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Artificial ageing of Al-Si-Cu-Mg casting alloys

机译:Al-Si-Cu-Mg铸造合金的人工时效

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The T6 heat treatment is commonly used for gravity cast Al-Si-Cu-Mg alloys. The influence of the alloying elements Cu and Mg and the artificial ageing temperature on the age hardening response were investigated. Artificial ageing was conducted at 170°C and 210°C for various times for three alloys, Al-7Si-0.3Mg, Al-8Si-3Cu and Al-8Si-3Cu-0.5Mg, cast with three different solidification rates (secondary dendrite arm spacing of about 10, 25 and 50 |xm). The coarseness of the microstructure has a small influence on the yield strength, as long as the solution treatment is adjusted to obtain complete dissolution and homogenisation. The peak yield strength of the Al-Si-Mg alloy is not as sensitive to the ageing temperature as the Al-Si-Cu and Al-Si-Cu-Mg alloys are. The ageing response of the Al-Si-Cu alloy is low and very slow. When 0.5 wt% Mg is added the ageing response increases drastically and a peak yield strength of 380 MPa is obtained after 20 h of ageing at 170° C for the finest microstructure, but the elongation to fracture is decreased to 3%. The elongation to fracture decreases with ageing time in the underaged condition as the yield strength increases for all three alloys. A recovery in elongation to fracture of the Al-Si-Cu-Mg alloy on overageing is obtained for the finest microstructure, while the elongation remains low for the coarser microstructures. The quality index, Q=YS + Ke, can be used to compare the quality of different Al-Si-Mg alloys. This is not true for Al-Si-Cu-Mg alloys, as K depends on the alloy composition. Overageing of the Al-Si-Mg alloy results in a decrease in quality compared to the underaged condition.
机译:T6热处理通常用于重力铸造Al-Si-Cu-Mg合金。研究了合金元素Cu和Mg以及人工时效温度对时效硬化响应的影响。在三种凝固速率下铸造的三种合金Al-7Si-0.3Mg,Al-8Si-3Cu和Al-8Si-3Cu-0.5Mg在170°C和210°C进行了不同时间的人工时效臂间距约为10、25和50 | xm)。只要调节固溶处理以获得完全的溶解和均质化,微观结构的粗糙度对屈服强度的影响很小。 Al-Si-Mg合金的峰值屈服强度对时效温度的敏感性不如Al-Si-Cu和Al-Si-Cu-Mg合金。 Al-Si-Cu合金的时效响应低且非常慢。当添加0.5 wt%的Mg时,时效响应急剧增加,在170°C时效20小时后,具有最佳的显微组织,峰值屈服强度达到380 MPa,但断裂伸长率降低至3%。在这三种合金中,在欠时效条件下,随着时效时间的延长,断裂伸长率会降低。对于最细微的组织,Al-Si-Cu-Mg合金在过度时效时的断裂伸长率得到恢复,而对于较粗糙的微结构,伸长率保持较低。质量指数Q = YS + Ke可用于比较不同的Al-Si-Mg合金的质量。对于Al-Si-Cu-Mg合金而言并非如此,因为K取决于合金成分。与未时效状态相比,Al-Si-Mg合金的时效过度会导致质量下降。

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