欢迎登录材料期刊网

材料期刊网

高级检索

本文从钛合金的显微组织、力学性能、硼化物的形态与分布、硼元素的作用机制等方面,概括分析了添加硼元素对常规钛合金和TiAl合金的作用,并对硼改性钛合金研究的发展方向作了展望.

参考文献

[1] Tamirisakandala S;Bhat RB;Miracle DB;Boddapati S;Bordia R;Vanover R;Vasudevan VK .Effect of boron on the beta transus of Ti-6Al-4V alloy[J].Scripta materialia,2005(2):217-222.
[2] Bilous OO;Artyukh LV;Bondar AA;Velikanova TY;Burka MP;Brodnikovskyi MP;Fomichov OS;Tsyganenko NI;Firstov SO .Effect of boron on the structure and mechanical properties of Ti-6Al and Ti-6Al-4V[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2005(1/2):76-83.
[3] S.I. Lieberman;H. Singh;Y. Mao .The Microstructural Characterization and Simulation of Titanium Alloys Modified with Boron[J].JOM,2007(1):59-63.
[4] C. J. Boehlert;C. J. Cowen;S. Tamirisakandala .In situ scanning electron microscopy observations of tensile deformation in a boron-modified Ti-6Al-4V alloy[J].Scripta materialia,2006(5):465-468.
[5] Godfrey T M T;Wisbey A;Goodwin P S.Microstructure and tensile properties of mechanically alloyed Ti-6Al-4V with boron additions[J].Materials Science and Engineering A,2000(282):240-250.
[6] Tamirisakandala S;Bhat R B;Tiley J S et al.Grain refinement of cast titanium alloy via trace boron addition[J].Scripta Materialia,2005,53:1421-1426.
[7] Sen Indrani;Tamirisakandala S;Miracle D B .Microstructural effects on the mechanical behavior of B-modified Ti-6Al-4V alloys[J].Acta Materialia,2007,55:4983-4993.
[8] Chen, W;Boehlert, CJ .The elevated-temperature fatigue behavior of boron-modified Ti-6Al-4V(wt.%) castings[J].Materials Science and Engineering. A, Structural Materials: Properties, Microstructure and Processing,2008(1/2):132-138.
[9] M.J. Bermingham;S.D. McDonald;K. Nogita .Effects of boron on microstructure in cast titanium alloys[J].Scripta materialia,2008(5):538-541.
[10] Zhu J.;Kamiya A.;Yamada T.;Shi W.;Naganuma K. .Influence of boron addition on microstructure and mechanical properties of dental cast titanium alloys[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2003(1/2):53-62.
[11] Kim Y W.Microstructural evolution and mechanical properties of a forged gamm a titanium alum inidealloy[J].Acta Metallurgica,1992(40):1121-1134.
[12] 付连峰,林建国,曹国鑫,张永刚,陈昌麒,清华大学,北京.全片层TiAl基合金的屈服强度与显微组织关系[J].稀有金属材料与工程,2001(03):178-182.
[13] 周科朝,黄伯云,曲选辉,贺跃辉.TiAl基金属间化合物的显微组织与断裂韧性[J].中国有色金属学报,1996(03):111-114.
[14] 董利民,崔玉友,杨锐.B和C对铸造TiAl基合金宏观和显微组织的影响[J].金属学报,2002(06):643-646.
[15] 杨慧敏,苏彦庆,郭景杰,骆良顺,李新中,傅恒志.B元素对Ti-46Al和Ti-46Al-5Nb合金柱状晶组织的影响[J].金属学报,2008(10):1213-1218.
[16] 李臻熙,曹春晓.微量元素B对Ti-48Al合金组织细化的影响[J].材料工程,2000(03):17-21.
[17] Hu D.Effect of composition on grain refinement on TiAl-based alloy[J].Intermetallics,2001(09):1037-1043.
[18] 张虎,高文理,张二林,曾松岩,何建平.硼含量对Ti-50Al-xB合金中TiB2微观形貌的影响[J].材料工程,2001(12):36-39.
[19] 高文理,张虎,张二林,曾松岩.TiAl-B合金中TiB2微观形态的主要存在方式[J].铸造技术,2003(03):176-178.
[20] Hyman M E;McCullough C;Levi C G .Evolution of boride morphologies in TiAl-B alloys[J].Metallurgical and Materials Transactions A:Physical Metallurgy and Materials Science,1991,22(07):1647-1662.
[21] 江治国,陈波,马颖澈,赵秀娟,刘奎,李依依.添加硼对铸造Ti-46.5Al-8Nb合金组织和性能的影响[J].金属学报,2007(05):487-492.
[22] D. Hu .Effect of boron addition on tensile ductility in lamellar TiAl alloys[J].Intermetallics,2002(9):851-858.
[23] 李臻熙,曹春晓.添加微量硼对TiAl合金持久性能的影响[J].中国有色金属学报,2005(06):836-841.
[24] Larsen D E;Kampe S L;Christodoulou L.Effect of TiB2 volume fraction on the microstructure of a cast near gamma titanium aluminide alloy[J].MRS Symp Process,1990(194):285-292.
[25] Inkson B J;Boothroyd C B;Humphreys C J.Boron segregation in a (Fe,F,B) TiAl based alloy[J].Journal De Physique IV,1993(03):397-402.
[26] Godfrey A B .Grain Refinement of a Gamma-based Titanium Aluminide Using Microalloy Addition[D].英国:伯明翰大学,1996.
[27] Cheng T T.The mechanism of grain refinement in TiAl alloys by boron addition-analternative hypothesis[J].Intermetallics,2000(08):29-37.
[28] 饶光斌,刘奎,韩恩厚,柯伟.硼化物细化γ-TiAl基合金晶粒的机制[J].中国有色金属学报,2004(z1):265-271.
上一张 下一张
上一张 下一张
计量
  • 下载量()
  • 访问量()
文章评分
  • 您的评分:
  • 1
    0%
  • 2
    0%
  • 3
    0%
  • 4
    0%
  • 5
    0%