ISSN 2466-4677; e-ISSN 2466-4847
Evaluating spot welds of dissimilar metals via integrated mechanical testing and finite element modeling
Authors:
1Mechanical Engineering Department, College of Engineering, Mustansiriyah University, Baghdad 10052, Iraq
2Refrigeration & Air-condition Department, Technical Engineering College, The Islamic University, Najaf, Iraq
Received: 12 February 2025
Revised: 1 March 2025
Accepted: 18 March 2025
Published: 30 June 2025
Abstract:
This study investigates resistance spot welding of dissimilar materials, namely 37.2 carbon steel, 304 stainless steel, and commercial aluminium. The effect of welding parameters on nugget growth, tensile shear strength, and failure modes in various material combinations was investigated using a combined experimental and finite element modeling (FEM) approach. Experimental studies included a welding current range (5-15 kA) and time range (10-30 cycles), complemented by tensile testing and hardness measurements. It was observed that Carbon Steel-Stainless Steel (CS-SS) joints achieved the highest strength (9.5 kN at 9 kA), while aluminium-containing joints exhibited lower strengths but required higher optimal currents. Hardness profiles showed extensive variations across weld zones, particularly for aluminium-steel joints. Failure mode analysis showed a prevalence of pullout failures for CS-SS joints, in contrast to more interfacial failures in aluminium-steel combinations. A finite element model was developed and validated against experimental data, showing excellent predictive capability for nugget size and joint strength (R²>0.96). This study contributes to the development of dissimilar material welding by providing new insights into parameter optimization, failure mechanisms, and industrial application, particularly for automotive and aerospace industries.
Keywords:
Dissimilar Metals, Tensile shear strength, Failure modes, Finite element analysis, Welding parameters
References:
[1] K. Miyamoto, S. Nakagawa, C. Sugi, H. Sakurai, A. Hirose, Dissimilar joining of aluminum alloy and steel by resistance spot welding. SAE International Journal of Materials and Manufacturing, 2(1), 2009: 58–67. https://doi.org/10.4271/2009-01-0034
[2] M. Rashid, S. Fukumoto, J.B. Medley, J. Villafuerte, Y. Zhou, Influence of lubricants on electrode life in resistance spot welding of aluminum alloys. Welding Journal, 86, 2007: 62-70.
[3] Y. Yang, Z. Luo, Y. Zhang, J. Su, Dissimilar welding of aluminium to steel: A review. Journal of Manufacturing Processes, 110, 2024: 376–397. https://doi.org/10.1016/j.jmapro.2023.12.060
[4] M. Łomozik, A. Hernas, M.L. Zeman, Effect of welding thermal cycles on the structure and properties of simulated heat-affected zone areas in X10CrMoVNb9-1 (T91) steel at a state after 100,000h of operation. Materials Science and Engineering: A, 637, 2015: 82–88. https://doi.org/10.1016/j.msea.2015.04.009
[5] J. Dong, J. Hu, Z. Luo, Quality Monitoring of Resistance Spot Welding Based on a Digital Twin. Metals, 13(4), 2023: 697. https://doi.org/10.3390/met13040697
[6] K.P. Mehta, V.J. Badheka, A Review on Dissimilar Friction Stir Welding of Copper to Aluminum: Process, Properties, and Variants. Materials and Manufacturing Processes, 31(3), 2016: 233–254.
https://doi.org/10.1080/10426914.2015.1025971
[7] M. Winnicki, A. Małachowska, M. Korzeniowski, M. Jasiorski, A. Baszczuk, Aluminium to steel resistance spot welding with cold sprayed interlayer. Surface Engineering, 34(3), 2018: 235–242.
