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耐热铝合金由于具有低密度、低价格、良好的耐热和耐腐蚀性能,在航空、航天等工业领域得到了广泛应用.回顾了耐热铝合金的发展历程,重点阐述了耐热铝合金的组分选择原则、制备方法及强化机制.分析了其目前存在的问题,并对今后的发展动向进行了展望.

参考文献

[1] H. Mayer;M. Papakyriacou;B. Zettl .Endurance limit and threshold stress intensity of die cast magnesium and aluminium alloys at elevated temperatures[J].International Journal of Fatigue,2005(9):1076-1088.
[2] Qiqi Yan;Dingfa Fu;Xuefeng Deng .Tensile deformation behavior of spray-deposited FVS0812 heat-resistant aluminum alloy sheet at elevated temperatures[J].Materials Characterization,2007(6):575-579.
[3] James C. Williams;Edgar A. Starke Jr. .Progress in structural materials for aerospace systems[J].Acta materialia,2003(19):5775-5799.
[4] Nada V. Jaukovic;Vanja D. Asanovic .The effect of temper and chemical composition on polarization resistance of aluminum RR58 alloy[J].Journal of Materials Processing Technology,2006(1/3):293-295.
[5] Yusuke Nagaishi;Michiaki Yamasaki;Yoshihito Kawamura .Effect of process atmosphere on the mechanical properties of rapidly solidified powder metallurgy Al-Ti-Fe-Cr alloys[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2007(0):794-798.
[6] M. Singh;D.P.Mondal;A.K.Jha .Preparation and properties of cast aluminium alloy-sillimanite particle composite[J].Composites, Part A. Applied science and manufacturing,2001(6):787-795.
[7] 廖怀东,韦未,关健,李海威.耐热导线材料及其在输变电工程扩容上的应用[J].电力设备,2006(12):52-54.
[8] Louzguine-Luzgin DV;Inoue A .Comparative study of the effect of cold rolling on the structure of Al-RE-Ni-Co (RE = rare-earth metals) amorphous and glassy alloys[J].Journal of Non-Crystalline Solids: A Journal Devoted to Oxide, Halide, Chalcogenide and Metallic Glasses, Amorphous Semiconductors, Non-Crystalline Films, Glass-Ceramics and Glassy Composites,2006(36/37):3903-3909.
[9] Louzguine-Luzgin D V;Inoue A .Structure and transformation behaviour of a rapidly solidified Al-Y-Ni-Co-Pd alloy[J].Journal of Alloys and Compounds,2005,399(1-2):78.
[10] Setyawan A D;Louzguine D V;Sasamori K et al.Phase composition and transformation behavior of readily solidified Al-Ni-Fe alloys in α-Al-decagonal phase region[J].Journal of Alloys and Compounds,2005,399(1-2):132.
[11] Inoue A;Ohtera K;Masumoto T .New amorphous Al-Y,Al-La and Al-Ce alloys prepared by melt spinning[J].Jpn J Appl Phys Part 2-Letter,1988,27(05):L736.
[12] 李慧中,张新明,陈明安,周卓平,龚敏如.稀土钇对2519合金组织及耐热性能的影响[J].材料科学与工程学报,2005(01):38-41.
[13] Bartova B;Vojtech D;Verner J et al.Structure and properties of rapidly solidified Al-Cr-Fe-Ti-Si powder alloys[J].Journal of Alloys and Compounds,2005,387(01):193.
[14] W. J. Golumbfskie;R. Arroyave;D. Shin .Finite-temperature thermodynamic and vibrational properties of Al-Ni-Y compounds via first-principles calculations[J].Acta materialia,2006(8):2291-2304.
[15] W. J. Golumbfskie;M. F. Amateau;T. J. Eden .Structure-property relationship of a spray formed Al-Y-Ni-Co alloy[J].Acta materialia,2003(17):5199-5209.
[16] 董寅生,沈军,杨英俊,李庆春.快速凝固耐热铝合金的发展及展望[J].粉末冶金技术,2000(01):35-41.
[17] Malgorzata Lewandowska;Krzysztof J. Kurzydlowski .Thermal stability of a nanostructured aluminium alloy[J].Materials Characterization,2005(4/5):395-401.
[18] Lavernia E J;Ayers J D;Srivatsan T S .Rapid solidification processing with specific application to aluminum alloys[J].International Journal of Mater Rep,1991,37(01):1.
[19] 徐安莲,刘守平,周上祺,陈玉安.机械合金化的研究进展[J].重庆大学学报(自然科学版),2005(11):84-88.
[20] T.T. Sasaki;T. Mukai;K. Hono .A high-strength bulk nanocrystalline Al–Fe alloy processed by mechanical alloying and spark plasma sintering[J].Scripta materialia,2007(3):189-192.
[21] Dashtbayazi MR;Shokuhfar A;Simchi A .Artificial neural network modeling of mechanical alloying process for synthesizing of metal matrix nanocomposite powders[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2007(1-2):274-283.
[22] M. Eddahbi;F. Carreno;O.A. Ruano .Deformation behavior of an Al-Cu-Mg-Ti alloy obtained by spray forming and extrusion[J].Materials Letters,2006(27):3232-3237.
[23] E. Brinksmeier;M. Schunemann .Generation and forming of spray-formed flat products[J].Journal of Materials Processing Technology,2001(1):55-60.
[24] Cui Chengsong;Fritsching Udo;Schulz et al.Mathematical modeling of spray forming process of tubular performs[J].Acta Materials,2005,53(09):2765.
[25] 陈振华,严红革,陈刚,张福全,胡仲勋,傅杰新.多层喷射沉积的装置和原理[J].湖南大学学报(自然科学版),2001(05):20-28.
[26] Chawla N;Deng X;Schnell D R M .Thermal expansion anisotropy in extruded SiC particle reinforced 2080 aluminum alloy matrix composites[J].Materials Science and Engineering A,2006,426(1-2):314.
[27] Haimin Ding;Xiangfa Liu;Lina Yu .The influence of forming processes on the distribution and morphologies of TiC in Al-Ti-C master alloys[J].Scripta materialia,2007(7):575-578.
[28] Sahin Y .Preparation and some properties of SiC particle reinforced aluminium alloy composites[J].Materials & Design,2003,24(08):671.
[29] R. F. Shyu;C. T. Ho .In situ reacted titanium carbide-reinforced aluminum alloys composite[J].Journal of Materials Processing Technology,2006(3):411-416.
[30] 朱宝宏,张永安,刘红伟,熊柏青,石力开.原位自生TiC颗粒对Al8.5Fe1.4V1.7Si耐热铝合金的组织及性能的影响[J].材料科学与工程学报,2006(01):36-39.
[31] Sweeting R D;Liu X L .Measurement of thermal conductivity for fibre-reinforced composites[J].Composites Part A:Applied Science and Manufacturing,2004,35(07):933.
[32] Zhang XN;Geng L;Xu B .Compressive behaviour of Al-based hybrid composites reinforced with SiC whiskers and SiC nanoparticles[J].Materials Chemistry and Physics,2007(1):242-246.
[33] Hu J;Zhang JX;Tang SW;Ren WC .Effect of annealing treatment on microstructure and tensile strength of alumina borate whisker-reinforced Al-Mg composite[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2006(1-2):94-99.
[34] Li Z J;Wang L D;Fei W D .Effect of interfacial Bi2O3 coating on compressive deformation behavior of aluminum borate whisker-reinforced aluminum composite at elevated temperature[J].Materials Science and Engineering A,2007,447(1-2):314.
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