High-temperature synthesis of a cast material with a maximum content of the MAX phase Cr2AlC

2017 ◽  
Vol 53 (3) ◽  
pp. 271-277 ◽  
Author(s):  
V. A. Gorshkov ◽  
P. A. Miloserdov ◽  
M. A. Luginina ◽  
N. V. Sachkova ◽  
A. F. Belikova
2016 ◽  
Vol 879 ◽  
pp. 1624-1628
Author(s):  
Manuel Carsí ◽  
José A. Jiménez ◽  
Xabier Gomez-Mitxelena ◽  
Oscar A. Ruano

In the present work, 1 wt.% of (Ti,Nb)C carbide particles prepared by self-propagating high temperature synthesis (SHS) were introduced into a melt of a conventional P23 steel to obtain a reinforced material with improved creep properties. The as-cast material showed a eutectic type microstucture, indicating partial dissolution of these carbides in the melt. Inside the dendritic regions, a bainitic/martensitic structure similar to that of the unreinforced material was present. A significant refinement of the prior austenitic grain size was revealed in the reinforced material. Brinell hardeness measurements reveal an increase of hardness in the reinforeced material due to the addition of the carbides. High strain rate compression tests were perfomed at temperatures in the range 950 and 1250oC to determine the optimum forming conditions. Stability maps for a wide range of temperatures and strain rates were drawn. The optimum temperature for the reinforced steel is about 77 K higher than for the non-reinforced steel.


2019 ◽  
Vol 45 (2) ◽  
pp. 2689-2691 ◽  
Author(s):  
Pavel A. Miloserdov ◽  
Vladimir A. Gorshkov ◽  
Ivan D. Kovalev ◽  
Dmitrii Yu. Kovalev

2018 ◽  
Vol 44 (8) ◽  
pp. 9671-9678 ◽  
Author(s):  
Maryam Akhlaghi ◽  
Seyed Ali Tayebifard ◽  
Esmaeil Salahi ◽  
Mehdi Shahedi Asl ◽  
Gert Schmidt

2017 ◽  
Vol 746 ◽  
pp. 207-213 ◽  
Author(s):  
Aleksandr P. Amosov ◽  
Evgeniy I. Latukhin ◽  
P.A. Petrov ◽  
E.A. Amosov ◽  
Vladislav A. Novikov ◽  
...  

An attempt was made to obtain boron-containing MAX-phase by the process of self-propagating high-temperature synthesis (SHS) of Ti3AlC2, replacing some carbon atoms by boron atoms. This was conducted by burning powder mixtures (charges) of the composition 3Ti+2Al+2((1-x)C+xB), where x is the fraction of boron atoms (0.10, 0.15, 0.25, 0.50, 0.75, 0.90), replacing the carbon atoms. X-ray diffraction analysis of the products of combustion have shown that the replacement of carbon with boron to half of the content of carbon atoms in the charge (x=0.10-0.50), does not change the phase composition of the products, including Ti3AlC2 and TiC, but leads to a shift of the peaks of these phases in the diffraction pattern in the direction of smaller angles. When replacing more than half of the carbon atoms with the boron (x=0.75 and 0.90), the peaks of titanium carbide and MAX-phase are not observed, and the XRD peaks appear of the titanium borides TiB and TiB2, and intermetallic compound Al3Ti. Photomicrographs obtained with an electron microscope show that the SHS products synthesized from the charge with replacing up to half of the carbon atoms with the boron represent plates with a thickness of about 1 μm typical for MAX-phases, but rounded particles of borides and intermetallic compound of titanium appear at a higher boron content. Based on these results, it is concluded that replacement of a part (up to 50%) of the carbon atoms with boron atoms in the SHS charge 3Ti+2Al+2C leads to the synthesis of boron-containing MAX-phase based on the crystal lattice of Ti3AlC2.


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