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Microstructure characterization and nano & micro hardness of tri-modal microstructure of titanium alloy under different hot working conditions

机译:微观结构表征和纳米& 不同热工作条件下钛合金三重型微结构的微硬度

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摘要

AbstractIn this work, the dependences of tri-modal microstructure parameters and corresponding nano & micro hardness on through-process processing parameters were quantitatively studied during the three-step thermo-mechanical processing of TA15 titanium alloy. It is found that the processing parameters of first step, especially for the deformation temperature and strain rate, mainly affect primary equiaxed α (αp) through the α→β phase transformation and the competition between dynamic recovery and dynamic recrystallization. The second processing step primarily affects the content and thickness of lamellar α (αl). In the third processing step, compared with low-temperature aging, normal annealing provides sufficient driving force for αland secondary lamellar α (αs) growing, which leads to thicker αland αs. As for the nano & micro hardness, in one sample undergoing different process, transformed β matrix (βt) is always harder than αland αsdue to the interfacial-strengthening effect. In addition, with increasing strain rate of the first step, αpbecomes harder due to the constantly enhanced work hardening effect while the hardness of βtvaries little because of the competition between interfacial strengthening and distribution disorder degree. However, the nano hardness of αldecreases firstly and then increases with strain rate, which presents the same trend with the micro hardness of integrated hardness at different processing conditions.Highlights?The contents and sizes of αpand αlare determined by the processing parameters of first and second step.?The morphology of αsembedded in β phase is determined by the accumulated distortional strain energy and dislocations.?αpbecomes harder as the strain rate of the first step increases due to the constantly enhanced work hardening effect.?βtis always harder than αpand αldue to the interfacial-strengthening effect.?The hardness of αlmakes the greatest contribution in the integrated hardness of tri-modal microstructure.]]>
机译:<![cdata [ 抽象 在这项工作中,三模态微结构参数的依赖性和相应的纳米和微硬度对通过过程处理在TA15钛合金的三步热机械加工过程中定量地研究了参数。发现第一步的处理参数,特别是对于变形温度和应变率,主要影响初级等式α(α P )通过α→β相变与动态恢复与动态再结晶的竞争。第二处理步骤主要影响层状α的内容和厚度(α l )。在第三加工步骤中,与低温老化相比,常规退火为α L 和次级层层α(α s )生长,导致较厚的α l 和α s < / ce:inf>。至于纳米和微量硬度,在一个样本中,在一个不同的过程中,转化的β矩阵(β t )总是比α L 和α S 由于界面强化效果。此外,随着第一步的应变率的增加,α p 由于β T 因界面强化和分布障碍程度之间的竞争而异。然而,α l 首先降低,然后用应变率增加,这与不同的加工条件下的综合硬度的微硬度呈现相同的趋势。 亮点 内容和大小α p 和α l 由第一步和第二步的处理参数确定。< / ce:para> α s Embedde的形态D在β相中由累积的扭曲应变能量和脱位决定。 α p 随着第一步的应变率增加而变得更加困难不断增强的工作强化效果。 β T 始终比α P 和α l 由于界面加强效应。 α l 的硬度对三模态微结构的综合硬度进行最大贡献。 ]]>

著录项

  • 来源
    《Materials Characterization》 |2017年第2017期|共10页
  • 作者单位

    State Key Laboratory of Solidification Processing School of Materials Science and Engineering Northwestern Polytechnical University;

    State Key Laboratory of Solidification Processing School of Materials Science and Engineering Northwestern Polytechnical University;

    State Key Laboratory of Solidification Processing School of Materials Science and Engineering Northwestern Polytechnical University;

    State Key Laboratory of Solidification Processing School of Materials Science and Engineering Northwestern Polytechnical University;

    State Key Laboratory of Solidification Processing School of Materials Science and Engineering Northwestern Polytechnical University;

    State Key Laboratory of Solidification Processing School of Materials Science and Engineering Northwestern Polytechnical University;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

    Titanium alloy; Hot working conditions; Tri-modal microstructure; Microstructure parameters; Nano amp; micro hardness;

    机译:钛合金;热工作条件;三模态微观结构;微观结构参数;纳米&amp;微小硬度;

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