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Research Paper

Modelling of air entrainment during pouring of metal castings

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Pages 301-315 | Received 16 Dec 2016, Accepted 10 Mar 2017, Published online: 29 Mar 2017

References

  • Belden J, Ravela S, Truscott T, et al. Bubble fields in 3D (no glasses necessary). Abstract presented at: 64th Annual Meeting of the APS Division of Fluid Dynamics; 2011 November 20–22; Baltimore (MD).
  • Moraga FJ, Carrica PM, Drew DA, et al. A sub-grid air entrainment model for breaking bow waves and naval surface ships. Comput Fluids. 2008;37:281–298.10.1016/j.compfluid.2007.06.003
  • Ma J, Oberai AA, Drew DA, et al. A quantitative sub-grid air entrainment model for bubbly flows – plunging jets. Comput Fluids. 2010;39:77–86.10.1016/j.compfluid.2009.07.004
  • Shi F, Kirby JT, Ma G. Modeling quiescent phase transport of air bubbles induced by breaking waves. Ocean Model. 2010;35:105–117.10.1016/j.ocemod.2010.07.002
  • Xiang M, Cheung SCP, Tu JY, et al. A multi-fluid modelling approach for the air entrainment and internal bubbly flow region in hydraulic jumps. Ocean Eng. 2014;91:51–63.10.1016/j.oceaneng.2014.08.016
  • Ma J, Oberai AA, Drew DA, et al. A comprehensive sub-grid air entrainment model for RANS modeling of free-surface bubbly flows. J Comp Multiphase Flow. 2011;3:41–56.10.1260/1757-482X.3.1.41
  • Ma J, Oberai AA, Lahey RT, et al. Modeling air entrainment and transport in a hydraulic jump using two-fluid RANS and DES turbulence models. Heat Mass Transfer. 2011;47:911–919.10.1007/s00231-011-0867-8
  • Ma J, Oberai AA, Drew DA, et al. A two-way coupled polydispersed two-fluid model for the simulation of air entrainment beneath a plunging liquid jet. J Fluids Eng. 2012;134:101304.10.1115/1.4007335
  • Souders DT, Hirt CW. Proceedings of the world water and environmental resources congress: critical transitions in water and environmental resources management; 2004 June 27–July 1; Salt Lake City (UT); USA.
  • Flow3D, Santa Fe, (NM): Flow Science
  • Campbell J. Entrainment defects. Mater Sci Technol. 2006;22:127–145.
  • Lai NW, Griffiths WD, Campbell J. Proceedings of the 13th International Conference on Modeling of Casting, Welding and Advanced Solidification Processes X; 2003 May 25–30; Warrendale (PA): TMS.
  • Reilly C, Green NR, Jolly MR. The present state of modeling entrainment defects in the shape casting process. Appl Math Model. 2013;37:611–628.10.1016/j.apm.2012.04.032
  • Cuesta R, Delgado A, Maroto A, et al. Numerical modelling oxide entrainment in the filling of castings: the effect of the Weber number. JOM. 2006;58:62–65.10.1007/s11837-006-0229-z
  • Yang X, Huang X, Dai X, et al. Numerical modelling of entrainment of oxide film defects in filling of aluminium alloy castings. Int J Cast Met Res. 2004;17:321–331.10.1179/136404604225022748
  • Reilly C, Green NR, Jolly MR, et al. The modelling of oxide film entrainment in casting systems using computational modelling. Appl Math Model. 2013;37:8451–8466.10.1016/j.apm.2013.03.061
  • Yue Y. Modelling of the effects of entrainment defects on mechanical properties in Al–Si–Mg alloy castings [dissertation]. Birmingham (UK): University of Birmingham; 2014.
  • MAGMAsoft, MAGMA Gmbh, Aachen.
  • Hunt J. Turbulent structure and turbulent diffusion near gas–liquid interfaces. In: Brutsaert W, Jirka G, editors. Gas transfer at water surfaces. Dordrecht: Reidel; 1984. p. 67–82.10.1007/978-94-017-1660-4
  • Sene KJ. Air entrainment by plunging jets. Chem Eng Sci. 1988;43:2615–2623.10.1016/0009-2509(88)80005-8
  • Kobus H. Symposium on scale effects in modelling hydraulic structures; 1984 September 3–6; Stuttgart: Inst. Für Wasserbau. p. 1–10.
  • Ervine DA, McKeough E, Elsawy EW. Effect of turbulence intensity on the rate of air entrainment by plunging water jets. Proc Inst Civil Eng. 1980;69:425–445.
  • Campbell J. Complete casting handbook: metal casting processes, techniques and design. Oxford (UK): Butterworth-Heinemann; 2011.
  • Afsharpour M, Homayun B, Boutorabi SMA. Water modelling of effects of pouring basin and sprue geometry on entrance of air bubbles into mould. Mater Sci Technol. 2014;30:152–159.10.1179/1743284713Y.0000000335
  • Melendez AJ, Carlson KD, Beckermann C. Modelling of reoxidation inclusion formation in steel casting. Int J Cast Met Res. 2010;23:278–288.10.1179/136404610X12693537269976

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