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Effects of microstructure and temperature on fatigue behavior of E319-T7 cast aluminum alloy in very long life cycles

机译:显微组织和温度对超长寿命E319-T7铸造铝合金疲劳行为的影响

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摘要

The effects of microstructure and temperature on the fatigue behavior of a commercial Al-Si-Cu alloy used in automotive engine components were investigated for lifetimes as long as 10~9 cycles using ultrasonic fatigue instrumentation operating at 20 kHz. The primary finding of this study is that the influence of microstructure on the cyclic properties is greater than the influence of the testing temperature. Fractographic studies indicated that most fatigue cracks initiate from microshrinkage pores located at or very near to the specimen surface, while a much smaller number of cracks initiate from twin boundaries. Increasing test temperature resulted in a modest decrease in endurance limit by about 12 percent from 20 to 150 deg C, while a significant decrease in endurance limit by about 23 percent was observed from 150 to 250 deg C at high number of cycles. Using fatigue data developed in this study, a statistical model, the random fatigue-limit model (RFL), was evaluated for its utility in estimating fatigue behavior in the gigacycle regime.
机译:使用工作频率为20 kHz的超声疲劳仪器,研究了汽车发动机部件中商用Al-Si-Cu合金的微观结构和温度对疲劳行为的影响,其使用寿命长达10〜9个循环。这项研究的主要发现是微观结构对循环性能的影响大于测试温度的影响。形貌学研究表明,大多数疲劳裂纹是由位于试样表面或非常接近试样表面的微缩孔引起的,而数量较少的裂纹是由孪晶边界引起的。测试温度的升高导致耐力极限从20到150摄氏度适度下降约12%,而在高循环次数下,从150到250℃观察到耐力极限显着下降约23%。使用在这项研究中开发的疲劳数据,评估了统计模型,即随机疲劳极限模型(RFL),以评估其在千兆周期状态下的疲劳行为。

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