Elastic Moduli and Mechanical Properties of Mo<sub>5</sub>SiB<sub>2</sub> Single Crystals in the Mo-Si-B System

With outstanding high-temperature properties, the intermetallic Mo<sub>5</sub>SiB<sub>2</sub> alloy is regarded as an extremely competitive ultra-temperature structural material. The maximum Young’s modulus of 398.0 GPa for single Mo<sub>5</sub>SiB<sub>2<...

Full description

Bibliographic Details
Main Authors: Kunming Pan, Chengyang Zhang, Gaogao Dong, Rui Wang, Hua Yu, Changji Wang, Yongpeng Ren
Format: Article
Language:English
Published: MDPI AG 2022-11-01
Series:Crystals
Subjects:
Online Access:https://www.mdpi.com/2073-4352/12/11/1577
Description
Summary:With outstanding high-temperature properties, the intermetallic Mo<sub>5</sub>SiB<sub>2</sub> alloy is regarded as an extremely competitive ultra-temperature structural material. The maximum Young’s modulus of 398.0 GPa for single Mo<sub>5</sub>SiB<sub>2</sub> crystals was found to be at the vertex of the [010] direction, while the minimum value of 264.0 GPa was found in the [001] direction. For hardness, the maximum value was 451.7 HV after compression at 1200 °C in the radial direction, while the maximum hardness was 437.2 HV at 1300 °C in the axial direction of {111}<110>, showing obvious anisotropy. Under compression, the flow stresses rapidly increased and then decreased with the increase in strain, corresponding to the two different stages of work hardening and softening. An EBSD test showed that the grain orientation remained the same at different rates, but the texture was different. After high-temperature compression, the crystal underwent plastic deformation, dislocations slipped along the slip plane, and the grain rotated, so the grain texture changed from {111}<110> to {001}<110>.
ISSN:2073-4352