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A semi-analytical solution to estimate an effective thermal conductivity of the two-phase building materials with spherical inclusions

机译:一种半分析解决方案,以估算具有球形夹杂物的两相建筑材料的有效导热率

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摘要

In the present work, two dimensional (2D) and three dimensional (3D) semi-analytical models are proposed to estimate an effective thermal conductivity of two-phase building materials with spherical inclusions. The proposed semi-analytical approach is based on the formulation and the solution of a boundary value problem. Further, the solution is coupled with Maxwell's methodology to estimate effective thermal conductivity. The 2D model is simple and limited in scope while the 3D model is widely applicable and is based on a multipole expansion method. The 3D model incorporates secondary parameters like size distribution, variation in thermal conductivity among the inclusions, particle interaction and statistical spatial distribution. For the 3D model, spherical representative unit cells (SRUC) based on the face-centred cubic arrangement and trimmed spheres at the boundary are proposed. Effective thermal conductivity estimated by the proposed models is compared and validated with experimental results from the literature. The 2D model predicts the thermal conductivity of conventional concrete with reasonable accuracy where the relative error is less than ±12%. The 3D model predicts accurate results for foam concrete with a relative error of less than ±15%. Predictions of thermal conductivity of lightweight concrete by the 3D model are also in good agreement with experimental results. Finally, the comparison of proposed models with models from literature has shown that the incorporation of particle interaction has improved the accuracy of the solution. Thus, the flexibility with SRUC and incorporation of particle interactions make this 3D model widely applicable for building materials with spherical inclusions.
机译:在本作工作中,提出了二维(2D)和三维(3D)半分析模型来估计具有球形夹杂物的两相建筑材料的有效导热率。所提出的半分析方法基于边值问题的配方和解决方案。此外,解决方案与Maxwell的方法耦合以估计有效的导热率。 2D模型的范围简单且有限,而3D模型广泛适用,基于多极扩展方法。 3D模型包含次要参数,如尺寸分布,夹杂物,颗粒相互作用和统计空间分布之间的导热率的变化。对于3D模型,提出了基于面为中心的立方布置和在边界处修剪球的球形代表单元电池(SRUC)。将所提出的模型估计的有效导热率进行比较和验证文献的实验结果。 2D模型以合理的准确度预测传统混凝土的导热率,其中相对误差小于±12%。 3D模型预测泡沫混凝土的准确结果,相对误差小于±15%。 3D模型的轻质混凝土热导率的预测也与实验结果一致。最后,从文献中的模型的提出模型的比较表明,颗粒相互作用的掺入具有改善了解决方案的准确性。因此,具有SRUC的灵活性和颗粒相互作用的掺入使得该3D模型广泛适用于用球形夹杂物建造材料。

著录项

  • 来源
    《Heat and mass transfer》 |2020年第12期|3209-3227|共19页
  • 作者

    Prajakta Patil; K. S. Reddy;

  • 作者单位

    Heat Transfer and Thermal Power Laboratory Department of Mechanical Engineering Indian Institute of Technology Madras Chennai 600036 India;

    Heat Transfer and Thermal Power Laboratory Department of Mechanical Engineering Indian Institute of Technology Madras Chennai 600036 India;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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