中国有色金属学报
中國有色金屬學報
중국유색금속학보
THE CHINESE JOURNAL OF NONFERROUS METALS
2013年
7期
1855-1860
,共6页
张文达%杨晶%刘云%党惊知%徐宏
張文達%楊晶%劉雲%黨驚知%徐宏
장문체%양정%류운%당량지%서굉
稀土Y%Al-Si-Cu-Mg 合金%高温力学性能%变质
稀土Y%Al-Si-Cu-Mg 閤金%高溫力學性能%變質
희토Y%Al-Si-Cu-Mg 합금%고온역학성능%변질
rare earth Y%Al-Si-Cu-Mg alloy%high temperature mechanical properties%modification
利用高温拉伸力学性能测试仪、扫描电镜(SEM)和DTA等测试分析手段,研究不同含量Y对AlSi7Cu2Mg合金的高温力学性能的影响。结果表明:随温度的升高,Y含量为0.15%(质量分数)的AlSi7Cu2Mg合金的强度及伸长率均呈下降趋势;随着Y含量的增加,AlSi7Cu2Mg合金在250℃的高温强度(抗拉强度和屈服强度)和伸长率先增加后降低;Y含量为0.1%的AlSi7Cu2Mg合金的高温力学性能最高,抗拉强度、屈服强度和伸长率分别为275 MPa、240 MPa和12.4%;微量Y对AlSi7Cu2Mg合金的强化作用主要是其对Si相的变质细化作用,在Y含量为0.1%时,Si相获得最佳的变质效果。
利用高溫拉伸力學性能測試儀、掃描電鏡(SEM)和DTA等測試分析手段,研究不同含量Y對AlSi7Cu2Mg閤金的高溫力學性能的影響。結果錶明:隨溫度的升高,Y含量為0.15%(質量分數)的AlSi7Cu2Mg閤金的彊度及伸長率均呈下降趨勢;隨著Y含量的增加,AlSi7Cu2Mg閤金在250℃的高溫彊度(抗拉彊度和屈服彊度)和伸長率先增加後降低;Y含量為0.1%的AlSi7Cu2Mg閤金的高溫力學性能最高,抗拉彊度、屈服彊度和伸長率分彆為275 MPa、240 MPa和12.4%;微量Y對AlSi7Cu2Mg閤金的彊化作用主要是其對Si相的變質細化作用,在Y含量為0.1%時,Si相穫得最佳的變質效果。
이용고온랍신역학성능측시의、소묘전경(SEM)화DTA등측시분석수단,연구불동함량Y대AlSi7Cu2Mg합금적고온역학성능적영향。결과표명:수온도적승고,Y함량위0.15%(질량분수)적AlSi7Cu2Mg합금적강도급신장솔균정하강추세;수착Y함량적증가,AlSi7Cu2Mg합금재250℃적고온강도(항랍강도화굴복강도)화신장솔선증가후강저;Y함량위0.1%적AlSi7Cu2Mg합금적고온역학성능최고,항랍강도、굴복강도화신장솔분별위275 MPa、240 MPa화12.4%;미량Y대AlSi7Cu2Mg합금적강화작용주요시기대Si상적변질세화작용,재Y함량위0.1%시,Si상획득최가적변질효과。
The effect of Y contents on the high temperature mechanical properties of AlSi7Cu2Mg alloys was investigated by electronic universal material testing machine, scanning electron microscopy (SEM) and differential thermal analysis (DTA). The results indicate that the ultimate tensile strength and elongation of the AlSi7Cu2Mg alloy with 0.15% Y (mass fraction) decrease with increasing temperature. The ultimate tensile strength, yield strength and elongation of the AlSi7Cu2Mg alloys with 0.1%Y increase up to the maximum value and then decrease with increasing Y content at 250 ℃. The alloy with 0.1% Y has the highest high temperature mechanical properties (ultimate tensile strength of 275 MPa, yield strength of 240 MPa and elongation of 12.4%). The strengthening effect of trace Y on the AlSi7Cu2Mg alloys is mainly relying on the modification of eutectic Si phase, the optimal modification of Si phase can be obtained with 0.1%Y.