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2024 | OriginalPaper | Chapter

8. Fretting Fatigue of Materials Other Than Steel

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Abstract

In this book, I have basically explained fretting damage mainly in steel materials, but recently, for the purpose of weight reduction and new functionality, new materials such as aluminum alloys, titanium alloys, and ceramics have come to be used in fields such as high-speed vehicles, space equipment, aircraft, and jet engines. Since the technology for evaluating fretting damage is not sufficiently developed in the area of these new materials, there are many troubles in which fretting damage accidents occur when they are easily used for the purpose of weight reduction or new functionality (see Chap. 2.​2). Here, we will explain the characteristics of fretting damage for each new material and how to address it.

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Literature
1.
go back to reference Bansal DG, Kirkham M, Blau PJ (2013) Effects of combined diffusion treatments and cold working on the sliding friction and wear behavior of Ti–6Al–4V. Wear 302(1–2):837–844CrossRef Bansal DG, Kirkham M, Blau PJ (2013) Effects of combined diffusion treatments and cold working on the sliding friction and wear behavior of Ti–6Al–4V. Wear 302(1–2):837–844CrossRef
2.
go back to reference Rajasekaran B, Raman SGS (2008) Plain fatigue and fretting fatigue behaviour of plasma nitrided Ti-6Al-4V. Mater Lett 62(16):2473–2475CrossRef Rajasekaran B, Raman SGS (2008) Plain fatigue and fretting fatigue behaviour of plasma nitrided Ti-6Al-4V. Mater Lett 62(16):2473–2475CrossRef
3.
go back to reference Fu Y, Wei J, Batchelor AW (2000) Some considerations on the mitigation of fretting damage by the application of surface-modification technologies. J Mater Process Technol 99(1–3):231–245CrossRef Fu Y, Wei J, Batchelor AW (2000) Some considerations on the mitigation of fretting damage by the application of surface-modification technologies. J Mater Process Technol 99(1–3):231–245CrossRef
4.
go back to reference Yoshida A et al (2014) Effect of carbon-doped oxidation treatment and shot peening treatment on fretting fatigue limit of Ti-6Al-4V alloy. J Japan Inst Metals 78–2:75–81CrossRef Yoshida A et al (2014) Effect of carbon-doped oxidation treatment and shot peening treatment on fretting fatigue limit of Ti-6Al-4V alloy. J Japan Inst Metals 78–2:75–81CrossRef
5.
go back to reference Furuya M, Tokiwai M, Tanaka N, Horie M (2007) Ti-2007 science and technology. JIMIC II:1727–1730 Furuya M, Tokiwai M, Tanaka N, Horie M (2007) Ti-2007 science and technology. JIMIC II:1727–1730
6.
go back to reference Maruyama N, Sumita M, Nakazawa K (1990) Fretting fatigue strength analysis of Ti-6Al-4V in air. Tetsu-to-Hagane 76(2):262–269CrossRef Maruyama N, Sumita M, Nakazawa K (1990) Fretting fatigue strength analysis of Ti-6Al-4V in air. Tetsu-to-Hagane 76(2):262–269CrossRef
7.
go back to reference Chakravarty S, Dyer JP, Conway JC, Segall AE, Patnaik PC (2000) Influence of surface treatments on fretting fatigue of Ti-6242 at elevated temperatures. ASTM Special Tech Publ 1367:491–508 Chakravarty S, Dyer JP, Conway JC, Segall AE, Patnaik PC (2000) Influence of surface treatments on fretting fatigue of Ti-6242 at elevated temperatures. ASTM Special Tech Publ 1367:491–508
8.
go back to reference Szolwinski MP, Harish G, McVeigh PA, Farris TN (2000) Experimental study of fretting crack nucleation in aerospace alloys with emphasis on life prediction. ASTM STP 1367:267–281 Szolwinski MP, Harish G, McVeigh PA, Farris TN (2000) Experimental study of fretting crack nucleation in aerospace alloys with emphasis on life prediction. ASTM STP 1367:267–281
9.
go back to reference Szolwinski MP, Farris TN (1996) Mechanics of frettjing fatigue crack formation. Wear 198:93–107CrossRef Szolwinski MP, Farris TN (1996) Mechanics of frettjing fatigue crack formation. Wear 198:93–107CrossRef
10.
go back to reference Szolwinski MP, Farris TN (1998) Observation, analysis and prediction of frettjing fatigue in 2024–T351 aluminum alloy. Wear 221(1):24–36CrossRef Szolwinski MP, Farris TN (1998) Observation, analysis and prediction of frettjing fatigue in 2024–T351 aluminum alloy. Wear 221(1):24–36CrossRef
11.
go back to reference Bannantine JA, Comer JJ, Handrock JL (1990) Fundamentals of metal fatigue analysis. Prentice-Hall, Englewood Cliffs, NJ Bannantine JA, Comer JJ, Handrock JL (1990) Fundamentals of metal fatigue analysis. Prentice-Hall, Englewood Cliffs, NJ
12.
go back to reference Herzberg RW (1976) Deformation and fracture mechanics of engineering materials. Wiley and Sons, New York, NY Herzberg RW (1976) Deformation and fracture mechanics of engineering materials. Wiley and Sons, New York, NY
13.
go back to reference Tomohisa N et al (2015) Study on surface treatment for improving fretting fatigue strength of aluminum alloy for applying rear arm of motorcycle. J Soc Mater Sci 64(11):872–879CrossRef Tomohisa N et al (2015) Study on surface treatment for improving fretting fatigue strength of aluminum alloy for applying rear arm of motorcycle. J Soc Mater Sci 64(11):872–879CrossRef
14.
go back to reference Nishida T, Mutoh Y, Tsukamoto H, Yoshii K (2000) Effect of shot-peening on fretting fatigue strength of aluminum alloy. In: The 8th Materials and Processing Conference, pp 287–289 Nishida T, Mutoh Y, Tsukamoto H, Yoshii K (2000) Effect of shot-peening on fretting fatigue strength of aluminum alloy. In: The 8th Materials and Processing Conference, pp 287–289
15.
go back to reference Ochi Y, Matsumura T, Ikarashi T, Masaki K, Kakiuchi T, Sano Y, Adachi T (2010) Effect of laser peening treatment on high cycle fatigue strength and fatigue crack behaviors under axial loading of aluminum alloy. J Soc Mater Sci 59(12):932–937CrossRef Ochi Y, Matsumura T, Ikarashi T, Masaki K, Kakiuchi T, Sano Y, Adachi T (2010) Effect of laser peening treatment on high cycle fatigue strength and fatigue crack behaviors under axial loading of aluminum alloy. J Soc Mater Sci 59(12):932–937CrossRef
Metadata
Title
Fretting Fatigue of Materials Other Than Steel
Author
Toshio Hattori
Copyright Year
2024
DOI
https://doi.org/10.1007/978-3-031-46498-0_8

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