, B .
JOURNAL OF MATERIALS SCIENCE, 2005, 40 (22) :5875-5881
[5]   CURING AND HEAT-TRANSFER IN POLYURETHANE REACTION MOLDING [J].
BROYER, E ;
MACOSKO, CW ;
CRITCHFIELD, FE ;
LAWLER, LF .
POLYMER ENGINEERING AND SCIENCE, 1978, 18 (05) :382-387
[6]   A numerical strategy for the direct 3D simulation of the expansion of bubbles into a molten polymer during a foaming process [J].
Bruchon, J. ;
Coupez, T. .
INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN FLUIDS, 2008, 57 (08) :977-1003
[7]  
CASTRO JM, 1982, AICHE J, V28, P250, DOI 10.1002/aic.690280213
[8]  
Chadderton D., 1997, Building Services Engineering Spreadsheets, V1st
[9]   NUMERICAL SOLUTION OF NAVIER-STOKES EQUATIONS [J].
CHORIN, AJ .
MATHEMATICS OF COMPUTATION, 1968, 22 (104) :745-&
[10]   Linearizing convection terms in the Navier-Stokes equations [J].
DeBlois, BM .
COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 1997, 143 (3-4) :289-297