Research Article
BibTex RIS Cite
Year 2025, Volume: 43 Issue: 1, 96 - 106, 28.02.2025

Abstract

References

  • REFERENCES
  • [1] Elitas M. Effects of welding parameters on tensileproperties and fracture modes of resistance spot welded DP1200 steel. Mater Test 2021;63:124–130. [CrossRef]
  • [2] Elitas M. Investigation of the fatigue behaviors of resistance spot welded advanced high strength automotive sheet steels (Doctorial thesis). Karabuk: Karabuk University; 2018. [Turkish]
  • [3] Maggi S, Scavino G. Fatigue characterization of automotive steel sheets. 11th International Conference on Fracture, Torino, Italy, vol. 1, 2005, p. 522–1.
  • [4] Elitas M, Demir B. Residual stress evaluation during RSW of DP600 sheet steel. Mater Test 2020;62:888– 890. [CrossRef]
  • [5] Akulwar S, Akela A, Kumar DS, Ranjan M. Resistance spot welding behavior of automotive steels. Trans Indian Inst Metals 2021;74:601–609. [CrossRef]
  • [6] Rao SS, Arora KS, Sharma L, Chhibber R. Investigations on mechanical behaviour and failure mechanism of resistance spot-welded DP590 steel using artificial neural network. Trans Indian Inst Metals 2021;74:1419–1438. [CrossRef]
  • [7] Elitas M, Demir B. The effects of the welding parameters on tensile properties of RSW junctions of DP1000 sheet steel. Eng Technol Appl Sci Res 2018;8:3116–3120. [CrossRef]
  • [8] Hayat F, Demir B, Acarer M. Tensile shear stress and microstructure of low-carbon dual-phase Mn-Ni steels after spot resistance welding. Metal Sci Heat Treat 2007;49:484–489. [CrossRef]
  • [9] Baskoro AS, Muzakki H, Kiswanto G, Winarto W. Mechanical properties and microstructures on dissimilar metal joints of stainless steel 301 and aluminum alloy 1100 by micro-resistance spot welding. Trans Indian Inst Metals 2019;72:487–500. [CrossRef]
  • [10] Elitas M. Effects of welding parameters on tensile properties and failure modes of resistance spot welded DC01 steel. Proceed Inst Mech Eng Part E J Process Mech Eng 2023;37:1607–1616. [CrossRef]
  • [11] Shamsujjoha M, Enloe CM, Chuang AC, Coryell JJ, Ghassemi-Armaki H. Mechanisms of paint bake response in resistance spot-welded first and third generation AHSS. Materialia 2021;15:100975. [CrossRef]
  • [12] Onn IH, Ahmad N, Tamin MN. Fatigue characteristics of dual-phase steel sheets. JMech Sci Technol 2015;29:51–57. [CrossRef]
  • [13] Pal TK, Bhowmick K. Resistance spot welding characteristics and high cycle fatigue behavior of DP 780 steel sheet. J Mater Eng Perform 2012;21:280–285. [CrossRef]
  • [14] Oh G, Akiniwa Y. Bending fatigue behavior and microstructure in welded high-strength bolt structures. Proceed Inst Mech Eng C J Mech Eng Sci 2019;233:3557–3569. [CrossRef]
  • [15] Alzahougi A, Elitas M, Demir B. RSW Junctions of advanced automotive sheet steel by using different electrode pressures. Eng Technol Appl Sci Res 2018;8:3492–3495. [CrossRef]
  • [16] Khan MI, Kuntz ML, Biro E, Zhou Y. Microstructure and mechanical properties of resistance spot welded advanced high strength steels. Mater Trans 2008;49:1629–1637. [CrossRef]
  • [17] Ma C, Chen DL, Bhole SD, Boudreau G, Lee A, Biro E. Microstructure and fracture characteristics of spot-welded DP600 steel. Mater Sci Eng A 2008;485:334–346. [CrossRef]
  • [18] Pouranvari M, Marashi SPH. Critical review of automotive steels spot welding: process, structure and properties. Sci Technol Weld Join 2013;18:361–403. [CrossRef]
  • [19] Soomro IA, Pedapati SR, Awang M, Alam MA. Effects of double pulse welding on microstructure, texture, and fatigue behavior of DP590 steel resistance spot weld. Int J Adv Manuf Technol 2023;125:1271–1287. [CrossRef]
  • [20] Janardhan G, Dutta K, Mukhopadhyay G. Influence of work hardening on tensile and fatigue behavior of resistance spot-welded dual-phase steel. J Mater Eng Perform 2023;32:624–637. [CrossRef]
  • [21] Kishore K, Kumar P, Mukhopadhyay G. Microstructure, tensile and fatigue behaviour of resistance spot welded zinc coated dual phase and interstitial free steel. Metals Mater Int 2022;4:945– 965. [CrossRef]
  • [22] Ghanbari HR, Shariati M, Sanati E, Nejad RM. Effects of spot welded parameters on fatigue behavior of ferrite-martensite dual-phase steel and hybrid joints. Eng Fail Anal 2022;134:106079. [CrossRef]
  • [23] Xie L, Shi B, Xiao Z, Ren J, Li D. Fatigue characteristics of dp780 steel spot welding joints with different static fracture modes. Mater Trans 2021;62:191–197. [CrossRef]
  • [24] Ordoñez JH, Ambriz RR, García C, Plascencia G, Jaramillo D. Overloading effect on the fatigue strength in resistance spot welding joints of a DP980 steel. Int J Fatigue 2019;121:163–171. [CrossRef]
  • [25] Ordoñez Lara JH, Ambriz RR, García C, Plascencia G, Jaramillo D. Fatigue Life of Resistance Spot Welding on Dual-Phase Steels. In: Ambriz RR, Jaramillo D, Plascencia G, Nait Abdelaziz M, editors. Proceedings of the 17th International Conference on New Trends in Fatigue and Fracture, Cham: Springer International Publishing; 2018, p. 225–236. [CrossRef]
  • [26] Kumar KS, Ravikanth TN, Prashanth B, Sandeep CS. Experimental investigation on spot welding of mild, cold rolled steel and galvanised iron sheets. Int J Mech Eng Technol 2017;8:574–580.
  • [27] Babalık FC, Çavdar K. Machine Elements and Construction Examples. Bursa: DORA Publishing; 2013.
  • [28] Hambling SJ, Jones TB, Fourlaris G. Influence of steel strength and loading mode on fatigue properties of resistance spot welded H beam components. Mater Sci Technol 2004;20:1143–1150. [CrossRef]
  • [29] Bae DH, Sohn IS, Hong JK. Assessing the effects of residual stresses on the fatigue strength of spot welds. Weld J 2003;82:18–23.
  • [30] Rathbun RW, Matlock DK, Speer JG. Fatigue behavior of spot welded high-strength sheet steels. Weld J 2003;82:207–218.
  • [31] Hilditch TB, Speer J y, Matlock DK. Effect of susceptibility to interfacial fracture on fatigue properties of spot-welded high strength sheet steel. Mater Design 2007;28:2566–2576. [CrossRef]
  • [32] Long X, Khanna SK. Fatigue properties and failure characterization of spot welded high strength steel sheet. Int J Fatigue 2007;29:879–886. [CrossRef]
  • [33] Swellam MH, Aś GB, Lawrence FV. A fatigue design parameter for spot welds. Fatigue Fracture Eng Mater Struct 1994;17:1197–1204. [CrossRef]
  • [34] Long X, Khanna SK. Fatigue performance of spot welded and weld bonded advanced high strength steel sheets. Sci Technol Weld Join 2008;13:241–247. [CrossRef]
  • [35] Radaj D, Sonsino CM, Fricke W. Fatigue assessment of welded joints by local approaches. Cambridge: Woodhead Publishing; 2006. [CrossRef]
  • [36] Holovenko O, Ienco MG, Pastore E, Pinasco MR, Matteis P, Scavino G, et al. Microstructural and mechanical characterization of welded joints on innovative high-strength steels. La Metall Ital 2013;3:3–12.

