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An adjusted temperature wall function for turbulent forced convective heat transfer for bluff bodies in the atmospheric boundary layer

机译:调节后的温度壁函数,用于大气边界层中钝体的湍流强迫对流换热

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摘要

Accurate convective heat transfer predictions are required in building engineering and environmental studies on urban heat islands, building energy performance, building-envelope durability or conservation and (natural) ventilation of buildings. When applying computational fluid dynamics (CFD) for these computationally-expensive studies at high-Reynolds numbers, wall functions are mostly used to model the boundary-layer region. In this study, an adjustment to the standard temperature wall function is proposed for forced convective heat transfer at surfaces of typical wall-mounted bluff bodies in turbulent boundary layers, such as the atmospheric boundary layer, at moderate to high Reynolds numbers. The methodology to determine this customised temperature wall function (CWF) from validated numerical data of CFD simulations using low-Reynolds number modelling (LRNM) is explained, where a logarithmic-law behaviour is found. The performance of this CWF is evaluated for several bluff-body configurations. Standard wall functions (SWFs) yield deviations of about 40% for the convective heat transfer coefficient, compared to LRNM. With the CWF however, these deviations are reduced to about 10% or lower. The CWF therefore combines increased (wall-function) accuracy for convective heat transfer predictions with the typical advantage of wall functions compared to LRNM, being a lower grid resolution in the near-wall region, which increases computational economy and facilitates grid generation. Furthermore, this CWF can be easily implemented in existing CFD codes, and is implemented in the commercial CFD code Fluent in this study.
机译:在对城市热岛的建筑工程和环境研究,建筑能源性能,建筑围护结构耐久性或建筑物的养护和(自然)通风方面,需要准确的对流传热预测。在高雷诺数下将计算流体动力学(CFD)应用到这些计算昂贵的研究中时,壁函数通常用于对边界层区域进行建模。在这项研究中,建议对标准温度壁函数进行调整,以在中等到高雷诺数的湍流边界层(例如大气边界层)中的典型壁挂式钝体表面上进行强制对流换热。解释了使用低雷诺数模型(LRNM)从CFD模拟的经过验证的数值数据中确定此定制温度壁函数(CWF)的方法,在该方法中找到了对数律行为。此CWF的性能是针对几种钝体配置进行评估的。与LRNM相比,对流换热系数的标准墙函数(SWF)产生约40%的偏差。但是,使用CWF时,这些偏差减小到大约10%或更小。因此,CWF将对流传热预测的提高的(墙函数)精度与墙函数相比LRNM具有墙函数的典型优势相结合,在近墙区域具有较低的网格分辨率,这增加了计算经济性并促进了网格生成。此外,此CWF可以轻松地在现有CFD代码中实现,并且在本研究中可以在商业CFD代码Fluent中实现。

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  • 来源
    《Building and Environment》 |2011年第11期|p.2130-2141|共12页
  • 作者单位

    Division of Mechatronics, Biostatistics and Sensors, Department of Biosystems, Katholieke Universiteit Leuven, Willem de Croylaan 42, 3001 Heverlee, Belgium,Laboratory of Building Physics, Department of Civil Engineering, Katholieke Universiteit Leuven, Kasteelpark Arenberg 40, 3001 Heverlee, Belgium;

    Building Physics and Systems, Eindhoven University of Technology, P.O. Box 513, 5600 Eindhoven, The Netherlands;

    Chair of Building Physics, Swiss Federal Institute of Technology Zurich (ETHZ), Wolfgang-Pauli-Strasse (5, 8093 Zurich, Switzerland,Laboratory for Building Science and Technology, Swiss Federal Laboratories for Materials Testing and Research (Empa), Uberlandstrasse 129, 8600 Diibendorf, Switzerland;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    wall function; computational fluid dynamics; rans; convective heat transfer coefficient; cube; urban heat transfer;

    机译:墙函数;计算流体力学;兰斯;对流传热系数;立方体;城市传热;

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