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桥用铝合金的低周疲劳亚结构 被引量:1

FATIGUE SUBSTRUCTURE IN BRIDGE-USING Ai ALLOY DURING LOW CYCLE FATIGUE
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摘要 在应变幅控制下,研究了桥用铝合金在两种热处理工艺下的循环特性及其微观结构的变化。结果表明:在应变幅为△ε_t/2=0.4%~1.0%范围内,热处理工艺Ⅰ合金循环软硬化现象不明显,热处理工艺Ⅱ合金表现为循环硬化特性。TEM分析表明,不同热处理工艺下合金循环断裂时均已形成结构清晰形状完整的胞状位错结构,影响胞结构形成的主要因素可能是层错能、应变幅等,与材料的组织状态没有关系。 The cycle behavior and the substructure change in bridge-using Al alloy at two heat treatments were studied tinder strain contolled low-cycle fatiguing.The results show thatⅠtreated alloy does not have obviously softening or hardening,Ⅱ treated alloy displays evident cycle hardening nder strain controll in the amplitude range of △ε=0.4%~1.0%. Celltular dislocation substructures have formed under TEM after two different alloys fatigued and broke.This microstructure has the cellular characteristic of distinct constructure and completed shape. The main tactors which influence the formation of cellular substructure may be stacking fault energy,strain amplitude etc.,and nothing to do with the heat treated state of the material,
作者 陈玮
出处 《兵器材料科学与工程》 CSCD 北大核心 1994年第5期30-34,共5页 Ordnance Material Science and Engineering
关键词 铝合金 低周疲劳 亚结构 桥用材料 Al alloy,low cycle fatigue,substructure
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  • 1谈育煦,金属学报,1989年,25卷,A62页

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  • 1宋谋胜,刘忠侠,李继文,宋天福,王明星,谢敬佩,翁永刚.加钛方式与钛含量对A356合金组织和性能的影响[J].中国有色金属学报,2004,14(10):1729-1735. 被引量:23
  • 2Liu Z X, Wang M X,Song T F et al. The Production and the Mechanical Properties of in-situ Titanium Alloying A356 Alloys. Materials Science Forum,2005:475 - 479,321 - 324.
  • 3Ssuresh 王中光 译.材料的疲劳[美].北京:国防工业出版社,1999..
  • 4Avalle M, Belingardi G, Cavatorta M P et al. Casting Defects and Fatigue Strength of a Die Cast Ahminium Alloy: a Comparison Between Standard Specimens and Production Components. International Journal of Fatigue, 2002,24:1-9.
  • 5Buffiere J Y. Experimental Study of Porosity and its Relation to Fatigue Mechanisms of Model Al-Si7-Mg0. 3 Cast Alloys. Materials Science and Engineering,2001,A316:115 - 126.
  • 6Fan J H, David L, McDowell M F et al. Cyclic Plasticity at Porosities and Inclusions in Cast Al-Si Alloys. Engineering Fracture Mechanics, 2003,70 : 1 281-1 302.
  • 7Hart S W, Koji Katsmnata, Shinji Kumai et al. Effects of Solidification Structure and Aging Condition on Cyclic Stress-strain Response in Al-7Si-0.4Mg Cast Alloys. Materials Science and Engineering, 2002, A337:170 - 178.
  • 8bang B, Chen W, Poirier D R. Effect of Solidification Cooling Rate on the Fatigue Life of A356.2-T6 Cast Aluminium Alloy. Fatigue Fact. Engug. Mater.Struet. ,2000,23:417 - 423.
  • 9Wang Q G, Apelian D, Lades D A. Fatigue Behavior of A356/357 Aluminum Cast Alloys, Part Ⅱ -Effect of Microstructural Constituents. Journal of Light Metals,2001 ( 1 ) : 85 - 97.
  • 10Avalle M, Belingardi G, Cavatorta M P. Casting Defects and Fatigue Strength of a Die Cast Aluminium Alloy: a Comparison Between Standard Specimens and Production Components. International Journal of Fatigue, 2002,24 : 1 - 9.

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