论文标题

Ti29ZR24NB23HF24高熵合金和室温的高熵合金的应变率依赖性变形行为

Strain-Rate-Dependent Deformation Behavior of Ti29Zr24Nb23Hf24 High Entropy Alloys at Elevated and Room Temperature

论文作者

Cao, Tangqing, Guo, Wenqi, Lu, Wang, Xue, Yunfei, Lu, Wenjun, Su, Jing, Liebscher, Christian H., Liu, Chang, Dehm, Gerhard

论文摘要

我们研究了依赖应变率的机械行为和耐火性高熵合金Ti29ZR24NB23HF24(at。%)的变形机制,具有单相体为体内的立方体(BCC)结构。高温压缩试验在700至1100°C的温度下以10-3至10 S-1的应变速率进行。在较高的温度下观察到屈服点后的突然应力下降,而Zener-Holloman参数LNZ的应变速率较低,范围为17.2-20.7。这样的软化行为可能与位错的相互作用有关。但是,在较高的应变速率或较低的温度(LNZ> 25.0)下,扭结带被激活,负责与软化机理竞争合金的持续增强。系统的TEM研究表明,以1 S-1和800°C的高应变速率在6%的低应变下观察到沿{110}平面和位错环形成的位错壁。扭结带诱导的动态重结晶在进一步的紧张后显而易见。另一方面,以10-3 S-1和800°C的低应变速率,不连续的再结晶机制在父粒膨胀边界前形成的位错阵列占主导地位。这些亚细胞边界最终变成了高角度的晶界。我们还在室温下在极高的应变速率(103 S-1)下研究合金的变形机理。样品表现出带有位错壁阵列的广泛扭结带。随着进一步的紧张,可以激活多个滑动系统,并且位错壁的相互作用在合金的应变硬化中起着至关重要的作用。

We investigate the strain-rate-dependent mechanical behavior and deformation mechanisms of a refractory high entropy alloy, Ti29Zr24Nb23Hf24 (at.%), with a single-phase body-centered cubic (BCC) structure. High-temperature compression tests were conducted at temperatures from 700 to 1100°C at strain rates ranging from 10-3 to 10 s-1. A sudden stress drop after yield point was observed at higher temperatures and lower strain rates with the Zener-Holloman parameter, lnZ, in the range of 17.2-20.7. Such a softening behavior can be related to the interaction of dislocations with short-range clustering. However, at higher strain rates or lower temperatures (lnZ>25.0), kink bands were activated being responsible for the continuous strengthening of the alloy in competition with the softening mechanism. Systematic TEM investigations reveal that dislocation walls formed along {110} planes and dislocation loops were observed at a low strain of 6% at a high strain rate of 1 s-1 and 800°C. Kink band induced dynamic recrystallization is evident upon further straining. On the other hand, at low strain rate of 10-3 s-1 and 800°C, discontinuous recrystallization mechanisms become dominant with arrays of dislocations forming in front of the bulged boundaries of parent grains. These sub-grain boundaries eventually turn into high-angle grain boundaries. We also investigate the deformation mechanism of the alloy under extremely high strain rate (103 s-1) at room temperature. The specimen exhibits extensive kink bands with arrays of dislocation walls. As further strained, multiple slip systems can be activated and the interaction of dislocation walls plays a vital role in the strain hardening of the alloy.

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