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Size Effects on the Plastic Deformation of Nanocomposites Prepared from SiCN and SiCNAlYO Nanopowders Synthesized by Laser Pyrolysis

机译:尺寸对激光热解法制备的SiCN和SiCNAlYO纳米粉体纳米复合材料塑性变形的影响

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The aim of this work was to synthesise nanopowders by laser pyrolysis in order to elaborate Si_3N_4-SiC nanocomposites exhibiting a high ductility at high temperature. The synthesis of SiCN and SiCNYAlO nanopowders with a good thermal stability has been developed from a liquid mixture based on hexamethyldisilazane with a gaseous precursor (silane, SiH_4) and ammonia. Si_3N_4-SiC nanocomposites exhibiting almost theoretical density have been elaborated by hot pressing under 35 MPa at 1600°C either from SiCNYAlO nanopowders or from SiCN nanopowders mixed with commercial sintering aids nanopowders (6 wt% yttria and 3 wt% alumina) in ethanol and de-agglomerated by milling with Si_3N_4 balls. The densification behaviour is better for nanopowders containing in-situ additives. In addition, using prealloyed powders enables to simplify the elaboration process since the mixing step of the nanopowders is eliminated. The nanocomposites elaborated from the mixture (SiCN + commercial sintering aids) exhibit a different microstructure, depending on the drying process (under vacuum or in an oven) of the nanopowders after the mixing step: When drying was performed in a confined atmosphere, a noticeable amount of Si_2N_2O was detected in addition to β-Si_3N_4 and the average grain size was 60 nm, whereas the crystalline phases were α- and β-Si_3N_4, when the slurry was dried under vacuum and the average grain size was 200 nm. The creep behaviour of the two grades was assessed under compressive loading in air and the deformation appears strongly influenced by this change of the microstructure: A strong ductility was observed for the smallest grain size: a deformation as high as 45 % was measured under a compressive load of 180 MPa at 1350°C under air.
机译:这项工作的目的是通过激光热解法合成纳米粉体,以制备在高温下具有高延展性的Si_3N_4-SiC纳米复合材料。已经从基于六甲基二硅氮烷与气态前体(硅烷,SiH_4)和氨的液体混合物开发了具有良好热稳定性的SiCN和SiCNYAlO纳米粉。 SiCNYAlO纳米粉或SiCN纳米粉与商用烧结助剂纳米粉(6 wt%的氧化钇和3 wt%的氧化铝)在乙醇和乙醇中混合制得,在1600°C下在35 MPa下于1600℃下热压,制备了具有几乎理论密度的Si_3N_4-SiC纳米复合材料。 -通过与Si_3N_4球一起铣削而结块。对于含有原位添加剂的纳米粉,其致密化行为更好。另外,由于省去了纳米粉末的混合步骤,因此使用预合金粉末能够简化加工过程。由混合物制成的纳米复合材料(SiCN +商业烧结助剂)根据混合步骤后纳米粉末的干燥过程(在真空或烤箱中)显示出不同的微观结构:在密闭气氛中进行干燥时,明显当将浆料在真空下干燥并且平均粒径为200nm时,除了β-Si_3N_4之外还检测到Si_2N_2O的量,并且平均粒径为60nm,而结晶相为α-和β-Si_3N_4。在空气中的压缩载荷下评估了两个等级的蠕变行为,并且这种变形似乎受到微观结构变化的强烈影响:对于最小的晶粒尺寸,观察到了良好的延展性:在压缩状态下测得的变形高达45%在空气中1350°C时承受180 MPa的载荷。

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