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Title: | Effect of Cobalt Content on Thermal, Mechanical, and Microstructural Properties of Al0.4FeCrNiCox (x = 0, 0.25, 0.5, 1.0 mol) High-Entropy Alloys |
Authors: | Kumar, Vinod |
Keywords: | Chemical analysis;Cobalt;Crystal structure;Differential scanning calorimetry;Entropy;Hardness;High-entropy alloys;Scanning electron microscopy;Thermal conductivity;Transmission electron microscopy;X ray spectrometers;Arc-melting;Chemical compositions;Cobalt content;Energy dispersive x-ray spectrometers;Fcc structures;Micro-structural properties;Single phase;Thermally stable;Thermal conductivity of solids |
Issue Date: | 2019 |
Publisher: | Springer New York LLC |
Citation: | Kumar, S., Patnaik, A., Pradhan, A. K., & Kumar, V. (2019). Effect of cobalt content on thermal, mechanical, and microstructural properties of Al0.4FeCrNiCox (x = 0, 0.25, 0.5, 1.0 mol) high-entropy alloys. Journal of Materials Engineering and Performance, 28(7), 4111-4119. doi:10.1007/s11665-019-04162-4 |
Abstract: | Al0.4FeCrNiCox (x = 0, 0.25, 0.5, 1.0 mol) high-entropy alloys are developed by arc melting route to investigate the effect of cobalt content on thermal, mechanical, and microstructural properties. The phase, microstructure, and chemical composition are analyzed using x-ray diffraction, transmission electron microscope, and scanning electron microscope with attached energy-dispersive x-ray spectrometer. The obtained results have shown that the Al0.4FeCrNiCox (x = 0-0.5 mol) high-entropy alloys form a simple FCC + BCC-type solid solution and Al0.4FeCrNiCox=1 HEA forms a single-phase FCC structure. The compressive yield strength, microhardness, and thermal conductivity are observed to decrease from 965.22 to 233.37 MPa, 253.6 to 155.6 HV, and from 4.87 to 2.674 W/mK, respectively, whereas the electrical resistivity is observed to increase from 150.30 to 273.74 µΩ-cm with the addition of cobalt from x = 0-1 mol. Differential scanning calorimetry analysis has indicated that the Al0.4FeCrNiCox (x = 0, 0.25, 0.5, 1.0 mol) high-entropy alloys are thermally stable up to 1000 °C. © 2019, ASM International. |
URI: | https://doi.org/10.1007/s11665-019-04162-4 https://dspace.iiti.ac.in/handle/123456789/7537 |
ISSN: | 1059-9495 |
Type of Material: | Journal Article |
Appears in Collections: | Department of Metallurgical Engineering and Materials Sciences |
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