https://doi.org/10.1080/02670844.2016.1271579
[8] K. Mori, Y. Abe, T. Kato, Mechanism of superiority of fatigue strength for aluminium alloy sheets joined by mechanical clinching and self-pierce riveting. Journal of Materials Processing Technology, 212(9), 2012: 1900–1905. https://doi.org/10.1016/j.jmatprotec.2012.04.017
[9] L. Shi, J. Xue, J. Kang, A.S. Haselhuhn, H. Ghassemi-Armaki, B.E. Carlson, Fatigue behavior of three-sheet aluminum-steel dissimilar resistance spot welds for automotive applications. Procedia Structural Integrity, 51, 2023: 102–108. https://doi.org/10.1016/j.prostr.2023.10.074
[10] J. Liu, G. Xu, X. Gu, G. Zhou, Ultrasonic test of resistance spot welds based on wavelet package analysis. Ultrasonics, 56, 2015: 557–565. https://doi.org/10.1016/j.ultras.2014.10.013
[11] R. Verma, K.S. Arora, L. Sharma, R. Chhibber, Experimental investigation on resistance spot welding of dissimilar weld joints. Proceedings of the Institution of Mechanical Engineers, Part E: Journal of Process Mechanical Engineering, 235(2), 2020: 505–513. https://doi.org/10.1177/0954408920968351
[12] M. Pouranvari, Critical assessment 27: Dissimilar resistance spot welding of aluminium/steel: Challenges and opportunities. Materials Science and Technology, 33(15), 2017: 1705–1712.
https://doi.org/10.1080/02670836.2017.1334310
[13] X. Kong, Q. Yang, B. Li, G. Rothwell, R. English, X.J. Ren, Numerical study of strengths of spot-welded joints of steel. Materials & Design, 29(8), 2008: 1554–1561. https://doi.org/10.1016/j.matdes.2007.12.001
[14] A.S. Adkine, S.K. Biradar, A review of the effects of resistance spot welding on metallurgical and mechanical characteristics. Welding International, 39(2), 2025: 52–65.
https://doi.org/10.1080/09507116.2024.2419551
[15] P. Russo Spena, M. De Maddis, F. Lombardi, M. Rossini, Investigation on resistance spot welding of TWIP steel sheets. Steel Research International, 86(12), 2015: 1480–1489.
https://doi.org/10.1002/srin.201400336
[16] M. Pouranvari, S.P.H. Marashi, Critical review of automotive steels spot welding: process, structure and properties. Science and Technology of Welding and Joining, 18(5), 2013: 361–403.
https://doi.org/10.1179/1362171813Y.0000000120
[17] Z. Wan, H.-P. Wang, N. Chen, M. Wang, B.E. Carlson, Characterization of intermetallic compound at the interfaces of Al-steel resistance spot welds. Journal of Materials Processing Technology, 242, 2017: 12–23. https://doi.org/10.1016/j.jmatprotec.2016.11.017
[18] H. Zhang, J. Senkara, X. Wu, Suppressing cracking in resistance welding AA5754 by mechanical means. Journal of Manufacturing Science and Engineering, 124(1), 2002: 79–85. https://doi.org/10.1115/1.1418693
[19] S.K. Khanna, X. Long, 4 – Fatigue behavior of spot welded joints in steel sheets. In: X. Sun (ed.), Failure Mechanisms of Advanced Welding Processes. Woodhead Publishing, 2010: 65–100.
https://doi.org/10.1533/9781845699765.65
[20] L. Bogaerts, A. Dejans, M.G.R. Faes, D. Moens, A machine learning approach for efficient and robust resistance spot welding monitoring. Welding in the World, 67, 2023: 1923–1935.
https://doi.org/10.1007/s40194-023-01519-1
[21] S. Shin, D.-J. Park, J. Yu, S. Rhee, Resistance Spot Welding of Aluminum Alloy and Carbon Steel with Spooling Process Tapes. Metals, 9(4), 2019: 410. https://doi.org/10.3390/met9040410
[22] Y. Zhao, W. Wang, X. Wei, Optimization of Resistance Spot Welding with Inserted Strips via FEM and Response Surface Methodology. Materials, 14(23), 2021: 7489. https://doi.org/10.3390/ma14237489
[23] T. Matsukage, S. Sakurai, T. Traui, M. Iyota, Mechanical Properties of Resistance-Spot-Welded Joints of Aluminum Castings and Wrought Alloys. Engineering Proceedings, 43(1), 2023: 52.
