欢迎登录材料期刊网

材料期刊网

高级检索

在250~450℃的温度范围和0.01~10s-1的变形速率范围内,对 AA7085超高强铝合金进行了单向热压缩模拟实验,研究了其热变形行为以及动态再结晶的临界条件。研究表明,AA7085铝合金其流变应力随着变形温度的升高和变形速率的下降而降低,其变形激活能较低,为175 kJ/mol,有利于进行热塑性加工,高于纯铝的自扩散激活能(165kJ/mol),材料内部发生了动态再结晶;其临界应变随着变形温度的上升而减小,随着变形速率的增加而增加,根据热力学不可逆性原理,获得了 AA7085铝合金的动态再结晶的临界条件,并分析了热变形过程中的组织变化规律。

The hot deformation compression tests of AA7085 aluminum alloy were preformed on Gleeble-1500 system in the temperature range from 250-450℃ and at strain rate range from 0.01-10s-1 .The activity energy of AA7085 was 175kJ/mol,and it was advantageous in carries on the thermosplastic processing.The material inte-rior has had the dynamic recrystallization.The results show that the critical strain increases with increasing strain rate and decreasing the deformation temperature.The critical strain of AA7085 was proportional to Z pa-rameter.The critical condition of DRX was obtained,meanwhile,the microstructure evolution of the AA7085 was studied.

参考文献

[1] Chakrabarti D J;Liu J;Sawtell R R.[A].North Melbourne:Institute of Materials Engineer-ing Australasia Ltd,2004:969-974.
[2] Harold Luong;Michael R. Hill .The effects of laser peening on high-cycle fatigue in 7085-T7651 aluminum alloy[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2008(1/2):208-216.
[3] 陈文.先进铝合金在A380上的应用[J].航空维修与工程,2005(2):40-41.
[4] John L .Advanced aluminum and hybrid aerostructure for future aircraft[J].Materials Science Forum,2006,519:1271-1278.
[5] M. E. Karabin;F. Barlat;R. W. Schultz .Numerical and experimental study of the cold expansion process in 7085 plate using a modified split sleeve[J].Journal of Materials Processing Technology,2007(1/3):45-57.
[6] 梁信,陈康华,陈学海,陈送义,彭国胜.等温锻造速率对7085铝合金组织与性能的影响[J].粉末冶金材料科学与工程,2011(02):290-295.
[7] 曹春晓.一代材料技术,一代大型飞机[J].航空学报,2008(03):701-706.
[8] 周纪华.金属塑性变形阻力[M].北京:机械工业出版社,1989:9.
[9] 曹金荣,刘正东,程世长,杨钢,谢建新.应变速率和变形温度对T122耐热钢流变应力和临界动态再结晶行为的影响[J].金属学报,2007(01):35-40.
[10] Stewart GR;Jonas JJ;Montheillet F .Kinetics and critical conditions for the initiation of dynamic recrystallization in 304 stainless steel[J].ISIJ International,2004(9):1581-1589.
[11] 沈耀红,张志清,覃丽禄,黄光杰,刘庆.7085铝合金热压缩变形的流变应力本构方程[J].材料导报,2011(04):127-130.
[12] 陈学海,陈康华,梁信,陈送义,方华婵.7085铝合金热变形的流变应力行为和显微组织[J].粉末冶金材料科学与工程,2011(02):225-230.
[13] 贾乐,陈康华,陈送义,彭国胜,董朋轩,金狂浩.7085铝合金的高温压缩流变应力及软化行为[J].粉末冶金材料科学与工程,2012(04):423-429.
[14] 张辉,金能萍,陈江华.Al-Zn-Mg-Cu-Zr铝合金的高温热压缩变形行为[J].中国有色金属学报(英文版),2011(03):437-442.
[15] 陈贵清,傅高升,颜文煅,陈鸿玲,程超增,邹泽昌.3003铝合金热变形行为[J].塑性工程学报,2011(04):28-33,48.
[16] Sellars C M;Mc Tegart W J .On the mechanism of hot deformation[J].Acta Metallurgica,1966,14(09):1136.
[17] Zener C;Hollomon J H .Effect of strain rate upon the plastic flow of steel[J].Journal of Applied Geophysics,1944,15(01):22-32.
[18] E. I. POLIAK;J. J. JONAS .Initiation of Dynamic Recrystallization in Constant Strain Rate Hot Deformation[J].ISIJ International,2003(5):684-691.
[19] E.I.POLIAK;J.J.JONAS .A ONE-PARAMETER APPROACH TO DETERMINING THE CRITICAL CONDITIONS FOR THE INITIATION OF DYNAMIC RECRYSTALLIZATION[J].Acta materialia,1996(1):127-136.
[20] 黄光胜,汪凌云,黄光杰,卢志文,宋美娟.AZ31镁合金高温本构方程[J].金属成形工艺,2004(02):41-44.
[21] 黄光杰,钱宝华,汪凌云,J.J.Jonas.AZ31镁合金初始动态再结晶的临界条件研究[J].稀有金属材料与工程,2007(12):2080-2083.
上一张 下一张
上一张 下一张
计量
  • 下载量()
  • 访问量()
文章评分
  • 您的评分:
  • 1
    0%
  • 2
    0%
  • 3
    0%
  • 4
    0%
  • 5
    0%