...
首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Microstructure and elevated temperature mechanical properties of a direct-chill cast AA4032 alloy with copper and erbium additions
【24h】

Microstructure and elevated temperature mechanical properties of a direct-chill cast AA4032 alloy with copper and erbium additions

机译:直接冷却铸造AA4032合金的微观结构和高温力学性能与铜和铒的添加

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

Billets from an AA4032 alloy are usually produced by direct-chill (DC) casting to subsequently manufacture piston components by hot forging process. This work presents the effect of combined copper (Cu) and erbium (Er) addition on microstructure, mechanical properties and thermal expansion of an AA4032 alloy at room and elevated temperatures. Metallographic examination of samples was carried out to characterize the eutectic refinement, primary Si particles and second phase formation at different levels of Cu and Er additions. The results revealed that the amount of primary Si particles increased with increasing Cu addition from 1% to 3.5%. This indicated that Cu addition shifted the eutectic point in the alloy system. However, the Er addition resulted in complete elimination of primary Si particles and refinement of eutectic silicon phases. These results were supported by Thermo-Calc calculations. With increasing Cu and Er concentration to 3.5% and 0.4%, respectively, the hardness increased from 116 HB to 144 HB. The ultimate tensile strength (UTS), yield strength (YS) and elongation (El) were investigated at both room and elevated temperatures. At room temperature, the UTS of these alloys were enhanced with Cu and Er alloying from 279 MPa to 312 MPa. At 350 degrees C, the UTS was improved to 117 MPa while El was maintained at about 22%. This indicated that Er addition was effective in optimizing the high-temperature properties. The tensile fracture surfaces of the specimens showed that the main failure mechanism was predominantly due to the cracking of primary Si particles in the Al matrix, resulting in the brittle fracture of the alloys without Er. The fracture surface of the samples with Er addition displayed the path through the refined eutectic phase in the ductile fracture mode. The coefficient of linear thermal expansion (CTE) decreased to about 18.3 x 10(-6) K-1 at high operating temperature (100-350 degrees C) for the Er containing alloy. Therefore, this study suggests that the combination of Cu and Er additions in an AA4032 alloy controls the beneficial microstructure in terms of primary Si particles, the refined eutectic Si phase and secondary phases in the Al matrix, which improves mechanical and thermal performances. The low coefficient of linear thermal expansion (CTE) of this alloy makes it suitable for elevated temperature applications. (C) 2018 Elsevier B.V. All rights reserved.
机译:来自AA4032合金的坯料通常通过直接冷却(DC)铸造来通过热锻造工艺随后制造活塞组件。该工作介绍了在室内和升高的温度下AA4032合金的组织,机械性能和热膨胀的组合铜(Cu)和铒(ER)的效果。进行样品的金相检查,以表征在不同水平的Cu和Er添加水平的共晶细化,原发性Si颗粒和第二相形成。结果表明,原发性Si颗粒的量随着Cu的增加增加,增加1%至3.5%。这表明Cu添加了合金系统中的共晶点。然而,ER添加导致完全消除原发性Si颗粒和共晶硅相的细化。这些结果得到了热计算计算支持。随着Cu和ER浓度的增加至3.5%和0.4%,硬度从116 Hb增加到144 Hb。在两个室内研究了最终拉伸强度(UTS),屈服强度(YS)和伸长率(EL)。在室温下,这些合金的UTS通过279MPa至312MPa的Cu和Er合金化而增强。在350℃下,UTS改善为117MPa,而EL保持在约22%。这表明ER添加在优化高温性质方面是有效的。标本的拉伸骨折表面表明,主要的故障机制主要是由于Al基质中的原发性Si颗粒的破裂,导致没有ER的合金的脆性骨折。用ER添加的样品的断裂表面通过延性裂缝模式中通过精制的共晶相显示出路径。在含ER的合金的高工作温度(100-350℃)下,线性热膨胀(CTE)的系数降低至约18.3×10(-6)k-1。因此,本研究表明,在AA4032合金中的Cu和Er添加的组合在原发性Si颗粒中对受益微观结构进行了控制,其在Al基质中的精制共晶Si相和二次相,这提高了机械和热性能。该合金的低线性热膨胀系数(CTE)是适用于升高的温度应用。 (c)2018年elestvier b.v.保留所有权利。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号