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首页> 外文期刊>Journal of the European Ceramic Society >Structural design and energy absorption mechanism of laminated SiC/BN ceramics
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Structural design and energy absorption mechanism of laminated SiC/BN ceramics

机译:层压SiC / BN陶瓷的结构设计和能量吸收机理

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The laminated silicon carbide/boron nitride (SiC/BN) ceramics with different structural designs were fabricated by pressureless sintering at 1900 degrees C for 1 h in argon flow. The alumina (Al2O3)-and yttrium(III) oxide (Y2O3) doped SiC ceramic exhibited a significant intergranular fracture behavior, which could be attributed to the yttrium aluminum garnet (YAG) phase located at the grains boundaries. The bending strength and fracture toughness were used to characterize the crack propagation including the delamination cracking, crack kinking, and crack deflection. The energy absorption in the process of crack propagation was characterized by the work of fracture (WOF) and damping capacity. The mode of crack propagation changed with the change in the structure and variation of BN content in the BN layer. The delamination cracks occurred inside the BN layer or at the interface between SiC and BN layers. The sample with a gradient structure exhibited the combination of delamination cracks occurring at the interface and inside the BN layer, which showed the maximum WOF of 2.43 KJ m(-2), bending strength of 300 MPa, and fracture toughness of 8.5 MPa m(1/2). The damping capacity varied with the change of the structure and the amplitude. The sample with a gradient structure exhibited the damping capacity of 0.088 and the maximum loss modulus of 9.758 GPa.
机译:通过在氩气流中以1900摄氏度的无压烧结,通过无线烧结制造具有不同结构设计的层压碳化硅/氮化硼(SiC / BN)陶瓷。氧化铝(Al 2 O 3) - 氧化钇(III)氧化物(Y2O3)掺杂的SiC陶瓷表现出显着的晶间骨折行为,其可归因于位于谷物边界的Yttrium铝石榴石(YAG)相。弯曲强度和断裂韧性用于表征包括分层裂化,裂纹扭结和裂纹偏转的裂缝繁殖。裂纹繁殖过程中的能量吸收特征在于裂缝(WOF)和阻尼能力的工作。随着BN层中BN含量的结构和变化的变化,裂纹传播模式改变。在BN层内或在SiC和BN层之间的界面内发生分层裂缝。具有梯度结构的样品表现出在界面处和BN层内发生的分层裂缝的组合,其显示出2.43kJ m(-2)的最大WOF,弯曲强度为300mPa,以及8.5MPa m的断裂韧性( 1/2)。阻尼容量随着结构的变化和幅度而变化。具有梯度结构的样品表现出0.088的阻尼能力和9.758GPa的最大损失模量。

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