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首页> 外文期刊>Metallurgical and Materials Transactions A >Analysis of interfacial shear strength of SiC fiber reinforced 7075 aluminum composite by pushout microindentation
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Analysis of interfacial shear strength of SiC fiber reinforced 7075 aluminum composite by pushout microindentation

机译:推出压痕法分析SiC纤维增强7075铝基复合材料的界面剪切强度。

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摘要

The interfacial shear strength of continuous silicon carbide fiber reinforced 7075 aluminum matrix composite (SiCf/7075Al) has been investigated in this research by pushout microindentation. The SiCf/7075Al composite specimens were processed by diffusion bonding alternate layers of SiC fibers and 7075Al alloy plates. From the measured stress-displacement curves of indentation tests, the interfacial shear strengths of the composite specimens were obtained, and the stress-displacement curves were basically divided into two regions: (1) elastic deformation and (2) interface decohesion and fiber sliding. With increasing aging time, the interfacial shear strength of the composite increased to 167 MPa for T6-treated specimens, and the variation of the interfacial shear strength well followed that of the ultimate tensile strength of 7075Al matrix alloy. With decreasing specimen thickness, the interfacial shear strength of the composite and the amplitude of stress fluctuation slightly decreased because of the stress relaxation effect near specimen surfaces. Under higher indentation velocities, both the interfacial shear strength and the amplitude of stress fluctuation became smaller.
机译:通过压入微压痕研究了连续碳化硅纤维增强7075铝基复合材料(SiCf / 7075Al)的界面剪切强度。通过扩散结合SiC纤维和7075Al合金板的交替层来处理SiCf / 7075Al复合材料样品。从压痕试验测得的应力-位移曲线,可得到复合材料试样的界面剪切强度,并将应力-位移曲线基本分为两个区域:(1)弹性变形和(2)界面脱粘和纤维滑动。随着时效时间的增加,T6处理的复合材料的界面剪切强度增加到167 MPa,界面剪切强度的变化很好地跟随了7075Al基合金的极限拉伸强度。随着试样厚度的减小,由于试样表面附近的应力松弛效应,复合材料的界面剪切强度和应力波动幅度略有降低。在较高的压痕速度下,界面剪切强度和应力波动幅度均变小。

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  • 来源
    《Metallurgical and Materials Transactions A》 |2005年第7期|1937-1945|共9页
  • 作者单位

    the Department of Materials Science and Engineering National Tsing Hua University 300 Hsinchu Taiwan R.O.C.;

    the Department of Materials Science and Engineering National Tsing Hua University 300 Hsinchu Taiwan R.O.C.;

    the Department of Materials Engineering National Chung Hsing University 402 Taichung Taiwan R.O.C.;

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