Simulation of Friction Stir Extrusion using Smoothed Particle Hydrodynamics (SPH)
Subject Areas :
advanced manufacturing technology
Mostafa Akbari
1
,
Mansour Hakimollahi
2
,
parviz Asadi
3
,
Hossein Rahimi Asiabaraki
4
1 - Department of Mechanical Engineering,
Technical and Vocational University (TVU), Tehran, Iran
2 - Ph.D. Gratuated , Department of Automotive Engineering
Iran University of Science and Technology
3 - Ph.D. Gratuated , Department of Automotive Engineering
Iran University of Science and Technology
4 - Department of Mechanical Engineering,
Technical and Vocational University (TVU), Tehran, Iran
Received: 2021-08-27
Accepted : 2022-01-05
Published : 2022-06-01
Keywords:
References:
Evans, W. T., Gibson, B. T., Reynolds, J. T., Strauss, A. M., and Cook, G. E., Friction Stir Extrusion: A New Process for Joining Dissimilar Materials, Manufacturing Letters, Vol. 5, 2015, pp. 25-8.
Buffa, G., Campanella, D., Fratini, L., and Micari, F., AZ31 Magnesium Alloy Recycling Through Friction Stir Extrusion process, International Journal of Material Forming, Vol. 9, 2016, pp. 613-8.
Akbari, M., Asadi, P., Behnagh, R. A., Modeling of Material Flow in Dissimilar Friction Stir Lap Welding of Aluminum and Brass Using Coupled Eulerian and Lagrangian Method, The International Journal of Advanced Manufacturing Technology, Vol. 113, 2021, pp. 721-34.
Akbari, M., Shojaeefard, M. H., Asadi, P., and Khalkhali, A., Wear Performance of A356 Matrix Composites Reinforced with Different Types of Reinforcing Particles, Journal of Materials Engineering and Performance, Vol. 26, 2017, pp. 4297-310.
Asadi, P., Akbari, M., Numerical Modeling and Experimental Investigation of Brass Wire Forming by Friction Stir Back Extrusion, The International Journal of Advanced Manufacturing Technology, 2021.
Dao, M. H., Lou, J., Simulations of Laser Assisted Additive Manufacturing by Smoothed Particle Hydrodynamics, Computer Methods in Applied Mechanics and Engineering, Vol. 373, 2021, pp. 113491.
Meier, C., Fuchs, S. L., Hart, A. J., and Wall, W. A., A Novel Smoothed Particle Hydrodynamics Formulation for Thermo-Capillary Phase Change Problems with Focus on Metal Additive Manufacturing Melt Pool Modeling, Computer Methods in Applied Mechanics and Engineering, Vol. 381, 2021, pp. 113812.
Zhang, C., Wang, J., Rezavand, M., Wu, D., and Hu, X., An Integrative Smoothed Particle Hydrodynamics Method for Modeling Cardiac Function, Computer Methods in Applied Mechanics and Engineering, Vol. 381, 2021, pp. 113847.
Fuchs, S. L., Meier, C., Wall, W. A., and Cyron, C. J., A Novel Smoothed Particle Hydrodynamics and Finite Element Coupling Scheme for Fluid–Structure Interaction: The Sliding Boundary Particle Approach, Computer Methods in Applied Mechanics and Engineering, Vol. 383, 2021, pp. 113922.
Lampropoulos, A. D., Manolakos, D. E., Application of SPH Method for Modeling of Metal Extrusion Process, Computational Particle Mechanics, 2021.
Bagheri, B., Abdollahzadeh, A., Abbasi, M., and Kokabi, A. H., Numerical Analysis of Vibration Effect on Friction Stir Welding by Smoothed Particle Hydrodynamics (SPH), The International Journal of Advanced Manufacturing Technology, Vol. 110, 2020, pp. 209-28.
Gingold, R. A., Monaghan, J. J., Smoothed Particle Hydrodynamics: Theory and Application to Non-Spherical Stars, Monthly Notices of the Royal Astronomical Society, Vol. 181, 1977, pp. 375-89.
Ansari, M. A., Abdi Behnagh, R., Numerical Study of Friction Stir Welding (FSW) Plunging Phase Using Smoothed Particle Hydrodynamics (SPH), Modelling and Simulation in Materials Science and Engineering, Vol. 27, 2019.
Bonet, J., Lok, T. S. L., Variational and Momentum Preservation Aspects of Smooth Particle Hydrodynamic Formulations, Computer Methods in Applied Mechanics and Engineering, Vol. 180, 1999, pp. 97-115.
Kajtar, J., Monaghan, J. J., SPH Simulations of Swimming Linked Bodies, Journal of Computational Physics, Vol. 227, 2008, pp. 8568-87.
Monaghan, J. J., Smoothed Particle Hydrodynamics, Reports on Progress in Physics, Vol. 68, 2005, pp. 1703-59.
Meyghani, B., Awang, M., Emamian, S., Nor, M., and Pedapati, S. R., A Comparison of Different Finite Element Methods in the Thermal Analysis of Friction Stir Welding (FSW), Metals, Vol. 7, 2017, pp. 450.
Chakrabarty, R., Song, J., A Modified Johnson-Cook Material Model with Strain Gradient Plasticity Consideration for Numerical Simulation of Cold Spray Process, Surface and Coatings Technology, Vol. 397, 2020, pp. 125981.
Balu Mahandiran, M., Vigneshkumar, M., Ashoka Varthanan, P., Abishek, S., Abdulriyazdeen, A., and Abilash, S., Investigation of Solid State Welding of Copper Nickel Alloy (Cu-Ni 90/10) Using FSW Process, IOP Conference Series: Materials Science and Engineering, Vol. 1145, 2021, pp. 012112.
Wang, X., Gao, Y., McDonnell, M., and Feng, Z., On the Solid-State-Bonding Mechanism in Friction Stir Welding., Extreme Mechanics Letters, Vol. 37, 2020, pp. 100727.
Akbari, M., Khalkhali, A., Keshavarz, S. M. E., and Sarikhani, E., Investigation of the Effect of Friction Stir Processing Parameters on Temperature and Forces of Al–Si Aluminum Alloys, Proceedings of the Institution of Mechanical Engineers, Part L: Journal of Materials: Design and Applications, Vol. 232, 2015, pp. 213-29.