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Microstructural study of pre-yielding and pre-yield cracking in TiAl-based alloys

机译:TiAl基合金的预屈服和屈服前裂纹的组织研究

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摘要

Samples of Ti44A18Nb1B (at. percent), Ti46A18Nb (700 ppm oxygen) and of the alloy K5 (Ti-46Al-2Cr-3Nb-0.2W-0.15B-0.4C (800 ppm oxygen) which have been tested in tension at stresses below their macroscopic yield stresses, have been examined using transmission electron microscopy. In lamellar samples it has been shown that dislocation multiplication takes place at stresses from about 400 MPa, well below their 0.2 percent proof stress. In samples with a duplex microstructure no dislocation activity is observed until the applied stress exceeds the macroscopic yield stress. Deformation twinning is initially observed in lamellar samples at stresses just below the 0.2 percent proof stress. No acoustic emission events are observed corresponding to the twinning seen in the fully lamellar samples. These observations are discussed in terms of the different pre-yielding behaviour of lamellar and duplex samples and in terms of acoustic emission signals, pre-yield cracking and pre-yield twinning. It is concluded that pre-yield cracking is caused by slip in gamma grains in near fully lamellar samples and by slip in lamellae longer than about 70 urn in fully lamellar samples. It is further concluded that all pre-yield acoustic emission is caused by cracking.
机译:Ti44A18Nb1B(at。%),Ti46A18Nb(700 ppm氧气)和K5合金(Ti-46Al-2Cr-3Nb-0.2W-0.15B-0.4C(800 ppm氧气))的样品均已在应力下进行了拉伸测试在层状样品中,位错倍增发生在约400 MPa的应力下,远低于其0.2%屈服极限应力;在具有双相微观结构的样品中,无位错活性直到施加的应力超过宏观屈服应力为止,在低于0.2%屈服强度的应力下,最初在层状样品中观察到形变孪晶,没有观察到与完整层状样品中观察到的孪晶相对应的声发射事件。从层状和双相样品的不同预屈服行为以及声发射信号,屈服前裂纹和屈服前孪晶的角度讨论了这一问题。得出的结论是,预屈服裂纹是由接近完全层状样品中的γ晶粒滑移和完全层状样品中长于约70 um的片状层滑移引起的。进一步得出结论,所有屈服前的声发射都是由裂纹引起的。

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