|
|
Effects of annealing temperature on the microstructure and friction properties of FeCoCrNiMo0.1 high-entropy alloy fabricated by canned extruding |
TIAN Yanwen1, REN Junye1, HUANG Qianli1, LI Qingxiang2, ZHOU Shaoqiang2, LIU Yin2, WU Hong1,2,3 |
1. Powder Metallurgy Research Institute, Central South University, Changsha 410083, China; 2. Shenzhen Nonfemet Technology Co., Ltd, Shenzhen 518122, China; 3. School of Materials Science and Engineering, Northwestern Polytechnic University, Xi’an 710072, China; |
|
|
Abstract A high-entropy alloy bar was prepared by canned extruding using gas-atomization FeCoNiMo0.1 as raw materials. The extruded bar was annealed at 350, 500 and 650 ℃ for 4 h, respectively. The microstructure and phase composition of the samples were analyzed using scanning electron microscopy (SEM) and X-Ray diffraction (XRD). In addition, the hardness and abrasive resistance of the samples were also tested. The results show that the gas-atomized FeCoCrNiMo0.1 powder has a high sphericity, the extruded and annealed samples are single-phase FCC structure, the hardness of the samples annealed at different temperatures have no obvious change. The change of microstructure is mainly reflected in the grain size and the type and number of the twins. After annealing at 350 ℃, the number of deformation twins decreases, the wear resistance and compression pressure of the alloy decrease slightly, the grain adhesion appeares at the friction interface and the friction coefficient of the alloy decreases. After annealing at 500 ℃ and 650 ℃, the number of twins increases, the wear resistance and yield strength of the alloy increase, the wear mechanism is mainly adhesive wear, and the friction coefficient increases.
|
Received: 28 February 2018
Published: 12 July 2019
|
|
|
|
|
Cite this article: |
TIAN Yanwen,REN Junye,HUANG Qianli, et al. Effects of annealing temperature on the microstructure and friction properties of FeCoCrNiMo0.1 high-entropy alloy fabricated by canned extruding[J]. Materials Science and Engineering of Powder Metallurgy, 2018, 23(5): 482-487.
|
|
|
|
URL: |
http://pmbjb.csu.edu.cn/EN/ OR http://pmbjb.csu.edu.cn/EN/Y2018/V23/I5/482 |
[1] 郑比举, 胡文. 激光熔覆Al+SiC涂层对镁合金表面耐磨性能的改性[J]. 强激光与粒子束, 2014, 26(5): 059003. ZHENG Biju, HU Wen.Enhanced wear property of magnesium alloy with Al+SiC coating by laser cladding[J]. High Power Laser and Particle Beams, 2014, 26(5): 059003. [2] YEH Jienwei, CHEN Swekai, LIN Sujien, et al.Nanostructured high entropy alloys with multiple principal elements: novel alloy design concepts and outcomes[J]. Advanced Engineering Materials, 2004, 6(5): 299-303. [3] 范啟超. AlFeCrNiCoCu 系高熵合金及其复合材料组织及性能研究[D]. 哈尔滨: 哈尔滨工业大学, 2011. FAN Qichao.Research on microstructure and properties of AlFeCrNiCoCu high entropy alloy based composites[D]. Harbin: Harbin Institute of Technology, 2011. [4] 张霞, 孙宏飞, 郭娜娜, 等. 多主元高熵合金的研究进展[J]. 热加工工艺, 2013, 42(18): 13-19. ZHANG Xia, SUN Hongfei, GUO Nana, at al. Research progress of multi principal component high entropy alloy[J]. Hot working Technology, 2013, 42(18): 13-19. [5] XU X D, LIU P, GUO S, et al.Nanoscale phase separation in a FCC-based CoCrCuFeNiAl0.5 high-entropy alloy[J]. Acta Materialia, 2015, 84: 145-152. [6] 李安敏, 黄宇炜, 陈若怀, 等. NixAlTiCrFeCoCu高熵合金的显微组织与性能[J]. 