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| 1 | 查看详情显示文摘 | V V Molokanov M I Petrzhik T N Mikhailova Y K Kovneristyi | | 0,,: | 1 |
| 2 | Formation of bulk (Zr, Ti)-based metallic glasses 显示文摘 | Molokanov V V Petrzhik M I Mikhailova T N | 1999 | J Non-Crys Solids1999,,: | 1 |
| 3 | Magnetoplastic effect in nonmagnetic crystals显示文摘 | ALSHITS V I DARINSKAYA E V KAZAKOVA O L MIKHINA E Y PETRZHIK E A | 1997 | Materials Science and Engineering A1997,,: | 1 |
| 4 | Surface andCoatings Technolog显示文摘 | References1Shtanskya D V Sheveiko A N Petrzhik Ml | 2005 | 200: 2082005,200,: | 1 |
| 5 | Big cube phase formation in Zr-based metallic glasses 显示文摘 | M Baricco S Spriano I Chang M I Petrzhik L Battezzati | 2001 | Materials Science and Engineering2001,,: | 1 |
| 6 | Magnetoplastic effect: Basic properties and physical mechanisms显示文摘 | V. I. Alshits E. V. Darinskaya M. V. Koldaeva E. A. Petrzhik | 2003 | Crystallography Reports2003,,: | 1 |
| 7 | Hard tribological Ti-B-N,Ti-Cr-B-N,Ti-Si-B-N and Ti-Al-Si-B-N coatings显示文摘 | Shtansky D V Sheveiko A N Petrzhik M I | 2005 | Surface and Coatings Technology2005,200,14: | 1 |
| 8 | Bulk and porous metastable beta TiNb Zr(Ta) alloys for biomedical applications 显示文摘 | BRAILOVSKI V PROKOSHKIN S GAUTHIER M INAEKYAN K DUBINSKIY S PETRZHIK M | 2011 | Materials Science and Engineering C2011,31,64: | 1 |
| 9 | “Big cube” phase formation in Zr-based metallic glasses显示文摘 | M. Baricco S. Spriano I. Chang M.I. Petrzhik L. Battezzati | 2001 | Materials Science & Engineering A2001,,: | 1 |
| 10 | Initial stages in the decay of the amorphous phase in the bulk metallic glass Zr-Cu-Ti显示文摘 | Molokanov V V Petrzhik M I Mikhailova T N | 1999 | Non-Cryst solids1999,250,: | 1 |
| 11 | Electrospark coatings deposited onto an Armco iron substrate with nano- and microstructured WC–Co electrodes: Deposition process, structure, and properties显示文摘 | E.I. Zamulaeva E.A. Levashov A.E. Kudryashov P.V. Vakaev M.I. Petrzhik | 2008 | Surface & Coatings Technology2008,,15: | 1 |
| 12 | Thermal stability and oxidation resistance of Ti-B-N, Ti-Cr-B-N, Ti-Si-B-N and Ti-Al-Si-B-N films显示文摘 | KIRYUKHANTSEV-KORNEEV PH V SHTANSKY D V PETRZHIK M I LEVASHOV E A MAVRIN B N | 2007 | Surface and CoatingsTechnology2007,201,: | 1 |
| 13 | d Non-crystal Solids 显示文摘 | Molokanov V V petrzhik M I Mikhailova T N | 1999 | 250:5601999,250,: | 1 |
| 14 | Thermal stability and oxidation resistance of Ti-B-N, Ti-Cr-B-N, Ti-Si-B-N and Ti-Al-Si-B-N films显示文摘 | Kiryukhantsev-Korneev Ph V Shtansky D V Petrzhik M I | 2007 | Surface and Coatings Technology2007,201,13: | 1 |
| 15 | Amorphous-crystalline transition layers formation during quenching of Fe_(61)Co_7Zr_(10)Mo_5W_2B_(15) melt显示文摘New Fe-based multicomponent amorphous alloys have been developed recently based on empirical rules for large glass forming ability(GFA). In the present investigation, the master alloy ingot with the nominal composition of Fe 61Co 7Zr 10Mo 5W 2B 15(mole fraction, %) was prepared by arc-melting under Ti-gettered Ar atmosphere. The Fe-based buttons with different transverse cross sections were fabricated by arc-melting method, and the d 2.5 mm Fe-based rods were manufactured by injection technique. Characterization of the ingots and the parameters associated with the thermal stability were carried out by X-ray diffractometry(XRD) and high temperature differential scanning calorimeter(DSC), respectively. The interval of the supercooled liquid region is 39 K for the Fe-based alloy. The GFA of Fe-based alloys is relatively lower, to the buttons obtained are all crystallized. The Fe-based rod exhibites a high Vickers hardness up to HV 1 329. In addition, an amorphous-crystalline transition layers are observed in the rod. This transition zone is caused by unhomogeneous temperature distribution and relatively lower GFA for Fe-based alloys. | 高玉来 孙剑飞 沈军 王刚 M I Petrzhik 周彼德 | 2003 | 中国有色金属学会会刊:英文版2003,13,1: | 0 |
| 16 | Combination of Instrumented Nanoindentation and Scanning Probe Microscopy for Adequate Mechanical Surface Testing显示文摘The elastic indentation modulus and hardness of standard bulk materials and advanced thin films were deter-mined by using the nanoindentation technique followed by the Oliver-Pharr post-treatment. After measure-ments with different loading/unloading schemes on chemically polished bulk titanium a substantial decrease of both modulus and hardness vs an increasing loading time was found. Then, hard nanostructured TiBN and TiCrBN thin films deposited by magnetron sputtering (using multiphase targets) on substrates of high roughness (sintered hard metal) and low roughness (silicon) were studied. Experimental modulus and hardness characterized by using two different nanoindenter tools were within the limits of standard deviation. However, a strong effect of roughness on the spread of the experimental values was observed and it was found that hard-ness and elastic indentation modulus obeyed a Gaussian distribution. The experimental data were discussed together with scanning probe microscopy (SPM) images of typical imprints taken after the nanoindentation tests and the local topography s strong correlation with the results of nanoindentation was described. | Enrico Tam Mikhail Petrzhik Dmitry Shtansky Marie-Paule Delplancke-Ogletree | 2009 | Journal of Materials Science & Technology2009,25,1: | 0 |