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具有增强抗氧化性和拉伸强度的柔性硅酸铝纤维织物上的高发射率双层ZrB改性涂层

High-Emissivity Double-Layer ZrB-Modified Coating on Flexible Aluminum Silicate Fiber Fabric with Enhanced Oxidation Resistance and Tensile Strength.

作者信息

Li Wei, Zhang Xueying, Yan Liwen, Guo Anran, Du Haiyan, Liu Jiachen

机构信息

Key Laboratory of Advanced Ceramics and Machining Technology of Ministry of Education, School of Materials Science and Engineering, Tianjin University, Tianjin 300072, China.

出版信息

Materials (Basel). 2024 Jul 1;17(13):3234. doi: 10.3390/ma17133234.

Abstract

Fibers crystallize and become brittle at high temperatures for a long time, so the surface coating must maintain long-lasting emission performance, which requires superior antioxidant properties of the high-emissivity fillers. To improve the radiation performance of the coating and the tensile strength of the fiber fabric, a double-layer coating with high emissivity was prepared on the surface of flexible aluminum silicate fiber fabric (ASFF) using MoSi and SiC as emissive agents. The incorporation of borosilicate glass into the outer coating during high-temperature oxidation of ZrB results in superior encapsulation of emitter particles, effectively filling the pores of the coating and significantly reducing the oxidation rate of MoSi and SiC. Furthermore, the addition of an intermediate ZrO layer enhances the fiber bundle's toughness. The obtained double-coated ASFF exhibits an exceptionally high tensile strength of 57.6 MPa and a high bond strength of 156.2 kPa. After being subjected to a 3 h heating process, the emissivity exhibits a minimal decrease of only 0.032, while still maintaining a high value above 0.9. The thermal insulation composites, consisting of a flexible ASFF matrix and a ZrB-modified double-layer coating, exhibit significant potential for broad applications in the field of thermal protection.

摘要

纤维在高温下长时间会结晶并变脆,因此表面涂层必须保持持久的发射性能,这就要求高发射率填料具有优异的抗氧化性能。为了提高涂层的辐射性能和纤维织物的拉伸强度,以MoSi和SiC作为发射剂,在柔性硅酸铝纤维织物(ASFF)表面制备了具有高发射率的双层涂层。在ZrB高温氧化过程中,将硼硅酸盐玻璃加入到外层涂层中,可使发射体颗粒得到优异的包覆,有效填充涂层孔隙,并显著降低MoSi和SiC的氧化速率。此外,添加中间ZrO层可增强纤维束的韧性。所制备的双层涂层ASFF表现出57.6 MPa的超高拉伸强度和156.2 kPa的高粘结强度。经过3小时的加热过程后,发射率仅出现极小的下降,降幅仅为0.032,同时仍保持高于0.9的高值。由柔性ASFF基体和ZrB改性双层涂层组成的隔热复合材料在热防护领域具有广阔的应用潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6990/11242511/76b842f8e661/materials-17-03234-g001.jpg

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