Comparative evaluation of plane-bending fatigue behavior of resistance spot-welded joints in dual-phase steels of different strength levels

Year 2025, Volume: 43 Issue: 1, 96 - 106, 28.02.2025

Abstract

This study attempted to explain comparatively the plane-bending fatigue behaviors of resistance spot-welded junctions using commercial DP600 and DP1000 automotive steel sheets having different strength levels. In addition, the fracture modes of the samples were evaluated and interpreted according to SEM examinations. First, standard junction samples were produced via resistance spot welding using two weld currents and three different electrode pressures. Microimage analysis and plane-bending fatigue tests were carried out on the sam-ples. The maximum strain energy hypothesis was applied experimentally to obtain the fatigue test load force, and plane-bending fatigue stress values were obtained. Unlike the load/cycle graphics generally presented in the literature, Wohler S-N graphics were drawn, making this study different from others. The results of this study demonstrated that an increase in welding current led to an increment in fatigue strength. A significant relationship was also observed between weld nugget attributes and fatigue strength. Moreover, some intriguing results were obtained, e.g., the low-cycle fatigue life of the DP600 samples exhibited lower fatigue strength than that of the DP1000 samples; however, the high-cycle fatigue life of the DP600 samples showed higher fatigue strength than that of the DP1000 samples.

