Shi Jianwei, Boyer Germain, Mourzenko Valeri, Thovert Jean-François
Institut P', CNRS-Université de Poitiers-ISAE-ENSMA, 11 bd Marie et Pierre Curie, TSA 41123, CEDEX 09, 86073 Poitiers, France.
Institut de Radioprotection et de Sûreté Nucléaire (IRSN), PSN-RES/SA2I/LIE, Cadarache, 13115 St Paul Lez Durance, France.
Materials (Basel). 2020 Nov 20;13(22):5258. doi: 10.3390/ma13225258.
Reliable predictions from numerical simulations in fire safety applications require knowledge of the combustible materials' properties in their initial and thermally degraded states. The thermal conductivity of the sheath material of electrical cables, present in massive amounts in industrial plants, is addressed here. An evolutive conceptual model is proposed for the morphology of this intumescent polymer composite during its thermal degradation. It accounts for the multiscale structure and anisotropy observed during a thorough characterization based on tomographic images of samples at representative stages of the degradation. The evolution of the geometrical characteristics during the process is linked to chemical advancement parameters according to a reasoned scenario based on physical arguments and balance considerations. The anisotropic thermal conductivity tensor can be deduced from the geometry by a nested application of classical models. Ultimately, the conductivity is obtained as an analytic function of the chemical advancement and temperature. The model predictions were validated by comparisons with direct numerical solutions of thermal problems in the fully described geometry provided by the tomographies, and with measurements from the literature. The methodology and conceptual tools can be of interest for the treatment of other materials and in other contexts of application.
在消防安全应用中,要从数值模拟获得可靠的预测结果,就需要了解可燃材料在初始状态和热降解状态下的特性。本文探讨了工业厂房中大量存在的电缆护套材料的热导率。针对这种膨胀型聚合物复合材料在热降解过程中的形态,提出了一个演化概念模型。该模型考虑了在基于降解代表性阶段样品的断层图像进行全面表征过程中观察到的多尺度结构和各向异性。根据基于物理论据和平衡考虑的合理设想,该过程中几何特征的演变与化学进展参数相关联。通过经典模型的嵌套应用,可以从几何结构推导出各向异性热导率张量。最终,电导率作为化学进展和温度的解析函数得出。通过与断层扫描提供的完整描述几何结构中的热问题直接数值解进行比较,以及与文献中的测量结果进行比较,对模型预测进行了验证。该方法和概念工具可能对处理其他材料以及其他应用场景具有参考价值。