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时效工艺对6082-T6板材弯曲性能的影响 被引量:2

Effects of Aging Time and Temperature on the Bending Properties of 6082-T6Plate
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摘要 研究了实际生产条件下时效工艺对6082-T6板材力学性能、弯曲性能以及时效析出相的影响,并分析了板材伸长率和弯曲性能之间的关系。结果表明,板材伸长率可表征板材的弯曲性能,δ=(t/2)(t/2+r)较好地表征了产生弯曲裂纹的临界伸长率δ、板材厚度t、弯曲半径r之间的关系;155℃×(4~16)h时效的板材表现出欠时效特征,时效析出相为GP区+细小的针状β″相,此时伸长率高达17%以上,弯曲性能较好。分别对实际生产条件下两种时效工艺(170℃×12h、155℃×12h)的6082-T6板材的力学性能进行了对比,发现在155℃×12h时效的各厚度板材伸长率均较高且弯曲性能较好,抗拉强度、屈服强度也均较高。 Bending properties,tensile properties and hardening precipitates of 6082-T6 aluminum plates were investigated under production conditions,and the relation equation between tensile property and bending property was attempted to be established and verified.The results show that the plate bending property can be evaluated quantitively by the elongation,and the equation among critical elongation(δ),plate thickness(t)and bending radius(r)followsδ=(t/2)(t/2+r).The higher elongation(17%)can be obtained by adopting the 155℃×(4-16)h under-aging process with the combination of clusters and finest need-likeβ″precipitates,resulting in the good plate bending property while keeping tensile properties.In addition,the tensile property data in 6082 plate production of two aging processes(170℃×12 h、155 ℃×12 h)was compared,and it was verified that the higher elongation and tensile strength could be obtained by adopting the 155 ℃×12 haging treatment.
作者 秦颐鸣 周文标 唐鑫 王春霞 Qin Yiming;Zhou Wenbiao;Tang Xin;Wang Chunxia(Branch of Aluminum Processing, Baise Mining Group Co., Ltd;College of Materials Science and Engineering, Guilin University of Technology)
出处 《特种铸造及有色合金》 CAS CSCD 北大核心 2018年第4期359-363,共5页 Special Casting & Nonferrous Alloys
基金 广西有色金属及特色材料加工重点实验室基金资助项目(15KF-1)
关键词 6082合金 时效 裂纹 弯曲性能 伸长率 6082 Alloy, Aging, Crack, Bendability, Elongation
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  • 1潘家柱.中国铝工业现状与未来发展[J].资源再生,2003(12):14-16. 被引量:5
  • 2丁向群,何国求,陈成澍,刘小山,朱正宇.6000系汽车车用铝合金的研究应用进展[J].材料科学与工程学报,2005,23(2):302-305. 被引量:98
  • 3Murayamaa M, Hono K. Atom probe studies on the early stages of precipitation in AI-Mg-Si alloys[ J]. Materials Science and Engineering A, 1998,25: 127 - 132.
  • 4Gaber A, Gaffar M A, Mostafa M S, et al. Precipitation kinetics of AI-1.12 Mg2 Si-0.35 Si and AI-1.07 Mg2 Si-0.33 Cu alloys [ J ]. Journal of Alloy and Compounds,2007,429 : 167 - 175.
  • 5Aedwards G,Stiller K. The precipitation sequence in AI-Mg-Si alloys[ J ]. Acta Materialia, 1998,46 (11 ) :3893 -3904.
  • 6Panigrahi S K, Jayaganthan R. A DSC study on the precipitation kinetics of cryorolled AI 6063 alloy[ J ]. Materials Chemistry and Physics,2010,122 : 188 - 193.
  • 7Murayama M, Hono K. Pre-precipitatc clusters and precipitation processes in AI-Mg-Si alloys[ J ]. Acta Materialia, 1999,47 (5) : 1537 - 1548.
  • 8Dmarioara C, Andersen S J. Atomic model for GP-zone in A6082AI-Mg-Si system[ J]. Acta Materialia,2001,49 :321 -328.
  • 9Miller M K. Atom Probe Tomography : Analysis at the Atomic Level[ M ]. New York : Kluwer Academic,2000:35 - 36.
  • 10Sato T, Hirosawa S, et al. Roles of microalloying elements on the cluster formation in the initial stage of phase decomposition of Al-based alloys [ J ]. Metallurgical and Materials Transactions A, 2003,34 ( 12 ) :2743 - 2755.

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