Combustion Synthesis and Reactive Spark Plasma Sintering of Non-Equiatomic CoAl-Based High Entropy Intermetallics

Author:

Kuskov Kirill Vasilevich1ORCID,Nepapushev Andrey A.1ORCID,Aydinyan Sofiya23,Shaysultanov Dmitry G.4,Stepanov Nikita D.4ORCID,Nazaretyan Khachik3,Kharatyan Suren3ORCID,Zakharova Elena V.5,Belov Dmitry S.5,Moskovskikh Dmitry O.16ORCID

Affiliation:

1. Center of Functional Nano-Ceramics, National University of Science and Technology MISiS, 119049 Moscow, Russia

2. Department of Mechanical and Industrial Engineering, Tallinn University of Technology, 19086 Tallinn, Estonia

3. Laboratory of Macrokinetics of Solid State Reactions, A.B. Nalbandyan Institute of Chemical Physics, Yerevan 0014, Armenia

4. Laboratory of Bulk Nanostructured Materials, Belgorod State University, 308015 Belgorod, Russia

5. Department of Functional Nanosystems and High-Temperature Materials, National University of Science and Technology MISiS, 119049 Moscow, Russia

6. Research Laboratory of Scanning Probe Microscopy, Moscow Polytechnic University, 107023 Moscow, Russia

Abstract

The present work reports the direct production of a high-entropy (HE) intermetallic CoNi0.3Fe0.3Cr0.15Al material with a B2 structure from mechanically activated elemental powder mixtures. Fast and efficient combustion synthesis (CS), spark plasma sintering (SPS), and reactive SPS (RSPS) methods were used to synthesize the HE powders and bulks. The formation of the main B2 phase along with some amounts of secondary BCC and FCC phases are reported, and L12 intermetallic (CS scheme) and BCC based on Cr (CS + SPS and RSPS schemes at 1000 °C) were observed in all samples. The interaction between the components during heating to 1600 °C of the mechanically activated mixtures and CS powders has been studied. It has been shown that the formation of the CoNi0.3Fe0.3Cr0.15Al phase occurs at 1370 °C through the formation of intermediate intermetallic phases (Al9Me2, AlCo, AlNi3) and their solid solutions, which coincidences well with thermodynamic calculations and solubility diagrams. Compression tests at room and elevated temperatures showed that the alloy obtained by the RSPS method has enhanced mechanical properties (σp = 2.79 GPa, σ0.2 = 1.82 GPa, ε = 11.5% at 400 °C) that surpass many known alloys in this system. High mechanical properties at elevated temperatures are provided by the B2 ordered phase due to the presence of impurity atoms and defects in the lattice.

Funder

Committee of Science Ministry of Education, Science, Culture and Sports of the Republic of Armenia

Estonian Research Council

Publisher

MDPI AG

Subject

General Materials Science

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