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Moisture dependent thermal properties of hydrophilic mineral wool: application of the effective media theory

机译:亲水性矿棉的水分依赖性热性能:有效介质理论的应用

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Thermal properties of mineral wool based materials appear to be of particular importance for their practical applications because the majority of them is used in the form of thermal insulation boards. Every catalogue list of any material producer of mineral wool contains thermal conductivity, sometimes also specific heat capacity, but they give only single characteristic values for dry state of material mostly. Exposure to outside climate or any other environment containing moisture can negatively affect the thermal insulation properties of mineral wool. Nevertheless, the mineral wool materials due to their climatic loading and their environmental exposure contain moisture that can negatively affect their thermal insulation properties. Because the presence of water in mineral wool material is undesirable for the majority of applications, many products are provided with hydrophobic substances. Hydrophilic additives are seldom used in mineral wool products. However, this kind of materials has a good potential for application for instance in interior thermal insulation systems, masonry desalination, green roofs, etc. For these materials, certain moisture content must be estimated and thus their thermal properties will be different than for the dry state. On this account, moisture dependent thermal properties of hydrophilic mineral wool (HMW) are studied in a wide range of moisture content using a pulse technique. The experimentally determined thermal conductivity data is analysed using several homogenization formulas based on the effective media theory. In terms of homogenization, a porous material is considered as a mixture of two or three phases. In case of dry state, material consists from solid and gaseous phase. When moistened, liquid phase is also present. Mineral wool consists of the solid phase represented by basalt fibers, the liquid phase by water and the gaseous phase by air. At first, the homogenization techniques are applied for the calculation of solid matrix thermal conductivity. Subsequently, the thermal conductivity dependence on moisture content is evaluated by means of several mixing formulas. To verify the obtained results, Wiener’s and Hashin-Shtrikman’s bounds are used. The results show that the application of homogenization techniques can provide useful estimates of measured data and can be successfully used for much less time consuming thermal conductivity evaluation even for the highly inhomogeneous fibrous material such as mineral wool. The data on thermal properties can find use in building practice, especially in the design of thermal insulation building envelopes.
机译:矿棉基材料的热性能对于其实际应用似乎尤为重要,因为它们中的大多数以绝热板的形式使用。任何矿棉生产商的每个目录列表都包含热导率,有时还包含比热容,但是大多数情况下,它们仅给出材料干燥状态的单个特征值。暴露于外部气候或任何其他含水分的环境可能会对矿棉的隔热性能产生负面影响。然而,矿棉材料由于其气候负荷和环境暴露而包含的水分会负面影响其隔热性能。因为对于大多数应用而言,矿棉材料中不存在水,所以许多产品都带有疏水性物质。亲水性添加剂很少用于矿棉产品中。但是,这类材料在室内绝热系统,砖石脱盐,屋顶绿化等方面具有良好的应用潜力。对于这些材料,必须估算一定的水分含量,因此其热性能将不同于干燥的材料。州。因此,使用脉冲技术在很宽的水分含量范围内研究了亲水性矿棉(HMW)的水分依赖性热性能。基于有效介质理论,使用几种均化公式分析了实验确定的导热系数数据。就均质而言,多孔材料被认为是两相或三相的混合物。在干燥状态下,材料由固相和气相组成。当润湿时,也存在液相。矿棉由以玄武岩纤维为代表的固相,由水组成的液相和由空气组成的气相组成。首先,将均质技术应用于固体基质导热系数的计算。随后,借助几个混合公式评估导热系数对水分含量的依赖性。为了验证所获得的结果,使用了维纳(Wiener)和Hashin-Shtrikman的边界。结果表明,均质化技术的应用可以为测量数据提供有用的估计,并且即使对于高度不均匀的纤维材料(例如矿棉),也可以成功地用于耗时少得多的导热系数评估。有关热性能的数据可在建筑实践中使用,特别是在隔热建筑围护结构的设计中。

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