Hardness Profile Prediction for a 4340 Steel Spline Shaft Heat Treated by Laser Using a 3D Modeling and Experimental Validation — Oak Academic Publishing
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Hardness Profile Prediction for a 4340 Steel Spline Shaft Heat Treated by Laser Using a 3D Modeling and Experimental Validation
Computer Science and Engineering Department, University of Quebec, Rimouski, Canada
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Computer Science and Engineering Department, University of Quebec, Rimouski, Canada
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Computer Science and Engineering Department, University of Quebec, Rimouski, Canada
1 Computer Science and Engineering Department, University of Quebec, Rimouski, Canada
2 Computer Science and Engineering Department, University of Quebec, Rimouski, Canada
3 Computer Science and Engineering Department, University of Quebec, Rimouski, Canada
Laser surface transformation hardening becomes one of the most effective processes used to improve wear and fatigue resistance of mechanical parts. In this process, the material physicochemical properties and the heating system parameters have significant effects on the characteristics of the hardened surface. To appropriately exploit the benefits presented by the laser surface hardening, it is necessary to develop a comprehensive strategy to control the process variables in order to produce desired hardened surface attributes without being forced to use the traditional and fastidious trial and error procedures. The paper presents a study of hardness profile predictive modeling and experimental validation for spline shafts using a 3D model. The proposed approach is based on thermal and metallurgical simulations, experimental investigations and statistical analysis to build the prediction model. The simulation of the hardening process is carried out using 3D finite element model on commercial software. The model is used to estimate the temperature distribution and the hardness profile attributes for various hardening parameters, such as laser power, shaft rotation speed and scanning speed. The experimental calibration and validation of the model are performed on a 3 kW Nd:Yag laser system using a structured experimental design and confirmed statistical analysis tools. The results reveal that the model can provide not only a consistent and accurate prediction of temperature distribution and hardness profile characteristics under variable hardening parameters and conditions but also a comprehensive and quantitative analysis of process parameters effects. The modelling results show a great concordance between predicted and measured values for the dimensions of hardened zones.
Goia, F. and de Lima, M. (2011) Surface Hardening of an AISI D6 Cold Work Steel Using a Fiber Laser. Journal of ASTM International, 8, 315-318. http://dx.doi.org/10.1520/JAI103210
Tobar, M.J., álvarez, C., Amado, J.M., Ramil, A., Saavedra, E. and Yáñez, A. (2006) Laser Transformation Hardening of a Tool Steel: Simulation-Based Parameter Optimization and Experimental Results. Surface and Coatings Technology, 200, 6362-6367. http://dx.doi.org/10.1016/j.surfcoat.2005.11.067
Komanduri, R. and Hou, Z.B. (2001) Thermal Analysis of the Laser Surface Transformation Hardening Process. International Journal of Heat and Mass Transfer, 44, 2845-2862. http://dx.doi.org/10.1016/S0017-9310(00)00316-1
Badkar, D.S., Pandey, K.S. and Buvanashekaran, G. (2011) Parameter Optimization of Laser Transformation Hardening by Using Taguchi Method and Utility Concept. The International Journal of Advanced Manufacturing Technology, 52, 1067-1077. http://dx.doi.org/10.1007/s00170-010-2787-z
Grum, J. and Kek, T. (2004) The Influence of Different Conditions of Laser-Beam Interaction in Laser Surface Hardening of Steels. Thin Solid Films, 453, 94-99. http://dx.doi.org/10.1016/j.tsf.2003.11.177
Kar, A. and Mazumder, J. (1989) Three-Dimensional Transient Thermal Analysis for Laser Chemical Vapor Deposition on Uniformly Moving Finite Slabs. Journal of Applied Physics, 65, 2923-2934. http://dx.doi.org/10.1063/1.342739
Ion, J. (2005) Laser Processing of Engineering Materials: Principles, Procedure and Industrial Application. Butterworth-Heinemann, Elsevier Butterworth-Heinemann, Burlington.
