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Influences of heat treatment on fatigue crack growth behavior of NiAl bronze (NAB) alloy

Published online by Cambridge University Press:  29 September 2015

Yuting Lv
Affiliation:
State Key Laboratory of Metal Matrix Composites, Shanghai Jiao Tong University, Shanghai 200240, People's Republic of China
Meng Hu
Affiliation:
School of Nuclear Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, People's Republic of China
Liqiang Wang*
Affiliation:
State Key Laboratory of Metal Matrix Composites, Shanghai Jiao Tong University, Shanghai 200240, People's Republic of China
Xiaoyan Xu
Affiliation:
State Key Laboratory of Metal Matrix Composites, Shanghai Jiao Tong University, Shanghai 200240, People's Republic of China
Yuanfei Han
Affiliation:
State Key Laboratory of Metal Matrix Composites, Shanghai Jiao Tong University, Shanghai 200240, People's Republic of China
Weijie Lu*
Affiliation:
State Key Laboratory of Metal Matrix Composites, Shanghai Jiao Tong University, Shanghai 200240, People's Republic of China
*
a)Address all correspondence to these authors. e-mail: [email protected]
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Abstract

Fatigue crack growth tests of NiAl bronze (NAB) alloy heat treated at different temper temperature after quenching at 920 °C are performed using direct current potential drop method. The influences of heat treatment on the fatigue crack growth behavior of NAB alloy are investigated. The results show that the fatigue crack growth rate (FCGR) of NAB alloy decreases with the increase of temper temperature. A few large secondary cracks are obtained as the sample is tempered at 350 °C and the secondary cracks diminish with the increase of temper temperature. With further increasing temper temperature to 550 °C, a large number of small secondary cracks are obtained, which is responsible for its lower FCGR. The as-cast NAB alloy has a lower FCGR than that tempered at 550 °C at low stress intensity factor range (ΔK) region, and the lower FCGR is attributed to the crack deflection effect of the as-cast microstructure. At high ΔK region, the crack deflection effect diminishes, which leads to the higher FCGR of as-cast sample.

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Articles
Copyright
Copyright © Materials Research Society 2015 

