总结了木陶瓷/金属复合材料及其预制体模板的制备机理和制备方法的研究现状;详细介绍了木陶瓷/金属复合材料的力学性能、热学性能、阻尼性能和摩擦学性能及其应用等方面的研究成果;探讨了木陶瓷/金属复合材料的发展前景及当前存在的问题;最后提出了一种以麻纤维织物为模板材料制备纤维织物遗态陶瓷/金属复合材料的新思路.
参考文献
[1] | 马荣;乔冠军;金志浩 .木材陶瓷的制备与性能研究[J].西安交通大学学报,1998,32(08):57. |
[2] | 李达,陈沙鸥,朱海玲,邵渭泉,景悦林.遗态材料的研究理念和研究进展[J].材料导报,2006(10):5-7. |
[3] | 陶毓博 .木质材料/酚醛树脂烧结制造网络形态木陶瓷的研究[D].东北林业大学,2006. |
[4] | 冯胜山;乇泽建;刘庆丰.互穿网络结构陶瓷/金属复合材料的研究进展[A].江苏无锡,2008:643. |
[5] | 陶毓博,刘一星,李淑君,李鹏.生物形态新材料--木陶瓷的研究现状[J].材料科学与工艺,2007(01):83-86. |
[6] | 乔冠军,金志浩.用木材制备生物结构陶瓷[J].材料导报,2003(04):66-69. |
[7] | 卢灿辉,陈晓.利用木材介孔结构制备新型复合材料研究进展[J].高分子材料科学与工程,2003(06):32-36. |
[8] | 尹思慈;李坚;安培钧.木材学[M].北京:中国林业出版社,1996 |
[9] | 谢贤清,张获,范同祥,吴人洁,冈部敏弘,广濑孝.具有网络互穿结构的木质陶瓷复合材料[J].材料研究学报,2002(03):259-262. |
[10] | 畅巍,王俊勃,贺辛亥,杜志敏,杨敏鸽,付翀.遗态材料的研究现状[J].材料导报,2009(z1):251-253,261. |
[11] | Cao J;Rambo C R;Sieber H .Manui,acturing of mierocellular biomor-phous oxide ceramics from native pine wood[J].Ceramics International,2004,30:1967. |
[12] | Qian J M;Jin Z H .Preparation and characterization of porous,biomorphic SiC ceramic with hybrid pore structure[J].Journal of the European Ceramic Society,2006,26:1311. |
[13] | Rambo C R;Cao J;Rusina Q .Manufacturing of biomorphic (Si,Ti,Zr)-carbide ceramics by sol-gel processing[J].CARBO,2005,43:1174. |
[14] | 罗民,程佳,马晶,陈小虎,王斌鉴,杨建锋.仿生制备多孔氮化硅陶瓷[J].无机材料学报,2008(04):763-768. |
[15] | 谢贤清,张荻,范同祥,Toshihiro Okabe,Takashi Hirose.网络互穿结构复合材料的研究进展[J].功能材料,2002(01):22-25. |
[16] | 李淑君,陶毓博,孟黎鹏,刘一星,李坚.Fe、Zn粉末强化木陶瓷的制备[J].东北林业大学学报,2009(02):35-37. |
[17] | 宋强,王洪,靳向煜.以秸杆纤维为基体的木质陶瓷材料的制备[J].非织造布,2005(04):18-20. |
[18] | 王俊勃;杨敏鸽;贺辛亥 等.麻纤维遗态结构C/Sn复合材料的制备方法[P].中国,CN200810231642.7,2009-03-11. |
[19] | Zollfrank C;Travitzky N;Sieber H et al.Biomorphous SiSiC/Al-Si ceramic composites tnanufactured by squeeze casting:Microstructure and mechanical properties[J].Advances in Engineering Materials,2005,7(08):743. |
[20] | Xie X Q;Zhang D;Fan T X et al.The fabrication of composites with interpenetrating networks based on woodceramics[J].Materials Letters,2002,56:102. |
[21] | 谢贤清,范同祥,张荻,冈部敏弘,广濑孝.高阻尼木质陶瓷/MB15复合材料的制备及性能分析[J].复合材料学报,2003(01):7-11. |
[22] | Xie X Q;Fan T X;Zhang D et al.Increasing the mechanical properties of high damping woodceramics by infiltration with a magnesium alloy[J].Materials Letters,2006,60:2695. |
[23] | Wang T C;Fan T X;Zhang D et al.The fabrication and wear properties of C/Al and(C+SiC)/Al composites based on wood template[J].Materials Letters,2006,60:2695. |
[24] | Rambo C R;Travitzky N;Zimmermann K et al.Synthesis of TiC/Ti-Cu composites by pressureless reactive infiltration of Ti Cu alloy into carbon preforms fabricated by 3D-printing[J].Materials Letters,2005,59:1028. |
[25] | 罗民,高积强,乔冠军,金志浩.生物模板法制备木材陶瓷[J].化学进展,2008(06):989-1000. |
[26] | Souza R M;Yoshimura H N;Xavier C et al.strengthening porous ceramics by molten metal in filtration[J].Key Engineering Materials,1997,127-131:439. |
[27] | Prielipp H.;Claussen N.;Streiffer SK.;Mullejans H.;Ruhle M.;Rodel J.;Knechtel M. .STRENGTH AND FRACTURE TOUGHNESS OF ALUMINUM ALUMINA COMPOSITES WITH INTERPENETRATING NETWORKS[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,1995(1):19-30. |
[28] | Aghajanian M K;Burke J T;White D R et al.New infiltration process for the fabrication of metal matrix composites[J].SAMPE Quarterly,1989,20(04):43. |
[29] | Wilkinson D S;Chad Wick M M .Creep mechanisms in glass-containing ceramics[J].Journal of Physics Ⅲ(France),1991,1(06):1131. |
[30] | Shen Y L.Thermal expansion of metal-ceramics composites:A three-dimensional analysis[J].Materials Science and Engineering A:Structural Materials Properties Microstructure and Processing,1998(252):269. |
[31] | 王天驰 .基于木材模板的铝/生态陶瓷复合材料的制备及性能研究[D].上海交通大学,2006. |
[32] | 谢贤清 .生态陶瓷/金属网络互穿结构复合材料的制备及性能研究[D].上海交通大学,2002. |
[33] | Xie XQ.;Fan TX.;Sun BH.;Zhang D.;Sakata T.;Mori H.;Okabe T. .Dry sliding friction and wear behavior of woodceramics/Al-Si composites[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2003(1/2):287-293. |
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