Fatigue crack growth in an aluminum alloy-fractographic study

被引:1
作者
Salam, I. [1 ]
Muhammad, W. [1 ]
Ejaz, N. [1 ]
机构
[1] Inst Ind Control Syst, POB 1398, Rawalpindi, Pakistan
来源
14TH INTERNATIONAL SYMPOSIUM ON ADVANCED MATERIALS (ISAM 2015) | 2016年 / 146卷
关键词
PRESSURE; CYLINDER;
D O I
10.1088/1757-899X/146/1/012010
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
A two-fold approach was adopted to understand the fatigue crack growth process in an Aluminum alloy; fatigue crack growth test of samples and analysis of fractured surfaces. Fatigue crack growth tests were conducted on middle tension M(T) samples prepared from an Aluminum alloy cylinder. The tests were conducted under constant amplitude loading at R ratio 0.1. The stress applied was from 20,30 and 40 per cent of the yield stress of the material. The fatigue crack growth data was recorded. After fatigue testing, the samples were subjected to detailed scanning electron microscopic ( SEM) analysis. The resulting fracture surfaces were subjected to qualitative and quantitative fractographic examinations. Quantitative fracture analysis included an estimation of crack growth rate ( CGR) in different regions. The effect of the microstructural features on fatigue crack growth was examined. It was observed that in stage II ( crack growth region), the failure mode changes from intergranular to transgranular as the stress level increases. In the region of intergranular failure the localized brittle failure was observed and fatigue striations are difficult to reveal. However, in the region of transgranular failure the crack path is independent of the microstructural features. In this region, localized ductile failure mode was observed and well defined fatigue striations were present in the wake of fatigue crack. The effect of interaction of growing fatigue crack with microstructural features was not substantial. The final fracture ( stage III) was ductile in all the cases.
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页数:6
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