机械工程材料, 2017, 41(5): 53-57. LI Anmin, HUANG Yuwei, CHEN Ruohuai, et al.Microstructure and propertise of NixAlTiCrFeCoCu high-entropy alloy[J]. Materials for Mechanical Engineering, 2017, 41(5): 53-57. [7] 谢红波, 刘贵仲, 郭景杰, 等. 添加Al对AlxFeCrCoCuTi高熵合金组织与高温氧化性能的影响[J]. 稀有金属, 2016, 40(4): 315-321. XIE Hongbo, LIU Guizhong, GUO Jingjie, et al.Microstructure and high temperature oxidation properties of AlxFeCrCoCuTi high-entropy alloys with different Al contents[J]. Rare Mentals, 2016, 40(4): 315-321. [8] 饶湖常, 戴品强, 陈鼎宁, 等. 碳含量对FeCoCrNiMnCx高熵合金显微组织与性能的影响[J]. 机械工程材料, 2016, 40(8): 76-80. RAOHuchang, DAI Pinqiang, CHEN Dingning et al. Effects of carbon content on microstructure and properties of FeCoCrNiMnCx high-entropy alloys[J]. Materials for Mechanical Engineering, 2016, 40(8): 76-80. [9] JIANG Li, WU Wei, CAO Zhiqiang, et al.Microstructure evolution and wear behavior of the laser cladded CoFeNi2V0.5Nb0.75 and CoFeNi2V0.5Nb high-entropy alloy coatings[J]. Journal of Thermal Spray Technology, 2016, 25(4): 806-814. [10] DUAN Haitao, WU Yong, HUA Meng, et al.Tribological properties of AlCoCrFeNiCu high-entropy alloy in hydrogen peroxide solution and in oil lubricant[J]. Wear, 2013, 297(1/2): 1045-1051. [11] CHENG J B, LIANG X B, WANG Z H et al. Formation and mechanical properties of CoNiCuFeCr high-entropy alloys coatings prepared by plasma transferred arc cladding process[J]. Plasma Chem Plasma Process, 2013, 33(5): 979-992. [12] WEN L H, KOU H C, LI J S, et al.Effect of aging temperature on microstructure and properties of AlCoCuFeNi high-entropy alloy[J]. Intermetallics, 2009, 17(1): 266-269. [13] LIN Chunming, TSAI Hsienlung, BOR Huiyun.Effect of aging treatment on microstructure and properties of high-entropy Cu0.5CoCrFeNi alloy[J]. Intermetallics, 2010, 18(2): 1244-1250. [14] MIYAMOTO Hiroyuki, VINOGRADOV Alexei, HASHIMOTO Satoshi, et al.Formation of deformation twins and related shear bands in a cooper single crystal deformed by equal-channel augular pressing for one pass at room temperature[J]. Materials Transaction, 2009, 50(8): 1924-1929. [15] 杨刚, 孙利军, 张丽娜, 等. 形变孪晶的消失与退火孪晶的形成机制[J]. 钢铁研究学报, 2009, 21(2): 39-43. YANG Gang, SUN Lijun, ZHANG Lina.Annihilation of deformation twins and formation of annealing twins[J]. Journal of Iron and Steel Research, 2009, 21(2): 39-43. [16] 刘向海, 刘薇, 刘嘉斌. 退火工艺对低铝低硅孪晶塑性钢组织性能的影响[J]. 中国计量学院学报, 2010, 21(1): 82-86. LIU Xianghai, LIU Wei, LIU Jiabin, et al.Effect of annealing process on Microstructure and properties of low aluminum and low silicon twinning induced plastic steel[J]. Journal of China Jiliang University, 2010, 21(1): 82-86. [17] WU Hong, BAKER Ian, LIU Yong, et al.Effects of environment on the sliding tribological behaviors of Zr-based bulk metallic glass[J]. Intermetallics, 2012, 25(25): 115-125. [18] WU Hong, BAKER Ian, LIU Yong, et al.Tribological studies of a Zr-based bulk metallic glass[J]. Intermetallics, 2013, 35: 25-32. [19] BAI Lichun, SRIKANTH Narasimalu, KORZNIKOVA Julia, et al. Wear and friction between smooth or rough diamond-like carbon films and diamond tips[J]. Wear, 2017, s372/373: 12-20. [20] BRANAGAN D J, SWANK W D, HAGGARD D C, et al.Wear resistant amoephous and nanocomposite steel coatings[J]. Metallurgical & Materials Transactions A, 2001, 32(10): 2615-2621. [21] BAI Lichun, SHA Zhendong, SRIKANTH Narasimalu, et al.Friction between silicon and diamond at the nanoscale[J]. Journal of Physics D: Applied Physics, 2015, 48(25): 1-9. |
|
|
|