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应变速率对充氢循环镍钛形状记忆合金力学行为的影响

Strain Rate Effect upon Mechanical Behaviour of Hydrogen-Charged Cycled NiTi Shape Memory Alloy.

作者信息

Gamaoun Fehmi

机构信息

Department of Mechanical Engineering, College of Engineering, King Khalid University, Abha 61421, Saudi Arabia.

Laboratory of Mechanics of Sousse, National Engineering School of Sousse, University of Sousse, Sousse 4054, Tunisia.

出版信息

Materials (Basel). 2021 Aug 23;14(16):4772. doi: 10.3390/ma14164772.

Abstract

The rate dependence of thermo-mechanical responses of superelastic NiTi with different imposed strain rates after cycling from 1 to 50 cycles under applied 10s, 10s and 10s strain rates, immersion for 3 h and ageing has been investigated. The loaded and unloaded as-received NiTi alloy under an imposed strain of 7.1% have shown an increase in the residual deformation at zero stress with an increase in strain rates. It has been found that after 13 cycles and hydrogen charging, the amount of absorbed hydrogen (291 mass ppm) was sufficient to cause the embrittlement of the tensile loaded NiTi alloy with 10s. However, no premature fracture has been detected for the imposed strain rates of 10s and 10s. Nevertheless, after 18 cycles and immersion for 3 h, the fracture has occurred in the plateau of the austenite martensite transformation during loading with 10s. Despite the higher quantity of absorbed hydrogen, the loaded specimen with a higher imposed strain rate of 10s has kept its superelasticity behaviour, even after 20 cycles. We attribute such a behaviour to the interaction between the travelling distance during the growth of the martensitic domains while introducing the martensite phase and the amount of diffused hydrogen.

摘要

研究了超弹性镍钛合金在施加10s、10s和10s应变率下从1循环到50循环、浸泡3小时并时效后,不同施加应变率下热机械响应的速率依赖性。在7.1%的施加应变下加载和卸载的原始镍钛合金,随着应变率的增加,零应力下的残余变形有所增加。已发现,在13次循环和充氢后,吸收的氢量(291质量ppm)足以导致在10s拉伸加载的镍钛合金脆化。然而,对于10s和10s的施加应变率,未检测到过早断裂。尽管如此,在18次循环和浸泡3小时后,在10s加载过程中,在奥氏体-马氏体转变的平台期发生了断裂。尽管吸收的氢量较高,但即使在20次循环后,具有较高施加应变率10s的加载试样仍保持其超弹性行为。我们将这种行为归因于在引入马氏体相时马氏体域生长过程中的行进距离与扩散氢量之间的相互作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c7ad/8400251/7973a54ca54f/materials-14-04772-g001.jpg

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