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Ultra-High Temperature Ceramics (UHTCs) via Reactive Sintering

机译:超高温陶瓷(UHTCS)通过反应性烧结

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Current high temperature ceramics, such as ZrO_2, Si_3N_4 and SiC, cannot be used at temperatures over 1600°C due to their low melting temperature or dissociation temperature. For ultra-high temperature applications over 1800°C, materials with high melting points, high phase composition stability, high thermal conductivity, good thermal shock and oxidation resistance are needed. The transition metal diborides, mainly include ZrB_2 and HfB_2, have melting temperatures of above 3000°C, and can basically meet the above demands. However, the oxidation resistance of diboride monolithic ceramics at ultra-high temperatures need to be improved for the applications in thermal protection systems for future aerospace vehicles and jet engines. On the other hand, processing science for making high performance UHTCs is another hot topic in the UHTC field. Densification of UHTCs at mild temperatures through reactive sintering is an attracting way due to the chemically stable phase composition and microstructure as well as clean grain boundaries in the obtained materials. Moreover, the stability studies of the materials in phase composition and microstructures at ultra high application temperatures is also critical for materials manufactured at relatively low temperature. Furthermore, the oxidation resistance in simulated reentry environments instead of in static or flowing air of ambient pressure should be evaluated. Here we will report the concept, advantages and some recent progress on the reactive sintering of diboride-based composites at mild temperatures.
机译:由于其低熔点温度或离解温度,目前的高温陶瓷,例如ZrO_2,Si_3N_4和SiC,不能在超过1600℃的温度下使用。对于超过1800°C超过1800℃的超高温应用,需要具有高熔点的材料,高相模型稳定性,高导热率,良好的热冲击和抗氧化性。过渡金属二硼化物主要包括ZrB_2和HFB_2,具有高于3000℃的熔化温度,并且可以基本上满足上述要求。然而,对于未来航空航天和喷气发动机的热保护系统中的应用,需要改善二硼化物整体陶瓷在超高温下的抗氧化性。另一方面,用于制作高性能UHTC的处理科学是UHTC字段中的另一个热门话题。通过反应性烧结在温和温度下的UHTC的致密化是由于化学稳定的相组合物和微观结构以及所得材料中的清洁晶界的吸引方式。此外,在超高施加温度下的相组合物和微观结构中材料的稳定性研究对于在相对低温下制造的材料也是关键的。此外,应评估模拟再入环境中的抗氧化性而不是在环境压力的静态或流动空气中。在这里,我们将报告在温和温度下二硼化物基复合材料的反应性烧结的概念,优势和一些进展。

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