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Fatigue behavior of highly porous titanium produced by powder metallurgy with temporary space holders

机译:粉末冶金生产的高孔隙度钛的疲劳行为与临时空间保持器

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摘要

Porous titanium cylinders were produced with a constant amount of temporary space holder (70 vol.%). Different interstitial contents were achieved by varying the starting powders (HDH vs. gas atomized) and manufacturing method (cold compaction without organic binders vs. warm compaction of MIM feedstocks). Interstitial contents (O, C, and N) as a function of manufacturing were measured by chemical analysis. Samples contained 0.34-0.58 wt.% oxygen, which was found to have the greatest effect on mechanical properties. Quasi-static mechanical tests under compression at low strain rate were used for reference and to define parameters for cyclic compression tests. Not unexpectedly, increased oxygen content increased the yield strength of the porous titanium. Cyclic compression fatigue tests were conducted using sinusoidal loading in a servo-hydraulic testing machine. Increased oxygen content was concomitant with embrittlement of the titanium matrix, resulting in significant reduction of compression cycles before failure. For samples with 0.34 wt.% oxygen, R, σ_(min) and σ_(max) were varied systematically to estimate the fatigue limit (~4 million cycles). Microstructural changes induced by cyclic loading were then characterized by optical microscopy, SEM and EBSD.
机译:用恒定量的临时空间保持器(70体积%)生产多孔钛圆柱体。通过改变原料粉末(HDH与气体雾化)和制造方法(无有机粘合剂的冷压实与MIM原料的热压实),可以实现不同的间隙含量。间隙含量(O,C和N)与制造的关系通过化学分析测量。样品含有0.34-0.58wt。%的氧气,发现其对机械性能的影响最大。低应变率压缩下的准静态机械测试用作参考,并定义了循环压缩测试的参数。不出所料,增加的氧含量增加了多孔钛的屈服强度。在伺服液压测试机中使用正弦载荷进行循环压缩疲劳测试。氧含量的增加伴随着钛基体的脆化,导致失效前压缩循环的显着减少。对于氧含量为0.34 wt。%的样品,系统地改变R,σ_(min)和σ_(max)以估计疲劳极限(约400万循环)。然后通过光学显微镜,SEM和EBSD表征循环载荷引起的微观结构变化。

著录项

  • 来源
    《Materials science & engineering》 |2016年第3期|446-457|共12页
  • 作者单位

    Forschungszentrum Juelich, Institute of Energy and Climate Research (IEK), 52425 Juelich, Germany,Gazi University, Faculty of Technology, Department of Metallurgical and Materials Engineering, Teknikokullar, Ankara, Turkey;

    Forschungszentrum Juelich, Institute of Energy and Climate Research (IEK), 52425 Juelich, Germany;

    Forschungszentrum Juelich, Institute of Energy and Climate Research (IEK), 52425 Juelich, Germany,University of Kaiserslautern, Lehrstuhl fuer Werkstoffkunde (WKK), D-67663 Kaiserslautern, Germany;

    Forschungszentrum Juelich, Institute of Energy and Climate Research (IEK), 52425 Juelich, Germany;

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

    Porous titanium; Powder metallurgy; Interstitial content; Fatigue behavior; Fatigue limit; Failure mechanisms;

    机译:多孔钛粉末冶金;插页内容;疲劳行为;疲劳极限失败机制;

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