Development of Zn-Reinforced Mg Matrix Composites via High Energy Ball Milling Duration: Impact on Mechanical Properties and Biodegradability

被引:0
作者
Cetinkal, S. Bilal [1 ]
Salur, Emin [1 ]
Arici, Goekhan [1 ]
Degnah, Ahmed [2 ,3 ]
Sarkar, Sayan [4 ,5 ]
Subutay, Halit [1 ]
机构
[1] Selcuk Univ, Dept Met & Mat Engn, TR-42075 Konya, Turkiye
[2] King Abdulaziz City Sci & Technol, Adv Mat Technol Inst, POB 6086, Riyadh 11442, Saudi Arabia
[3] King Salman Ctr Disabil Res, Riyadh 11614, Saudi Arabia
[4] Univ Utah, Dept Mat Sci, Salt Lake City, UT 84112 USA
[5] Intel Corp, Ronler Acres Campus, Hillsboro, OR 97124 USA
关键词
ball milling; powder metallurgy; biodegradability; magnesium; mechanical properties; zinc; CORROSION BEHAVIOR; POWDER-METALLURGY; GRAIN-SIZE; MAGNESIUM; ALLOYS; NANOPARTICLES; MICROSTRUCTURE; SN; NANOCOMPOSITES; PRECIPITATION;
D O I
10.3390/coatings15050561
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In this study, Zn-reinforced Mg matrix composite materials were produced via powder metallurgy by exposing them to ball milling at varying mechanical milling times. Following ball milling, the powders were cold-pressed under 600 MPa to obtain green compacts. The sintering process was carried out in a tube furnace under an argon atmosphere at 500 degrees C for 120 min. The effects of different milling times (2 h, 4 h, and 8 h) on particle and grain size, as well as the influence of sintering temperature and time on the microstructure, were investigated through SEM analysis. Phase evolution and changes in crystal planes occurring after ball milling were revealed by XRD analysis. SEM images show that Zn particles were homogeneously distributed within the matrix after 8 h of milling. Furthermore, it can be clearly stated that the highest hardness values were obtained from the samples produced after 8 h of milling. The sample group with the highest density, least mass loss, and lowest degradation rate was obtained from materials produced from 4 h ball milled powders. The intermetallic phase formed in the powder structure after 8 h of milling tends to reduce density and corrosion properties. The findings reveal that the addition of these alloys to pure Mg clearly enhances its hardness and density, while also imparting superior corrosion resistance. These combined improvements suggest that the developed materials hold strong potential for application in biomedical and clinical environments, where both mechanical strength and corrosion resistance are critical.
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页数:18
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