References |
1. Marukovich E. I., Karpenko M. I. Wear-resistant alloys. Moscow : Mashinostroenie, 2005. 428 p. 2. Krajewski W. K., Greer A. L., Krajewski P. K. Trends in the development of high-aluminium zinc alloys of stable structure and properties. Archives of Metallurgy and Materials. 2013. Vol. 58, No. 3. pp. 845–847. 3. Yan S., Xie J., Liu Z., Wang W., Wang A., Li J. Influence of different Al contents on microstructure, tensile and wear properties of Zn-based alloy. Journal of Materials Science & Technology. 2010. Vol. 26, No. 7. pp. 648–652. 4. Cuvalci H., Celik H. S. Investigation of the abrasive wear behaviour of ZA-27 alloy and CuSn10 bronze. Journal of Materials Science. 2011. Vol. 46. pp. 4850–4857. 5. Savaskan T., Maleki R. A. Friction and wear properties of Zn – 25Al-based bearing alloys. Tribology Transactions. 2014. Vol. 57, No. 3. pp. 435–444. 6. Rumana A., Md Rofiqul I. Study of mechanical properties of Zn-27Al alloy cast in metal mould at different casting conditions. International Journal of Engineering and Technical Research. 2016. Vol. 4, No. 1. pp. 8–11. 7. Li Y., Long Y., Chen W., Zhang D., Shao M. Effect of Mn content on microstructure and mechanical properties of modified ZA-27 alloy. Transactions of Nonferrous Metals Society of China. 2002. Vol. 12, No. 6. pp. 1091–1094. 8. Vencl A., Bobic I., Vucetic F., Bobic B., Ruzic J. Structural, mechanical and tribological characterization of Zn25Al alloys with Si and Sr addition. Materials & Design. 2014. Vol. 64. pp. 381–392. 9. Choudhury P., Das S. Microstructure-wear correlation in zinc-aluminium alloy containing additive species. Tribology — Materials, Surfaces & Interfaces. 2012. Vol. 6, No. 1. pp. 8–19. 10. Krajewski W. K., Zak P. L., Orava J., Greer A. L., Krajewski P. K. Structural stability of the high-aluminium zinc alloys modified with Ti addition. Archives of Foundry Engineering. 2012. Vol. 12, No. 1. pp. 61–66. 11. Mojaver R., Shahverdi H. R. Relationship between cooling rate, microstructure features and wear behavior in end-chill cast Zn–27%Al alloys containing more than 2% Cu. Wear. 2011. Vol. 271, No. 11/12. pp. 2899–2908. 12. Wang J., Yan S., Xie J., Liu Z., Li J., Wang W. Effect of cooling rate on the microstructure of ZA48 alloy. Journal of Wuhan University of Technology. 2010. Vol. 25, No. 5. pp. 811–813. 13. Babic M., Vencl A., Mitrovic S., Bobic I. Influence of T4 heat treatment on tribological behavior of ZA27 alloy under lubricated sliding condition. Tribology Letters. 2009. Vol. 36, No. 2. pp. 125–134.
14. Michalik R., Tomaszewska A. An influence of ageing on the structure, corrosion resistance and hardness of high aluminum ZnAl40Cu3 alloy. Archives of Metallurgy and Materials. 2016. Vol. 61, No. 1. pp. 289–294. 15. Mishra S. K., Satapathy A. Ceramic particulate filled ZA-27 metal matrix composites: comparative analysis. Materials Science and Technology. 2014. Vol. 30, No. 12. pp. 1495–1499. 16. Mishra S. K., Biswas S., Satapathy A. A study on processing, characterization and erosion wear behavior of silicon carbide particle filled ZA-27 metal matrix composites. Materials & Design. 2014. Vol. 55. pp. 958–965. 17. Babic M., Mitrovic S., Zivic F. Effects of Al2O3 particle reinforcement on the lubricated sliding wear behavior of ZA-27 alloy composites. Journal of Materials Science. 2011. Vol. 46, No. 21. pp. 6964–6974. 18. Abou El-Khair M. T., Lotf A., Daoud A., El-Sheikh A. M. Microstructure, thermal behavior and mechanical properties of squeeze cast SiC, ZrO2 or C reinforced ZA27 composites. Materials Science and Engineering: A. 2011. Vol. 528. pp. 2353–2362. 19. Girisha B. M., Prakasha K. R., Satisha B. M., Jainb P. K., Devic K. Need for optimization of graphite particle reinforcement in ZA-27 alloy composites for tribological applications. Materials Science and Engineering: A. 2011. Vol. 530. pp. 382–388. 20. Dalmis R., Cuvalci H., Canakci A., Guler O. Investigation of graphite nano particle addition on the physical and mechanical properties of ZA27 composites. Advanced Composites Letters. 2016. Vol. 25, No. 2. pp. 37–42. 21. Prusov E. S., Panfilov A. A., Kechin V. A. Modern methods of obtaining of cast composite alloys. Liteyshchik Rossii. 2011. No. 12. pp. 35–39. 22. Yu H., Chen H., Sun L., Min G. Preparation of Al – Al3Ti in situ composites by direct reaction method. Rare Metals. 2006. Vol. 25, No. 1. pp. 32–36. 23. Das K., Narnaware L. K. A study of microstructure and tribological behaviour of Al–4.5% Cu/Al3Ti composites. Materials Characterization. 2009. Vol. 60, No. 8. pp. 808–816. 24. Liu Z., Han Q., Li J. Fabrication of in situ Al3Ti/Al composites by using ultrasound assisted direct reaction between solid Ti powders and liquid Al. Powder Technology. 2013. Vol. 247. pp. 55–59. 25. Prusov E. S., Korobkov M. B., Kechin V. A. Increasing of Tribological Characteristics of Castings from Zinc Alloys. Liteyshchik Rossii. 2014. No. 12. pp. 30–36. 26. Prusov E. S., Korobkov M. B., Kechin V. A. Liquid-phase technology of making composite zinc alloys. Metallurgiya mashinostroeniya. 2015. No. 5. pp. 28–30. 27. State Standard GOST 21437–95. Zinc antifriction alloys. Grades, technical requirements and testing methods. Introduced: 1997–01–01. 28. Li M., Lu S., Long F., Sheng M., Geng H., Liu W. Effect of Y addition on the mechanical properties and microstructure of Zn – Al Alloys. JOM. 2015. Vol. 67, No. 5. pp. 922–928. |