|
|
Effect of Ta on High Temperature Tensile Properties of Advanced Ni-based Powder Metallurgy Superalloys |
Zhicheng WANG,Hao WANG( ),Hailiang HUANG,Benfu Hu |
School of Material Science and Engineering, University of Science and Technology Beijing, Beijing 100083, China |
|
Cite this article:
Zhicheng WANG,Hao WANG,Hailiang HUANG,Benfu Hu. Effect of Ta on High Temperature Tensile Properties of Advanced Ni-based Powder Metallurgy Superalloys. Chinese Journal of Materials Research, 2019, 33(5): 331-337.
|
Abstract Microstructure and high temperature tensile properties of five powder metallurgy FGH98 alloys with different Ta content were systematically investigated by optical microscopy (OM), scanning electron microscopy (SEM), transmission electron microscope (TEM) and high temperature tensile testing machine. The results show that: Ta can obviously eliminate the prior particle boundaries (PPB) and change the morphology of secondary γ'-phase. Ta can promote the generation of tertiary γ'-phase. Ta improved the high temperature tensile strength and yield strength of the alloys. When the Ta content was 2.4% (the same below), the alloy has the preferable plasticity. Alloys without Ta and with 1.2%Ta showed a crystalline-like fracture surface while the alloy with 2.4%Ta showed ductile fracture surface. Alloys with 3.6%Ta and 4.8%Ta exhibited transgranular and intergranular cleavage fractures. The alloy without Ta deformed mainly by generating a large number of twins and dislocations bypassing the γ'-phase. With the increasing Ta content, the dislocations shear the γ'-phase, therewith produce a large number of stacking faults.
|
Received: 13 August 2018
|
|
Fund: National Natural Science Foundation of China(51571020);National Key Basic Research Program of China(2016YFB0700505) |
[1] | ZhangY W, LiuJ T. Development in powder metallurgy superalloy [J]. Mater China, 2013, 32(01): 1 | [1] | 张义文, 刘建涛. 粉末高温合金研究进展 [J]. 中国材料进展, 2013, 32(01): 1) | [2] | JiaC C, TianG F. Powder metallurgy superalloy [J]. Metal World, 2011, 21(2): 19 | [2] | 贾成厂, 田高峰. 粉末高温合金 [J]. 金属世界, 2011, 21(2): 19 | [3] | JiaJ, TaoY, ZhangY W, et al. Recent development of third generation P/M superalloy rené104 [J]. Powder metallurgy industry, 2007, 17(3): 36 | [3] | 贾 建, 陶 宇, 张义文等. 第三代粉末冶金高温合金René104的研究进展 [J]. 粉末冶金工业, 2007, 17(3): 36) | [4] | JanowskiG M, HeckelR W, PletkaB J. The effects of tantalum on the microstructure of two polycrystalline nickel-base superalloys: B-1900+Hf and MAR-M247 [J]. Metall. Trans. A, 1986, 17(11): 1891 | [5] | NathalM V, EbertL J. The influence of cobalt, tantalum, and tungsten on the microstructure of single crystal nickel-base superalloys [J]. Metall. Trans. A, 1985, 16(10): 1849 | [6] | ZhengL, ZhangG, LeeT L, et al. The effects of Ta on the stress rupture properties and microstructural stability of a novel Ni-base superalloy for land-based high temperature applications [J]. Mater. Des, 2014, 8(61): 61 | [7] | ZhangJ. Effect of Ti and Ta on hot cracking susceptibility of directionally solidified Ni-based superalloy IN792 [J]. Scripta Mater, 2003, 48(6): 677 | [8] | JonesJ, MackayD JC. Tensile deformation behavior of a nickel based superalloy at different temperatures [A]. Proceedings of the 8th International Symposium on Superalloy [C]. Pennsylvania, 1996 | [9] | WuK, LiuG Q, HuB F, et al. Research progress of new type high-performans P/M turbine disk supealloys [J]. Mater China, 2010, 29(03): 23 | [9] | 吴 凯, 刘国权, 胡本芙等. 新型涡轮盘用高性能粉末高温合金的研究进展 [J]. 中国材料进展, 2010, 29(03): 23) | [10] | YangJ, DongJ X, ZhangM C, aler. High temperature fatigue crack growth behavior of a novel powder metallurgy superalloy FGH98 [J]. Acta.Mater.Sin, 2013, 49(01): 71 | [10] | 杨 健, 董建新, 张麦仓等. 新型镍基粉末高温合金FGH98的高温疲劳裂纹扩展行为研究 [J]. 金属学报, 2013, 49(01): 71) | [11] | HuronE S, BainK R, MourerD P, et al. The influence of grain boundary elements on properties and microstructures of P/M nickel base superalloys [A]. Proceeding of the 10th International Symposium on superalloy [C]. Warrendale, 2004 | [12] | Hardy1M C, ZirbelB, . Developing damage tolerance and creep resistance in a high strength nickel alloy for disc applications [A]. Proceeding of the 10th International Symposium on superalloy [C]. Warrendale, 2004 | [13] | MourerD P, HuronE S, et al. Superalloy optimized for hight-temperature performance in high-pressure turbine disks [P]. America, US6521175B1, 2002 | [14] | GaoS, HouJ, YangF. Effects of tantalum on microstructure and mechanical properties of cast IN617 alloy [J]. Mater.Sci.Eng.A, 2017, 706(8): 153 | [15] | GaoS, HouJ, YangF. Effect of Ta on microstructural evolution and mechanical properties of a solid-solution strengthening cast Ni-based alloy during long-term thermal exposure at 700℃ [J].Alloys. Compd., 2017, 729(30): 903 | [16] | ShiL,YuJ J, CuiC Y, et al. Effect of Ta additions on microstructure and mechanical properties of asingle-crystal Co-Al-W-basealloy [J]. Materials Letters, 2015, 149(3): 58 | [17] | LundA C, VoorheesP W. The effects of elastic stress on microstructural development: the three-dimensional microstructure of a γ-γ′ alloy [J]. Acta Mater., 2002, 50(18): 2585 | [18] | MitchellR J, PreussM. Inter-Relationships between Composition, γ′ Morphology, Hardness, and γ-γ′ Mismatch in Advanced Polycrystalline Nickel-Base Superalloys during Aging at 800℃ [J]. Metall and Mat Trans A, 2007, 38(4): 615 | [19] | ShangS L. Effects of alloying element and temperature on the stacking fault energies of dilute Ni-base Superalloys [J]. J Phys: Condens. Matter, 2012, 24: 505 | [20] | YuanY, GuY F, et al. Creep mechanisms of a new Ni-Co-base disc superalloy at an intermediate temperature [J]. J Microsc, 2012, 248(7): 34 | [21] | YuanY, GuY F, CuiC Y, et al. Creep mechanismsof U720Li disc superalloy at intermediate temperature [J]. Mater. Sci. Eng. A, 2011, 528(15): 5106 | [22] | CaronP, KhanT, VeyssiereP. On precipitate shearing by superlattice stacking faults in superalloys [J]. Philos. Mag. A, 1998, 57(10): 859 | [23] | TianC G, HanG M, et al. Effects of Co content on tensile properties and deformation behaviors of Ni-based disk superalloys at different temperatures [J]. Mater Design, 2015, 88 (1): 123 |
|
No Suggested Reading articles found! |
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|
Cited |
|
|
|
|
|
Shared |
|
|
|
|
|
Discussed |
|
|
|
|