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Microstructure and properties of porous silicon carbide ceramics fabricated by carbothermal reduction and subsequent sintering process

机译:碳热还原及后续烧结工艺制备的多孔碳化硅陶瓷的组织与性能

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摘要

Porous silicon carbide (SiC) ceramics were prepared from a carbon-filled polysiloxane by carbothermal reduction and subsequent sintering process. Their microstructure, pore size distribution, compressive strength, and flexural strength were evaluated as a function of sintering temperature. The grain morphology was transformed from small, equiaxed grains to large, platelet grains with increasing sintering temperature. The porosity decreased with increasing sintering temperature from 55% for the 1800℃-sintered specimen to 40% for the 1950℃-sintered specimen, while the pore size distribution ranged from 0.003 to 30 μm. The volume fractions of both submicron- and micron-size pores decreased significantly with increasing sintering temperature. Both compressive and flexural strengths were increased with increasing sintering temperature, due to both the decreased porosity by densification and the strut strengthening by necking at higher temperatures.
机译:通过碳热还原和随后的烧结工艺,由填充了碳的聚硅氧烷制备了多孔碳化硅(SiC)陶瓷。根据烧结温度对它们的微观结构,孔径分布,抗压强度和弯曲强度进行了评估。随着烧结温度的升高,晶粒形态从小的等轴晶粒转变为大的片状晶粒。孔隙率随烧结温度的升高而降低,从1800℃的试样的55%降低到1950℃的试样的40%,而孔径分布范围为0.003至30μm。随着烧结温度的升高,亚微米孔和微米孔的体积分数均显着降低。抗压强度和抗弯强度均随烧结温度的升高而增加,这归因于致密化导致的孔隙率降低和高温下颈缩引起的支柱强化。

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