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3D microstructure model and thermal shock failure mechanism of a Si(3)N(4)bonded SiC ceramic refractory with SiC high volume ratio particles

机译:Si(3)N(4)粘合SiC陶瓷耐火材料的3D微观结构模型及散热机理,SiC大体积比颗粒

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摘要

In this study, an efficient method was proposed to establish 3D microstructure model of a Si3N4-bonded SiC ceramic refractory with SiC high volume ratio particles and its failure mechanism under thermal shock was studied based on the established microstructure model. The proposed modeling method based on modified 3D Voronoi tessellation method and "precise shrinkage ratio method" was able to establish 3D geometric model of a SiC ceramic refractory with SiC high volume fraction particles more quickly than usual methods. The modified 3D Voronoi tessellation method generated Voronoi polyhedrons (VPs) limited in finite space perfectly. The proposed "precise shrinkage ratio method" achieved a precise volume fraction of SiC particles in the established microstructure model. The crack initiation and propagation under thermal shock were calculated by employing the extended finite element method (XFEM) on the established microstructure model. The results showed the failure mode on micro-scale clearly and efforts of interface strength on the failure mode were also explored. The proposed modeling method was especially suitable for establishing 3D microstructure models of ceramic composites or isotropic metal-ceramic particle composites with high volume fraction particles and extended the use of VPs.
机译:在该研究中,提出了一种有效的方法,以建立Si3N4粘结的SiC陶瓷耐火的3D微观结构模型,通过SiC高体积比颗粒,并基于既定的微观结构模型研究了热冲击下的失效机制。基于改进的3D Voronoi曲面细分方法和“精确收缩比法”的建模方法能够比通常的方法更快地建立SiC高容量分数颗粒的SiC陶瓷耐火的3D几何模型。修改的3D Voronoi曲面细分方法在有限空间完美地产生了Voronoi Polyhedrons(VPS)限制。所提出的“精确收缩比法”在建立的微观结构模型中实现了SiC颗粒的精确体积分数。通过在已建立的微结构模型上采用延长的有限元方法(XFEM)来计算热冲击下的裂纹启动和传播。结果表明,还探讨了微尺度的故障模式,并探讨了失效模式的界面强度的努力。所提出的建模方法特别适用于建立陶瓷复合材料的3D微观结构模型或具有大体积分数颗粒的各向同性金属 - 陶瓷颗粒复合材料,并延长了VPS的使用。

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