Civil Engineering Reference
In-Depth Information
Song, H.W.; Guo, S.R.; Hu, Z.Q. (1999), A coherent polycrystal model for the inverse
Hall-Petch relation in nanocrystalline materials. NanoStructured Materials 11(2),
203-210.
Sugama, T. (2009), Corrosion-resistant metal surfaces. US patent 7,507,480.
Suh, C.-M.; Song, G.-H.; Suh, M.-S.; Pyoun, Y.-S. (2007), Fatigue and mechanical
characteristics of nano-structured tool steel by ultrasonic cold forging technology.
Materials Science and Engineering A 443, 101-106.
Taneike, M.; Abe, F.; Sawada, K. (2003), Creep-strengthening of steel at high tem-
peratures using nano-sized carbonitride dispersions. Nature 424, 294-296.
Tsuji, N.; Maki, T. (2009), Enhanced structural refi nement by combining phase
transformation and plastic deformation in steels. Scripta Materialia 60,
1044-1049.
Valiev, R.Z. (2004), Materials science: nanomaterial advantage. Nature Materials 3,
511-516.
Vaynman, S.; Fine, M.E.; Asfahani, R.I.; Bormet, D.M.; Hahin, C. (2002), High per-
formance copper-precipitation-hardened steel. In: Microalloyed Steels 2002: Pro-
ceedings of the International Symposium on Microalloyed Steels , Columbus, OH,
43-48.
Verezub, O.; Kálazi, Z.; Sytcheva, A.; Kuzsella, L.; Buza, G.; Verezub, N.V.; Fedorov,
A.; Kaptay, G. (2011), Performance of a cutting tool made of steel matrix surface
nano-composite produced by in situ laser melt injection technology. Journal of
Materials Processing Technology 211, 750-758.
Wang, J.; Li, G.; Xiao, A.; Fu, J. (2011), Nano-scaled Fe 3 C precipitation strengthening
in hot rolled low carbon high strength titanium microalloyed steel. Advanced
Materials Research 146-147, 838-843.
Wang, L.; Wang, Z.; Guo, S.; Lu, K. (2012), Annealing-induced grain refi nement in
a nanostructured ferritic steel. Journal of Materials Science and Technology 28(1),
41-45.
Wang, X.Y.; Li, D.Y. (2003), Mechanical, electrochemical and tribological properties
of nano-crystalline surface of 304 stainless steel. Wear 255(7), 836-845.
Weertman, J.R. (1993), Hall-Petch strengthening in nanocrystalline metals. Materials
Science and Engineering A 166, 161-167.
Wright, J.A.; Jung, J.-W. (2006), Martensitic stainless steel strengthened by Ni 3 Ti
h-phase precipitation. WO patent 2006/081401A3.
Wu, Z.X.; Zhang, Y.W.; Srolovitz, D.J. (2009), Dislocation-twin interaction mecha-
nisms for ultrahigh strength and ductility in nanotwinned metals. Acta Materialia
57, 4508-4518.
Wu, Z.X.; Zhang, Y.W.; Srolovitz, D.J. (2011), Deformation mechanisms, length
scales and optimizing the mechanical properties of nanotwinned metals. Acta
Materialia 59, 6890-6900.
Xu, L.; Shi, J.; Cao, W.Q.; Wang, M.Q.; Hui, W.J.; Dong, H. (2011), Improved mechani-
cal properties in Ti-bearing martensitic steel by precipitation and grain refi ne-
ment. Journal of Materials Science 46, 6384-6389.
Xu, Y.H.; Peng, J.H.; Fang, L. (2008), Nano-crystallization of steel wire and its wear
behavior. Materials Science and Engineering A 483-484, 688-691.
Yan, F.K.; Liu, G.Z.; Tao, N.R.; Lu, K. (2012), Strength and ductility of 316L austenitic
stainless steels strengthened by nano-scale twin bundles. Acta Materialia 60,
1059-1071.
￿ ￿ ￿ ￿ ￿ ￿
Search WWH ::




Custom Search