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Experimental investigation of the impact wear

Published online by Cambridge University Press:  07 April 2014

M. Akhondizadeh*
Affiliation:
Mechanical Engineering Department of Shahid Bahonar University of Kerman, Iran
M. Fooladi Mahani
Affiliation:
Mechanical Engineering Department of Shahid Bahonar University of Kerman, Iran
M. Rezaeizadeh
Affiliation:
Graduate University of Advanced Technology, Kerman, Iran
S.H. Mansouri
Affiliation:
Mechanical Engineering Department of Shahid Bahonar University of Kerman, Iran
*
a Corresponding author: m.akhondizadeh@gmail.com
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Abstract

Impact wear can be defined as the wear of a solid surface due to percussion, which is a repetitive exposure to dynamic contact by another solid body. It has not been studied as extensive as other wear mechanisms and the information on causes and actual data is quite scarce. In the present work an experimental wear tester is designed and used to study the impact wear phenomenon experimentally. It creates the consecutive impacts between balls and flat plate. The different ball sizes (up to 30 mm), impact velocities (up to 6 m.s-1) and impact angle (10°− 80°) can be tried by tester. The mass loss of plate is measured as the wear parameter. These measurements for different specimens revealed some aspects of their wearing behaviors. The obtained results could be helpful in optimal practical designs and explanation of some phenomena associated with impact wear.

Type
Research Article
Copyright
© AFM, EDP Sciences 2014

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References

Lewis, R., A modelling technique for predicting compound impact wear, Wear 262 (2007) 15161521 CrossRefGoogle Scholar
Bayer, R.G., Engel, P.A., Sirico, J.L., Impact wear testing machine, Wear 24 (1971) 343354 Google Scholar
Engel, P.A., Lyons, T.H., Sirico, J.L., Impact wear for steel specimens, Wear 23 (1973) 185201 CrossRefGoogle Scholar
Engel, P.A., Millis, D.B., Study of surface topology in impact wear, Wear 75 (1982) 423442 CrossRefGoogle Scholar
I.G. Goryacheva, Contact Mechanics in Tribology, Institute for Problems in Mechanics, Russian Academy of Sciences, Moscow, Russia, Kluwer Academic Publishers, 1997
Mindlin, R.D., Deresiewicz, H., Elastic spheres in contact under varying oblique forces, Appl. Mech. 12 (1953) 116125 Google Scholar
Maw, N., The oblique impact of elastic spheres, Wear 25 (1975) 101114 Google Scholar
Gorham, D.A., Kharaz, A.H., The measurement of particle rebound characteristics, Powder Technol. 112 (2000) 193202 CrossRefGoogle Scholar
Kharaz, A.H., Gorham, D.A., Salman, A.D., An experimental study of the elastic rebound of spheres, Powder Technol. 25 (2001) 281291 CrossRefGoogle Scholar
Levy, A., The erosion-corrosion of tubing steels in combustion boiler environments, Corros. Sci. 35 (1993) 10351056 CrossRefGoogle Scholar
Bellman, R., Levy, A., Erosion mechanism in ductile metals, Wear 225 (1981) 127 CrossRefGoogle Scholar
Lindsley, B.A., Marder, A.R., The effect of velocity on the solid particle erosion rate of alloys, Wear 225-229 (1999) 510516 CrossRefGoogle Scholar
Head, W.J., Harr, M.E., The development of a model to predict the erosion of materials by natural contaminants, Wear 15 (1970) 146 CrossRefGoogle Scholar
Xie, Y., Clark, H.McI., Hawthorne, H.M., Modelling slurry particle dynamics in the Coriolis erosion tester, Wear 225-229 (1999) 405416 CrossRefGoogle Scholar
Talia, M., Lankarani, H., Talia, J.E., New experimental technique for the study and analysis of solid particle erosion mechanisms, Wear 250 (1999) 10701077 CrossRefGoogle Scholar
Rigaud, Emmanuel, Le Bot, Alain , Influence of incidence angle on wear indused by sliding impacts, Wear 307 (2013) 6874 CrossRefGoogle Scholar
Powell, M.S., Weerasekara, N.S., Cole, S., LaRoche, R.D., Favier, J., DEM modelling of liner evolution and its influence on grinding rate in ball mills, Miner. Eng. 24 (2011) 341351 CrossRefGoogle Scholar
Ashrafizadeh, Hossein, Fakhreddin Ashrafizadeh A numerical 3D simulation for prediction of wear caused by solid particle impact, Wear 276 (2012) 7584 CrossRefGoogle Scholar
Di Maio, F.P., Di Renzo, A., Modeling particle contacts in distinct element simulations, Chem. Eng. Res. Des. 83 (2005) 12871297 CrossRefGoogle Scholar
Lewis, A.D., Rogers, R.J., Experimental and numerical study of forces during oblique impact, J. Sound Vib. 125 (1988) 403412 CrossRefGoogle Scholar
Iwai, Y., Hondaa, T., Yamadaa, H., Matsubara, T., Larsson, M., Hogmark, S., Evaluation of wear resistance of thin hard coatings by a new solid particle impact test, Wear 251 (2001) 861867 CrossRefGoogle Scholar
Yang, L.J., A test methodology for the determination of wear coefficient, Wear 259 (2005) 14531461 CrossRefGoogle Scholar
Zhang, L., Sazonov, V., Kent, J., Dixon, T., Novozhilov, V., Analysis of boiler-tube erosion by the technique of acoustic emission part I. Mechanical erosion, Wear 250 (2001) 762769 CrossRefGoogle Scholar