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Super-strong materials for temperatures exceeding 2000 °C

机译:温度超过2000 C的超强材料

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摘要

Ceramics based on group IV-V transition metal borides and carbides possess melting points above 3000 °C, are ablation resistant and are, therefore, candidates for the design of components of next generation space vehicles, rocket nozzle inserts, and nose cones or leading edges for hypersonic aerospace vehicles. As such, they will have to bear high thermo-mechanical loads, which makes strength at high temperature of great importance. While testing of these materials above 2000 °C is necessary to prove their capabilities at anticipated operating temperatures, literature reports are quite limited. Reported strength values for zirconium diboride (ZrB2) ceramics can exceed 1 GPa at room temperature, but these values rapidly decrease, with all previously reported strengths being less than 340 MPa at 1500 °C or above. Here, we show how the strength of ZrB2 ceramics can be increased to more than 800 MPa at temperatures in the range of 1500–2100 °C. These exceptional strengths are due to a core-shell microstructure, which leads to in-situ toughening and sub-grain refinement at elevated temperatures. Our findings promise to open a new avenue to designing materials that are super-strong at ultra-high temperatures.
机译:基于IV-V族过渡金属硼化物和碳化物的陶瓷具有高于3000 C的熔点,具有抗烧蚀性,因此是下一代航天器,火箭喷嘴插件,前锥体或前缘部件设计的候选对象用于高超音速航空航天器。这样,它们将不得不承受高的热机械负荷,这使得在高温下的强度非常重要。虽然必须在2000°C以上的温度下对这些材料进行测试以证明其在预期的工作温度下的能力,但文献报道却十分有限。报告的二硼化锆(ZrB2)陶瓷的强度值在室温下可以超过1 GPa,但是这些值会迅速降低,以前报告的所有强度在1500 C或更高时都小于340 MPa。在这里,我们展示了如何在1500–2100°C的温度下将ZrB2陶瓷的强度提高到800 MPa以上。这些出色的强度归因于核壳结构,从而导致在高温下原位增韧和亚晶粒细化。我们的发现有望为设计在超高温下超坚固的材料开辟一条新途径。

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