https://doi.org/10.3390/engproc2023043052
[24] A.A.F. Ogaili, K.A. Mohammed, A.A. Jaber, A.E.S. Al, Automated wind turbines gearbox condition monitoring: A comparative study of machine learning techniques based on vibration analysis. FME Transactions, 52(3), 2024: 471–485. https://doi.org/10.5937/fme2403471O
[25] K.A. Mohammed, M.N.M. Al-Sabbagh, A.A.F. Ogaili, E.S. Al-Ameen, Experimental analysis of hot machining parameters in surface finishing of crankshaft. Journal of Mechanical Engineering Research and Developments, 43(4), 2020: 105–114.
[26] A.A.F. Ogaili, M.N. Hamzah, A.A. Jaber, Enhanced Fault Detection of Wind Turbine Using eXtreme Gradient Boosting Technique Based on Nonstationary Vibration Analysis. Journal of Failure Analysis and Prevention, 24, 2024: 877-895. https://doi.org/10.1007/s11668-024-01894-x
[27] S.A. Al-Haddad, M.Y. Fattah, T.K. Al-Azawi, L.A. Al-Haddad, Three-dimensional analysis of steel beam-column bolted connections. Open Engineering, 14(1), 2024: 20220579. https://doi.org/10.1515/eng-2022-0579
[28] M.Y. Fattah, L.A. Al-Haddad, M. Ayasrah, A.A. Jaber, S.A. Al-Haddad, Coupled Finite Element and Artificial Neural Network Analysis of Interfering Strip Footings in Saturated Cohesive Soils. Transportation Infrastructure Geotechnology, 11, 2024: 2168-2185. https://doi.org/10.1007/s40515-023-00369-0
[29] L.A. Al-Haddad, L. Ibraheem, A.I. EL-Seesy, A.A. Jaber, S.A. Al-Haddad, R. Khosrozadeh, Thermal Heat Flux Distribution Prediction in an Electrical Vehicle Battery Cell Using Finite Element Analysis and Neural Network. Green Energy and Intelligent Transportation, 3(3), 2024: 100155.
https://doi.org/10.1016/j.geits.2024.100155
[30] A.A.F. Ogaili, Q.S. Mahdi, E.S. Al-Ameen, A.A. Jaber, E.K. Njim, Finite-element investigations on the influence of material selection and geometrical parameters on dental implant performance. Curved and Layered Structures, 11(1), 2024: 20240015. https://doi.org/10.1515/cls-2024-0015
[31] Y. Wang, Z. Rao, F. Wang, Heat evolution and nugget formation of resistance spot welding under multi-pulsed current waveforms. The International Journal of Advanced Manufacturing Technology, 111, 2020: 3583–3595. https://doi.org/10.1007/s00170-020-06337-z
[32] A.A.F. Ogaili, M.N. Hamzah, A.A. Jaber, Free Vibration Analysis of a Wind Turbine Blade Made of Composite Materials. 17thInternational Middle Eastern Simulation and Modelling Conference – MESM 2022, 27 June 2022, Baghdad, Iraq, pp.203–209.
[33] P. Chigurupati, B.K. Chun, A. Bandar, W.T. Wu, Finite Element Modeling of Resistance Spot Welding Process. International Journal of Material Forming, 3, 2010: 991–994. https://doi.org/10.1007/s12289-010-0936-4
[34] H. Huang, H. Murakawa, A Selective Integration-Based Adaptive Mesh Refinement Approach for Accurate and Efficient Welding Process Simulation. Journal of Manufacturing and Materials Processing, 7(6), 2023: 206. https://doi.org/10.3390/jmmp7060206
[35] X. Sun, E.V. Stephens, M.A. Khaleel, H. Shao, M. Kimchi, Resistance Spot Welding of Aluminum Alloy to Steel with Transition Material — From Process to Performance — Part I: Experimental Study. Welding Journal, 2004: 188-195.