References

  • REFERENCES
  • [1] Elitas M. Effects of welding parameters on tensileproperties and fracture modes of resistance spot welded DP1200 steel. Mater Test 2021;63:124–130. [CrossRef]
  • [2] Elitas M. Investigation of the fatigue behaviors of resistance spot welded advanced high strength automotive sheet steels (Doctorial thesis). Karabuk: Karabuk University; 2018. [Turkish]
  • [3] Maggi S, Scavino G. Fatigue characterization of automotive steel sheets. 11th International Conference on Fracture, Torino, Italy, vol. 1, 2005, p. 522–1.
  • [4] Elitas M, Demir B. Residual stress evaluation during RSW of DP600 sheet steel. Mater Test 2020;62:888– 890. [CrossRef]
  • [5] Akulwar S, Akela A, Kumar DS, Ranjan M. Resistance spot welding behavior of automotive steels. Trans Indian Inst Metals 2021;74:601–609. [CrossRef]
  • [6] Rao SS, Arora KS, Sharma L, Chhibber R. Investigations on mechanical behaviour and failure mechanism of resistance spot-welded DP590 steel using artificial neural network. Trans Indian Inst Metals 2021;74:1419–1438. [CrossRef]
  • [7] Elitas M, Demir B. The effects of the welding parameters on tensile properties of RSW junctions of DP1000 sheet steel. Eng Technol Appl Sci Res 2018;8:3116–3120. [CrossRef]
  • [8] Hayat F, Demir B, Acarer M. Tensile shear stress and microstructure of low-carbon dual-phase Mn-Ni steels after spot resistance welding. Metal Sci Heat Treat 2007;49:484–489. [CrossRef]
  • [9] Baskoro AS, Muzakki H, Kiswanto G, Winarto W. Mechanical properties and microstructures on dissimilar metal joints of stainless steel 301 and aluminum alloy 1100 by micro-resistance spot welding. Trans Indian Inst Metals 2019;72:487–500. [CrossRef]
  • [10] Elitas M. Effects of welding parameters on tensile properties and failure modes of resistance spot welded DC01 steel. Proceed Inst Mech Eng Part E J Process Mech Eng 2023;37:1607–1616. [CrossRef]
  • [11] Shamsujjoha M, Enloe CM, Chuang AC, Coryell JJ, Ghassemi-Armaki H. Mechanisms of paint bake response in resistance spot-welded first and third generation AHSS. Materialia 2021;15:100975. [CrossRef]
  • [12] Onn IH, Ahmad N, Tamin MN. Fatigue characteristics of dual-phase steel sheets. JMech Sci Technol 2015;29:51–57. [CrossRef]
  • [13] Pal TK, Bhowmick K. Resistance spot welding characteristics and high cycle fatigue behavior of DP 780 steel sheet. J Mater Eng Perform 2012;21:280–285. [CrossRef]
  • [14] Oh G, Akiniwa Y. Bending fatigue behavior and microstructure in welded high-strength bolt structures. Proceed Inst Mech Eng C J Mech Eng Sci 2019;233:3557–3569. [CrossRef]
  • [15] Alzahougi A, Elitas M, Demir B. RSW Junctions of advanced automotive sheet steel by using different electrode pressures. Eng Technol Appl Sci Res 2018;8:3492–3495. [CrossRef]
  • [16] Khan MI, Kuntz ML, Biro E, Zhou Y. Microstructure and mechanical properties of resistance spot welded advanced high strength steels. Mater Trans 2008;49:1629–1637. [CrossRef]
  • [17] Ma C, Chen DL, Bhole SD, Boudreau G, Lee A, Biro E. Microstructure and fracture characteristics of spot-welded DP600 steel. Mater Sci Eng A 2008;485:334–346. [CrossRef]
  • [18] Pouranvari M, Marashi SPH. Critical review of automotive steels spot welding: process, structure and properties. Sci Technol Weld Join 2013;18:361–403. [CrossRef]
  • [19] Soomro IA, Pedapati SR, Awang M, Alam MA. Effects of double pulse welding on microstructure, texture, and fatigue behavior of DP590 steel resistance spot weld. Int J Adv Manuf Technol 2023;125:1271–1287. [CrossRef]
  • [20] Janardhan G, Dutta K, Mukhopadhyay G. Influence of work hardening on tensile and fatigue behavior of resistance spot-welded dual-phase steel. J Mater Eng Perform 2023;32:624–637. [CrossRef]
