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Fatigue Crack Propagation Influenced by Laser Shock Peening Introduced Residual Stress Fields in Aluminium Specimens

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ICAF 2019 – Structural Integrity in the Age of Additive Manufacturing (ICAF 2019)

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Abstract

Laser Shock Peening (LSP) enables the generation and modification of residual stresses deep below the surface of metallic components. LSP-induced residual stress profiles provide penetration depths of compressive residual stresses in mm range, which can be used to retard the fatigue crack propagation (FCP) within thin sheets. These compressive residual stresses may lead to crack closure at significant applied tensile loads. This crack closure phenomenon is assumed to be one of the dominant mechanisms to reduce the load range at the crack tip, resulting in a fatigue crack retardation. This work provides an experimental and numerical investigation of the FCP in AA6056 based on C(T)100 specimens. Residual stresses were introduced by two-sided LSP treatment of the sheet material. The resulting residual stresses were determined by the incremental hole drilling method with electronic speckle pattern interferometry. The residual stress measurements on both sides of the specimens reveal differences of the residual stresses due to the laser shock peening process design. The occurrence of crack closure was evaluated by crack opening displacement vs. load curves, which can be used to determine the crack opening force. A multi-step simulation is applied to predict the residual stress field, the stress intensity factor range and rate if residual and applied stresses are present simultaneously as well as the FCP rate. Numerical predictions and measurements of the FCP rates are in excellent agreement.

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References

  • Amancio-Filho, S., Sheikhi, S., dos Santos, J., Bolfarini, C.: Preliminary study on the microstructure and mechanical properties of dissimilar friction stir welds in aircraft aluminium alloys 2024-T351 and 6056-T4. J. Mater. Process. Tech. 206(1–3), 132–142 (2008)

    Article  Google Scholar 

  • Blanc, C., Roques, Y., Mankowski, G.: Application of phase shifting interferometric microscopy to studies of the behaviour of coarse intermetallic particles in 6056 aluminium alloy. Corros. Sci. 40(6), 1019–1035 (1998)

    Article  Google Scholar 

  • Chupakhin, S., Kashaev, N., Huber, N.: Effect of elasto-plastic material behaviour on determination of residual stress profiles using the hole drilling method. J. Strain Anal. Eng. Des. 51(8), 572–581 (2016)

    Article  Google Scholar 

  • Chupakhin, S., Kashaev, N., Klusemann, B., Huber, N.: Artificial neural network for correction of effects of plasticity in equibiaxial residual stress profiles measured by hole drilling. J. Strain Anal. Eng. Des. 52(3), 137–151 (2017)

    Article  Google Scholar 

  • Chupakhin, S., Klusemann, B., Huber, N., Kashaev, N.: Application of design of experiments for laser shock peening process optimization. Int. J. Adv. Manuf. Technol. 102(5–8), 1567–1581 (2019)

    Article  Google Scholar 

  • Clauer, A.H., Lahrman, D.: Laser shock processing as a surface enhancement process. F. Key Eng. Mater. 197, 121–144 (2001)

    Article  Google Scholar 

  • Fabbro, R., Fournier, J., Ballard, P., Devaux, D., Virmont, J.: Physical study of laser-produced plasma in confined geometry. J. Appl. Phys. 68(2), 775–784 (1990)

    Article  Google Scholar 

  • Ge, M.-Z., Xiang, J.-Y.: Effect of laser shock peening on microstructure and fatigue crack growth rate of AZ31B magnesium alloy. J. Alloy. Comp. 680, 544–552 (2016)

    Article  Google Scholar 

  • Itoh, Y.Z., Suruga, S., Kashiwaya, H.: Prediction of fatigue crack growth rate in welding residual stress field. Eng. Fract. Mech. 33(3), 397–407 (1989)

    Article  Google Scholar 

  • Kashaev, N., Chupakhin, S., Ventzke, V., Horstmann, M., Riekehr, S., Barbini, A., dos Santos, J., Keller, S., Klusemann, B., Huber, N.: Fatigue life extension of AA2024 specimens and integral structures by laser shock peening. In: MATEC Web of Conferences, vol. 165, p. 18001 (6p.) (2018)

