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Erschienen in: International Journal of Material Forming 1/2019

13.03.2018 | Original Research

A simple and systematic scheme implemented in explicit FEM solver for surface tension effects in powder injection moulding process

verfasst von: Jianjun Shi, Thierry Barriere, Baosheng Liu, Zhiqiang Cheng

Erschienen in: International Journal of Material Forming | Ausgabe 1/2019

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Abstract

In order to simulate more accurately the powder injection moulding process, the explicit finite element method solver is extended with the surface tension effect. The evaluation of surface tension takes the notion of pressure boundary method, while a simple and systematic scheme is proposed to fit the finite element method solver for the Laplacian operator. Because of the difference in dimension for filling function and velocity function, the integration of filling function in second derivative is not suitable to be transformed into the boundary integration and the integration of function in lower order derivative. To evaluate conveniently the curvature of filling front, hence the force of surface tension, a simple and systematic scheme is suggested and implemented into the finite element method solver. This specific scheme includes only the vectorial operations in low cost, and is completely systematic without piecemeal operations. Fitness of the proposed method is proved by the numerical examples of filling flow in a small-scaled channel. It shows the considerable effect of surface tension for the problems in micro-scale of sub-millimeter sizes, in which the boundary conditions at front surface are not negligible in powder injection moulding process. The surface tension effect becomes the dominating role for governing the trace and shape of filling front, which can no longer be neglected.

