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Thermal shock behavior of nano-sized ZrN particulate reinforced AlON composites

机译:纳米ZrN颗粒增强AlON复合材料的热冲击行为。

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Aluminum oxynitride (AlON) has been considered as a potential ceramic material for high-performance structural and advanced refractory applications owing to its excellent stability and mechanical properties such as high rigidity and good chemical stability. Thermal shock resistance is a major concern and an important performance index of refractories and high-temperature ceramics. While zirconium nitride (ZrN) particles have been proven to improve mechanical properties of AlON ceramic, the thermal shock behavior has not been evaluated yet. The aim of this investigation was to identify the thermal shock resistance and underlying mechanisms of hot-pressed 2.7% ZrN—AlON composites by a water-quenching technique over a temperature range between 225 °C and 275 °C. The residual strength and Young's modulus after thermal shock decreased with increasing temperature range and thermal shock times due to large temperature gradients and thermal stresses caused by abrupt water-quenching. The presence of nano-sized ZrN particles exhibited a positive effect on the improvement of both residual strength and critical temperature difference of AlON ceramic due to the toughening effects, the higher thermal conductivity of ZrN, the refined grain size and the reduction of porosity. Different toughening mechanisms including crack deflection, crack bridging and crack branching were observed during thermal shock experiments, thus effectively enhancing the crack initiation and propagation resistance and leading to a considerable improvement in thermal shock resistance in the ZrN-AlON composites.
机译:氧氮化铝(AlON)由于其优异的稳定性和机械性能(例如高刚性和良好的化学稳定性)而被认为是用于高性能结构和高级耐火材料应用的潜在陶瓷材料。耐热冲击性是耐火材料和高温陶瓷的主要关注点和重要性能指标。尽管已证明氮化锆(ZrN)颗粒可改善AlON陶瓷的机械性能,但尚未评估其热冲击行为。这项研究的目的是通过水淬技术在225°C和275°C之间的温度范围内,确定热压2.7%ZrN-AlON复合材料的耐热冲击性和潜在机理。热冲击后的残余强度和杨氏模量随着温度范围和热冲击时间的增加而降低,这是由于突然骤冷导致的大温度梯度和热应力所致。纳米ZrN颗粒的存在由于其增韧作用,ZrN的较高导热系数,细化的晶粒尺寸和孔隙率的降低,对改善AlON陶瓷的残余强度和临界温差均显示出积极的作用。在热冲击实验中观察到了不同的增韧机理,包括裂纹挠度,裂纹桥接和裂纹分支,从而有效地增强了裂纹的萌生和扩展阻力,并导致ZrN-AlON复合材料的耐热冲击性有了显着提高。

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