Wang Junheng, Cheng Laifei, Ye Fang, Zhao Kai
Science and Technology on Thermostructural Composite Materials Laboratory, Northwestern Polytechnical University, Xi'an 710072, China.
ACS Appl Mater Interfaces. 2023 Oct 11;15(40):47405-47414. doi: 10.1021/acsami.3c09996. Epub 2023 Sep 28.
At present, the new generation of aircraft is developing in the direction of high speed, long endurance, high mobility, and repeatability. Some studies have shown that the surface temperature of the radome can reach even 1800 °C as the flight speed of the aircraft increases. However, the antenna inside the radome cannot serve at this temperature. Consequently, a thermal insulation system with electromagnetic wave-transparent ability and high-temperature resistance is urgently needed to protect the antenna from working normally. An aerogel material is known as "solid smoke," with the lowest density currently. Because of its high porosity (>90%) and the characteristics of nanopore size, its application in the field of thermal insulation always draws the attention of researchers. In this work, a novel amorphous/nanocrystalline boron nitride (BN) nanobelt aerogel was synthesized successfully. The BN aerogel shows lightweight (18 mg/cm), good thermal stability (1400 °C under an inert atmosphere and 750 °C under an air atmosphere), wideband wave-transparent performance (dielectric constant of 1.03 and dielectric loss of 0.016 at 4-18 GHz), and thermal insulation property (43 mW/(m·K) at room temperature and 73 mW/(m·K) at 600 °C). The BN aerogel is a suitable candidate as an electromagnetic wave-transparent thermal insulator and fire-resistant material. What is more, the structural stability of the BN aerogel is good (Young's modulus remains basically constant during the fatigue tests), and the energy loss coefficient (∼0.56) is high; it also has the potential to be a mechanical energy dissipative material. The study on the amorphous/nanocrystalline BN nanobelt aerogel provides a new idea for structure design and performance optimization of a high-temperature electromagnetic functional insulation material.
目前,新一代飞行器正朝着高速、长航时、高机动性和可重复性的方向发展。一些研究表明,随着飞行器飞行速度的增加,雷达罩表面温度甚至可达1800℃。然而,雷达罩内部的天线在这个温度下无法工作。因此,迫切需要一种具有电磁波透过能力和耐高温性能的隔热系统来保护天线正常工作。气凝胶材料被称为“固态烟雾”,是目前密度最低的材料。由于其高孔隙率(>90%)和纳米孔尺寸特性,其在隔热领域的应用一直备受研究人员关注。在这项工作中,成功合成了一种新型非晶/纳米晶氮化硼(BN)纳米带气凝胶。BN气凝胶具有轻质(18 mg/cm)、良好的热稳定性(惰性气氛下为1400℃,空气气氛下为750℃)、宽带波透过性能(4 - 18 GHz频段介电常数为1.03,介电损耗为0.016)以及隔热性能(室温下为43 mW/(m·K),600℃时为73 mW/(m·K))。BN气凝胶是一种适合作为电磁波透过隔热体和耐火材料的候选材料。此外,BN气凝胶的结构稳定性良好(疲劳试验期间杨氏模量基本保持不变),能量损耗系数较高(约0.56),它还有潜力成为一种机械能耗散材料。对非晶/纳米晶BN纳米带气凝胶的研究为高温电磁功能隔热材料的结构设计和性能优化提供了新思路。