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Effect of temperature on low cycle fatigue behavior of annealed Cu-Cr-Zr-Ti alloy in argon atmosphere

机译:温度对氩气氛下退火Cu-Cr-Zr-Ti合金低周疲劳行为的影响

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摘要

Isothermal low cycle fatigue (LCF) properties of Cu-Cr-Zr-Ti alloy were evaluated at different temperatures (300 °C, 450 °C and 600 °C) in high purity argon atmosphere. The cyclic stress response (CSR) was highly dependent on the test temperature. CSR at 300 °C showed primary hardening and secondary hardening at lower strain amplitudes from 0.25% to 0.8% and primary hardening followed by continuous softening at 1.2% strain amplitude. At 450 °C, the alloy exhibited a higher degree of primary hardening followed by saturation of stress. Transmission electron microscopic observations made on the samples tested upto different number of cycles indicate that precipitation of fine Cr precipitates was the main reason for the secondary hardening at 300 °C and extensive primary hardening at 450 °C. Even though precipitation was assisted by mechanical working during cycling, it is observed that the secondary hardening occurred almost at the same time irrespective of the strain amplitude used in the tests. At 450 °C and higher strain amplitudes, precipitates nucleated at the dislocations within a few initial cycles causing pinning of the dislocations thereby increasing the stress response. CSR at 600 °C showed continuous softening without any hardening. It is found that the precipitates nucleated during heating and soaking at the test temperature itself before the start of the strain cycling and coarsening of precipitates as well as loss of coherency with the matrix caused continuous softening at 600 °C. With an increase in test temperature, a reduction in fatigue life is observed and the life reduction is significant at higher strain amplitudes. Microstructural observations and fractographic studies indicated that cracks initiated predominantly at surface and propagated inward. Intergranular cracking was observed at higher strain amplitudes at all temperatures.
机译:在高纯氩气氛下,在不同温度(300°C,450°C和600°C)下评估了Cu-Cr-Zr-Ti合金的等温低周疲劳(LCF)性能。循环应力响应(CSR)高度取决于测试温度。 300°C下的CSR在较低的应变幅度(从0.25%到0.8%)下显示一次硬化和二次硬化,然后在1.2%的应变振幅下进行连续硬化。在450°C时,合金表现出较高的初次硬化程度,随后达到应力饱和。在不同的循环次数下对样品进行的透射电子显微镜观察表明,细小的Cr沉淀物的沉淀是300°C二次硬化和450°C广泛一次硬化的主要原因。即使在循环过程中通过机械加工辅助了析出,也可以观察到,几乎在同一时间发生了二次硬化,而与测试中使用的应变幅度无关。在450°C和更高的应变幅度下,析出物在几个初始循环内在位错处形核,从而导致位错发生钉扎,从而增加了应力响应。 600℃下的CSR显示出持续的软化而没有任何硬化。已经发现,在应变循环开始之前,在加热和在测试温度下的均热过程中,析出物成核,并且析出物变粗以及与基体的凝聚力降低,导致在600°C时连续软化。随着测试温度的升高,观察到疲劳寿命的降低,并且在较高的应变幅度下,寿命的降低是显着的。微观结构观察和分形学研究表明,裂纹主要在表面开始并向内扩展。在所有温度下均以较高的应变幅度观察到晶间裂纹。

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