    Article  Google Scholar 

  • Keller, S., Chupakhin, S., Staron, P., Maawad, E., Kashaev, N., Klusemann, B.: Experimental and numerical investigation of residual stresses in laser shock peened AA2198. J. Mater. Process. Tech. 255, 294–307 (2018)

    Article  Google Scholar 

  • Keller, S., Horstmann, M., Kashaev, N., Klusemann, B.: Experimentally validated multi-step simulation strategy to predict the fatigue crack propagation rate in residual stress fields after laser shock peening. Int. J. Fatigue 124, 265–276 (2019)

    Article  Google Scholar 

  • Krueger, R.: Virtual crack closure technique: history, approach, and applications. Appl. Mech. Rev. 57, 109–143 (2004)

    Article  Google Scholar 

  • NASGRO® Consortium and Others: (2001). Fatigue crack growth computer program NASGRO® version 3.0. User manual. JSC-22267B. NASA Technical report

    Google Scholar 

  • Newmann Jr., J.: A crack opening stress equation for fatigue crack growth. Int. J. Fract. 24, R131–R135 (1984)

    Article  Google Scholar 

  • Ocaña, J.L., Correa, C., García-Beltrán, A., Porro, J.A., Díaz, M., Ruiz-de-Lara, L., Peral, D.: Laser shock processing of thin Al2024-T351 plates for induction of through-thickness compressive residual stresses fields. J. Mater. Process. Tech. 223, 8–15 (2015)

    Article  Google Scholar 

  • Pacchione, M., Telgkamp, J.: Challenges of the metallic fuselage. In: Proceeding 25th ICAS. Hamburg, Germany (2006)

    Google Scholar 

  • Parker, A.P.: Stress intensity factors, crack profiles, and fatigue crack growth rates in residual stress fields. In: Residual Stress Effects in Fatigue. ASTM International, Materials Park, USA (1982)

    Google Scholar 

  • Peyre, P., Fabbro, R., Merrien, P., Lieurade, H.: Laser shock processing of aluminium alloys. Application to high cycle fatigue behaviour. Mater. Sci. Eng.: A 210(1–2), 102–113 (1996)

    Article  Google Scholar 

  • Peyre, P., Berthe, L., Scherpereel, X., Fabbro, R.: Laser-shock processing of aluminium-coated 55C1 steel in water-confinement regime, characterization and application to high-cycle fatigue behaviour. J. Mater. Sci. 33(6), 1421–1429 (1998)

    Article  Google Scholar 

  • Ponslet, E., Steinzig, M.: Residual stress measurement using the hole drilling method and laser speckle interferometry. Part II: Analysis technique. Exp. Tech. 27(4), 17–21 (2003a)

    Article  Google Scholar 

  • Ponslet, E., Steinzig, M.: Residual stress measurement using the hole drilling method and laser speckle interferometry part III: analysis technique. Exp. Tech. 27(5), 45–48 (2003b)

    Article  Google Scholar 

  • Polmear, I.: Light alloys: from traditional alloys to nanocrystals. In: Light Alloys, 4th edn. Elsevier Ltd., Amsterdam, The Netherlands (2005)

    Chapter  Google Scholar 

  • Reid, L.: Sustaining an Aging Aircraft Fleet with Practical Life Enhancement Methods. Fatigue Technology Inc., Seattle, USA (2003)

    Google Scholar 

  • Schajer, G.S.: Advances in hole-drilling residual stress measurements. Exp. Mech. 50(2), 159–168 (2010)

    Article  Google Scholar 

  • Schmidt, H.J., Schmidt-Brandecker, B., Ohrloff, N., Fleischer, T.: Current status of research and development activities for the fuselage of a large airbus aircraft. In: 20th Symposium of the ICAF, pp. 537–552. Bellevue, USA (1999)

    Google Scholar 

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Correspondence to Sören Keller .

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Keller, S., Horstmann, M., Kashaev, N., Klusemann, B. (2020). Fatigue Crack Propagation Influenced by Laser Shock Peening Introduced Residual Stress Fields in Aluminium Specimens. In: Niepokolczycki, A., Komorowski, J. (eds) ICAF 2019 – Structural Integrity in the Age of Additive Manufacturing. ICAF 2019. Lecture Notes in Mechanical Engineering. Springer, Cham. https://doi.org/10.1007/978-3-030-21503-3_50

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  • DOI: https://doi.org/10.1007/978-3-030-21503-3_50

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