[36] O.S. Barrak, S. Ben-Elechi, S. Chatti, Parameters influence on mechanical properties of resistance spot welding: AISI304L/AISI1005. Pollack Periodica, 2024. https://doi.org/10.1556/606.2024.01142
[37] V.H. Baltazar Hernandez, S.K. Panda, Y. Okita, N.Y. Zhou, A study on heat affected zone softening in resistance spot welded dual phase steel by nanoindentation. Journal of Materials Science, 45, 2010: 1638–1647. https://doi.org/10.1007/s10853-009-4141-0
[38] M. Sun, S.T. Niknejad, H. Gao, L. Wu, Y. Zhou, Mechanical properties of dissimilar resistance spot welds of aluminum to magnesium with Sn-coated steel interlayer. Materials & Design, 91, 2016: 331–339. https://doi.org/10.1016/j.matdes.2015.11.121
[39] M. Ghosh, K. Kumar, R.S. Mishra, Analysis of microstructural evolution during friction stir welding of ultrahigh-strength steel. Scripta Materialia, 63(8), 2010: 851–854.
https://doi.org/10.1016/j.scriptamat.2010.06.032
[40] A.A.F. Ogaili, A. AbdulhadyJaber, M.N. Hamzah, Statistically Optimal Vibration Feature Selection for Fault Diagnosis in Wind Turbine Blade. International Journal of Renewable Energy Research, 13(3), 2023: 1082–1092. https://doi.org/10.20508/ijrer.v13i3.14096.g8782
[41] D.W. Zhao, Y.X. Wang, L. Zhang, P. Zhang, Effects of electrode force on microstructure and mechanical behavior of the resistance spot welded DP600 joint. Materials & Design, 50, 2013: 72–77.
https://doi.org/10.1016/j.matdes.2013.02.016
[42] M.M. Hamzah, O.S. Barrak, I.T. Abdullah, A.A. Hussein, S.K. Hussein, Process Parameters Influence the Mechanical Properties and Nugget Diameter of AISI 316 Stainless Steel During Resistance Spot Welding. International Journal of Applied Mechanics and Engineering, 29(2), 2024: 79–89.
https://doi.org/10.59441/ijame/186956
© 2025 by the authors. This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License (CC BY-NC 4.0)
How to Cite
K. Abdulkareem Mohammed, A.A.F. Ogaili, A.W. A. Taha, A.M. Alsayah, Evaluating Spot Welds of Dissimilar Metals via Integrated Mechanical Testing and Finite Element Modeling. Applied Engineering Letters, 10(2), 2025: 77-89.
https://doi.org/10.46793/aeletters.2025.10.2.2
More Citation Formats
Abdulkareem Mohammed, K., Ogaili, A.A.F., Taha, A.W. A., & Alsayah, A.M. (2025). Evaluating Spot Welds of Dissimilar Metals via Integrated Mechanical Testing and Finite Element Modeling. Applied Engineering Letters, 10(2), 77-89.
https://doi.org/10.46793/aeletters.2025.10.2.2
Abdulkareem Mohammed, Kamal, et al. “Evaluating Spot Welds of Dissimilar Metals via Integrated Mechanical Testing and Finite Element Modeling.“ Applied Engineering Letters, vol. 10, no. 2, 2025, pp. 77-89.
https://doi.org/10.46793/aeletters.2025.10.2.2
Abdulkareem Mohammed, Kamal, Ahmed Ali Farhan Ogaili, Abdul Wahab A. Taha, and Ahmed Mohsin Alsayah. 2025. “Evaluating Spot Welds of Dissimilar Metals via Integrated Mechanical Testing and Finite Element Modeling.“ Applied Engineering Letters, 10 (2): 77-89.
https://doi.org/10.46793/aeletters.2025.10.2.2
Abdulkareem Mohammed, K., Ogaili, A.A.F., Taha, A.W. A., and Alsayah, A.M. (2025). Evaluating Spot Welds of Dissimilar Metals via Integrated Mechanical Testing and Finite Element Modeling. Applied Engineering Letters, 10(2), pp. 77-89.
doi: 10.46793/aeletters.2025.10.2.2.
