NON-DIMENSIONAL DISTRIBUTION PATTERN ANALYSIS OF PARTICLE TRANSPORTATION IN SIMPLIFIED PIPELINE SYSTEM

Authors

  • Mohd Zamani Ngali University Tun Hussein Onn Malaysia, P.0 Box 101, Parit Raja, Johor, Malaysia
  • Kahar Osman Faculty of Mechanical and Manufacturing, Universiti Teknologi Malaysia, UTM Johor Bahru, Johor, Malaysia
  • Nazri Huzaimi Zakaria Faculty of Mechanical Engineering, University Teknikal Malaysia Melaka, Hang Tuah Jaya, Durian Tunggal, Melaka, Malaysia

DOI:

https://doi.org/10.11113/jt.v77.6316

Keywords:

Transportation, four-dimensional simulation, pipeline system

Abstract

Sustainable preservation of pipeline system that deal with particle transportation is more appealing these days. In petroleum industries for instance, sand transported through the pipelines pose serious problems ranging from blockage, corrosion, abrasion and reduction in pipe efficiency to loss of pipe integrity. Accurate four-dimensional simulation that caters the transient effect of the phenomena is used to promote sustainability in design, evaluation and maintenance procedures. This is employed to minimize conventional practices which are costly and inefficient. This work demonstrates the advantages of applying four-dimensional Splitting Fluid-Particle Solver to simulate particle transportation within a simplified pipeline system. Single-phase fluid with solid sphere particles are the assumptions while drift and gravitational forces are taken into account. Effect of fluid flow rate and particle weight alterations are observed within vertical curled and 2-1-2 segmental pipeline. Flow rate variation on multiple inputs shows that proper simulation is essential in order to predict fluid flow behavior prior to pipeline construction. Particle weight variation shows that simulation can lead to better prediction of potential areas of blockage, corrosion, abrasion and other piping system issues. This work proves that four-dimensional simulation can promote sustainability, cost effectiveness and efficiency of pipeline system management. 

References

Ngali, M. Z., N. H. Zakaria, O. Kahar, A. Khalid, B. Manshoor, and I. Zaman. 2014. Gravitational Effect Formulation on In-House Air-Particle Flow Solver. Applied Mechanics and Materials, Trans Tech Publications. Switzerland. 660: 699-703.

Karniadakis, G., M. Israeli, and S. Orszag. 1991. High-order Splitting Methods for the Incompressible Navier-Stokes Equations. Journal of Computational Physics. 97: 414-443.

Patankar, N. A., and D. D. Joseph. 2001. Modeling and Numerical Simulation of Particulate Flows By The Eulerian-Lagrangian Approach. International Journal of Multiphase Flow. 27(10): 1659-1684.

Kosinski, P., A. Kosinska, and A. C. Hoffmann. 2009. Simulation of Solid Particles Behaviour in a Driven Cavity Flow. Powder Technology Journal. 191: 327-339.

Tsorng, S. J., H. Capart, J. S. Lai, and D. L. Young. 2006. Three-dimensional Tracking of the Long Time Trajectories of Suspended Particles in a Lid-Driven Cavity Flow. Experiments in Fluids. 40: 314-328.

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Published

2015-11-17

How to Cite

NON-DIMENSIONAL DISTRIBUTION PATTERN ANALYSIS OF PARTICLE TRANSPORTATION IN SIMPLIFIED PIPELINE SYSTEM. (2015). Jurnal Teknologi, 77(12). https://doi.org/10.11113/jt.v77.6316