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Evaporative cooling by water spray systems: CFD simulation, experimental validation and sensitivity analysis

机译:喷水系统的蒸发冷却:CFD模拟,实验验证和灵敏度分析

摘要

Evaporative cooling by water spray is increasingly used as an efficient and environmentally-friendly approach to enhance thermal comfort in built environments. The complex two-phase flow in a water spray system is influenced by many factors such as continuous phase velocity, temperature and relative humidity patterns, droplet characteristics and continuous phase-droplet and droplet-droplet interactions.Computational Fluid Dynamics (CFD) can be a valuable tool for assessing the potential and performance of evaporative cooling by water spray systems in outdoor and indoor urban environments. This paper presents a systematic evaluation of the Lagrangian-Eulerian approach for evaporativecooling provided by the use of a water spray system with a hollow-cone nozzle configuration. The evaluation is based on grid-sensitivity analysis and validated using wind-tunnel measurements. This paper also presents a sensitivity analysis focused on the impact of the turbulence model for the continuous phase, the drag coefficient model, the number of particle streams for the discrete phase and the nozzle spray angle. The results show that CFD simulation of evaporation by the Lagrangian-Eulerian (3D steady RANS) approach, in spite of its limitations, can accurately predict the evaporationprocess, with local deviations from the wind-tunnel measurements within 10% for dry bulb temperature, 5% for wet bulb temperature and 7% for the specific enthalpy. The average deviations for all three variables are less than 3% in absolute values. The results of this paper are intended to support future CFD studies of evaporative cooling by water spray systems in outdoor and indoor urban environments.
机译:通过喷水的蒸发冷却越来越多地被用作一种有效且环保的方法,以增强建筑环境中的热舒适性。喷水系统中复杂的两相流受许多因素的影响,例如连续相速度,温度和相对湿度模式,液滴特性以及连续相-液滴和液滴-液滴的相互作用。评估室外和室内城市环境中喷水系统蒸发冷却的潜力和性能的有价值的工具。本文介绍了通过使用带有空心锥形喷嘴配置的喷水系统提供的蒸发冷却的拉格朗日-欧拉方法的系统评估。该评估基于电网敏感性分析,并使用风洞测量进行了验证。本文还提出了一种敏感性分析,重点针对连续相的湍流模型,阻力系数模型,离散相的颗粒流数量和喷嘴喷雾角度的影响。结果表明,尽管有局限性,但通过Lagrangian-Eulerian(3D稳定RANS)方法进行的CFD蒸发模拟可以准确地预测蒸发过程,对于干球温度,风洞测量的局部偏差在10%以内5, %为湿球温度,7%为比焓。这三个变量的平均偏差绝对值均小于3%。本文的结果旨在支持将来在室外和室内城市环境中使用喷水系统进行蒸发冷却的CFD研究。

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