  • [21] Kishore K, Kumar P, Mukhopadhyay G. Microstructure, tensile and fatigue behaviour of resistance spot welded zinc coated dual phase and interstitial free steel. Metals Mater Int 2022;4:945– 965. [CrossRef]
  • [22] Ghanbari HR, Shariati M, Sanati E, Nejad RM. Effects of spot welded parameters on fatigue behavior of ferrite-martensite dual-phase steel and hybrid joints. Eng Fail Anal 2022;134:106079. [CrossRef]
  • [23] Xie L, Shi B, Xiao Z, Ren J, Li D. Fatigue characteristics of dp780 steel spot welding joints with different static fracture modes. Mater Trans 2021;62:191–197. [CrossRef]
  • [24] Ordoñez JH, Ambriz RR, García C, Plascencia G, Jaramillo D. Overloading effect on the fatigue strength in resistance spot welding joints of a DP980 steel. Int J Fatigue 2019;121:163–171. [CrossRef]
  • [25] Ordoñez Lara JH, Ambriz RR, García C, Plascencia G, Jaramillo D. Fatigue Life of Resistance Spot Welding on Dual-Phase Steels. In: Ambriz RR, Jaramillo D, Plascencia G, Nait Abdelaziz M, editors. Proceedings of the 17th International Conference on New Trends in Fatigue and Fracture, Cham: Springer International Publishing; 2018, p. 225–236. [CrossRef]
  • [26] Kumar KS, Ravikanth TN, Prashanth B, Sandeep CS. Experimental investigation on spot welding of mild, cold rolled steel and galvanised iron sheets. Int J Mech Eng Technol 2017;8:574–580.
  • [27] Babalık FC, Çavdar K. Machine Elements and Construction Examples. Bursa: DORA Publishing; 2013.
  • [28] Hambling SJ, Jones TB, Fourlaris G. Influence of steel strength and loading mode on fatigue properties of resistance spot welded H beam components. Mater Sci Technol 2004;20:1143–1150. [CrossRef]
  • [29] Bae DH, Sohn IS, Hong JK. Assessing the effects of residual stresses on the fatigue strength of spot welds. Weld J 2003;82:18–23.
  • [30] Rathbun RW, Matlock DK, Speer JG. Fatigue behavior of spot welded high-strength sheet steels. Weld J 2003;82:207–218.
  • [31] Hilditch TB, Speer J y, Matlock DK. Effect of susceptibility to interfacial fracture on fatigue properties of spot-welded high strength sheet steel. Mater Design 2007;28:2566–2576. [CrossRef]
  • [32] Long X, Khanna SK. Fatigue properties and failure characterization of spot welded high strength steel sheet. Int J Fatigue 2007;29:879–886. [CrossRef]
  • [33] Swellam MH, Aś GB, Lawrence FV. A fatigue design parameter for spot welds. Fatigue Fracture Eng Mater Struct 1994;17:1197–1204. [CrossRef]
  • [34] Long X, Khanna SK. Fatigue performance of spot welded and weld bonded advanced high strength steel sheets. Sci Technol Weld Join 2008;13:241–247. [CrossRef]
  • [35] Radaj D, Sonsino CM, Fricke W. Fatigue assessment of welded joints by local approaches. Cambridge: Woodhead Publishing; 2006. [CrossRef]
  • [36] Holovenko O, Ienco MG, Pastore E, Pinasco MR, Matteis P, Scavino G, et al. Microstructural and mechanical characterization of welded joints on innovative high-strength steels. La Metall Ital 2013;3:3–12.
There are 37 citations in total.

Details

Primary Language English
Subjects Building Technology
Journal Section Research Articles
Authors

Muhammed Elitaş 0000-0001-5358-1783

Bilge Demir 0000-0002-3617-9749

Mustafa Göktaş 0000-0002-9349-7292

Publication Date February 28, 2025
Submission Date November 18, 2023
Acceptance Date January 24, 2024
Published in Issue Year 2025 Volume: 43 Issue: 1

Cite

Vancouver Elitaş M, Demir B, Göktaş M. Comparative evaluation of plane-bending fatigue behavior of resistance spot-welded joints in dual-phase steels of different strength levels. SIGMA. 2025;43(1):96-106.

IMPORTANT NOTE: JOURNAL SUBMISSION LINK https://eds.yildiz.edu.tr/sigma/