تعداد نشریات | 418 |
تعداد شمارهها | 10,005 |
تعداد مقالات | 83,619 |
تعداد مشاهده مقاله | 78,312,694 |
تعداد دریافت فایل اصل مقاله | 55,365,305 |
The Effect of Cooling Rate on the Microstructure and Mechanical Properties of the Plastic Injection Molds | ||
Journal of Environmental Friendly Materials | ||
مقاله 3، دوره 5، شماره 1 - شماره پیاپی 9، شهریور 2021، صفحه 7-11 اصل مقاله (693.69 K) | ||
نوع مقاله: Original Article | ||
نویسندگان | ||
Z. S Seyedraoufi1؛ M Samiee1؛ F Abdi2 | ||
1Advanced Materials Engineering Research Center, Karaj Branch, Islamic Azad University, Karaj, Iran | ||
2Institute of Materials and Energy, Karaj, Iran | ||
چکیده | ||
In this research, the effect of cooling rate on the microstructure, hardness and impact energy of a plastic injection mold made of X210Cr12 steel wasinvestigated. The microstructural studies showed that with increasing cooling rate, the amount of residual austenite (Ar) decreases until it is completely removed.Statistical analysis showed that the size and volume fraction of chromium stabilized with block carbides decreases with increasing cooling rate. As the cooling rate increased, bainites were observed in the microstructure. The hardness decreased via increasing the cooling rate and austenitization time due to the reduced interaction of carbides with dislocations. Martensitic structure prevented a significant reduction in hardness. These factors increased the toughness of the X210Cr12 and led to the ductile failure. Cryogenic treatment modified the structure via distribution of fine carbides into the stable lath martensite. With optimizing the hardness and toughness to withstand the impact of the die, toughness increased to 125 j and hardness decreased to 624 H.V. | ||
کلیدواژهها | ||
X210Cr12 Steel؛ Cryogenic؛ Toughness؛ Microstructure؛ Hardness | ||
مراجع | ||
[1] S. G. Sapate, A. D. Chopde, P. M. Nimbalkar and D. M. Chandarkar, Mater. Des., 28(2007), 1923.
[2] I. Sevim and I. B. Eryurek, Kov. Mater., 43(2005), 158.
[3]H. Jirková, K. Rubešová, P. Konopík and K. Opatová, Metals., 8(2018), 713.
[4]D. Tobola, W. Brostow, K. Czechowski and P. Rusek, Wear., 382(2017) 29.
[5]R. Karimdadashi and M. A. Mohtadi-bonab, Int. j. Res. Appl. Sci. Eng. Technol., 4)2016(, 2321.
[6]A. Bensely, A. Prabhakaran, D. Mohan Lal and G. Nagarajan, Cryogenics., 45(2005), 747.
[7] Y. Dong, X. Lin and H.S. Xiao, Heat Treat. Met., 25(1998), 55.
[8] J.D. Darwin, D. Mohan Lal and G. Nagarajan, J. Mater. Process. Technol., 195(2008), 241.[9] M. Sitko and B. Skoczeń, Int. J. Solids. Struct., 49 (2012), 613.
[10]W. Han, Y. Liu, F. Wan, P. Liu, X. Yi, Q. Zhan, D. Morrall and S. Ohnuki, J. Nucl. Mater., 504(2018), 29.
[11]V. G. Gavriljuk, W. Theisen, V. V. Sirosha, E. V. Polshin, A. Kortmann, G. S. Mogilny, Y. N.Petrov and Y. V. Tarusin, Acta Mater., 61 (2013) 1705.
[12]A. Gural, Kov. Mater., 48(2010), 25.
[13]R. Ebner, H. Leitner, F. Jeglitch and D. Caliskanoglu, Proc. of the 5th Int. Conference on Tooling, Leoben, (1999), 3.
[14]D. Tobola, W. Brostow, K. Czechowski and P. Rusek, Wear., 382(2017) 29.
[15] R. Hood, F. M. Aguirre, L. S. Gonzalez, D. Novovic and S. L. Soo, Manuf. Technol., 68(2019) 329.
[16] M. Novelli, P. Bocher and T. Grosdidier, Mater. Charact., 139(2018),197.
[17] V. Vinay, M. R. Ramesh and D. Chakradhar, J. Manuf. Proc., 37(2019), 242.
[18] W. Kaikai, K. Gu, J. Miao, Z. Weng, J. Wang, Z. Tan and B. Bai, Mater. Sci. Eng. A., 743(2019), 259.
[19] P.Germán, J. E. P. Ipiña and W. R. Tuckart, Mater. Sci. Eng. A., 605(2014), 236.
| ||
آمار تعداد مشاهده مقاله: 266 تعداد دریافت فایل اصل مقاله: 155 |