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In situ stress relaxation mechanism of a superelastic NiTi shape memory alloy under hydrogen charging

机译:氢气充电下超弹性NITI形状记忆合金的原位应力松弛机理

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On account of its good biocompatibility, superelastic Ni-Ti arc wire alloys have been successfully used in orthodontic clinics. Nevertheless, delayed fracture in the oral cavity caused by hydrogen diffusion can be observed. The in situ stress relaxation susceptibility of a Ni-Ti shape memory alloy towards hydrogen embrittlement has been examined with respect to the current densities and imposed deformations. Orthodontic wires have been relaxed at different martensite volume fractions using current densities of 5, 10 and 20 A/m(2) at 20 degrees C. The in situ relaxation stress shows that, for an imposed strain at the middle of the austenite-martensite transformation, the specimen fractures at the martensite-austenite reverse transformation. However, for an imposed strain at the beginning of the austenite-martensite plateau, the stress decreases in a similar way to the full austenite structure. Moreover, the stress plateau has been recorded at the reverse transformation for a short period. For the fully martensite structure, embrittlement occurs at a higher stress value. This behaviour is attributed to the interaction between the in situ austenite phase expansion and the diffusion of hydrogen in the different volume fractions of the martensite phase, produced at an imposed strain.
机译:由于其良好的生物相容性,超弹性镍钛弧丝合金已成功应用于正畸临床。然而,可以观察到氢扩散引起的口腔延迟性骨折。研究了Ni-Ti形状记忆合金在电流密度和外加变形下的原位应力松弛对氢脆的敏感性。在20℃下,使用5、10和20 A/m(2)的电流密度在不同的马氏体体积分数下放松正畸钢丝。原位松弛应力表明,对于奥氏体-马氏体转变中间的外加应变,试样在马氏体-奥氏体反向转变时断裂。然而,对于奥氏体-马氏体平台开始时施加的应变,应力以与全奥氏体结构类似的方式降低。此外,应力平台在短时间内被记录在反向转换处。对于完全马氏体结构,脆性发生在较高的应力值。这种行为归因于原位奥氏体相膨胀和氢在施加应变下产生的马氏体相不同体积分数中的扩散之间的相互作用。

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