The tangential forces on a rail resulting from a combination of traction and curving are considered. These forces are a significant component of both wear and shakedown. These two simple mechanisms can be used to understand most types of damage that occur on both rails and wheels.
GrassieSLElkinsJA. Traction, curving and surface damage of rails, Part 1: Forces exerted on the rails. Wear2005; 258: 1235–1244.
2.
GrassieSLElkinsJA. Traction and curving behaviour of a railway bogie. Vehicle Syst Dyn2006; 44(supplement): 883–891.
3.
Burstow MC. Whole life rail model application and development for RSSB – development of an RCF damage parameter. Rail Safety and Standards Board, London, 2003.
4.
BoltonPJClaytonP. Rolling-sliding wear damage in rail and tyre steels. Wear1984; 93: 145–165.
5.
LewisROlofssonU. Wheel-rail Interface Handbook, Oxford: Woodhead Publishing, 2009, pp. 47–47.
6.
ClaytonPAlleryMBPBoltonPJ. Surface damage phenomena in rails. In: Contact Mechanics and Wear of Rail/Wheel Systems, Waterloo, Canada: University of Waterloo Press, 1983, pp. 419–443.
7.
JohnsonKL. Contact Mechanics, 1st edition. Cambridge; New York: Cambridge University Press, 1985, pp. 286–295.
8.
BowerAFJohnsonKL. Plastic flow and shakedown of the rail surface in repeated wheel-rail contact. Wear1991; 144: 1–18.
9.
Ghonem H and Kalousek J. Surface crack initiation due to biaxial compression shear loading. In: Gladwell GML, Ghonem H and Kalousek J (eds) Contact Mechanics and Wear of Rail/Wheel Systems II. Waterloo, Canada: University of Waterloo Press, 1987, pp.339–360. (ISBN 0-88898-077-9).
10.
Kalousek J, Dukkipati RV and Gladwell GML (eds). Contact Mechanics and Wear of Rail/Wheel Systems. University of Waterloo Press, Waterloo: Canada, 1983, (ISBN-88898-043-4).
11.
Grassie SL, Zhang W and Wang H (eds). Proceedings of 9th international conference on contact mechanics and wear of rail/wheel systems. Wear 2014; 314: 1–2.
12.
Grassie SL. Mechanics and Fatigue in Wheel/Rail Contact. Elsevier Science Publishers Amsterdam, 1991.