冷硬性着陆和随后热处理产生的t4 -1合金结构和性能变化

Q3 Materials Science
Павел Вячеславович Бахматов, Василий Илларионович Муравьев, Алексей Валерьевич Фролов, В. С. Пицык
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引用次数: 0

摘要

研究了轴孔系坯料冷强制配合形成固相扩散键(SDB)过程中应力-应变状态最大值的影响规律及随后在自主真空中温度作用模式对OT4-1合金固相连接组织变化和接触面积(CA)性能的影响规律。结果表明:在OT4-1合金的冷塑性变形过程中,CA微观组织中SDB的形成导致了变形缓解(沿晶界滑动痕迹)的产生、接触面的减少以及接触面(晶粒曲率)和接触区体积(位错爆发)的体积相互作用。主要参数(组织组织特定参数、晶粒密度、平均晶界密度、晶界发育)分别是母材初始状态的10倍、4倍、1.8倍、1.5倍。在α→β相变区间,在自主真空条件下,温度的影响导致主金属和SDB接触区域的结构发生阶段性变化。在初始时刻,微观结构中出现球状成分,随着保温时间的延长和温度的升高,微观结构又恢复到初始状态的针状结构(显微硬度有所提高)。首次建立了在相变温度和时间条件下以及在高温条件下塑性变形金属加热过程中球状组织形成阶段的出现现象;加热温度越高,阶段寿命越短。此外,由于塑性变形程度较小,在接近T pt的温度和较短的暴露时间下,可以观察到组织的球状化阶段。对于母材(变形程度不显著),在950℃下加热10 min后,球状结构几乎完全消失。对于冷变形SDB的应力-应变状态,在950℃下加热1小时,球状组织消失;在975°C下放置40分钟;在1000°С下加热20分钟。在此温度下,不连续的“愈合”过程基本完成,即键线消失,固体金属沿着CA的微观结构形成,与基本金属没有区别,微观结构增加不显著。定量评估结构状态界面基本参数的结构变化,可以揭示机制、动力学和结构对塑性变形程度和热处理制度的依赖,从而确保不连续面“愈合”、界面消失和提供不低于基础金属的SDB性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
ОСОБЕННОСТИ ИЗМЕНЕНИЯ СТРУКТУРЫ И СВОЙСТВ ТВЕРДОФАЗНОГО СОЕДИНЕНИЯ СПЛАВА ОТ4-1, ПОЛУЧЕННОГО ХОЛОДНОЙ ТУГОЙ ПОСАДКОЙ И ПОСЛЕДУЮЩЕЙ ТЕРМИЧЕСКОЙ ОБРАБОТКОЙ
Regularities of the effect of maximum value of stress-strain state,  obtained under conditions of cold forced fit of blanks of the shaft-hole  system during formation of solid-phase diffusion bond (SDB) and subsequent  modes  of  temperature  action  in  autonomous  vacuum,  are  investigated on evolution of structural changes and properties of contact  area  (CA)  of  solid  joints  of  OT4-1  alloy.  It  is  shown  that  under  cold  plastic  deformation  of  OT4-1  alloy,  formation  of  SDB  in  microstructure of CA leads to generation of deformation relief (traces of sliding  along  the  grain  boundaries),  decrease  in  contact  surfaces,  and  to  volume interaction, both in the plane of contact (curvature of grains) and  in  volume  of  contact  zone  (outbreaks  of  dislocations).  The  main  parameters  (specific  parameter  of  structure  organization,  grains  density,  average density of grain boundaries, development of grain boundaries)  exceed  those  of  the  initial  state  of  base  metal  in  10,  4,  1.8,  1.5 times  respectively. Temperature influences under conditions of autonomous  vacuum in the interval of phase transformations α → β lead to staging  of structural changes, both in the main metal and in SDB contact area.  At the initial moment, globular component appears in microstructure,  which  again  goes  back  to  acicular  structure  of  the  initial  state  (with  some  increase  in  microhardness)  with  increase  in  holding  time,  and  also  with  increase  in  temperature.  For  the  first  time,  phenomenon  of  appearance of the globular structure formation stage during heating of  plastically  deformed  metal  is  established  not  only  under  temperature  and  time  conditions  of  phase  transformation,  but  also  under  elevated temperatures; and the higher heating temperature is, the shorter is lifetime  of  the  stage.  Moreover  with  less  degree  of  plastic  deformation,  stage of structure globularization is observed at temperatures close to  T pt and  shorter  exposures.  For  base  metal  (degree  of  deformation  is  insignificant),  globular  structure  disappears  almost  completely  after  heating for 10 min at 950 °C. For stress-strain state of cold-deformed  SDB, globular structure disappears when heated: for 1 hour at 950 °C;  for  40  min  at  975 °C;  for  20  min  at  1000 °С. At  these  temperatures,  process of discontinuities “healing” is almost completed, i.e. bond line  disappears,  and  solid  metal  is  formed  along  the  microstructure  of  the  CA,  not  differing  from  the  basic  metal  with  insignificant  increase  in  microstructure. Quantitative assessment of structural changes in basic  parameters  of  interface  of  structural  state  makes  it  possible  to  reveal  mechanism,  kinetics  and  structural  dependence  on  degree  of  plastic  deformation  and  heat  treatment  regimes,  that  ensure  discontinuities  “healing”,  disappearance  of  interfaces  and  provision  of  SDB  properties no worse than those of basic metal.
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来源期刊
Izvestiya Vysshikh Uchebnykh Zavedenij. Chernaya Metallurgiya
Izvestiya Vysshikh Uchebnykh Zavedenij. Chernaya Metallurgiya Materials Science-Materials Science (miscellaneous)
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