Browse > Article
http://dx.doi.org/10.6111/JKCGCT.2016.26.5.209

Numerical analysis on foam reaction injection molding of polyurethane, Part A: Considering re-condensation of physical foam agent  

Han, HyukSu (Korea Institute of Industrial Technology, Korea Creative Industry & Engineering Center)
Nam, Hyun Nam (S&WISE Co. Ltd.)
Eun, Youngkee (Korea Institute of Industrial Technology, Korea Creative Industry & Engineering Center)
Lee, Su Yeon (Korea Institute of Industrial Technology, Korea Creative Industry & Engineering Center)
Nam, Jeongho (Korea Institute of Industrial Technology)
Ryu, Jeong Ho (Department of Materials Science and Engineering, Korea National University of Transportation)
Lee, Sung Yoon (S&WISE Co. Ltd.)
Kim, Jungin (Korea Institute of Industrial Technology, Korea Creative Industry & Engineering Center)
Abstract
Foam reaction injection molding (FRIM) is a widely used process for manufacturing polyurethane foam with complex shapes. Numerical model for polyurethane foam forming reaction during FRIM process has been intensively investigated by a number of researchers to precisely predict final shapes of polyurethane foams. In this study, we have identified a problem related with a previous theoretical model for polyurethane foam forming reaction. Thus, previous theoretical model was modified based on experimental and computational results.
Keywords
Reaction injection molding; Polyurethane foam; Numerical simulation;
Citations & Related Records
Times Cited By KSCI : 1  (Citation Analysis)
연도 인용수 순위
1 C. Kim and J.R. Youn, "Environmentally friendly processing of polyurethane foam for thermal insulation", Polymer-Plastics Technology and Engineering 39 (2000) 163.   DOI
2 M.S. Koo, K. Chung and J.R. Youn, "Reaction injection molding of polyurethane foam for improved thermal insulation", Polymer Engineering and Science 41 (2001) 1177.   DOI
3 W.H. Lee, S.W. Lee, T.J. Kang, K. Chung and J.R. Youn, "Processing of polyurethane/polystyrene hybrid foam and numerical simulation", Fibers and Polymers 3 (2002) 159.   DOI
4 S.A. Baser and D.V. Khakhar, "Modeling of the dynamics of R-11 blown polyurethane foam formation", Polymer Engineering & Science 34 (1994) 632.   DOI
5 S.A. Baser and D.V. Khakhar, "Modeling of the dynamics of water and R-11 blown polyurethane foam formation" Polymer Engineering & Science 34 (1994) 642.   DOI
6 D. Seo and J.R. Youn, "Numerical analysis on reaction injection molding of polyurethane foam by using a finite volume method", Polymer 46 (2005) 6482.   DOI
7 S.V. Patankar, "Numerical heat transfer and fuild flow", Heisphere, Washington D.C. (1980).
8 S.R. Mathur and J.Y. Murthy, "A pressure-based method for unstructured meshes" Numerical Heat Transfer Part B-Fundamentals 31 (1997) 195.   DOI
9 C.W. Hirt and B.D. Nichols, "Volume of fluid (VOF) method for the dynamics of free boundaries", Journal of Computational Physics 39 (1981) 201.   DOI
10 R. Tesser, M. Di Serio, A. Sclafani and E. Santacesaria, "Modeling of polyurethane foam formation" Journal of Applied Polymer Science 92 (2004) 1875.   DOI