Nanocrystalline coating design for extreme applications based on the concept of complex adaptive behavior

被引:45
作者
Fox-Rabinovich, G. S. [1 ]
Veldhuis, S. C. [1 ]
Dosbaeva, G. K. [1 ]
Yamamoto, K. [2 ]
Kovalev, A. I. [3 ]
Wainstein, D. L. [3 ]
Gershman, I. S. [4 ]
Shuster, L. S. [5 ]
Beake, B. D. [6 ]
机构
[1] McMaster Univ, Dept Mech Engn, Hamilton, ON L8S 4L7, Canada
[2] Kobe Steel Ltd, Mat Res Lab, Nishi Ku, Kobe, Hyogo 6512271, Japan
[3] CNIICHERMET, Surface Phenomena Res Grp, Moscow 105005, Russia
[4] All Russian Railway Res Inst, Moscow 29851, Russia
[5] Ufa State Aviat Tech Univ, Ufa 50000, Russia
[6] Micro Mat Ltd, Unit 3, Wrexham LL13 7YP, Wales
关键词
D O I
10.1063/1.2904907
中图分类号
O59 [应用物理学];
学科分类号
摘要
The development of effective hard coatings for high performance dry machining, which is associated with high stress/temperatures during friction, is a major challenge. Newly developed synergistically alloyed nanocrystalline adaptive Ti0.2Al0.55Cr0.2Si0.03Y0.02N plasma vapor deposited hard coatings exhibit excellent tool life under conditions of high performance dry machining of hardened steel, especially under severe and extreme cutting conditions. The coating is capable of sustaining cutting speeds as high as 600 m/min. Comprehensive investigation of the microstructure and properties of the coating was performed. The structure of the coating before and after service has been characterized by high resolution transmission electron microscopy. Micromechanical characteristics of the coating have been investigated at elevated temperatures. Oxidation resistance of the coating has been studied by using thermogravimetry within a temperature range of 25-1100 degrees C in air. The coefficient of friction of the coatings was studied within a temperature range of 25-1200 degrees C. To determine the causes of excellent tool life and improved wear behavior of the TiAlCrSiYN coatings, its surface structure characteristics after service have been investigated by using x-ray photoelectron spectroscopy and extended energy-loss fine spectroscopy. One of the major features of this coating is the dynamic formation of the protective tribo-oxide films (dissipative structures) on the surface during friction with a sapphire and mullite crystal structure. Aluminum- and silicon-rich tribofilms with dangling bonds form on the surface as well. These tribofilms act in synergy and protect the surface so efficiently that it is able to sustain extreme operating conditions. Moreover, the Ti0.2Al0.55Cr0.2Si0.03Y0.02N coating possesses some features of a complex adaptive behavior because it has a number of improved characteristics (tribological adaptability, ultrafine nanocrystalline structure, hot hardness and plasticity, and oxidation stability) that work synergistically as a whole. Due to the complex adaptive behavior, this coating represents a higher ordered system that has an ability to achieve unattainable wear resistance under strongly intensifying and extreme tribological conditions. (c) 2008 American Institute of Physics.
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页数:10
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