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Research Article | Open Access

Towards a unified classification of wear

Department of Mechanical Engineering, Technion – IIT, Haifa 32000, Israel
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Abstract

Since the beginning of the systematic study of wear, many classification schemes have been devised. However, though covering the whole field in sum, they stay only loosely connected to each other and do not build a complete general picture. To this end, here we try to combine and integrate existing approaches into a general simple scheme unifying known wear types into a consistent system. The suggested scheme is based on three classifying criterions answering the questions “why”, “how” and “where” and defining a 3-D space filled with the known wear types. The system can be used in teaching to introduce students to such complex phenomena as wear and also in engineering practice to guide wear mitigation initiatives.

References

[1]
Mayr E, Bock W J. Classifications and other ordering systems. J Zool Syst Evol Res 40:169-194 (2002)
[2]
Archard J F. Wear theory and mechanisms. In Wear Control Handbook. New York: ASME, 1980: 35-80.
[3]
Reti L, Ed. The Unknown Leonardo. New York: McGraw-Hill, 1974.
[4]
Czichos H. In Tribology: A System Approach to the Science and Technology of Friction, Lubrication and Wear. New York: Elsevier, 1978: 6-8.
[5]
Gates J D, Gore G J. Wear of metals: philosophies and practicalities. Mater Forum 19:53-89 (1995)
[6]
Hutchings I M. The challenge of wear. In Wear: Materials, Mechanisms and Practice. New York: John Wiley & Sons, 2005: 1-7.
[7]
Rabinowicz E. In Friction and Wear of Materials. New York: John Wiley & Sons, 1965: 109-111.
[8]
Archard J F, Hirst W. The wear of metals under unlubricated conditions. Proc Roy Soc A 236:397-410 (1956)
[9]
Burwell J T. Survey of possible wear mechanisms. Wear 1:119-141 (1957)
[10]
Kostetskii B I, Nosovskii I G, Karaulov A K, Bershadskii L I, Kostetskaya N B, Lyashko V A, Sagach M F. In The Surface Strength of Materials in Friction (in Russian). Kiev: Tekhnika, 1976: 36.
[11]
Kostetskii B I. Structure and surface strength of materials in friction. Strength of Materials 13:359-368 (1981)
[12]
Czichos H. In Tribology: A System Approach to the Science and Technology of Friction, Lubrication and Wear. New York: Elsevier, 1978: 97-104.
[13]
Lim S C, Ashby M F. Wear-mechanism maps. Acta Metall 35:1-24 (1987)
[14]
Standard terminology relating to wear and erosion. ASTM G40-01, 2001.
[15]
Varenberg M, Etsion I, Halperin G. Slip index: a new unified approach to fretting. Tribol Lett 17:569-573 (2004)
[16]
Courtney-Pratt J S, Eisner E. The effect of a tangential force on the contact of metallic bodies. Proc Roy Soc A 238:529-550 (1957)
[17]
Czichos H. In Tribology: A System Approach to the Science and Technology of Friction, Lubrication and Wear. New York: Elsevier, 1978: 87-97.
[18]
Rabinowicz E. In Friction and Wear of Materials. New York: John Wiley & Sons, 1965: 71.
[19]
Kostetskii B I, Nosovskii I G, Karaulov A K, Bershadskii L I, Kostetskaya N B, Lyashko V A, Sagach M F. In The Surface Strength of Materials in Friction (in Russian). Kiev: Tekhnika, 1976: 68-73.
[20]
Holmberg K, Laukkanen A. Wear models. In Handbook of Lubrication and Tribology, Volume II. Boca Raton: CRC Press, 2012: 1-21.
[21]
Czichos H. In Tribology: a System Approach to the Science and Technology of Friction, Lubrication and Wear. New York: Elsevier, 1978: 123-126.
[22]
Kato K. Classification of wear mechanisms/models. In Wear: Materials, Mechanisms and Practice. New York: John Wiley & Sons, 2005: 9-20.
[23]
Mate C M. In Tribology on the Small Scale: A Bottom up Approach to Friction, Lubrication and Wear. New York: Oxford, 2008: 325-326.
[24]
Waterhouse R B. In Fretting Corrosion. Oxford: Pergamon, 1972: 5.
[25]
Vingsbo O, Soderberg S. On fretting maps. Wear 126:131-147 (1988)
[26]
Varenberg M, Halperin G, Etsion I. Different aspects of the role of wear debris in fretting wear. Wear 252:902-910 (2002)
[27]
Rabinowicz E. In Friction and Wear of Materials. New York: John Wiley & Sons, 1965: 190-194.
[28]
Czichos H. In Tribology: A System Approach to the Science and Technology of Friction, Lubrication and Wear. New York: Elsevier, 1978: 105-112.
[29]
Mulhearn T O, Samuels L E. The abrasion of metals: a model of the process. Wear 5:478-498 (1962)
[30]
Tenenbaum M M. Resistance to Abrasive Wear (in Russian). Moscow: Mashinostroenie, 1976: 73-76.
[31]
Hutchings I M. In Tribology: Friction and Wear of Engineering Materials. Oxford: Butterworth-Heinemann, 1992: 164-166.
[32]
Khruschov M M. Principles of abrasive wear. Wear 28:69-88 (1974)
[33]
Galperin [Halperin] G L. Study of ball-bearing lifespan in field-engine driveline (in Russian). PhD dissertation, Saratov State Agrarian University, 1971: 12-21.
[34]
Rabinowicz E. In Friction and Wear of Materials. New York: John Wiley & Sons, 1965: 125-166.
[35]
Czichos H. In Tribology: A System Approach to the Science and Technology of Friction, Lubrication and Wear. New York: Elsevier, 1978: 119-123.
[36]
Garkunov D N. Tribotechnology (in Russian). Moscow: Mashinostroenie, 1985: 188-192.
[37]
Hutchings I M. In Tribology: Friction and Wear of Engineering Materials. Oxford: Butterworth-Heinemann, 1992: 171-197.
[38]
Sundararajan G, Roy M. Solid particle erosion behaviour of metallic materials at room and elevated temperatures. Tribol Int 30:339-359 (1997)
[39]
Roy M, Ray K K, Sundararajan G. An analysis of the transition from metal erosion to oxide erosion. Wear 217:312-320 (1998)
[40]
Chiang K T. Hot gas erosion resistance of a vapor-deposited Cu–Cr coating. Surf Coat Tech 114:1-6 (1999)
[41]
Wang B J, Saka N. Spark erosion behavior of silver-based particulate composites. Wear 195:133-147 (1996)
[42]
Rabinowicz E. In Friction and Wear of Materials. New York: John Wiley & Sons, 1965: 179-180.
Friction
Pages 333-340
Cite this article:
VARENBERG M. Towards a unified classification of wear. Friction, 2013, 1(4): 333-340. https://doi.org/10.1007/s40544-013-0027-x

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Received: 12 July 2013
Revised: 03 September 2013
Accepted: 26 September 2013
Published: 14 November 2013
© The author(s) 2013

This article is published with open access at Springerlink.com

Open Access: This article is distributed under the terms of the Creative Commons Attribution License which permits any use, distribution, and reproduction in any medium, provided the original author(s) and source are credited.

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