Please wait a minute...
Acta Metall Sin  2008, Vol. 44 Issue (3): 314-318     DOI:
Research Articles Current Issue | Archive | Adv Search |
EFFECTS OF TiB2 CONTENT ON MICROSTRUCTURE AND MECHANICAL PROPERTY OF B4C--TiB2--Al COMPOSITES
LU Peng; RU Hongqiang; YU Liang; LIU Lixian; SUN Xudong
Cite this article: 

LU Peng; RU Hongqiang; YU Liang; LIU Lixian; SUN Xudong. EFFECTS OF TiB2 CONTENT ON MICROSTRUCTURE AND MECHANICAL PROPERTY OF B4C--TiB2--Al COMPOSITES. Acta Metall Sin, 2008, 44(3): 314-318 .

Download:  PDF(1106KB) 
Export:  BibTeX | EndNote (RIS)      
Abstract  B4C-TiB2-Al composites were prepared by the method of infiltrating aluminum into B4C-TiB2 preform in vacuum. Investigations were carried out to analyze the effects of different content of TiB2 on the microstructure and properties of the composites. The results showed that B4C-TiB2-Al composite is mainly composed of B4C, TiB2, Al and Al3BC, and hardness decreases, bending strength increases and fracture toughness increases and then decreases lightly with the increase of TiB2 content,. Porosity, hardness, bending strength and fracture toughness of composite with 40 wt.% TiB2 are 1.32%, 80.3HRA, 559.4MPa and 7.83MPa•m1/2 respectively. It was found that the toughening mechanism of the composites is mainly that the addition of aluminum, the diminishment of B4C and TiB2 grain size, the crack deflection and divarication caused by the difference in thermal expansion coefficient between the matrix B4C and the particle TiB2. The ratio of metal tear ridges and dimples increase while the ratio of intergranular fractures and transgranular fractures decrease in the fracture surface with the increase of aluminum content.
Key words:  composite      B4C-TiB2-Al      infiltration in vacuum      mechanical property      microstructure      
Received:  29 September 2007     
ZTFLH:  TQ174  

URL: 