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Literatur
1.
Zurück zum Zitat Sha B, Dimov S, Griffiths C, Packianather MS (2007) Investigation of micro-injection moulding: factors affecting the replication quality. J Mater Process Technol 183(2-3):284–296CrossRef Sha B, Dimov S, Griffiths C, Packianather MS (2007) Investigation of micro-injection moulding: factors affecting the replication quality. J Mater Process Technol 183(2-3):284–296CrossRef
2.
Zurück zum Zitat Foudzi FM, Muhamad N, Sulong AB, Zakaria H (2013) Yttria stabilized zirconia formed by micro ceramic injection molding: rheological properties and debinding effects on the sintered part. Ceram Int 39(3):2665–2674CrossRef Foudzi FM, Muhamad N, Sulong AB, Zakaria H (2013) Yttria stabilized zirconia formed by micro ceramic injection molding: rheological properties and debinding effects on the sintered part. Ceram Int 39(3):2665–2674CrossRef
3.
Zurück zum Zitat Cheng ZQ, Barriere T, Liu BS, Gelin JC (2009) A new explicit simulation for injection molding and its validation. Polym Eng Sci 49(6):1243–1252CrossRef Cheng ZQ, Barriere T, Liu BS, Gelin JC (2009) A new explicit simulation for injection molding and its validation. Polym Eng Sci 49(6):1243–1252CrossRef
4.
Zurück zum Zitat Cao W, Hassanger O, Wang Y (2008) Surface tension effect on micro-injection molding. Proceedings of the polymer processing society, 24th annual meeting, PPS 24, June 15–19. Salerno (Italy) Cao W, Hassanger O, Wang Y (2008) Surface tension effect on micro-injection molding. Proceedings of the polymer processing society, 24th annual meeting, PPS 24, June 15–19. Salerno (Italy)
5.
Zurück zum Zitat Kim DS, Lee K, Kwon TH, Lee SS (2002) Micro-channel filling flow considering surface tension effect. J Micromech Microeng 12:3 Kim DS, Lee K, Kwon TH, Lee SS (2002) Micro-channel filling flow considering surface tension effect. J Micromech Microeng 12:3
6.
Zurück zum Zitat Liovic P, Lakehal D (2012) Subgrid-scale modelling of surface tension within interface tracking-based large Eddy and interface simulation of 3D interfacial flows. Comput Fluids 63:27–46MathSciNetMATHCrossRef Liovic P, Lakehal D (2012) Subgrid-scale modelling of surface tension within interface tracking-based large Eddy and interface simulation of 3D interfacial flows. Comput Fluids 63:27–46MathSciNetMATHCrossRef
7.
Zurück zum Zitat Raessi M, Mostaghimi J, Bussmann M (2010) A volume-of-fluid interfacial flow solver with advected normals. Comput Fluids 39(8):1401–1410MathSciNetMATHCrossRef Raessi M, Mostaghimi J, Bussmann M (2010) A volume-of-fluid interfacial flow solver with advected normals. Comput Fluids 39(8):1401–1410MathSciNetMATHCrossRef
8.
Zurück zum Zitat Eyiyurekli M, Breen D (2010) Interactive free-form level-set surface-editing operators. Comput Graph 34(5):621–638CrossRef Eyiyurekli M, Breen D (2010) Interactive free-form level-set surface-editing operators. Comput Graph 34(5):621–638CrossRef
9.
Zurück zum Zitat Moelans N, Blanpain B, Wollants P (2008) An introduction to phase-field modeling of microstructure evolution. Calphad 32(2):268–294CrossRef Moelans N, Blanpain B, Wollants P (2008) An introduction to phase-field modeling of microstructure evolution. Calphad 32(2):268–294CrossRef
10.
Zurück zum Zitat Pianet G, Vincent S, Leboi J, Caltagirone JP, Anderhuber M (2010) Simulating compressible gas bubbles with a smooth volume tracking 1-fluid method. Int J Multiphase Flow 36(4):273–283CrossRef Pianet G, Vincent S, Leboi J, Caltagirone JP, Anderhuber M (2010) Simulating compressible gas bubbles with a smooth volume tracking 1-fluid method. Int J Multiphase Flow 36(4):273–283CrossRef
11.
Zurück zum Zitat Bourlioux AA (1995) A coupled level set volume of fluid algorithm for tracking material interfaces. In: Dwyer HA (ed) Proceedings of the sixth international symposium on computational fluid dynamics, Lake Tahoe, p 15–22 Bourlioux AA (1995) A coupled level set volume of fluid algorithm for tracking material interfaces. In: Dwyer HA (ed) Proceedings of the sixth international symposium on computational fluid dynamics, Lake Tahoe, p 15–22
12.
Zurück zum Zitat Sussman M, Puckett EG (2000) A coupled level set and volume-of-fluid method for computing 3D and axisymmetric incompressible two-phase flows. J Comput Phys 162(2):301–337MathSciNetMATHCrossRef Sussman M, Puckett EG (2000) A coupled level set and volume-of-fluid method for computing 3D and axisymmetric incompressible two-phase flows. J Comput Phys 162(2):301–337MathSciNetMATHCrossRef
13.
