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A simple simulation method for designing fibrous insulation materials

机译:设计纤维绝缘材料的简单模拟方法

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摘要

Conductive heat in a fibrous material travels through both the air (interstitial fluid) and the fibers (solid phase). The numerical simulations reported in this paper are devised to study the effective thermal conductivity of fibrous media with different microstructural parameters. Simulations were conducted in 3-D fibrous geometries resembling the microstructure of a fibrous material. Assuming that the heat transfer through the interstitial fluid is independent of the geometrical parameters of the solid phase (for when the porosity is held constant), the energy equation was solved only for the solid structures, and the resulting values were used to predict the effective thermal conductivity of the whole media. This treatment allows us to drastically reduce the computational cost of such simulations. The results indicate that heat conduction through the solid fibrous structure increases by increasing the material's solid volume fraction, fiber diameter, and fibers' through-plane orientations. The in-plane orientation of the fibers, on the other hand, did not show any significant influence on the material's conductivity. It was also shown that the microstructural parameters of fibrous insulations have negligible influence on the material's performance if the conductivity of the solid phase is close to that of the interstitial fluid.
机译:纤维材料中的传导热穿过空气(间隙流体)和纤维(固相)。本文报道的数值模拟旨在研究具有不同微结构参数的纤维介质的有效导热系数。在类似于纤维材料微观结构的3-D纤维几何形状中进行了模拟。假设通过间隙流体的传热与固相的几何参数无关(对于孔隙率保持恒定的情况),则仅对固体结构求解了能量方程,并将所得值用于预测有效结构。整个介质的热导率。这种处理方式使我们能够大大降低此类模拟的计算成本。结果表明,通过增加材料的固体体积分数,纤维直径和纤维通过平面的方向,增加了通过固体纤维结构的热传导。另一方面,纤维的面内取向对材料的电导率没有显着影响。还表明,如果固相的电导率接近间隙流体的电导率,则纤维绝缘体的微观结构参数对材料性能的影响可以忽略不计。

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