首页> 外文期刊>Journal of the American Ceramic Society >Transformation Plasticity in (Gd_xDy_(1-x))PO_4 Fiber Coatings During Fiber Push Out
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Transformation Plasticity in (Gd_xDy_(1-x))PO_4 Fiber Coatings During Fiber Push Out

机译:光纤推出过程中(Gd_xDy_(1-x))PO_4光纤涂层的相变可塑性

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摘要

The reduction in fiber push-out stress by transformation plasticity in xenotime rare-earth orthophosphate fiber-matrix interphases was demonstrated. Processing methods for transformable xenotime coatings were explored. For conversion to xenotime during processing, (Gd_xDyi_(1-x))PO_4 solid solutions had to be more Dy-rich than those for pellets. Single-crystal alumina fibers were coated with 10-20 μrn of (Gd_(0.4)Dy_(0.6))PO_4 xenotime and incorporated into polycrystalline alumina matrices. Coated fiber push-out stresses were between 10 and 80 MPa, significantly lower than those for fibers with other rare-earth orthophosphates coatings. Phase transformations and deformation mechanisms were characterized by SEM and TEM in fiber coatings after push out. Bands of deformed coating several micrometers in width formed during fiber push out. Cataclastic flow with fracture, granulation, translation, rotation, and intense plastic deformation of coating grains was observed. Three phase transformations may occur in heavily deformed particles in the deformation band: xenotime → mon-azite, xenotime → anhydrite, and anhydrite → monazite. Anhydrite was abundant as a fine lamellar phase on (100) planes in xenotime. Selected area electron diffraction and high-resolution TEM confirmed formation of monazite in a variety of heavily deformed particles. Issues for use of rare-earth orthophosphate transformation plasticity to lower fiber pull-out stress in ceramic matrix composites are discussed.
机译:证明了在异时稀土稀土正磷酸盐纤维-基体中间相中通过转变可塑性降低了纤维推出应力。探索了可转化的Xenotime涂层的加工方法。为了在加工过程中转化为异戊二烯,(Gd_xDyi_(1-x))PO_4固溶体必须比粒料富集更多的Dy。单晶氧化铝纤维涂覆有10-20μm的(Gd_(0.4)Dy_(0.6))PO_4 xenotime,并掺入多晶氧化铝基质中。涂覆的纤维推出应力在10到80 MPa之间,明显低于具有其他稀土正磷酸盐涂层的纤维。推出后,通过SEM和TEM表征了纤维涂层的相变和变形机理。在光纤推出过程中形成的宽度为几微米的变形涂层带。观察到具有破裂,造粒,平移,旋转和涂层晶粒剧烈塑性变形的碎裂流。在变形带中发生严重变形的粒子中可能发生三相转变:xenotime→mon-azite,xenotime→硬石膏和硬石膏→monazite。在xenotime中,硬石膏作为(100)平面上的细薄层状相丰富。选定区域的电子衍射和高分辨率TEM证实了在各种严重变形的颗粒中会形成独居石。讨论了使用稀土正磷酸盐转变可塑性降低陶瓷基复合材料中纤维拉出应力的问题。

著录项

  • 来源
    《Journal of the American Ceramic Society》 |2013年第5期|1586-1595|共10页
  • 作者单位

    Air Force Research Laboratory, Materials Directorate, WPAFB, Dayton, Ohio 45433;

    UES Inc, Dayton, Ohio 45432;

    UES Inc, Dayton, Ohio 45432;

    Air Force Research Laboratory, Materials Directorate, WPAFB, Dayton, Ohio 45433;

    UES Inc, Dayton, Ohio 45432;

    Mechanical Engineering Department, Carnegie Mellon University, Pittsburgh, Pennsylvania 15213;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 13:37:55

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