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首页> 外文期刊>International Journal of Heat and Mass Transfer >Prediction and optimization of radiative thermal properties of nano TiO_2 assembled fibrous insulations
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Prediction and optimization of radiative thermal properties of nano TiO_2 assembled fibrous insulations

机译:纳米TiO_2组装纤维绝缘材料辐射热性能的预测与优化。

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Nano titanium dioxide (TiO_2) with excellent capabilities of refraction and absorption has been acknowledged as an efficient enhancer of radiative thermal insulation performance of fibrous materials. Based on the layer-by-layer (LBL) assembling technique, nano TiO_2 was successfully assembled on the fibre surface of fibrous insulations to form nano TiO_2 assembled fibrous insulations. To obtain quantitative predictions of radiative thermal insulation enhancement of nano TIO_2 on fibrous insulations, numerical methods of radiative thermal properties were presented by combining the Rosseland equation, precise Mie theory and subtractive Kramers-Kronig relation. For validation purposes, we fabricated samples with different loading levels of nano TiO_2 and observed good agreement of radiative thermal conductivity between the measurements and our predictions. The fundamental parameters of the numerical method, including fibre diameter, loading level of nano TiO_2 and infrared transmittances, were experimentally measured through scanning electron microscopy (SEM), thermogravimetric (TG) analysis and Fourier transform infrared (FTIR) spectroscopy, respectively. The influence of loading nano TiO_2 was analysed, which presented an almost 43% reduction of the radiative thermal conductivity when the loading level of nano TiO_2 was 5.7 wt.%. The effect of fibre diameter on radiative thermal properties was also investigated to minimize the radiative thermal conductivity. A further 6% reduction of radiative thermal conductivity was predicted by optimizing the fibre diameter. The optimal fibre diameter was decreased from 1.7-2.0 μm for pure fibrous insulations to 0.9-1.0 urn for nano TiO_2 assembled fibrous insulations, which fell within the nanometre scale and could be implemented by using electrospinning technique in experiment. The methods of loading nano TiO_2 and optimizing the diameter of fibrous insulations demonstrated in this paper could serve as very useful references for enhancing radiative thermal performance and reducing heat loss in practical engineering applications.
机译:具有优异的折射和吸收能力的纳米二氧化钛(TiO_2)被公认为是纤维材料辐射隔热性能的有效增强剂。基于层层组装技术,成功地将纳米TiO_2组装在纤维绝缘体的纤维表面,形成了纳米TiO_2组装纤维绝缘体。为了获得纳米TIO_2在纤维绝热层上辐射绝热增强的定量预测,结合Rosseland方程,精确Mie理论和减法Kramers-Kronig关系,提出了辐射热性质的数值方法。为了进行验证,我们制作了具有不同纳米TiO_2负载量的样品,并观察到测量值与我们的预测之间的辐射热导率良好吻合。数值方法的基本参数,包括纤维直径,纳米TiO_2的负载量和红外透射率,分别通过扫描电子显微镜(SEM),热重(TG)分析和傅里叶变换红外(FTIR)光谱进行了实验测量。分析了纳米TiO_2负载量的影响,当纳米TiO_2负载量为5.7 wt。%时,辐射热导率降低了近43%。还研究了纤维直径对辐射热性能的影响,以最小化辐射热导率。通过优化纤维直径,预计辐射热导率会进一步降低6%。最佳纤维直径从纯纤维绝缘材料的1.7-2.0μm降低到纳米TiO_2组装纤维绝缘材料的0.9-1.0 um,该范围在纳米范围内,可以通过实验中的电纺丝技术实现。本文介绍的负载纳米TiO_2和优化纤维绝缘材料直径的方法可为在实际工程应用中增强辐射热性能和减少热损失提供非常有用的参考。

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