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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Numerical analysis of heat and energy recovery ventilators performance based on CFD for detailed design
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Numerical analysis of heat and energy recovery ventilators performance based on CFD for detailed design

机译:基于CFD的热能回收通风机性能数值分析,详细设计

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摘要

This paper presents a detailed numerical analysis of heat and membrane-based energy recovery ventilators (HRV/ERV), using computational fluid dynamics (CFD). The CFD model includes conjugate heat and mass transfer mechanisms for laminar flow to investigate the thermal performance of these systems. Both co-current and counter flow designs were investigated under typical summer/winter Canadian conditions. The model was validated with data obtained from the open literature. It was then applied to investigate the effect of a wide range of parameters on ventilators sensible and latent effectivenesses. The numerical results confirmed the superior effectiveness of counter flow over the co-current flow. The results showed a decrease in the HRV/ERV effectiveness with the increase in supply/exhaust air velocity. The ERV effectiveness in the summer was found to be higher than the winter. The effectiveness decreased noticeably and slowly with the increase in membrane spacing and thickness. The latent effectiveness increased significantly with the diffusivity of water in the membrane. The results also indicated that the outdoor temperature and humidity had only minor effects on HRV or ERV performance. CFD simulations proved to be an effective approach for detailed design of HRVs/ERVs.
机译:本文使用计算流体力学(CFD)进行了基于热和膜的能量回收呼吸机(HRV / ERV)的详细数值分析。 CFD模型包括层流的共轭传热和传质机制,以研究这些系统的热性能。在加拿大典型的夏季/冬季条件下,对顺流和逆流设计进行了研究。该模型已使用从公开文献中获得的数据进行了验证。然后将其用于研究各种参数对呼吸机的显着和潜在效果的影响。数值结果证实了逆流效果优于并流效果。结果表明,HRV / ERV效果随着供/送风速度的增加而降低。发现夏季的ERV效果高于冬季。随着膜间距和厚度的增加,效力显着且缓慢地降低。随着膜中水的扩散,潜在效力显着增加。结果还表明,室外温度和湿度对HRV或ERV的性能影响很小。 CFD仿真被证明是对HRV / ERV进行详细设计的有效方法。

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