TY - JOUR
T1 - 三元Laves相Cr-Nb-Si(Al)合金的组织演变与强韧化机理
AU - Xue, Yun Long
AU - Wang, Yu Xuan
AU - Sun, Hao Hua
AU - Yuan, Liang
AU - Li, Shuang Ming
N1 - Publisher Copyright:
© 2022, China Science Publishing & Media Ltd. All right reserved.
PY - 2022/10/28
Y1 - 2022/10/28
N2 - Two series of Laves phase alloys Cr-Nb-Si(Al) were prepared by vacuum non-consumable arc melting, and various techniques including SEM, EDS, a Vickers hardness tester, and a universal mechanical testing machine were conducted to study the microstructures, the mechanical properties, and the underling strengthening and toughening mechanisms of these alloys. The results showed that, the microstructures of alloys Cr-45Nb-xAl(x=0, 7.5, 17.5) evolved from primary Cr2Nb plus eutectic Cr2Nb/Nbss to full eutectic Cr2Nb/Nbss with increasing Al content, whereas the microstructures of alloys Cr-57.5Nb-xSi(x=0, 5, 10) transited from primary Nbss plus eutectic Cr2Nb/Nbss to dendritic eutectic. The eutectic within the dendrite was Cr2Nb/Nbss, while transforming to Cr2Nb/Nb5Si3/Nbss at the margin of dendrite. The compression strength and fracture toughness of alloys Cr-45Nb-xAl(x=0, 7.5, 17.5) decreased with increasing Al content, whereas increased firstly and decreased subsequently with increasing Si in the alloys Cr-57.5Nb-xSi(x=0, 5, 10). The compression strength and fracture toughness reached its maximum in the alloy Cr-57.5Nb-5Si and estimated as 2.5 GPa and 15 MPa∙m1/2, respectively. The excellent combination of strength and toughness of alloy Cr-57.5Nb-5Si originated from the synergistic effects of precipitation strengthening, interface strengthening, solid solution strengthening, second phase toughening and alloying toughening.
AB - Two series of Laves phase alloys Cr-Nb-Si(Al) were prepared by vacuum non-consumable arc melting, and various techniques including SEM, EDS, a Vickers hardness tester, and a universal mechanical testing machine were conducted to study the microstructures, the mechanical properties, and the underling strengthening and toughening mechanisms of these alloys. The results showed that, the microstructures of alloys Cr-45Nb-xAl(x=0, 7.5, 17.5) evolved from primary Cr2Nb plus eutectic Cr2Nb/Nbss to full eutectic Cr2Nb/Nbss with increasing Al content, whereas the microstructures of alloys Cr-57.5Nb-xSi(x=0, 5, 10) transited from primary Nbss plus eutectic Cr2Nb/Nbss to dendritic eutectic. The eutectic within the dendrite was Cr2Nb/Nbss, while transforming to Cr2Nb/Nb5Si3/Nbss at the margin of dendrite. The compression strength and fracture toughness of alloys Cr-45Nb-xAl(x=0, 7.5, 17.5) decreased with increasing Al content, whereas increased firstly and decreased subsequently with increasing Si in the alloys Cr-57.5Nb-xSi(x=0, 5, 10). The compression strength and fracture toughness reached its maximum in the alloy Cr-57.5Nb-5Si and estimated as 2.5 GPa and 15 MPa∙m1/2, respectively. The excellent combination of strength and toughness of alloy Cr-57.5Nb-5Si originated from the synergistic effects of precipitation strengthening, interface strengthening, solid solution strengthening, second phase toughening and alloying toughening.
KW - Laves phase alloys
KW - Mechanical properties
KW - Microstructures
KW - Strengthening and toughening mechanisms
UR - http://www.scopus.com/inward/record.url?scp=85143977332&partnerID=8YFLogxK
U2 - 10.11817/j.ysxb.1004.0609.2021-42179
DO - 10.11817/j.ysxb.1004.0609.2021-42179
M3 - 文章
AN - SCOPUS:85143977332
SN - 1004-0609
VL - 32
SP - 2999
EP - 3010
JO - Zhongguo Youse Jinshu Xuebao/Chinese Journal of Nonferrous Metals
JF - Zhongguo Youse Jinshu Xuebao/Chinese Journal of Nonferrous Metals
IS - 10
ER -