基于实验结果的机械通风房间和建筑物CFD模型标定方法

A. Casado, Magdalena Hajdukiewicz, F. S. D. L. Flor, Enrique Ángel Rodríguez Jara
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引用次数: 2

摘要

本章从实验结果出发,描述了一种建立和校准具有强制对流和自然对流组合的建筑物三维外壳计算流体动力学(CFD)模型的方法。通过室内空气温度的物理测试测量验证了模型的有效性。开发的CFD模型包括一个内部壁挂式空调(HVAC)分体式单元的模型。本文提出的方法旨在从实验数据中选择正确的网格尺寸和合适的边界条件。实验活动在一栋教育大楼的一间空办公室里进行。在暖通空调机组风机转速和暖通空调机组对面壁面温度两个主要变量的不同边界条件下进行了一组实验。所建立的CFD模型采用标准的k- ε湍流模型和SIMPLE算法。感兴趣的变量是室内空气温度及其在内部环境中的分布。该方法的应用取得了满意的结果,CFD模型与实验结果的最大误差为9%。其他研究人员可以使用该方法在现有房间中校准CFD模型,然后进行温度分布、舒适性和能源需求分析的详细研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Calibration Methodology for CFD Models of Rooms and Buildings with Mechanical Ventilation from Experimental Results
This chapter describes a methodology for the development and calibration of computational fluid dynamics (CFD) models of three-dimensional enclosures for buildings with combined forced and natural convection from experimental result. The models were validated with physical test measurements of room air temperature. The developed CFD models included a model of an internal wall-mounted air conditioning (HVAC) split unit. The methodology proposed here aims at selecting the correct grid size and the appropriate boundary conditions from experimental data. The experimental campaign took place in an empty office room within an educational building. A set of experiments was performed with varying boundary conditions of two main variables, the fan speed of the HVAC unit and the surface wall temperature of the opposite wall to the HVAC unit. The developed CFD models used the standard k- ε turbulence model and the SIMPLE algorithm. The variable of interest was the room air temperature and its distribution within the internal environment. The application of the methodology has shown satisfactory results, finding a maximum error of 9% between the CFD model and the experimental result. This methodology can be used by other researchers to calibrate CFD models in existing rooms and then carry out detailed studies of temperature distribution, comfort and energy demand analysis.
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