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Preparation of ultrafine flexible alumina fiber for heat insulation by the electrospinning method

机译:静电纺丝法制备超细柔性氧化铝隔热纤维

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? 2022 Elsevier Ltd and Techna Group S.r.l.In this work, aluminum isopropoxide is used as the aluminum source, and acetylacetone (Hacac) is used as the ligand to synthesize a precursor, which can be used to prepare ultrafine Al2O3 fibers. Fiber with excellent flexibility is obtained by electrospinning and subsequent heat treatment processes. The uniform diameter of the fiber is approximately 300–400 nm, and it has a compact structure and no surface defects, such as cracks and holes, the lack of which can prevent it from being damaged in the process of flexible behavior, such as folding in half. By analyzing the crystallization transformation process of the Al2O3 precursor fibers, it is found that the precursor begins to transform from amorphous to γ-Al2O3 at approximately 700 °C. After heat treatment at 1000 °C, it completely changed to α-Al2O3, which is 100–200 °C lower than the results reported in previous literature. Even after heat treatment at 1200 °C, the fiber still has good flexibility, which ensures its functional performance. In addition, the thermal conductivity of the prepared Al2O3 fibers was only 0.318 W/m·K at 1000 °C, which can be used as a thermal insulation material in aerospace, high-temperature industries and other fields.
机译:?2022 Elsevier Ltd 和 Techna Group S.r.l.In 这项工作,以异丙醇铝为铝源,以乙酰丙酮(Hacac)为配体合成前驱体,可用于制备超细Al2O3纤维。通过静电纺丝和随后的热处理工艺获得具有优异柔韧性的纤维。纤维的均匀直径约为300-400nm,结构致密,无裂纹、孔洞等表面缺陷,无裂纹、孔洞等可防止其在柔性行为过程中损坏,如对折。通过分析Al2O3原丝纤维的结晶转化过程,发现在700°C左右,原丝开始由无定形转变为γ-Al2O3。 在1000°C热处理后,它完全变为α-Al2O3,比以前的文献报道的结果低100-200°C。即使在1200°C下进行热处理后,纤维仍具有良好的柔韧性,保证了其功能性能。此外,制备的Al2O3纤维在1000 °C时的导热系数仅为0.318 W/m·K,可作为航空航天、高温工业等领域的隔热材料。

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