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Numerical Simulation of Thermal Conductivity of Foam Glass Based on the Steady-State Method

机译:基于稳态法的泡沫玻璃导热系数的数值模拟

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摘要

The effects of fly ash, sodium carbonate content, foaming temperature and foaming time on foam glass aperture sizes and their distribution were analyzed by the orthogonal experimental design. Results from the steady-state method showed a normal distribution of the number of apertures with change in average aperture, which ranges from 0.1 to 2.0 mm for more than 93% of apertures. For a given porosity, the thermal conductivity decreases with the increase of the aperture size. The apertures in the sample have obvious effects in blocking the heat flow transmission: heat flow is quickly diverted to both sides when encountered with the aperture. When the thickness of the sample is constant, the thermal resistance of the foam glass sample increases with increasing porosity, leading to better thermal insulation. Furthermore, our results suggest that the more evenly distributed and orderly arranged the apertures are in the foam glass material, the larger the thermal resistance of the material and hence, the better the thermal insulation.
机译:通过正交实验设计,分析了粉煤灰,碳酸钠含量,发泡温度和发泡时间对泡沫玻璃孔径的影响及其分布。稳态方法的结果显示,随着平均孔径的变化,孔径数量呈正态分布,对于93%以上的孔径,孔径范围为0.1到2.0 mm。对于给定的孔隙率,热导率随孔径尺寸的增加而降低。样品中的孔对阻止热流传输有明显的影响:遇到孔时,热流会迅速转移到两侧。当样品的厚度恒定时,泡沫玻璃样品的热阻随着孔隙率的增加而增加,从而导致更好的隔热性。此外,我们的结果表明,泡沫玻璃材料中的孔越均匀分布和排列,材料的热阻越大,因此隔热性越好。

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