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Impression creep behaviour of magnesium alloy-based hybrid composites in the transverse direction

机译:镁合金基杂化复合材料的横向蠕变

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The creep behaviour of a creep-resistant AE42 magnesium alloy reinforced with Saffil short fibres and SiC participates in various combinations has been investigated in the transverse direction, i.e., the plane containing random fibre orientation was perpendicular to the loading direction, in the temperature range of 175-300℃ at the stress levels ranging from 60 to 140 MPa using impression creep test technique. Normal creep behaviour, i.e., strain rate decreasing with strain and then reaching a steady state, is observed at 175℃ at all the stresses employed, and up to 80 MPa stress at 240℃. A reverse creep behaviour, i.e., strain rate increasing with strain, then reaching a steady state and then decreasing, is observed above 80 MPa stress at 240℃ and at all the stress levels at 300℃. This pattern remains the same for all the composites employed. The reverse creep behaviour is found to be associated with fibre breakage. The apparent stress exponent is found to be very high for all the composites. However, after taking the threshold stress into account, the true stress exponent is found to range between 4 and 7, which suggests viscous glide and dislocation climb being the dominant creep mechanisms. The apparent activation energy Q_c was not calculated due to insufficient data at any stress level either for normal or reverse creep behaviour. The creep resistance of the hybrid composites is found to be comparable to that of the composite reinforced with 20% Saffil short fibres alone at all the temperatures and stress levels investigated. The creep rate of the composites in the transverse direction is found to be higher than the creep rate in the longitudinal direction reported in a previous paper.
机译:用Saffil短纤维和SiC增强的抗蠕变AE42镁合金的蠕变行为在横向方向上进行了研究,即包含随机纤维取向的平面在温度范围内垂直于加载方向。使用压痕蠕变试验技术,在175-300℃的应力水平范围为60到140 MPa之间。在所有所用应力下,在175℃观察到正常的蠕变行为,即应变率随应变而减小,然后达到稳态,在240℃下观察到高达80 MPa的应力。在240℃和80℃以上的所有应力水平下,都观察到反向蠕变行为,即应变率随应变增加,然后达到稳态,然后减小。对于所有使用的复合材料,该模式均保持不变。发现反向蠕变行为与纤维断裂有关。发现所有复合材料的表观应力指数都很高。但是,在考虑了阈值应力之后,发现真实应力指数在4到7之间,这表明粘性滑移和位错爬升是主要的蠕变机制。由于在正常或反向蠕变行为的任何应力水平下数据不足,因此未计算表观活化能Q_c。发现在所研究的所有温度和应力水平下,杂化复合材料的抗蠕变性均与仅含20%Saffil短纤维增强的复合材料的抗蠕变性相当。发现复合材料在横向上的蠕变速率高于先前论文中报道的在纵向上的蠕变速率。

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