Room-temperature compressive creep behavior of Ti-6Al-4V ELI alloys with basketweave microstructure under an alternating compressive stress

IF 1.1 4区 材料科学 Q3 Engineering Materials Science-Poland Pub Date : 2023-02-24 DOI:10.5755/j02.ms.31914
Hao-Hsiang Huang, Yu Zhang, Jiafei Lu, Z. Dan, Hui Chang, Lian Zhou
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Abstract

Titanium alloys have great potential as candidate materials for the deep-sea facilities. Long-term creep deformation behavior of the pressure-bearing structures made of titanium alloys under alternating compressive stress has a direct impact on the structural stability. The compressive creep evaluations of Ti-6Al-4V ELI alloys with basketweave microstructure under alternating stresses have been carried out by a uniaxial compressive creep tester. The compressive creep deformations have strong stress sensitivity due to the larger creep strain by the higher applied compressive stress. The dislocation densities in α and β phases increase with the increase of applied compressive stresses. The dislocation slip and dislocation multiplication occur in α phases accompanying with high dislocations density in β phases caused by compressive deformation. The large strain concentration occurs at the grain boundaries of α/β phase due to dislocation plug after creep, which causes the grain boundary pinning. The compressive creep deformation of Ti-6Al-4V ELI alloys under alternating stress is a decelerating creep process and controlled by dislocation slip. The slight refinements of the grains and hardening have been confirmed after creeps. The synergistic effects of dislocation multiplication, grain boundary pinning and grain refinements lead to strengthening the Ti-6Al-4V ELI alloys and decelerating the compressive creeps.
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交变压应力作用下Ti-6Al-4V篮组织ELI合金的室温压缩蠕变行为
钛合金作为深海设施的候选材料具有巨大的潜力。钛合金承压结构在交变压应力作用下的长期蠕变变形行为直接影响结构的稳定性。用单轴压缩蠕变试验机对具有篮编织组织的Ti-6Al-4V ELI合金在交变应力作用下的压缩蠕变进行了评价。压缩蠕变变形具有较强的应力敏感性,这是由于施加的压缩应力越大,蠕变应变越大。α相和β相中的位错密度随着施加的压应力的增加而增加。位错滑移和位错增殖发生在α相中,伴随着压缩变形引起的β相中的高位错密度。蠕变后,由于位错塞的作用,α/β相的晶界产生了较大的应变集中,导致晶界钉扎。Ti-6Al-4V ELI合金在交变应力作用下的压缩蠕变变形是一个由位错滑移控制的减速蠕变过程。蠕变后证实了晶粒的轻微细化和硬化。位错增殖、晶界钉扎和晶粒细化的协同作用导致Ti-6Al-4V ELI合金的强化和压缩蠕变的减速。
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来源期刊
Materials Science-Poland
Materials Science-Poland 工程技术-材料科学:综合
CiteScore
1.70
自引率
18.20%
发文量
0
审稿时长
6.2 months
期刊介绍: Material Sciences-Poland is an interdisciplinary journal devoted to experimental research into results on the relationships between structure, processing, properties, technology, and uses of materials. Original research articles and review can be only submitted.
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