Hypocrystalline ceramic aerogels for thermal insulation at extreme conditions
Гипокристаллические керамические аэрогели для теплоизоляции в экстремальных условиях
2022-06-29
SCID: 54.1/9vzurpmh
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high-temperature thermal conductivityhypocrystalline zircon aerogelsnanofibrous aerogelsthermal insulationthermomechanical stability
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Abstract (AI)
Abstract Thermal insulation under extreme conditions requires materials that can withstand complex thermomechanical stress and retain excellent thermal insulation properties at temperatures exceeding 1,000 degrees Celsius 1–3 . Ceramic aerogels are attractive thermal insulating materials; however, at very high temperatures, they often show considerably increased thermal conductivity and limited thermomechanical stability that can lead to catastrophic failure 4–6 . Here we report a multiscale design of hypocrystalline zircon nanofibrous aerogels with a zig-zag architecture that leads to exceptional thermomechanical stability and ultralow thermal conductivity at high temperatures. The aerogels show a near-zero Poisson’s ratio (3.3 × 10 −4 ) and a near-zero thermal expansion coefficient (1.2 × 10 −7 per degree Celsius), which ensures excellent structural flexibility and thermomechanical properties. They show high thermal stability with ultralow strength degradation (less than 1 per cent) after sharp thermal shocks, and a high working temperature (up to 1,300 degrees Celsius). By deliberately entrapping residue carbon species in the constituent hypocrystalline zircon fibres, we substantially reduce the thermal radiation heat transfer and achieve one of the lowest high-temperature thermal conductivities among ceramic aerogels so far—104 milliwatts per metre per kelvin at 1,000 degrees Celsius. The combined thermomechanical and thermal insulating properties offer an attractive material system for robust thermal insulation under extreme conditions.
Key Findings
1
A multiscale zig-zag architecture produces hypocrystalline zircon nanofibrous aerogels with exceptional thermomechanical stability at extreme temperatures.
2
Entrapped residual carbon in the zircon fibres suppresses thermal radiation, yielding a thermal conductivity of 104 mW m−1 K−1 at 1,000 °C.
3
The aerogels exhibit a near-zero Poisson’s ratio of 3.3 × 10−4 and thermal expansion coefficient of 1.2 × 10−7 °C−1.
4
The combination of ultralow high-temperature thermal conductivity and thermomechanical robustness enables ceramic aerogels for extreme-condition insulation.
5
They retain structural integrity after sharp thermal shocks, showing less than 1% strength degradation and operating temperatures up to 1,300 °C.
Research Object
Hypocrystalline zircon nanofibrous aerogels with a zig-zag architecture
Research Subject
Thermomechanical stability and high-temperature thermal-insulation performance, including thermal conductivity, thermal expansion, Poisson’s ratio, thermal-shock resistance and working-temperature limits
Publication Details
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2022-06-29
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