Cite

1. Fridrich, H. E. and Mordike, B. L. Magnesium Technology, Springer, Germany, 2006.Search in Google Scholar

2. Mordike, B. L. and Ebert, T. Magnesium properties – applications – potential, Materials Science and Engineering A2001, 302, 37–45.10.1016/S0921-5093(00)01351-4Search in Google Scholar

3. Meyers, M. A.; Mishra, A.; Benson, D. J. Mechanical properties of nanocrystalline materials. Prog. Mater. Sci.2006, 51, 427–556.Search in Google Scholar

4. Polmear, I. Light Alloys: From Traditional Alloys to Nano-crystals, USA, Elsevier, 2006.Search in Google Scholar

5. Avedesian, M.; Baker, H. ASM Specialty Handbook: Magnesium and Magnesium Alloys, ASM International, USA, 1999.Search in Google Scholar

6. Surya Kiran, G. V. V.; Hari Krishna, K.; Sameer, SK.; Bhargavi, M.; Santosh Kumar, B,; Mohana Rao, G,; Naidubabu, Y.; Ravikumar Dumpala, Ratna Sunil, B.;Machining characteristics of fine grained AZ91 Mg alloy processed by friction stir processing, Trans. Nonferrous Met. Soc. China2017, 27, 804−811.10.1016/S1003-6326(17)60092-XSearch in Google Scholar

7. Venkataiah, M.; Anup Kumar, T.; Venkata Rao, K.; Anand Kumar, S.; Siva, I.; Ratna Sunil, B.; Effect of grain refinement on corrosion rate, mechanical and machining behavior of friction stir processed ZE41 Mg alloy, Transactions of Indian Institute of Metals 2018 (in press).10.1007/s12666-018-1467-9Search in Google Scholar

8. Totten G.E. ASM Handbook Volume 4E: Heat Treating of Nonferrous Alloys, ASM International, USA, 2016.10.31399/asm.hb.v04e.9781627081696Search in Google Scholar

9. Swetha Chowdary, V.; Ravikumar Dumpala, Anand Kumar, S.; Kondaiah, V. V.; Ratna Sunil, B. Influence of heat treatment on the machinability and corrosion behavior of AZ91 Mg alloy, Journal of Magnesium and Alloys2018, 52–58.10.1016/j.jma.2017.12.001Search in Google Scholar

10. Zhao, D.; Wang, Z.; Zuo, M.; Geng, H. Effects of heat treatment on microstructure and mechanical properties of extruded AZ80 magnesium alloy, Materials and Design2014, 56, 589-593.Search in Google Scholar

11. Liu, C.; Zhu, X.; Zhou, H. Phase Diagrams for Magnesium Alloys, Central South University Press: Changsha, 2006, 35, 63.Search in Google Scholar

12. Clark, J. B.; Zabdyr, L.; Moser in, Z.; Massalski, T. B.; Okamoto, H.; Subramanian, P. R.; Kacprzak, L.; (Eds.), Binary Alloy Phase Diagrams, second ed., ASM International, Materials Park, Ohio, 1990, pp. 2571–2572.Search in Google Scholar

13. Predel (Ed.), B.; Phase Equilibria, Crystallographic and Thermodynamic Data of Binary Alloys, Landolt-Born-stein, Group IV, Physical Chemistry, 5 Springer- Verlag, Berlin, Germany, 1998.Search in Google Scholar

14. N. Saikrishna, G. Pradeep Kumar Reddy, Balakrishnan Munirathinam, Ratna Sunil, B.; Influence of bimodal grain size distribution on the corrosion behavior of friction stir processed biodegradable AZ31 magnesium alloy, Journal of Magnesium and Alloys2016, 4 (1), 68–76.10.1016/j.jma.2015.12.004Search in Google Scholar

15. ASTM Standard E112-12. Standard test methods for determining average grain size. West Conshohocken, PA: ASTM International, 2012.Search in Google Scholar

16. B. Ratna Sunil, T. S. Sampath Kumar, Uday Chakkingal, V. Nandakumar, Mukesh Doble, Nano-hydroxyapatite reinforced AZ31 magnesium alloy by friction stir processing: a solid state processing for biodegradable metal matrix composites, Journal of Materials Science: Materials in Medicine2014, 25, 975–988.10.1007/s10856-013-5127-724375146Search in Google Scholar

17. Mansfeld, F.; The polarization resistance technique for measuring corrosion currents. In: Advances in Corrosion Science and Engineering Vol 6, Plenum Press, New York, 1970.Search in Google Scholar

18. Neil, W.C.; Forsyth, M.; Howlett, P.C.; Hutchinson, C.R. and Hinton, B.R.W. Corrosion of magnesium alloy ZE41 – The role of microstructural features, Corrosion Science2009, 51, 387–394.Search in Google Scholar

19. Song, K.; Pan, F.; Chen, X.; Tang, A.; Pan, H. and Luo, S. Effect of Zn content on electromagnetic interference shielding effectiveness of Mg–Zn alloys, Materials Research Innovations2014, 18, S4-193-197.10.1179/1432891714Z.000000000676Search in Google Scholar

20. Li, L.; Jiang, W.; Guo, P.; Yu, W.; Wang, F.; Pan, Z. Microstructure Evolution of the Mg-5.8 Zn-0.5 Zr-1.0 Yb Alloy During Homogenization, Materials Research2017, 20 (4), 1063-1071.10.1590/1980-5373-mr-2016-1103Search in Google Scholar

21. Kevorkov, D.; Pekguleryuz, M.; Experimental study of the Ce–Mg–Zn phase diagram at 350 °C via diffusion couple techniques, Journal of Alloys and Compounds2009, 478, 427–436.Search in Google Scholar

22. Neil, W.C.; Forsyth, M.; Howlett, P.C.; Hutchinson, C.R.; Hinton, B.R.W. Corrosion of heat treated magnesium alloy ZE41, Corrosion Science2011, 53, 3299–3308.Search in Google Scholar

eISSN:
1804-1213
Idioma:
Inglés
Calendario de la edición:
4 veces al año
Temas de la revista:
Industrial Chemistry, Chemical Engineering, Materials Sciences, Ceramics and Glass