Mechanical and Tribological Properties of the Composition “Steel - Nanostructured Surface Layer of a Material with Shape Memory Effect Based TiNiCu”

Article Preview

Abstract:

The results of a study of the effect of the composition "steel-nanostructured surface layer of a material with shape memory effect TiNi, TiNiCu" on wear-fatigue characteristics of the samples are reported. Formation compositions performed by plasma spraying and high-speed flame spraying. Experimental studies have shown the efficiency of the developed technologies.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

1325-1330

Citation:

Online since:

July 2014

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2014 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] Nanoengineering surface. Ed. N. Liakhova, S. Psakhie. Novosibirsk: Publishing House of SB RAS, 2008. 276 p.

Google Scholar

[2] Zh. Blednova, N. Mahutov, M. Chaevsky, Superficial modifying by materials with effect of memory of the form. Krasnodar: Publishing House-South, 2009, 354 p.3. S. Tarasov. Investigation of tribological properties of NiTi. Advanced Materials, № 5(1998).

Google Scholar

[4] Li D.Y., Liu D.Y. The mechanism responsible for high wear resistance of Pseudo-elastic TiNi alloy - a novel tribo-material. J. Wear. Vol. 225-229 (1999), 777-783.

DOI: 10.1016/s0043-1648(98)00388-3

Google Scholar

[5] Wu S.K., Lin H.C., Yeh C.H. A Comparison of the cavitation erosion resistance of TiNi alloys, SUS304 stainless steel and Ni-based self-fluxing alloy. J. Wear, Vol. 244(2000), 85-93.

DOI: 10.1016/s0043-1648(00)00443-9

Google Scholar

[6] V. Grishkov, A. Lotkov, V. Timkin. Structural transformations and evolution during deformation mesostructure heterogeneous layered alloys TiNi. Physical Mesomechanics, Vol. 7(2) (2004), 131-134.

Google Scholar

[7] N. Nayan, V. Buravalla, U. Ramamurty. Effect of mechanical cycling on the stress–strain response of a martensitic Nitinol shape memory alloy. J. Materials Science and Engineering A. Vol. 525(2009), 60-67.

DOI: 10.1016/j.msea.2009.07.038

Google Scholar

[8] N. Nayan, D. Roy,V. Buravalla, U. Ramamurty. Unnotched fatigue behavior of an austenitic Ni–Ti shape memory alloy. Materials Science and Engineering: A. Vol. 497, 1-2(2008), 333-340.

DOI: 10.1016/j.msea.2008.07.025

Google Scholar

[9] L. Rong, D.A. Miller, D.C. Lagoudas. Thermo-Mechanical Fatique and Transformation Behavior of TiNiCu SMA. Materials Science Forum Vols. 394-395(2002) pp.329-332.

DOI: 10.4028/www.scientific.net/msf.394-395.329

Google Scholar

[10] O.W. Bertacchini, D.C. Lagoudas, E. Patoor Thermomechanical transformation fatigue of TiNiCu SMA actuators under a corrosive environment – Part I: Experimental results. J. Fatigue. Vol. 31, 10(2009), 1571-1578.

DOI: 10.1016/j.ijfatigue.2009.04.012

Google Scholar

[11] Zh. Blednova, P. Rusinov. Formation of nanostructured surface layers by plasma spraying the mechanoactivated powders of alloys with Shape Memory Effect. Nanotechnologies in Russia. Vol. 5, №3-4(2010), 352-363.

DOI: 10.1134/s1995078010050101

Google Scholar

[12] Zh. M. Blednova, N. A. Mahutov P. O. Rusinov. Prospects for the use of shape memory materials for the formation of multifunctional coatings for product engineering purpose. Industrial Laboratory. Vol. 79(2013), № 11, 49-56.

Google Scholar