Zurück zum Zitat Son G, Hur N (2002) A couple level set and volume-of-fluid method for the buoyancy-driven motion of fluid particles. Numer Heat Transf B Fund 42(6):523–542CrossRef Son G, Hur N (2002) A couple level set and volume-of-fluid method for the buoyancy-driven motion of fluid particles. Numer Heat Transf B Fund 42(6):523–542CrossRef
14.
Zurück zum Zitat Ménard T, Tanguy S, Berlemont A (2007) Coupling level set/VOF/ghost fluid methods: validation and application to 3D simulation of the primary break-up of a liquid jet. Int J Multiphase Flow 33(5):510–524CrossRef Ménard T, Tanguy S, Berlemont A (2007) Coupling level set/VOF/ghost fluid methods: validation and application to 3D simulation of the primary break-up of a liquid jet. Int J Multiphase Flow 33(5):510–524CrossRef
15.
Zurück zum Zitat Abadie T, Aubin J, Legendre D (2015) On the combined effects of surface tension force calculation and interface advection on spurious currents within Volume of Fluid and Level Set frameworks. J Comput Phys 297:611–636MathSciNetMATHCrossRef Abadie T, Aubin J, Legendre D (2015) On the combined effects of surface tension force calculation and interface advection on spurious currents within Volume of Fluid and Level Set frameworks. J Comput Phys 297:611–636MathSciNetMATHCrossRef
16.
Zurück zum Zitat Li Q, Ou YJ, Yang B, Li X (2012) Numerical simulation of gas-assisted injection molding using CLSVOF method. Appl Math Model 36(5):2262–2274MATHCrossRef Li Q, Ou YJ, Yang B, Li X (2012) Numerical simulation of gas-assisted injection molding using CLSVOF method. Appl Math Model 36(5):2262–2274MATHCrossRef
17.
Zurück zum Zitat Sun DL, Tao WQ (2010) A coupled volume-of-fluid and level set (VOSET) method for computing incompressible two-phase flows. Int J Heat Mass Transf 53(4):645–655MATHCrossRef Sun DL, Tao WQ (2010) A coupled volume-of-fluid and level set (VOSET) method for computing incompressible two-phase flows. Int J Heat Mass Transf 53(4):645–655MATHCrossRef
18.
Zurück zum Zitat Shu CW, Osher S (1989) Efficient implementation of essentially non-oscillatory shock-capturing schemes, II. J Comput Phys 83(1):32–78MathSciNetMATHCrossRef Shu CW, Osher S (1989) Efficient implementation of essentially non-oscillatory shock-capturing schemes, II. J Comput Phys 83(1):32–78MathSciNetMATHCrossRef
19.
Zurück zum Zitat Lv X, Zou Q, Zhao Y, Reeve D (2010) A novel coupled level set and volume of fluid method for sharp interface capturing on 3D tetrahedral grids. J Comput Phys 229(7):2573–2604MathSciNetMATHCrossRef Lv X, Zou Q, Zhao Y, Reeve D (2010) A novel coupled level set and volume of fluid method for sharp interface capturing on 3D tetrahedral grids. J Comput Phys 229(7):2573–2604MathSciNetMATHCrossRef
20.
Zurück zum Zitat Hysing S (2012) Mixed element FEM level set method for numerical simulation of immiscible fluids. J Comput Phys 231(6):2449–2465MathSciNetMATHCrossRef Hysing S (2012) Mixed element FEM level set method for numerical simulation of immiscible fluids. J Comput Phys 231(6):2449–2465MathSciNetMATHCrossRef
21.
Zurück zum Zitat Dréau K, Chevaugeon N, Moës N (2010) Studied X-FEM enrichment to handle material interfaces with higher order finite element. Comput Method Appl Mech Eng 199(29-32):1922–1936MathSciNetMATHCrossRef Dréau K, Chevaugeon N, Moës N (2010) Studied X-FEM enrichment to handle material interfaces with higher order finite element. Comput Method Appl Mech Eng 199(29-32):1922–1936MathSciNetMATHCrossRef
22.
Zurück zum Zitat Yang X, James AJ, Lowengrub J, Zheng X, Cristini V (2006) An adaptive coupled level-set/volume-of-fluid interface capturing method for unstructured triangular grids. J Comput Phys 217(2):364–394MathSciNetMATHCrossRef Yang X, James AJ, Lowengrub J, Zheng X, Cristini V (2006) An adaptive coupled level-set/volume-of-fluid interface capturing method for unstructured triangular grids. J Comput Phys 217(2):364–394MathSciNetMATHCrossRef
23.
Zurück zum Zitat Macklin P, Lowengrub J (2006) An improved geometry-aware curvature discretization for level set methods: application to tumor growth. J Comput Phys 215(2):392–401MathSciNetMATHCrossRef Macklin P, Lowengrub J (2006) An improved geometry-aware curvature discretization for level set methods: application to tumor growth. J Comput Phys 215(2):392–401MathSciNetMATHCrossRef
24.
Zurück zum Zitat Ramšak M, Škerget L (2007) 3D multidomain BEM for solving the Laplace equation. Eng Anal Bound Elem 31(6):528–538MATHCrossRef Ramšak M, Škerget L (2007) 3D multidomain BEM for solving the Laplace equation. Eng Anal Bound Elem 31(6):528–538MATHCrossRef
