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30%SiCp/2024Al复合材料动态再结晶临界条件

Critical conditions of dynamic recrystallization of 30%SiCp/2024Al composite

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【作者】 孙亚丽谢敬佩郝世明王爱琴柳培李敏

【Author】 SUN Ya-li;XIE Jing-pei;HAO Shi-ming;WANG Ai-qin;LIU Pei;LI Min;School of Materials Science and Engineering,Henan University of Science and Technology;Collaborative Innovation Center of Non-Ferrious Materials of Henan Province;Physical Engineering College,Henan University of Science and Technology;

【机构】 河南科技大学材料科学与工程学院河南科技大学有色金属共性技术河南省协同创新中心河南科技大学物理工程学院

【摘要】 采用Gleeble-1500D热模拟试验机对30%SiCp/Al复合材料进行热模拟试验,其变形温度为623~773K、应变速率为0.01~10s-1。采用加工硬化率法对应力-应变数据进行处理,结合lnθ-ε曲线的拐点和(-(lnθ)/ε)-ε)曲线最小值的判据,研究了该复合材料动态再结晶临界条件。结果表明,30%SiCp/2024Al复合材料的真应力-应变曲线主要以动态再结晶软化机制为特征,峰值应力(σp)随变形温度降低或应变速率升高而增加;该材料的lnθ-ε曲线出现拐点,(-(lnθ)/ε)-ε)曲线出现最小值;临界应变(εc)随变形温度升高与应变速率降低而减小,且临界应变与峰值应变(εp)之间具有相关性,即εc=0.563εp;临界应变与Zener-Hollomon参数(Z)之间的函数关系为εc=7.96×10-3Z0.038。

【Abstract】 The hot compression tests of 30% Si Cp / Al composite were conducted at deformation temperature of 623-773 K and the strain rate of0. 01-10 s- 1on a Gleeble-1500 D thermal simulator. The critical conditions of dynamic recrystallization for the initiation of DRX during deformation of 30% Si Cp / Al composite were obtained by computation of the strain hardening rate( θ) from the stress-strain data and introduction of the inflection point criterion of lnθ- ε curves and the minimum value criterion of(- ( lnθ) / ε)- ε) curves. The results indicate that the softening of the dynamic recrystallization characterizes the high-temperature flow stress strain curves of the composites,and the peak stress increases with the decreasing deformation temperature and or the increasing strain rate. The inflection point in the lnθ- ε curve appears and the minimum value of the(- ( lnθ) / ε)- ε) curve is presented when the composite attains to the critical state. The critical strain decreases with the decreasing strain rate and the increasing deformation temperature. There is a linear relationship between critical strain and peak strain,i. e.εc= 0. 563εp. The predicting model of critical strain is described by the function of εc= 7. 96 × 10- 3Z0. 038.

【基金】 国家自然科学基金(51371077);河南科技大学高级别科研项目培育基金(2015GJB009);河南科技大学重大科技项目培育基金(2015ZDXM01)
  • 【文献出处】 材料热处理学报 ,Transactions of Materials and Heat Treatment , 编辑部邮箱 ,2015年09期
  • 【分类号】TB333
  • 【被引频次】6
  • 【下载频次】184
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