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Mechanical Properties and Microstructure of Biomorphic Silicon Carbide Ceramics Fabricated from Wood Precursors

机译:木材前驱体制备的生物形碳化硅陶瓷的力学性能和微观结构

摘要

Silicon carbide based, environment friendly, biomorphic ceramics have been fabricated by the pyrolysis and infiltration of natural wood (maple and mahogany) precursors. This technology provides an eco-friendly route to advanced ceramic materials. These biomorphic silicon carbide ceramics have tailorable properties and behave like silicon carbide based materials manufactured by conventional approaches. The elastic moduli and fracture toughness of biomorphic ceramics strongly depend on the properties of starting wood preforms and the degree of molten silicon infiltration. Mechanical properties of silicon carbide ceramics fabricated from maple wood precursors indicate the flexural strengths of 3441+/-58 MPa at room temperature and 230136 MPa at 1350C. Room temperature fracture toughness of the maple based material is 2.6 +/- 0.2 MPa(square root of)m while the mahogany precursor derived ceramics show a fracture toughness of 2.0 +/- 0.2 Mpa(square root of)m. The fracture toughness and the strength increase as the density of final material increases. Fractographic characterization indicates the failure origins to be pores and chipped pockets of silicon.
机译:通过对天然木材(枫木和桃花心木)前体进行热解和渗透,可以制造出基于碳化硅的环保型生物形陶瓷。这项技术为先进的陶瓷材料提供了一条生态友好的途径。这些生物形态碳化硅陶瓷具有可定制的性能,并且行为类似于通过常规方法制造的基于碳化硅的材料。生物形态陶瓷的弹性模量和断裂韧性在很大程度上取决于起始木材预型件的性质和熔融硅的渗透程度。由枫木前体制成的碳化硅陶瓷的机械性能表明,室温下的弯曲强度为3441 +/- 58 MPa,1350℃下的弯曲强度为230136 MPa。枫木基材料的室温断裂韧性为2.6 +/- 0.2 MPa(平方根)m,而红木前体衍生的陶瓷的断裂韧性为2.0 +/- 0.2 Mpa(平方根)m。断裂韧性和强度随着最终材料密度的增加而增加。断裂形貌表征表明,失效的根源是硅的孔隙和碎裂的囊袋。

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