首页> 外文期刊>Materials Science and Engineering. A, Structural Materials: Properties, Microstructure and Processing >The effects of mischmetal, cooling rate and heat treatment on the hardness of A319.1, A356.2 and A413.1 Al-Si casting alloys
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The effects of mischmetal, cooling rate and heat treatment on the hardness of A319.1, A356.2 and A413.1 Al-Si casting alloys

机译:混合金属,冷却速率和热处理对A319.1,A356.2和A413.1 Al-Si铸造合金硬度的影响

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The present study investigated the effect of mischmetal as a modifier, as well as the effects of cooling rate and heat treatment on the hardness of non-modified and Sr-modified A319.1, A356.2 and A413.1 Al-Si casting alloys. The main aim of the study was to determine the effect of mischmetal in terms of mischmetal-containing intermetallic phases, as well as the effects of the chemical composition of the alloys, cooling rate and heat treatment on the corresponding hardness values obtained for the alloys in question. Two cooling rates were employed to provide estimated hardness levels of ~85 and ~ 110-115 BHN, levels conforming to levels most commonly observed in commercial applications of these alloys. The hardness measurements revealed that the hardness values of the as-cast alloys were higher at high cooling rates than at low cooling rates. Non-modified alloys (i.e. those with no Sr addition) displayed slightly higher hardness levels compared to the Sr-modified alloys. Also, the hardness decreased with the addition of mischmetal at both cooling rates. Two peak hardness values were observed at 200℃/5h and 240℃/5h at high cooling rates in the non-modified A319.1 alloy after aging at different temperatures between 155 ℃/5 h and 240 ℃/5 h, while the Sr-modified alloy showed only one peak at 200 ℃/5 h. Two maximum hardness values were observed at 155 ℃/5 h and 180 ℃/5 h in both non-modified and Sr-modified alloys at low cooling rates. The alloys containing 0 and 2 wt% mischmetal additions exhibited the highest hardness values at both cooling rates; the hardness decreased with further mischmetal additions. Peak hardness was observed at 180 ℃/5 h in the non-modified and Sr-modified A356.2 alloys under both cooling rate conditions after aging at different temperatures between 155 ℃/5 h and 240 ℃/5 h. The alloys free of mischmetal exhibited relatively higher levels of hardness than those containing mischmetal. The hardness decreased with increasing mischmetal addition. At the high cooling rates, the non-modified alloys displayed higher hardness values than the Sr-modified alloys, while an opposite trend was observed at the low cooling rate. The decrease in the hardness values may be attributed to the interaction of the mischmetal with the alloying elements Cu and Mg to form the various intermetallic phases observed. In tying up these elements, the volume fraction of the precipitation-hardening phases formed in the A319.1 and A356.2 alloys (i.e. the Al_2Cu and Mg_2Si phases) is significantly reduced, thereby decreasing the hardness. The addition of mischmetal was also reported to change the precipitation sequence of the Mg_2Si phase in the A356.2 alloy. In the case of the A413.1 alloy, the low content of alloying elements resulted in a weak response of the alloy to the age-hardening process at all aging temperature/time conditions (155 ℃/5 h-240 ℃/5 h), and at both cooling rates. Thus, no peak hardness was observable in these alloys.
机译:本研究研究了混合稀土作为改性剂的影响,以及冷却速率和热处理对未改性和Sr改性的A319.1,A356.2和A413.1 Al-Si铸造合金硬度的影响。 。该研究的主要目的是确定含杂金属的金属间化合物相对杂金属的影响,以及合金的化学组​​成,冷却速率和热处理对获得的相应合金硬度值的影响。题。采用两种冷却速率可提供约85 BHN和约110 BHN〜110-115 BHN的硬度,该水平符合这些合金在商业应用中最常见的水平。硬度测量表明,铸态合金的硬度值在高冷却速率下比在低冷却速率下更高。与Sr改性合金相比,未改性的合金(即不添加Sr的合金)显示出更高的硬度。同样,在两种冷却速率下,添加了混合金属都会降低硬度。在155℃/ 5 h和240℃/ 5 h的不同温度下时效后,未改性的A319.1合金在高冷却速率下在200℃/ 5h和240℃/ 5h处观察到两个峰值硬度值,而Sr改性合金在200℃/ 5 h仅有一个峰。在低冷却速率下,未改性和Sr改性合金在155℃/ 5 h和180℃/ 5 h观察到两个最大硬度值。含有0和2 wt%的混合稀土合金的合金在两种冷却速率下均显示出最高的硬度值。进一步添加混合稀土会降低硬度。在155℃/ 5 h至240℃/ 5 h的不同温度下进行时效处理后,在两种冷却速率条件下,未改性和Sr改性A356.2合金在180℃/ 5 h处均出现了峰值硬度。与含杂金属的合金相比,不含杂金属的合金显示出相对较高的硬度。硬度随着混合稀土金属的添加而降低。在高冷却速率下,未改性合金显示出比Sr改性合金更高的硬度值,而在低冷却速率下观察到相反的趋势。硬度值的降低可能归因于混合金属与合金元素Cu和Mg相互作用以形成观察到的各种金属间相。在绑扎这些元素时,在A319.1和A356.2合金中形成的沉淀硬化相(即Al_2Cu和Mg_2Si相)的体积分数显着降低,从而降低了硬度。据报道,混合稀土金属的添加会改变A356.2合金中Mg_2Si相的析出顺序。对于A413.1合金,合金元素的含量低导致在所有时效温度/时间条件(155℃/ 5 h-240℃/ 5 h)下,合金对时效硬化过程的响应较弱。 ,并且两种冷却速度都一样。因此,在这些合金中没有观察到峰值硬度。

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