期刊文献+

471和3555两种硬质合金的高温氧化行为 被引量:3

High temperature oxidation behavior of 471 and 3555 cemented carbides
在线阅读 下载PDF
导出
摘要 对471和3555两种硬质合金进行高温氧化试验,使用扫描电镜对氧化层组织进行观察,并对其氧化过程进行热力学和动力学分析。结果表明:硬质合金氧化时,粘结相比硬质相优先发生氧化。氧化后471合金晶粒由规则多边形状变为柱状,而3555合金氧化层外层组织呈柱状,内层氧化物为层状。两种合金的氧化速度都随氧化温度升高而急剧上升,471合金氧化增重曲线几乎为直线,其氧化反应激活能254.7 kJ.mol-1,3555合金氧化增重符合抛物线规律,氧化激活能大小为336.7 kJ.mol-1。 Abstract:High temperature oxidation treatment was performed on 471 and 3555 cemented carbides. The microstructure of oxidized layer was observed by scanning electron microscopy. Oxidation process was analyzed by thermodynamics and kinetics. The results show that binder phase is oxidized firstly and then oxidation of hard phase oeours. After oxidation the grain shape of 471 alloy changes from the polygonal to columnar. The outer layer microstructure of 3555 alloy shows columnar and the inner shows lamellar. The oxidation rate of two alloys increases rapidly with the increasing temperature. The linear oxidation kinetics curves of 471 alloy is observed, which shows poor oxidation resistance and the oxidation activation energy is 254.7 kJ· mol^-1, while the oxidation kinetics of 3555 alloy obeys a parabolic rule, and the oxidation activation energy of 3555 alloy is 336.7 kJ·mol^-1.
出处 《材料热处理学报》 EI CAS CSCD 北大核心 2013年第2期27-31,共5页 Transactions of Materials and Heat Treatment
关键词 硬质合金 氧化 微观组织 激活能 cemented carbide oxidation microstructure activation energy
作者简介 黄遭远(1978-),男,讲师,博士后,主要从事钢铁冶金、粉末方面研究工作,电话:0731-88830757,E-mail:hdy_aoe@163.com。
  • 相关文献

参考文献14

二级参考文献22

  • 1刘寿荣.WC-Co硬质合金的显微结构参数[J].材料热处理学报,2005,26(1):62-64. 被引量:18
  • 2何平,李晋尧,苏丽君.WC-Co硬质合金的微观组织与断裂强度[J].中南矿冶学院学报,1994,25(3):359-363. 被引量:4
  • 3Bamer.,D,刘光俊.调整粘结相和加Cr3C2对WC—10%Co硬质合金性能的影响[J].国外难熔金属与硬质材料,1996,12(2):48-57. 被引量:5
  • 4[2]BAMERJEE D,LAL G K,UPADHYAYA G S.调整粘结相和加Cr3C2对WC-Co硬质合金性能的影响[J].国外难熔金属与硬质材料,1996,12(2):48-57.BAMERJEE D,LALE G K,UPADHYAYA G S,et al.Influence of rearrangement of binder and addition of Cr3 C2 on properties of cemented carbide[J].Abroad Refractory Metal and Hard Materials,1996,12 (2):48-57.
  • 5[5]TIEGS T N,MENCHHOFER P A.Hardmetals based on Ni3Al as the binder phase[C]// FROES F H.Proceedings of the International Conference on Powder Metallurgy in Aerospace Defense and Demanding Applications-1995.Newjesy:Metal Powder Industries Federation,1995:211-218.
  • 6[6]MOSBAH A.WEXLER D.CALKA A.Tungsten carbide iron aluminide hardmetals:Nanocrystalline vs microcrystalline[J],Materials Science Forum,2000,360(9):649-654.
  • 7[7]SCHNEIBEL J H.Processing,properties and applications of iron aluminides[C]//SCHNEIBEI J H,CRIMP M A.TMS Annual Meeting:Processing,Properties and Applications of Iron Aluminides.Warrendale,PA,USA,1994:329.
  • 8[8]PLUCKNETT K P,TIEQS T N,BECHER P F,et al.Ductile intermetallic toughened carbide matrix composites[J].Ceramic Engineering and Science Proceedings,1996,17(3):314-321.
  • 9Wentzel E J,Allen C.The erosion-corrosion resistance of tungsten carbide hard metals[J].Int J of Refractory Metals & Hard Materials,1997,(15):81~87.
  • 10Basu S,Sarin V.Oxidation behavior of WC-Co[J].Mater Sci Eng A,1996,209:206-212.

共引文献54

同被引文献16

引证文献3

二级引证文献10

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部