https://www.ams.org.cn/EN/     OR     https://www.ams.org.cn/EN/Y2008/V44/I3/314

[1]Deng J X,Zhou J,Feng Y H,Ding Z L.Ceram Int,2002; 28:425
[2]Li S B,Wen G W,Zhang B S.Acta Metall Sin,2001;37: 663 (李世波,温广武,张宝生.金属学报,2001;37:663)
[3]Yamada S,Hirao K,Yamauchi Y,Kanzaki S.J Eur Ce- ram Soc,2003;23:561
[4]Goldstein A,Yeshurun Y,Goldenberg A.J Eur Ceram Soc,2007;27:695
[5]Skorokhod V V,Krstic V D.Powder Metall Met Ceram, 2000;39:504
[6]Srivatsan T S,Guruprasad G,Black D,Radhakrishnan R, Sudarshan T S.Powder Technol,2005;159:161
[7]Lee B S,Kang S.Mater Chem Phys,2001;67:249
[8]Tariolle S,Thévenot F,Aizenstein M,Dariel M P,Frumin N,Frage N.J Solid State Chem,2004;177:400
[9]Frage N,Levin L,Frumin N,Gelbstein M,Dariel M P.J Mater Process Technol,2003;143-144:486
[10]Li Q,Hua W J,Cui Y,Zhang S Q.J Mater Eng,2003;4: 17 (李青,华文君,崔岩,张少卿.材料工程,2003;4:17)
[11]Zhou Y,Lei T Q.Ceramic Materials.2 ed.,Beijing:Sci- ence Press,2004:162 (周玉,雷廷权.陶瓷材料学.第二版,北京:科学出版社,2004:162)
[12]Wang L S.Special Ceramics.2 ed.,Changsha:Central South University of Technology Press,1993:123 (王零森.特种陶瓷.第二版,长沙:中南工业大学出版社,1993:123)
[13]Krstie V V,Nicholson P S,Hoagland R G.J Am Ceram Soc,1981;64:499
[14]Marshall D B,Morris W L.J Am Ceram Soc,1990;73: 2938
[15]Viala J C,Bouix J,Gonzalez G,Esnouf C.J Mater Sci, 1997;32:4559
[16]Liu J,Darrell O P.J Am Ceram Soc,1991;74:674
[17]Halverson,Danny C H.J Am Ceram Soc,1989;72:775
[1] ZHENG Liang, ZHANG Qiang, LI Zhou, ZHANG Guoqing. Effects of Oxygen Increasing/Decreasing Processes on Surface Characteristics of Superalloy Powders and Properties of Their Bulk Alloy Counterparts: Powders Storage and Degassing[J]. 金属学报, 2023, 59(9): 1265-1278.
[2] WANG Lei, LIU Mengya, LIU Yang, SONG Xiu, MENG Fanqiang. Research Progress on Surface Impact Strengthening Mechanisms and Application of Nickel-Based Superalloys[J]. 金属学报, 2023, 59(9): 1173-1189.
[3] GONG Shengkai, LIU Yuan, GENG Lilun, RU Yi, ZHAO Wenyue, PEI Yanling, LI Shusuo. Advances in the Regulation and Interfacial Behavior of Coatings/Superalloys[J]. 金属学报, 2023, 59(9): 1097-1108.
[4] ZHANG Jian, WANG Li, XIE Guang, WANG Dong, SHEN Jian, LU Yuzhang, HUANG Yaqi, LI Yawei. Recent Progress in Research and Development of Nickel-Based Single Crystal Superalloys[J]. 金属学报, 2023, 59(9): 1109-1124.
[5] ZHANG Leilei, CHEN Jingyang, TANG Xin, XIAO Chengbo, ZHANG Mingjun, YANG Qing. Evolution of Microstructures and Mechanical Properties of K439B Superalloy During Long-Term Aging at 800oC[J]. 金属学报, 2023, 59(9): 1253-1264.
[6] LU Nannan, GUO Yimo, YANG Shulin, LIANG Jingjing, ZHOU Yizhou, SUN Xiaofeng, LI Jinguo. Formation Mechanisms of Hot Cracks in Laser Additive Repairing Single Crystal Superalloys[J]. 金属学报, 2023, 59(9): 1243-1252.
[7] DING Hua, ZHANG Yu, CAI Minghui, TANG Zhengyou. Research Progress and Prospects of Austenite-Based Fe-Mn-Al-C Lightweight Steels[J]. 金属学报, 2023, 59(8): 1027-1041.
[8] LIU Xingjun, WEI Zhenbang, LU Yong, HAN Jiajia, SHI Rongpei, WANG Cuiping. Progress on the Diffusion Kinetics of Novel Co-based and Nb-Si-based Superalloys[J]. 金属学报, 2023, 59(8): 969-985.
[9] CHEN Liqing, LI Xing, ZHAO Yang, WANG Shuai, FENG Yang. Overview of Research and Development of High-Manganese Damping Steel with Integrated Structure and Function[J]. 金属学报, 2023, 59(8): 1015-1026.
[10] LI Jingren, XIE Dongsheng, ZHANG Dongdong, XIE Hongbo, PAN Hucheng, REN Yuping, QIN Gaowu. Microstructure Evolution Mechanism of New Low-Alloyed High-Strength Mg-0.2Ce-0.2Ca Alloy During Extrusion[J]. 金属学报, 2023, 59(8): 1087-1096.
[11] YUAN Jianghuai, WANG Zhenyu, MA Guanshui, ZHOU Guangxue, CHENG Xiaoying, WANG Aiying. Effect of Phase-Structure Evolution on Mechanical Properties of Cr2AlC Coating[J]. 金属学报, 2023, 59(7): 961-968.
[12] SUN Rongrong, YAO Meiyi, WANG Haoyu, ZHANG Wenhuai, HU Lijuan, QIU Yunlong, LIN Xiaodong, XIE Yaoping, YANG Jian, DONG Jianxin, CHENG Guoguang. High-Temperature Steam Oxidation Behavior of Fe22Cr5Al3Mo-xY Alloy Under Simulated LOCA Condition[J]. 金属学报, 2023, 59(7): 915-925.
[13] ZHANG Deyin, HAO Xu, JIA Baorui, WU Haoyang, QIN Mingli, QU Xuanhui. Effects of Y2O3 Content on Properties of Fe-Y2O3 Nanocomposite Powders Synthesized by a Combustion-Based Route[J]. 金属学报, 2023, 59(6): 757-766.
[14] FENG Aihan, CHEN Qiang, WANG Jian, WANG Hao, QU Shoujiang, CHEN Daolun. Thermal Stability of Microstructures in Low-Density Ti2AlNb-Based Alloy Hot Rolled Plate[J]. 金属学报, 2023, 59(6): 777-786.
[15] GUO Fu, DU Yihui, JI Xiaoliang, WANG Yishu. Recent Progress on Thermo-Mechanical Reliability of Sn-Based Alloys and Composite Solder for Microelectronic Interconnection[J]. 金属学报, 2023, 59(6): 744-756.
No Suggested Reading articles found!