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Effects of deformation temperature on second-phase particles and mechanical properties of 2219 Al-Cu alloy

机译:变形温度对2219 Al-Cu合金第二相颗粒和力学性能的影响

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摘要

AbstractIn this study, an age-hardenable 2219 Al–Cu alloy was severely deformed by multidirectional forging (MDF) at 360–510°C, followed by solution treatment and T8 aging treatment. The evolution of the second-phase Al2Cu particles and the mechanical properties of the T8-aged samples were examined. The results indicated that a higher volume fraction and a more disperse distribution of the fragmented coarse particles were obtained for the sample deformed at low temperatures. The fragmented coarse particles were still difficult to sufficiently dissolve in the Al matrix in the subsequent solution treatment and could act as crack initiation sites, thereby reducing the mechanical properties of the alloy. With increasing the temperature of MDF, the number of coarse particles was gradually decreased, and the particles exhibited a more spheroidized shape after MDF. Correspondingly, more Cu atoms were dissolved in the Al matrix in the subsequent solution treatment, and the uniformity and density of the precipitates after T8 aging were improved. Thus, the mechanical properties of the T8-aged forgings were improved with increasing the temperature of MDF. The optimal mechanical properties were obtained when the deformation temperature was 510°C, with ultimate tensile strength of 431.2MPa, yield strength of 341.3MPa, and elongation of 6.5% at room temperature.Graphical abstractDisplay OmittedHighlightsAge-hardenable 2219 Al-Cu alloy was processed by MDF at 360–510°C.Coarse particles were decreased and spheroidized with an increase in MDF temperature.Coarse particles exhibited a dispersive distribution and elongated shape during MDF at 360°C.Coarse particles were difficult to sufficiently dissolve during solution treatment.Optimal mechanical properties were achieved from the forgings MD-Forged at 510°C.
机译: 摘要 在这项研究中,在360-510°C下通过多向锻造(MDF)对可时效硬化的2219 Al-Cu合金进行了严重变形,然后进行固溶处理和T8时效处理。研究了第二相Al 2 Cu颗粒的演变以及T8时效样品的力学性能。结果表明,在低温下变形的样品获得了更高的体积分数和更分散的破碎粗颗粒分布。破碎的粗颗粒在随后的固溶处理中仍然难以充分地溶解在Al基体中,并且可能充当裂纹的起始位置,从而降低了合金的机械性能。随着MDF温度的升高,粗颗粒的数量逐渐减少,并且MDF后颗粒呈现出更球形的形状。相应地,在随后的固溶处理中,更多的Cu原子溶解在Al基体中,并且改善了T8时效后沉淀物的均匀性和密度。因此,随着MDF温度的升高,T8时效锻件的机械性能得到改善。变形温度为510℃,极限抗拉强度为431.2MPa,屈服强度为341.3MPa,室温下的伸长率为6.5%,可获得最佳的力学性能。 图形摘要 省略显示 突出显示 年龄-hardenab le 2219 Al-Cu合金在360–510°C下通过MDF处理。 •< / ce:label> ,随着MDF温度的升高,粗颗粒减少并呈球形。 ,粗颗粒在360°MDF期间表现出分散的分布和细长的形状C。 粗颗粒难以在溶液处理过程中充分溶解。 在510°C下通过MD-锻造锻件获得了最佳的机械性能。 < / ce:list>

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  • 来源
    《Materials Science and Engineering》 |2018年第17期|414-423|共10页
  • 作者单位

    Research Institute of Light Alloy, Central South University,State Key Laboratory of High Performance Complex Manufacturing,School of Mechanical and Electrical Engineering, Central South University;

    Research Institute of Light Alloy, Central South University,State Key Laboratory of High Performance Complex Manufacturing,School of Mechanical and Electrical Engineering, Central South University;

    Research Institute of Light Alloy, Central South University,State Key Laboratory of High Performance Complex Manufacturing,School of Mechanical and Electrical Engineering, Central South University;

    Research Institute of Light Alloy, Central South University,State Key Laboratory of High Performance Complex Manufacturing;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Al–Cu alloy; Multidirectional forging; Deformation temperature; Second-phase particles; Mechanical properties;

    机译:Al-Cu合金;多向锻造;变形温度;第二相颗粒;力学性能;力学性能;

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