Skip to main navigation Skip to search Skip to main content

Microstructural evolutions of molybdenum‑rhenium (47.5 wt.%) alloy under room and high temperature compressions

  • Li Huang
  • , Yichao Yang
  • , Jing Liang
  • , Xiaohui Lin
  • , Xuanqiao Gao
  • , Yanchao Li
  • , Hailong Xu
  • , Jianfeng Li
  • , Wen Zhang
  • Northwest Institute for Nonferrous Metal Research
  • Northwestern Polytechnical University Xian
  • Xi'an Jiaotong University

Research output: Contribution to journalArticlepeer-review

17 Scopus citations

Abstract

Act as a candidate for heat pipe reactor core, molybdenum‑rhenium (47.5 wt%) alloy possesses excellent mechanical properties at a wide temperature range (from room temperature to recrystallized temperature). Compressions at varied temperatures and strain rates were given to study the microstructural evolutions of Mo-47.5Re alloy. Yield strength is similar in sample compressed at 400 °C with high strain rate (1.67 × 10−1 /s) and the one at room temperature with low strain rate (1.67 × 10−3 /s). However, deformation twins are only observed under room temperature and are absent as temperature rises to 400 °C. Thus. Twinning in Mo[sbnd]Re alloy is much sensitive to temperature. The microstructure of Mo-47.5Re alloy is quite stable even compression at 1200 °C. Although sub-grains increasing after 1200 °C compressions, no recrystallization was detected. In addition, microstructural evolutions of Mo-47.5Re are outstandingly dependent on strain rates at 400 °C, while are much less obviously at 800 °C and 1200 °C. No phase changes are detected, which verifies good structural stability in Mo-47.5Re.

Original languageEnglish
Article number114001
JournalMaterials Characterization
Volume212
DOIs
StatePublished - Jun 2024
Externally publishedYes

Keywords

  • Compressive properties
  • Deformation twins
  • Microstructural stability
  • Mo-47.5Re alloy
  • Rate-dependent

Fingerprint

Dive into the research topics of 'Microstructural evolutions of molybdenum‑rhenium (47.5 wt.%) alloy under room and high temperature compressions'. Together they form a unique fingerprint.

Cite this