Komanduri, R. and Hou, Z.B. (2004) Thermal Analysis of Laser Surface Transformation Hardening Optimization of Process Parameters. International Journal of Machine Tools and Manufacture, 44, 991-1008. http://dx.doi.org/10.1016/j.ijmachtools.2004.01.011
Reséndiz-Flores, E.O. and Saucedo-Zendejo, F.R. (2015) Two-Dimensional Numerical Simulation of Heat Transfer with Moving Heat Source in Welding Using the Finite Pointset Method. International Journal of Heat and Mass Transfer, 90, 239-245. http://dx.doi.org/10.1016/j.ijheatmasstransfer.2015.06.023
Yang, J., Sun, S., Brandt, M. and Yan, W. (2010) Experimental Investigation and 3D Finite Element Prediction of the Heat Affected Zone during Laser Assisted Machining of Ti6Al4V Alloy. Journal of Materials Processing Technology, 210, 2215-2222. http://dx.doi.org/10.1016/j.jmatprotec.2010.08.007
Toyserkani, E., Khajepour, A. and Corbin, S. (2004) 3-D Finite Element Modeling of Laser Cladding by Powder Injection: Effects of Laser Pulse Shaping on the Process. Optics and Lasers in Engineering, 41, 849-867. http://dx.doi.org/10.1016/S0143-8166(03)00063-0
Safdar, S., Li, L. and Sheikh, M.A. (2007) Numerical Analysis of the Effects of Non-Conventional Laser Beam Geometries during Laser Melting of Metallic Materials. Journal of Physics D: Applied Physics, 40, 593-603. http://dx.doi.org/10.1088/0022-3727/40/2/039
Sheikh, M.A. and Li, L. (2010) Understanding the Effect of Non-Conventional Laser Beam Geometry on Material Processing by Finite-Element Modelling. Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science, 224, 1061-1072. http://dx.doi.org/10.1243/09544062jmes1745
Rozzi, J.C., Pfefferkorn, F.E., Incropera, F.P. and Shin, Y.C. (2000) Transient, Three-Dimensional Heat Transfer Model for the Laser Assisted Machining of Silicon Nitride: I. Comparison of Predictions with Measured Surface Temperature Histories. International Journal of Heat and Mass Transfer, 43, 1409-1424. http://dx.doi.org/10.1016/S0017-9310(99)00217-3
Patwa, R. and Shin, Y.C. (2007) Predictive Modeling of Laser Hardening of AISI5150H Steels. International Journal of Machine Tools and Manufacture, 47, 307-320. http://dx.doi.org/10.1016/j.ijmachtools.2006.03.016
Rozzi, J.C., Pfefferkorn, F.E., Incropera, F.P. and Shin, Y.C. (1998) Transient Thermal Response of a Rotating Cylindrical Silicon Nitride Workpiece Subjected to a Translating Laser Heat Source, Part I: Comparison of Surface Temperature Measurements with Theoretical Results. Journal of Heat Transfer, 120, 899-906. http://dx.doi.org/10.1115/1.2825909
Skvarenina, S. and Shin, Y.C. (2006) Predictive Modeling and Experimental Results for Laser Hardening of AISI 1536 Steel with Complex Geometric Features by a High Power Diode Laser. Surface and Coatings Technology, 201, 2256-2269. http://dx.doi.org/10.1016/j.surfcoat.2006.03.039
Orazi, L., Liverani, E., Ascari, A., Fortunato, A. and Tomesani, L. (2014) Laser Surface Hardening of Large Cylindrical Components Utilizing Ring Spot Geometry. CIRP Annals—Manufacturing Technology, 63, 233-236. http://dx.doi.org/10.1016/j.cirp.2014.03.052
Benedict, G.F. and Eskildsen, J. (1985) Method and Apparatus for Laser Gear Hardening. US Patent No. 4,539,461.
Zhang, H., Shi, Y., Xu, C.Y. and Kutsuna, M. (2003) Surface Hardening of Gears by Laser Beam Processing. Surface Engineering, 19, 134-136. http://dx.doi.org/10.1179/026708403225002595
Pretorius, T. and Vollertsen, F. (2009) Simulation of the Distortion Manipulation of Gear Wheel Teeth by Thermal Pre-Stressing. Materialwissenschaft und Werkstofftechnik, 40, 479-484. http://dx.doi.org/10.1002/mawe.200900480
Majumdar, J.D. and Manna, I. (2015) Laser Surface Engineering. In: Nee, A.Y.C., Eds., Handbook of Manufacturing Engineering and Technology, Springer, London, 2639-2676. http://dx.doi.org/10.1007/978-1-4471-4670-4_27
Kakhki, M.E., Kermanpur, A. and Golozar, M.A. (2009) Numerical Simulation of Continuous Cooling of a Low Alloy Steel to Predict Microstructure and Hardness. Modelling and Simulation in Materials Science and Engineering, 17, Article ID: 045007. http://dx.doi.org/10.1088/0965-0393/17/4/045007
Carlone, P., Palazzo, G.S. and Pasquino, R. (2010) Finite Element Analysis of the Steel Quenching Process: Temperature Field and Solid-Solid Phase Change. Computers & Mathematics with Applications, 59, 585-594. http://dx.doi.org/10.1016/j.camwa.2009.06.006
Yung, K.C. and Zhang, B. (2010) Analysis of Process Parameters of Laser Structuring with Taguchi Method. Applied Physics A, 101, 385-392. http://dx.doi.org/10.1007/s00339-010-5832-8
Mason, R.L., Gunst, R.F. and Hess, J.L. (2003) Statistical Design and Analysis of Experiments: With Applications to Engineering and Science. John Wiley & Sons, Hoboken.