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首页> 外文期刊>Journal of the European Ceramic Society >Spark Plasma Sintering of fine alpha-silicon nitride ceramics with LAS for spatial applications
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Spark Plasma Sintering of fine alpha-silicon nitride ceramics with LAS for spatial applications

机译:用于空间应用的带有LAS的精细α-氮化硅陶瓷的火花等离子体烧结

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摘要

Many space systems such as satellite mirrors and their supporting structures require to be made from very low-thermal expansion materials combining both high hydrostability and relatively high mechanical properties. In this study, wc have applied the "composite concept" in order to explore the possibility of fabricating near zero thermal expansion silicon nitride based ceramics. Consequently, a negative thermal expansion material belonged to the lithium aluminosilicate family (LAS powder crystallized under de β-cucryptite structure) was introduced in an alpha-silicon nitride fine powder (5 and 20 vol% of LAS) and the resulting composite system was sintered by Spark Plasma Sintering (SPS) at 1400 and 1500 °C. In the case of 20 vol% LAS compositions, relatively well-densified ceramics (94.4% of the theoretical density) were produced without adding any further sintering additive. The addition of yttria and alumina oxides allowed enhancing the densiication level up to 98.2% (20 vol% LAS compositions) or from 62.3% up to 96.7% of the theoretical density in 5 vol% LAS materials. Nevertheless, it was impossible to full consolidate silicon nitride/LAS composite ceramics at temperatures lower than the temperature at which β-eucryptite melts, even by using SPS technology. Moreover, because of the relatively low temperatures involved in SPS, the α to β-Si_3N_4 transformation was avoided, resulting in microstructures composed of fine equiaxed α-Si_3N_4 grains (<200 nm) and of a glassy phase. Even if the effect of having a very large negative thermal expansion material was lost during the sintering step (because of the β-eucryptite melting), ceramics containing only 20 vol% of LAS-based phase exhibited very interesting values as regards of mechanical properties (strength, hardness, toughness, and Young's modulus), thermal conductivity and thermal expansion coefficient. We discuss in this work why we are so interested in developing dense silicon nitride/LAS ceramics sintered without any further additive addition, even though β-eucryptite is melted during the process and the transformation to the β phase is avoided.
机译:许多空间系统,例如卫星镜及其支撑结构,都需要由非常低热膨胀的材料制成,同时兼具高水稳定性和相对较高的机械性能。在这项研究中,wc应用了“复合概念”,以探索制造接近零热膨胀率的氮化硅基陶瓷的可能性。因此,将属于铝硅酸锂家族的负热膨胀材料(以β-隐锂沸石结构结晶的LAS粉末)引入到α-氮化硅细粉(LAS的5和20体积%)中,并烧结所得的复合体系由火花等离子体烧结(SPS)在1400和1500°C下进行。在LAS含量为20体积%的情况下,在不添加任何进一步的烧结添加剂的情况下生产了相对致密的陶瓷(理论密度的94.4%)。氧化钇和氧化铝的加入使得在5体积%的LAS材料中的致密化水平提高至理论密度的98.2%(20体积%的LAS)或从理论密度的62.3%至高达96.7%。然而,即使使用SPS技术,也无法在低于β-锂霞石熔化的温度下完全固结氮化硅/ LAS复合陶瓷。此外,由于SPS中涉及的温度相对较低,避免了从α到β-Si_3N_4的转变,从而形成了由细等轴α-Si_3N_4晶粒(<200 nm)和玻璃相组成的微观结构。即使在烧结步骤中失去了具有非常大的负热膨胀材料的效果(由于β-锂霞石熔化),就机械性能而言,仅包含20 vol%LAS基相的陶瓷也显示出非常有趣的值(强度,硬度,韧性和杨氏模量),导热系数和热膨胀系数。我们在这项工作中讨论了为什么我们对开发无需添加任何其他添加剂就烧结的致密氮化硅/ LAS陶瓷如此感兴趣,即使在过程中熔化了β-锂霞石并且避免了向β相的转变也是如此。

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