<i>β</i>型チタン合金Ti-22V-4Alにおける変形・破壊挙動の温度依存性

Rei Yano, Masaki Tanaka, Shigeto Yamasaki, Tatsuya Morikawa, Tomohito Tsuru
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Abstract

Impact tests and tensile tests were conducted between 77 K and 450 K in order to elucidate the temperature dependence of absorbed-impact energy, yield stress, effective shear stress, activation volume, and activation enthalpy. The impact-absorbed energy decreased with decreasing test temperature, however, this alloy did not undergo low-temperature embrittlement although it has a bcc structure. Tensile tests showed changes in both the work-hardening rate and the temperature dependence of yield stress at approximately 150 K. This suggests a change in the mechanism behind the plastic deformation at the temperature. The temperature dependence of the activation enthalpy for dislocation glide suggests that the process of climbing over the Peierls potential (kink-pair nucleation) is the dominant mechanism for the dislocation glide from 150 K to 200 K, while the interaction between a dislocation and solute atoms dominantly controls the dislocation glide above 200 K. Superelasticity appears in stress-strain curves tested below 120 K, suggesting that the yielding is governed by transformation-induced plasticity below 120 K. The enhanced toughness at low temperatures in these alloys is discussed from the viewpoint of dislocation shielding theory.
&爱尔蒂;i & gt;β&爱尔蒂;/ i & gt;钛合金Ti-22V-4Al的变形和破坏行为对温度的依赖性
为了阐明吸收冲击能、屈服应力、有效剪切应力、活化体积和活化焓与温度的关系,在77 K和450 K之间进行了冲击试验和拉伸试验。冲击吸收能随试验温度的降低而降低,但该合金虽具有bcc结构,但未发生低温脆。拉伸试验表明,在约150k时,加工硬化速率和屈服应力的温度依赖性都发生了变化。这表明在温度下塑性变形背后的机制发生了变化。位错滑移的活化焓对温度的依赖表明,位错在150 K至200 K范围内滑移的主要机制是超越佩尔斯势(扭对成核)的过程,而在200 K以上的滑移主要是位错与溶质原子之间的相互作用控制的。在120 K以下的应力-应变曲线中出现超弹性,表明120 K以下的屈服受相变诱发塑性的支配。从位错屏蔽理论的角度讨论了这些合金在低温下韧性的增强。
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