25.
Zurück zum Zitat Trontin P, Vincent S, Estivalezes JL, Caltagirone JP (2012) A subgrid computation of the curvature by a particle/level-set method. Application to a front-tracking/ghost-fluid method for incompressible flows. J Comput Phys 231(20):6990–7010MathSciNetCrossRef Trontin P, Vincent S, Estivalezes JL, Caltagirone JP (2012) A subgrid computation of the curvature by a particle/level-set method. Application to a front-tracking/ghost-fluid method for incompressible flows. J Comput Phys 231(20):6990–7010MathSciNetCrossRef
26.
Zurück zum Zitat Rangogni R (1986) Numerical solution of the generalized Laplace equation by coupling the boundary element method and the perturbation method. Appl Math Model 10(4):266–270MathSciNetMATHCrossRef Rangogni R (1986) Numerical solution of the generalized Laplace equation by coupling the boundary element method and the perturbation method. Appl Math Model 10(4):266–270MathSciNetMATHCrossRef
27.
Zurück zum Zitat Meier M, Yadigaroglu G, Smith BL (2002) A novel technique for including surface tension in PLIC-VOF methods. Eur J Mech B Fluids 21(1):61–73MATHCrossRef Meier M, Yadigaroglu G, Smith BL (2002) A novel technique for including surface tension in PLIC-VOF methods. Eur J Mech B Fluids 21(1):61–73MATHCrossRef
28.
Zurück zum Zitat Raessi M, Mostaghimi J, Bussmann M (2007) Advecting normal vectors: a new method for calculating interface normals and curvatures when modeling two-phase flows. J Comput Phys 226(1):774–797MathSciNetMATHCrossRef Raessi M, Mostaghimi J, Bussmann M (2007) Advecting normal vectors: a new method for calculating interface normals and curvatures when modeling two-phase flows. J Comput Phys 226(1):774–797MathSciNetMATHCrossRef
29.
Zurück zum Zitat Tong AY, Wang Z (2007) A numerical method for capillarity-dominant free surface flows. J Comput Phys 221(2):506–523MATHCrossRef Tong AY, Wang Z (2007) A numerical method for capillarity-dominant free surface flows. J Comput Phys 221(2):506–523MATHCrossRef
30.
31.
Zurück zum Zitat Osher S, Sethian JA (1988) Fronts propagating with curvature-dependent speed: algorithms based on Hamilton-Jacobi formulations. J Comput Phys 79(1):12–49MathSciNetMATHCrossRef Osher S, Sethian JA (1988) Fronts propagating with curvature-dependent speed: algorithms based on Hamilton-Jacobi formulations. J Comput Phys 79(1):12–49MathSciNetMATHCrossRef
32.
Zurück zum Zitat Cheng ZQ, Barriere T, Liu B, Gelin JC (2012) A vectorial algorithm with finite element method for prediction of powder segregation in metal injection molding. Int J Numer Methods Fluids 70(10):1290–1304MathSciNetCrossRefMATH Cheng ZQ, Barriere T, Liu B, Gelin JC (2012) A vectorial algorithm with finite element method for prediction of powder segregation in metal injection molding. Int J Numer Methods Fluids 70(10):1290–1304MathSciNetCrossRefMATH
33.
Zurück zum Zitat Denner F, Evrad F, van Wechem BGM (2017) Artificial viscosity model to mitigate numerical artefacts at fluid interfaces with surface tension. Comput Fluids 143:59–72MathSciNetCrossRef Denner F, Evrad F, van Wechem BGM (2017) Artificial viscosity model to mitigate numerical artefacts at fluid interfaces with surface tension. Comput Fluids 143:59–72MathSciNetCrossRef
34.
Zurück zum Zitat Dağ İ, Canıvar A, Şahin A (2011) Taylor–Galerkin and Taylor-collocation methods for the numerical solutions of Burgers’ equation using B-splines. Commun Nonlinear Sci Numer Simulat 16(7):2696–2708MathSciNetMATHCrossRef Dağ İ, Canıvar A, Şahin A (2011) Taylor–Galerkin and Taylor-collocation methods for the numerical solutions of Burgers’ equation using B-splines. Commun Nonlinear Sci Numer Simulat 16(7):2696–2708MathSciNetMATHCrossRef
35.
Zurück zum Zitat Li CT, Lai FC (2010) Visualization of the surface tension and gravitational effects on flow injection in center-gated disks. Int Commun Heat Mass Transfer 37(3):230–233 Li CT, Lai FC (2010) Visualization of the surface tension and gravitational effects on flow injection in center-gated disks. Int Commun Heat Mass Transfer 37(3):230–233
Metadaten
Titel
A simple and systematic scheme implemented in explicit FEM solver for surface tension effects in powder injection moulding process
verfasst von
Jianjun Shi
Thierry Barriere
Baosheng Liu
Zhiqiang Cheng
Publikationsdatum
13.03.2018
Verlag
Springer Paris
Erschienen in
International Journal of Material Forming / Ausgabe 1/2019
Print ISSN: 1960-6206
Elektronische ISSN: 1960-6214
DOI
https://doi.org/10.1007/s12289-018-1412-9

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