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首页> 外文期刊>Materials Science and Engineering >Creep Behavior Of A Dispersion-strengthened Cu-ti-al Alloy Obtained By Reaction Milling
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Creep Behavior Of A Dispersion-strengthened Cu-ti-al Alloy Obtained By Reaction Milling

机译:反应球磨得到的弥散强化铜钛合金的蠕变行为

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Creep results of a dispersion-strengthened nominal-composition Cu-2.5 vol.%Ti-2.5vol.%Al alloy, and the adjustment of those results to existing creep models, are presented. The alloy was prepared by reaction milling; its microstructural characterization by transmission electron microscopy had been recently reported elsewhere. Creep tests were here performed at 773, 973 and 1123 K, under loads that produced steady-state creep rates between 9 × 10~(-7) and 2 × 10~(-4) s~(-1). Two deformation models, available in the literature, were considered: dislocation creep, where the strain rate is controlled by the dislocation-particle interaction within the grains, and diffusional creep, controlled by the interaction between grain-boundary dislocations and particles. In all creep experiments the alloy exhibited high values of the apparent stress exponent, as typical for dispersion-strengthened alloys. Through model adjustment, the operating creep mechanisms where determined: at 773 and 1123 K, creep is controlled by dislocation/particle interactions taking place in the matrix and in grain boundaries, respectively, while at the intermediate temperature of 973 K, controlling dislocation-particle interactions would occur both in the matrix and in grain boundaries.
机译:给出了弥散强化的标称成分Cu-2.5%(体积)Ti-2.5%(%)Al合金的蠕变结果,以及将这些结果调整为现有蠕变模型的结果。该合金是通过反应研磨制备的。最近在其他地方报道了通过透射电子显微镜对其微结构进行表征。蠕变测试在773、973和1123 K下进行,载荷产生的稳态蠕变速率在9×10〜(-7)和2×10〜(-4)s〜(-1)之间。考虑了文献中可用的两种变形模型:位错蠕变,其应变速率由晶粒内的位错-颗粒相互作用控制,以及扩散蠕变,其受晶界位错与颗粒之间的相互作用控制。在所有蠕变实验中,合金均表现出较高的表观应力指数值,这是弥散强化合金的典型特征。通过模型调整,确定运行蠕变机理:在773和1123 K时,蠕变由分别在基质和晶界中发生的位错/颗粒相互作用控制,而在973 K的中间温度下,控制位错颗粒相互作用既会发生在基体中,也可能发生在晶界中。

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