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References

REFERENCES

Jahanafrooz, A., Hasan, F., Lorrmer, G.W., and Ridley, N.: Microstructural development in complex nickel aluminum bronzes. Metall. Mater. Trans. A 14A, 1951 (1982).Google Scholar
Hasan, F., Jahanafrooz, A., Lorimer, G.W., and Ridley, N.: The morphology, crystallography and chemistry of phases in as cast nickel aluminum bronze. Metall. Mater. Trans. A 13, 1337 (1982).Google Scholar
Culpan, E.A. and Rose, G.: Microstructural characterization of cast nickel aluminium bronze. J. Mater. Sci. 13, 1647 (1978).Google Scholar
Nakhaie, D., Davoodi, A., and Imani, A.: The role of constituent phases on corrosion initiation of NiAl bronze in acidic media studied by SEM-EDS, AFM and SKPFM. Corros. Sci. 80, 104 (2014).Google Scholar
Wharton, J.A. and Stokes, K.R.: The influence of nickel–aluminium bronze microstructure and crevice solution on the initiation of crevice corrosion. Electrochim. Acta 53, 2463 (2008).Google Scholar
Neodo, S., Carugo, D., Wharton, J.A., and Stokes, K.R.: Electrochemical behaviour of nickel–aluminium bronze in chloride media: Influence of pH and benzotriazole. J. Electroanal. Chem. 695, 38 (2013).CrossRefGoogle Scholar
Gao, L.L. and Cheng, X.: Microstructure and mechanical properties of Cu–10%Al–4%Fe alloy produced by equal channel angular extrusion. Mater. Des. 29, 904 (2008).Google Scholar
Gao, L.L. and Cheng, X.H.: Microstructure and dry sliding wear behavior of Cu–10%Al–4%Fe alloy produced by equal channel angular extrusion. Wear 265, 986 (2008).Google Scholar
Hanke, S., Fischer, A., Beyer, M., and Santos, J.: Cavitation erosion of NiAl-bronze layers generated by friction surfacing. Wear 273, 32 (2011).CrossRefGoogle Scholar
Ni, D.R., Xiao, B.L., Ma, Z.Y., Qiao, Y.X., and Zheng, Y.G.: Corrosion properties of friction–stir processed cast NiAl bronze. Corros. Sci. 52, 1610 (2010).Google Scholar
Su, J.Q., Swaminathan, S., Menon, S.K., and Mcnelley, T.R.: The effect of Concurrent straining on phase transformations in NiAl bronze during the friction stir processing thermomechanical cycle. Metall. Mater. Trans. A 42, 2420 (2011).Google Scholar
Ni, D.R., Xue, P., Wang, D., Xiao, B.L., and Ma, Z.Y.: Inhomogeneous microstructure and mechanical properties of friction stir processed NiAl bronze. Mater. Sci. Eng., A 524, 119 (2009).Google Scholar
Song, Q.N., Zheng, Y.G., Ni, D.R., and Ma, Z.Y.: Studies of the nobility of phases using scanning Kelvin probe microscopy and its relationship to corrosion behaviour of Ni–Al bronze in chloride media. Corros. Sci. 92, 95 (2014).Google Scholar
Chen, R.P., Liang, Z.Q., Zhang, W.W., Zhang, D.T., Luo, Z.Q., and Li, L.Y.: Effect of heat treatment on microstructure and properties of hot-extruded nickel-aluminum bronze. Trans. Nonferrous Met. Soc. China 17, 1254 (2007).Google Scholar
Anantapong, J., Uthaisangsuk, V., Suranuntchai, S., and Manonukul, A.: Effect of hot working on microstructure evolution of as-cast nickel aluminum bronze alloy. Mate. Des. 60, 233 (2014).Google Scholar
Chakrabarti, A., Sarkar, A., Saravanan, T., Nagesha, A., Sandhya, R., and Jayakumar, T.: Influence of mean stress and defect distribution on the high cycle fatigue behaviour of cast Ni–Al bronze. Procedia Eng. 86, 103 (2014).Google Scholar
Czyryca, E.J.: Corrosion fatigue crack for cast nickel–aluminium bronze and welds. In Fatigue Crack Growth Thresholds, Endurance Limits, and Design, ASTM STP 1372, Newman, J.C. Jr. and Piascik, R.S. eds.; American Society for Testing and Materials: West Conshohocken, PA, 2000; p. 319.CrossRefGoogle Scholar
Shi, X.H., Zeng, W.D., Shi, C.L., Wang, H.J., and Jia, Z.Q.: Study on the fatigue crack growth rates of Ti–5Al–5Mo–5V–1Cr–1Fe titanium alloy with basket-weave microstructure. Mater. Sci. Eng., A 621, 143 (2015).Google Scholar
Verdhan, N., Bhende, D.D., Kapoor, R., and Chakravartty, J.K.: Effect of microstructure on the fatigue crack growth behaviour of a near-α Ti alloy. Int. J. Fatigue 74, 46 (2015).Google Scholar
Pilchak, A.L.: Fatigue crack growth rates in alpha titanium: Faceted vs. striation growth. Scr. Mater. 68, 277 (2013).Google Scholar
Ghonem, H.: Microstructure and fatigue crack growth mechanisms in high temperature titanium alloys. Int. J. Fatigue 32, 1448 (2010).Google Scholar
Li, S.K., Xiong, B.Q., Hui, S.X., Ye, W.J., and Yang, Y.: Effects of microstructure on fatigue crack growth behavior of Ti–6Al–2Zr–1Mo–1V ELI alloy. Mater. Charact. 59, 397 (2008).Google Scholar
Wang, Y.L., Pan, Q.L., Wei, L.L., Li, B., and Wang, Y.: Effect of retrogression and reaging treatment on the microstructure and fatigue crack growth behavior of 7050 aluminum alloy thick plate. Mater. Des. 55, 857 (2014).Google Scholar
Shi, X.H., Zeng, W.D., Shi, C.L., Wang, H.J., and Jia, Z.Q.: The effects of colony microstructure on the fatigue crack growth behavior for Ti–6A1–2Zr–2Sn–3Mo–1Cr–2Nb titanium alloy. Mater. Sci. Eng., A 621, 252 (2015).Google Scholar
Chakrabarti, A., Sarkar, A., Saravanan, T., Nagesha, A., Sandhya, R., and Jayakumar, T.: Influence of mean stress and defect distribution on the high cycle fatigue behaviour of cast Ni–Al bronze. Presented at the 1st International Conference on Structural Integrity, Madeira Island, Portugal, 2014.Google Scholar
Borrego, L.P., Costa, J.M., Silva, S., and Ferreira, J.M.: Microstructure dependent fatigue crack growth in aged hardened aluminium alloys. Int. J. Fatigue 26, 1321 (2004).Google Scholar
Li, S.C., Kang, Y.L., and Kuang, S.: Effects of microstructure on fatigue crack growth behavior in cold-rolled dual phase steels. Mater. Sci. Eng., A 612, 153 (2014).Google Scholar