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Dynamic modelling of a wind catcher/tower turret for natural ventilation

机译:自然通风的集水器/塔楼塔架的动态建模

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摘要

This paper discusses experimental and theoretical investigations and Computational Fluid Dynamics (CFD) modelling considerations to evaluate the performance of a square section wind catcher system connected to the top of a test room for the purpose of natural ventilation. The magnitude and distribution of pressure coefficients (C_p) around a wind catcher and the air flow into the test room were analysed. The modelling results indicated that air was supplied into the test room through the wind catcher's quadrants with positive external pressure coefficients and extracted out of the test room through quadrants with negative pressure coefficients. The air flow achieved through the wind catcher depends on the speed and direction of the wind. The results obtained using the explicit and AIDA implicit calculation procedures and CFX code correlate relatively well with the experimental results at lower wind speeds and with wind incidents at an angle of 0°. Variation in the C_p and air flow results were observed particularly with a wind direction of 45°. The explicit and implicit calculation procedures were found to be quick and easy to use in obtaining results whereas the wind tunnel tests were more expensive in terms of effort, cost and time. CFD codes are developing rapidly and are widely available especially with the decreasing prices of computer hardware. However, results obtained using CFD codes must be considered with care, particularly in the absence of empirical data. Practical application: There exist various modelling techniques for the investigation of the performance of natural systems such as wind catchers. These modelling techniques include simple calculation procedures, wind tunnel testing, salt bath, Computational Fluid Dynamics (CFD) and real building performance (POE studies). The calculation procedural models are simple to use, however, due to their simplicity they do not provide a full picture of the performance of the natural ventilation system and air movement inside rooms. Other models such as wind tunnels and CFD are more comprehensive but expensive and time consuming to use. Various commercial CFD models are available in the market today and not many of them are specifically designed for modelling of natural ventilation. Results obtained using CFD models should be considered with care specially in the absence of empirical data and if the results were obtained by novice users. Wind catchers are innovative techniques for the application of natural ventilation in buildings in temperate climates such as that of the UK. Their performance greatly depends on wind conditions.However, they should be designed as an integral part of the overall design of the HVAC system in a hybrid or mixed mode operation. The natural ventilation system of wind catchers should be exploied whenever pooible, particularly the hot summer months to reduce the enery and environmental cost of full operation of an air-conditioning system.
机译:本文讨论了实验和理论研究以及计算流体动力学(CFD)建模考虑因素,以评估连接到测试室顶部以自然通风为目的的方形截面集气系统的性能。分析了集尘器周围的压力系数(C_p)的大小和分布以及空气流入测试室的情况。建模结果表明,空气通过外部压力系数为正的捕风器象限输入测试室,并通过压力系数为负的象限从测试室中抽出。通过集气器获得的气流取决于风的速度和方向。使用显式和AIDA隐式计算程序以及CFX代码获得的结果与较低风速下的实验结果和0°角的风入射具有相对较好的相关性。尤其在风向为45°时,观察到了C_p和气流结果的变化。发现显式和隐式计算程序可快速简便地获取结果,而风洞测试的工作量,成本和时间则更为昂贵。 CFD代码发展迅速,并且随着计算机硬件价格的下降而得到广泛应用。但是,必须谨慎考虑使用CFD代码获得的结果,尤其是在缺乏经验数据的情况下。实际应用:存在各种用于研究自然系统(例如捕风器)性能的建模技术。这些建模技术包括简单的计算程序,风洞测试,盐浴,计算流体力学(CFD)和实际建筑性能(POE研究)。计算程序模型易于使用,但是由于其简单性,它们无法提供自然通风系统性能和室内空气流动的完整信息。其他模型(例如风洞和CFD)更全面,但使用起来昂贵且费时。今天,市场上有各种商用CFD模型可供使用,但其中许多模型不是专门为自然通风建模而设计的。在没有经验数据的情况下,如果结果是由新手用户获得的,则应特别谨慎地考虑使用CFD模型获得的结果。捕风器是在英国等温带气候下将自然通风应用于建筑物的创新技术。它们的性能在很大程度上取决于风力条件,但是在混合或混合模式下,它们应被设计为HVAC系统总体设计的组成部分。如有可能,应充分利用捕风器的自然通风系统,特别是在炎热的夏季,以减少空调系统全面运行的能源消耗和环境成本。

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