PSI - Issue 2_B

N. Kazarinov et al. / Procedia Structural Integrity 2 (2016) 485–492 Author name / Structural Integrity Procedia 00 (2016) 000 – 000

492

8

were supported by the Presidium of the RAS, by the Marie Curie Foundation (TAMER no. 610547) and by Saint Petersburg State University (grant 6.38.243.2014).

References

Petrov Yu.V., Smirnov V.I., 2010. Interrelation between the Threshold Characteristics of Erosion and Spall Fracture. Technical Physics, 55(2), 230 235. Ravi-Chandar K., 2004. Dynamic Fracture, Elsevier, pp. 254. Berezkin A.N., Krivosheev S.I., Petrov Yu.V., Utkin A.A., 2000. Effect of delayed crack nucleation under threshold pulse loading. Doklady Physics, 45(11), 617-619. Bratov V.A., Gruzdkov A.A., Krivosheev S.I., Petrov Yu.V., 2004. Energy balance in the crack growth initiation under pulsed-load conditions. Doklady Physics, 49(5), 338-341. Valiev R., 2004. Nanostructuring of metals by severe plastic deformation for advanced properties. Nature Materials, 3, 511-515. Wei Q., Zhang H.T., Schuster B.E., Ramesh K.T., Valiev R.Z., Kecskes L.J., Dowding R.J., Magness L., Cho K., 2006. Microstructure and mechanical properties of super-strong nanocrystalline tungsten processed by high-pressure torsion. Acta materialia. 54(15), 4079-4089. Mishra A., Martin M., Thadhani N.N., Kad B.K., Kenik E.A., Meyers M.A., 2008. High-strain-rate response of ultra-fine-grained copper. Acta Materialia, 56(12), 2770-2783. Witney A.B., Sanders P.G., Weertman J.R., Eastman J.A., 1995. Fatigue of Nanocrystalline Copper. Scripta Metallurgica et Materialia, 33(12), 2025-2030. Wang C. T., Gao N., Gee M.G., Wood R.J.K., Langdon T.G., 2013. Tribology testing of ultrafine-grained Ti processed by high-pressure torsion with subsequent coating. Journal of Materials Science, 48(13), 4742-4748. Murashkin M. Y., Sabirov I., Kazykhanov V. U., Bobruk E.V., Dubravina A.A., Valiev R.Z., 2013. Enhanced mechanical properties and electrical conductivity in ultrafine-grained Al alloy processed via ECAP-PC. Journal of Materials Science, 48(13), 4501-4509. Valiev R.Z., Langdon T.G., 2006. Principles of equal-channel angular pressing as a processing tool for grain refinement. Prog Mater Sci, 51(7), 881–981. Hebesberger T., Stüwe H.P., Vorhauer A., 2005. Structure of Cu deformed by high pressure torsion. Acta Mater., 53, 393–402. Belyakov A., Sakai T., Miura H., Tsuzaki K., 2001. Grain refinement in copper under large strain deformation. Philosophical Magazine A, 81(11), 2629-2643. Saito Y., Utsunomiya H., Tsutji N., Sakaim T., 1999. Novel ultra-high straining process for bulk materials development of the accumulative roll bonding (ARB) process. Acta Mater, 47(2), 579-583. Kamkar N., Brindier F., Brocher P., Jedrzejowski P., 2013. Water droplet erosion mechanisms in rolled Ti–6Al–4V, Wear, 301(1), 442-448. Kamkar N., Brindier F., Jedrzejowski P., Brocher P., 2015. Water droplet impact erosion damage initiation in forged Ti–6Al–4V, Wear, 322, 192 202. Goodwin J. E., Sage W., Tilly G. P., 1969. Study of erosion by solid particles. Proceedings of the Institution of Mechanical Engineers, 184(1), 279 292. Tilly G. P., Sage W., 1970. The interaction of particle and material behavior in erosion processes. Wear, 16(6), 447-465. Lashkov V. A., 1991. Experimental determination of the coefficients of restitution of particles in the flow of a gas suspension in a collision against the surface. Journal of engineering physics, 60(2), 154-159. Grant G., Tabakoff W., 1975. Erosion prediction in turbomachinery resulting from environmental solid particles. Journal of Aircraft, 12(5), 471– 478. Smirnov V.I., 2007. On the effect of the geometric shape of abrasive particles on the threshold rate of erosion. Strength of Materials, 39(1), 46-52. Atroshenko S.A., Smirnov V.I., 2010. Behavior of pipe bainitic steel under dynamic loading. Marine Intellectual Technologies, 2, 32-34.

Made with FlippingBook Digital Publishing Software