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Theoretical and experimental evaluation of the radiative properties of a dispersed particulate medium.

机译:分散颗粒介质辐射特性的理论和实验评估。

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Recent research on construction materials has shown that depending on the pigment system used to impart color, a significant temperature rise may occur due to absorption of solar radiation. Heat buildup of polymeric materials used in these applications often leads to dimensional stability failures of the parts while in service. Recent studies have suggested that the heat buildup of these materials may be significantly reduced by the incorporation of scattering particles.; Scattering particles of two material compositions, and three particle size and volume percent ranges were added to a pigmented polymeric material. The change in diffuse reflectance due to the addition of these particles was experimentally determined using an Integrating Sphere Spectrophotometer. In addition, the resulting change in temperature rise due to the incorporation of the particles was determined using ASTM D4803. The radiative heat transfer was then modeled using a Mie Scattering Fortran program for the particles of smallest size (1–20 um) and Large Sphere Scattering theory was applied for particles of largest size (88–106 um). The theoretical diffuse reflectance and temperature rise changes were calculated and compared to the experimental results.; The scattering particles were found to alter the diffuse reflectance of the material, depending on the refractive index, volume percent, and particle size combination. For the Mie Scattering case, greater values of relative refractive index and smaller particle sizes provided higher values of diffuse reflectance and lower temperatures. Similarly, for Large Specularly reflecting spheres, higher values of diffuse reflectance and lower temperatures were found for spheres with a higher refractive index. However, Large Diffusely reflecting spheres provide lower diffuse reflectance values and higher temperatures. In addition, it was found that the theoretical model correlated well with the experimentally measured values and accurately predicted increases in diffuse reflectance and drops in temperature. Thus, the model may be effectively used to design dark colored polymeric materials with reduced heat buildup properties.
机译:对建筑材料的最新研究表明,取决于用于赋予颜色的颜料体系,由于吸收太阳辐射,温度可能会显着升高。在这些应用中使用的聚合材料的热量积聚通常会导致零件在使用中的尺寸稳定性失效。最近的研究表明,通过掺入散射颗粒可以显着降低这些材料的热量积聚。将两种材料组成的散射颗粒以及三个粒度和体积百分比范围的散射颗粒添加到有色聚合物材料中。使用积分球分光光度计通过实验确定了由于添加了这些颗粒而导致的漫反射率变化。另外,使用ASTM D4803测定了由于引入颗粒而导致的温度上升的变化。然后使用Mie散射Fortran程序对最小尺寸(1–20 um)的粒子进行辐射传热建模,并针对最大尺寸(88–106 um)的粒子应用大球散射理论。计算了理论的漫反射率和温升变化,并与实验结果进行了比较。发现散射粒子会改变材料的漫反射率,具体取决于折射率,体积百分比和粒度组合。对于Mie散射情况,相对折射率的值较大,而粒径较小,则漫反射率值较高,而温度较低。类似地,对于大镜面反射球,对于折射率较高的球,发现其漫反射值较高,而温度较低。但是,大的漫反射球提供较低的漫反射率值和较高的温度。此外,还发现理论模型与实验测量值具有很好的相关性,并且可以准确地预测漫反射率的增加和温度的下降。因此,该模型可以有效地用于设计具有降低的热积累特性的深色聚合物材料。

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