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PLASTIC DEFORMATION BEHAVIOR OF DIRECTION-ALLY SOLIDIFIED U720Li ALLOY AT ELEVATEDTEMPERATURE |
Bo GAO1,Lei WANG1( ),Taosha LIANG1,Yang LIU1,Xiu SONG1,Jinglong QU2 |
1 Key Lab for Anisotropy and Texture of Materials, Ministry of Education, Northeastern University, Shenyang 110819, China 2 High Temperature Material Research Institute, Central Iron and Steel Research Institute, Beijing 100081, China |
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Cite this article:
Bo GAO,Lei WANG,Taosha LIANG,Yang LIU,Xiu SONG,Jinglong QU. PLASTIC DEFORMATION BEHAVIOR OF DIRECTION-ALLY SOLIDIFIED U720Li ALLOY AT ELEVATEDTEMPERATURE. Acta Metall Sin, 2016, 52(4): 437-444.
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Abstract U720Li, a kind of precipitation type nickel-based superalloy, shows excellent mechanical properties at elevated temperature, which is also known as the difficult-to-deform alloy because of the high-alloying. To solve its deformation problem, new methods would be developed to enlarge the temperature deforming window and improve its plasticity. The hot compression deformation behaviors of directionally solidified and equiaxed grain U720Li alloys were studied by the MMS-300 testing system, as well as the dynamic recrystallization nucleation and growth mechanisms during the hot deformation were discussed. The microstructural characteristics of the alloy under different deformation conditions were examined using OM, SEM and EBSD. The results show that the deforming resistances of both directionally solidified and equiaxed grain U720Li alloys decrease with the increasing of deforming temperature. When the angle θ between the compression deforming direction and dendrite growth direction is 90°, the deforming resistance of directionally solidified U720Li alloy would be lower. With this direction, the coordination deformation between the dendrites becomes better and no crack can be found after deformation, which indicates that the deforming ability is best along θ=90° and it can be considered as the optimal deforming direction for directionally solidified U720Li alloy. Compared with equiaxed grain alloy, directionally solidified U720Li alloy performs higher deformation ability and more homogenous microstructures. During the deformation of directionally solidified U720Li alloy, bulging nucleation of grain boundary migration and dislocation pile-up induced nucleation are found as the main mechanism for the nucleation of dynamic recrystallization. In addition, the deformation activation energy of directionally solidified U720Li alloy is 766 kJ/mol, which is 482 kJ/mol lower than that of equiaxed grain alloy, indicating the directionally solidified U720Li alloy exhibits better hot-working plasticity.
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Received: 10 July 2015
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Fund: Supported by National Natural Science Foundation of China (Nos.51171039 and 51371044) and High Technology Research and Development Program of China (No.2012AA-03A513) |
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