Moving Particle Semi-implicit Method in Simulating Water-Oil Penetration
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Abstract
In this study, the simulation of water-oil penetration has been performed by using the MPS method. The MPS method has been utilized to simulate the two-dimensional water-oil penetration and to observe the interaction of those liquids. This water-oil penetration phenomenon can be applied to the case of nuclear reactors. This study was performed to observe the liquid flow motion and its interaction between two different immiscible liquids with experiment and simulation. The obtained results of MPS method show an acceptable agreement with the experiment results. Those obtained results explain that the MPS method used in this study has a good enough capability to simulate the water-oil penetration phenomenon, which can be implemented in analyzing the melted reactor core.
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[2] S. Koshizuka and Y. Oka, Application of moving particle semi-implicit method to nuclear reactor safety, Comput. Fluid Dyn. J. 9, 366, 2001.
[3] T. Kawahara and Y. Oka, Ex-vessel molten core solidification behavior by moving particle semi-implicit method, J. Nucl. Sci. Technol. 49, 1156, 2012.
[4] A. P. A. Mustari et al., 3D simulation of eutectic interaction of Pb-Sn system using Moving Particle Semi-implicit (MPS) method, Annals of Nuclear Energy 81, 26, 2015.
[5] M. Ilham, Y. Yulianto, and A. P. A. Mustari, Simulation on relocation of non-compressed fluid flow using Moving Particle Semi-Implicit (MPS) method, IOP Conf. Ser.: Mater. Sci. Eng. 407, 012100, 2018.
[6] Y. Yulianto et al., Moving Particle Semi-implicit (MPS) utilization in analyzing the stratification behavior of immiscible liquid, IOP Conf. Ser.: Mater. Sci. Eng. 407, 012189, 2018.
[7] G. Li et al., Study on melt behavior in a BWR lower head by MPS method and MELCOR code, Doctoral Thesis, Waseda University Graduate School of Advanced Science and Engineering, 2015.
[8] G. Li et al., Experiments and MPS analysis of stratification behavior of two immiscible fluids, Nucl. Eng. Des. 265, 210, 2013.