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金属学报  2014 

Al-9.0%Si-4.0%Cu-0.4%Mg(-0.3%Sc)合金的显微组织及其低周疲劳行为*

DOI: 10.11900/0412.1961.2013.00843, PP. 1046-1054

Keywords: Al-Si-Cu-Mg合金,Sc,T6处理,低周疲劳,疲劳寿命,循环应力响应,循环变形机制

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Abstract:

为了确定稀土元素Sc对T6态铸造Al-9.0%Si-4.0%Cu-0.4%Mg合金(质量分数)的低周疲劳行为的影响规律,研究了T6态铸造Al-9.0%Si-4.0%Cu-0.4%Mg合金和Al-9.0%Si-4.0%Cu-0.4%Mg-0.3%Sc合金的低周疲劳行为.结果表明,在低的外加总应变幅下,Al-9.0%Si-4.0%Cu-0.4%Mg合金在整个疲劳变形期间均表现为循环应变硬化,Al-9.0%Si-4.0%Cu-0.4%Mg-0.3%Sc合金在疲劳变形初期表现为循环应变硬化,在疲劳变形后期则表现为循环稳定;当外加总应变幅较高时,Al-9.0%Si-4.0%Cu-0.4%Mg(-0.3%Sc)合金均呈现循环应变硬化.Sc的加入可以有效地提高T6态Al-9.0%Si-4.0%Cu-0.4%Mg合金的循环变形抗力和低周疲劳寿命.在较低的外加总应变幅下,T6态Al-9.0%Si-4.0%Cu-0.4%Mg(-0.3%Sc)合金的循环变形机制为平面滑移,当外加总应变幅较高时则为波状滑移机制.

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