A Newly Generated Nearly Lamellar Microstructure in Cast Ti-48Al-2Nb-2Cr Alloy for High-Temperature Strengthening

A Newly Generated Nearly Lamellar Microstructure in Cast Ti-48Al-2Nb-2Cr Alloy for High-Temperature Strengthening
复制标题

用于高温强化的铸造 Ti-48Al-2Nb-2Cr 合金中新生成的近层状显微组织

DOI:
10.1007/s11661-019-05491-8
复制
发表时间:
2019-12
影响因子:
2.8
通讯作者:
Kim Young-Won
Kim Young-Won
中科院分区:
材料科学2区
文献类型:
--
作者:
Gao Zitong;Yang Jieren;Wu Yulun;Hu Rui;Kim Sang-Lan;Kim Young-Won

文献摘要

参考文献

被引文献

相似文献

合金 4822 (Ti-48Al-2Cr-2Nb at.pct) 铸造材料经过受控热处理循环,生成铸造近层状 (CNL) 微观结构,与当前工程铸造双相 (CDP) 微观结构形式相比,提高了温度性能。该循环由三个步骤组成:短α场退火、α+γ场退火、然后低温时效,每个步骤之后都进行控制冷却。结果显示,所得到的微观结构是不均匀分布的~ 250μm大小的层状菌落的混合物,其中含有~ 0.15μm间隔的板条。 700 °C 下的标准拉伸测试显示屈服应力为 344 MPa,比当前工程 CDP 形式的屈服应力高约 55 MPa。根据等温处理和随后的冷却时在α相变上方和下方发生的相变来评估和解释三步热循环之后的连续微观结构演化过程。高温强化的增加可以通过晶团和γ晶粒尺寸分布来解释。讨论了强化机制及其意义。
Alloy 4822 (Ti-48Al-2Cr-2Nb at. pct) cast material was given a controlled heat treatment cycle to generate a casting nearly lamellar (CNL) microstructure that enhances the temperature capability over its current engineering casting duplex (CDP) microstructure form. The cycle consisted of three steps: a shortαfield annealing, anα+γfield annealing, and then aging at a low temperature, with each step being followed by controlled cooling. The resulted microstructure is shown to be a mixture of non-uniformly distributed ~ 250μm size lamellar colonies containing ~ 0.15µm spaced laths. Standard tensile testing at 700 °C shows a yield stress of 344 MPa that is ~ 55 MPa greater than that of the current engineering CDP form. The sequential microstructure evolution processes following the three-step thermal cycle are assessed and explained in terms of phase transformations taking place across and below theαtransus upon isothermal treatment and subsequent cooling. The resulted increases in high-temperature strengthening are explained by the colony andγgrain size distributions. The strengthening mechanism along with the significance is discussed.
DOI: 10.1007/s11661-018-4765-2
发表时间: 2018-06
期刊: Metallurgical and Materials Transactions A
影响因子: --
作者:
Qi Wang;Ruirun Chen;X. Gong;Jingjie Guo;Yan-Qing Su;H. Ding;H. Fu
通讯作者: Qi Wang;Ruirun Chen;X. Gong;Jingjie Guo;Yan-Qing Su;H. Ding;H. Fu
DOI: 10.1179/msc.1979.13.3-4.187
发表时间: 1979-03
期刊: Metal Science
影响因子: --
作者:
C. Sellars;J. Whiteman
通讯作者: C. Sellars;J. Whiteman
DOI: 10.1007/s11661-012-1586-6
发表时间: 2013
期刊: Metallurgical and Materials Transactions A
影响因子: --
作者:
Y.-W. Cui;Guanglong Xu;R. Kato;Xiao-Gang Lu;R. Kainuma;K. Ishida
通讯作者: Y.-W. Cui;Guanglong Xu;R. Kato;Xiao-Gang Lu;R. Kainuma;K. Ishida
DOI: 10.1017/cbo9781139207249.009
发表时间: 2012
期刊: --
影响因子: --
作者:
W. Marsden
通讯作者: W. Marsden
DOI: 10.1007/bf02646001
发表时间: 1992-08-01
期刊: METALLURGICAL TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE
影响因子: --
作者:
KATTNER, UR;LIN, JC;CHANG, YA
通讯作者: CHANG, YA