Influence of Machining Parameter on Tool Life While Machining Hybrid Metal Matrix Composites
- 1 Department of Mechanical Engineering, Global Academy of Technology, Bengaluru, India
- 2 Department of Mechanical Engineering, Global Academy of Technology, Bengaluru, India
- 3 Department of Mechanical Engineering, Global Academy of Technology, Bengaluru, India
- 4 Department of Mechanical Engineering, Global Academy of Technology, Bengaluru, India
- 5 Department of Mechanical Engineering, Global Academy of Technology, Bengaluru, India
- 6 Department of Mechanical Engineering, Dayananda Sagar University, Bangalore, India
Abstract
A metal matrix composite constitutes a continuous metallic matrix and a discontinuous phase known as reinforcement. The hybrid metal matrix composites (Hmmcs) have been used to manufacture drive shafts, disc brake rotors, brake drums, connecting rods pistons, engine block cylinder liners for automotive and rail vehicle applications. The Hmmcs castings of diameter 120 mm and length 300 mm were prepared through sand mould technique following stir casting methodology. The cast components further subjected to evaluation of physical properties and machining tests using two grades of coated inserts and PCD inserts. The experiments were carried out following ISO 3685 standards. The coating thickness of the TiN coated and TiAlN coated inserts were measured using Kalo testing method ; the results of the test show that the interface of the substrate and coating was free from the porosity, and the coating thickness of TiN coating was 4.84 microns and TiAlN coating was measured 4.6 microns. The results of the experiments show that performance of the PCD insert was better than coated inserts at 0.1 mm/rev feed ; however at 0.2 mm/revolution feed PCD insert failed by micro chipping of cutting edge while machining Hmmcs. When TiAlN coated inserts were used to machine Hmmcs the coated inserts failed by gradual wear and BUE formation.
- Surappa, M.K. (2003) Aluminium Matrix Composites: Challenges and Opportunities. Sadhana, 28, 319-334. https://doi.org/10.1007/BF02717141
- Rohatagi, P.K., Weiss, D. and Gupta, N. (2006) Applications of Fly Ash in Synthesizing Low-Cost MMCs for Automotive and Other Applications. JOM, 58, 71-76. https://doi.org/10.1007/s11837-006-0232-4
- Dursan, T. and Soutis, C. (2014) Recent Developments in Advanced Aircraft Aluminium Alloys. Materials and Design, 56, 862-871. https://doi.org/10.1016/j.matdes.2013.12.002
- Jha, A.K., Sreekumar, K. and Sinha, P.P. (2010) Cracking of Aluminium Alloy Valve Body Used in Altitude Control of Satellite Launch Vehicle—A Metallurgical Investigation. Engineering Failure Analysis, 17, 1051-1061. https://doi.org/10.1016/j.engfailanal.2009.12.004
- Peters, M. and Leyens, C. Aerospace and Space Materials. Material Science and Engineering Vol. III.
- Auradi, V., Rajesh, G.L. and Kori, S.A. (2014) Preparation of and Evaluation of Mechanical Properties of 6061Al-B4Cp Composites Produced via Two-Stage Melt Stirring. Materials and Manufacturing Processes, 29, 194-200. https://doi.org/10.1080/10426914.2014.892617
- Hashim, J., Looney, L. and Hashmi, M.S.J. (1999) Metal Matrix Composites: Production by the Stir Casting Method. Journal of Materials Processing Technology, 92-93, 1-7. https://doi.org/10.1016/S0924-0136(99)00118-1
- Balasivanandha Prabhu, S., Karunamoorthy, L., Kathiresan, S. and Mohan, B. (2006) Influence of Stirring Speed and Stirring Time on Distribution of Particles in Cast Metal Matrix Composite. Journal of Materials Processing Technology, 171, 268-273. https://doi.org/10.1016/j.jmatprotec.2005.06.071
- Thomas, A.T., et al. (2014) Development of Feeding & Stirring Mechanisms for Stir Casting of Aluminium Matrix Composites. Procedia Materials Science, 5, 1182-1191. https://doi.org/10.1016/j.mspro.2014.07.415
- Shanmughasundaram, P., Subramanian, R. and Prabhu, G. (2011) Some Studies on Aluminium—Fly Ash Composites Fabricated by Two Step Stir Casting Method. European Journal of Scientific Research, 63, 204-218.
- Mahendra, K.V. and Radhakrishna, K. (2007) Fabrication of Al-4.5% Cu Alloy with Fly Ash Metal Matrix Momposites and Its Characterization. Materials Science—Poland, 25, 57-68.
- Palanikumar, K. and Karthikeyen, R. (2006) Optimal Machining Conditions for Turning of Particulate Metal Matrix Composites Using Taguchi and Response Surface Methodologies. Machining Science and Technology, 10, 417-433. https://doi.org/10.1080/10910340600996068