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Fatigue behavior of Zr-Ti-Ni-Cu-Be bulk-metallic glasses

机译:Zr-Ti-Ni-Cu-Be大块金属玻璃的疲劳行为

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摘要

The high-cycle fatigue (HCF) behavior of the Zr_(41.2)Ti_(13.8)Cu_(12.5)Ni_(10)Be_(22.5) (in at. percent) bulk-metallic glass (BMG) was studied. Two batches of samples that are from different lots (Batches 59 and 94) are employed in present experiments. The HCF experiments were conducted, using an electrohydraulic machine at a frequency of 10 Hz with a R ratio of 0.1 in air at room temperature and under tension-tension loading, where R = sigma_(min)./sigma_(max). (sigma_(min). and sigma_(max) are the applied minimum and maximum stresses, respectively). A high-speed and high-sensitivity thermographic-infrared (IR) imaging system was employed for the nondestructive evaluation of temperature evolutions during fatigue testing. No distinct sparldng phenomenon was observed at the final fracture moment for this alloy. The fatigue lifetime of Batch 59 is longer than that of Batch 94 at high stress levels (maximum stresses > 864 MPa). Moreover, the fatigue-endurance limit of Batch 59 (703 MPa) is somewhat greater than that of Batch 94 (615 MPa). The vein pattern and liquid droplets were observed in the apparent-melting region along the edge of the fractured surfaces. The fracture morphology suggests that fatigue cracks initiated from casting defects, such as porosities and inclusions, which have an important effect on the fatigue behavior of BMGs.
机译:研究了Zr_(41.2)Ti_(13.8)Cu_(12.5)Ni_(10)Be_(22.5)(at。%)大块金属玻璃(BMG)的高周疲劳(HCF)行为。在本实验中,使用了来自不同批次(批次59和94)的两批样品。使用电动液压机以10 Hz的频率在室温下在空气中以及在拉力-拉力载荷下的R比为0.1的情况下进行HCF实验,其中R = sigma_(min)./ sigma_(max)。 (sigma_(min)和sigma_(max)分别是施加的最小应力和最大应力)。高速,高灵敏度的红外热成像(IR)成像系统用于疲劳测试过程中温度变化的无损评估。在该合金的最终断裂时刻没有观察到明显的飞溅现象。在高应力水平(最大应力> 864 MPa)下,批次59的疲劳寿命长于批次94。此外,批次59(703 MPa)的疲劳强度极限比批次94(615 MPa)的疲劳强度极限更大。在沿着断裂表面的边缘的表观熔融区域中观察到静脉图案和液滴。断裂形态表明,疲劳裂纹是由铸件缺陷(例如孔隙和夹杂物)引发的,这对BMG的疲劳行为具有重要影响。

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