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Published on: September 23, 2018
Achieving High Damping Capacity in Oxygen-Enhanced BCC Zr-Hf-Ti-Nb Multi-Principal-Element Alloys with Low Young's
Qing Wang1, Zhenhua Wang1, Qixiang Zhang1
1School of Materials Science and Engineering, Key Laboratory of Materials Modification by Laser, Ion and Electron Beams (Ministry of Education), Dalian University of Technology, Dalian, 116024, China.
Abstract:
Multi-principal-element alloys (MPEAs) have gained widespread popularity due to the efficient synergetic regulation of mechanical and functional properties in a huge compositional space. Here, novel O-enhanced BCC Zr-Hf-Ti-Nb MPEAs with prominent mechanical and damping properties are developed by the composition formula of (Zr,Hf,Ti)15Nb3. The Zr14TiNb3 and Zr8Hf6TiNb3 alloys possess low BCC-β structural stability. While the Zr8Hf4Ti3Nb3 alloy has a much higher BCC-β stability, as evidenced by the fact that only few α'' and ω precipitates appear in 1.8 at% oxygen-added alloy. This alloy exhibits an optimal mechanical property with a higher yield strength (σYS = 1000 MPa) and larger ductility (ε = 15.1%), which is ascribed to the formation of O-rich clusters in BCC matrix. Moreover, these oxygen-free and -added alloys exhibit an excellent damping capacity due to their low Young's modulus (E < 70 GPa), as exemplified with a peak value of (tanδ)max = 0.02 for 1.8 at% oxygen-added alloy. Notably, the damping characteristics are prominent over a wide temperature range (550-800 K), which derives from the occurrence of multiple separated oxygen-rich clusters. The present findings provide an avenue to enhance mechanical and functional performances of high-temperature damping alloys.
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