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Revealing the formation mechanism of the skin-core structure in nearly stoichiometric polycrystalline SiC fibers

机译:揭示了几乎化学计量多晶硅纤维中皮肤芯结构的形成机制

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摘要

The polymer-derived SiC fibers have broad application prospects in the fields of aerospace, nuclear industry and high-tech weapon. Oxygen plays an essential role in adjusting the composition, structure and tensile strength of SiC fibers. Our studies have found that introducing too much oxygen during air curing process will form the skin-core structure in nearly stoichiometric polycrystalline SiC fibers. In order to reveal the formation mechanism of the skin-core structure, gradient oxygen was introduced into the fibers. The morphologies, phase distributions and defects of the fibers were well characterized. By strictly controlling the introduction of oxygen, the polycrystalline product fiber exhibits intragranular fracture behavior and excellent high-temperature resistance. The retention rate of its tensile strength can reach up to 91% and 61% after exposure at 1800 degrees C for 1 h and 10 h, respectively. The present results give valuable insights into the structural optimization of the nearly stoichiometric polycrystalline SiC fibers.
机译:聚合物衍生的SIC纤维在航空航天,核工业和高科技武器领域具有广泛的应用前景。氧气在调节SiC纤维的组成,结构和拉伸强度方面起着重要作用。我们的研究发现,在空气固化过程中引入太多的氧气将形成几乎化学计量的多晶硅纤维中的皮肤芯结构。为了揭示皮肤芯结构的形成机制,将梯度氧引入纤维中。纤维的形态,相分布和缺陷很好地表征。通过严格控制氧的引入,多晶产品纤维表现出腔内骨折行为和优异的高耐耐耐耐性。在1800℃下暴露1小时和10小时,其拉伸强度的保持率可达91%和61%。目前的结果为几乎化学计量的多晶SiC纤维的结构优化提供了有价值的见解。

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