Souifi Haïfa, Bouslimani Yassine, Ghribi Mohsen, Colin Serge
Electrical Engineering Department, University of Moncton, NB, Canada.
ClairiTech Innovations Inc, Boudreau-Ouest, NB, Canada.
MethodsX. 2021 Jan 26;8:101253. doi: 10.1016/j.mex.2021.101253. eCollection 2021.
With the current leaning towards finding effective solutions to maintain a good indoor air quality (IAQ) inside houses and buildings and to simultaneously reduce the energy consumption, air-to-air exchangers with heat/energy recovery have emerged as one of the promising technologies to provide a healthy and comfortable indoor environment. To deeply evaluate these systems performances, the present investigation focuses on modeling a combined ERV-HRV exchanger using the effectiveness-NTU ( ) method. To this end, a detailed mathematical model introducing heat and mass exchange mechanisms was developed and applied to predict the system energy recovery efficiency. To assess its suitability, the developed model was validated and compared to real measurements which carried out under the Atlantic Canada weather. The comparison findings disclosed that the developed model can predict the system performance with a maximum relative discrepancy less than 10%. • The detailed mathematical model including heat and mass exchange mechanisms was clearly developed using the approach in order to carefully predict the dual-core system performance in terms of sensible and latent recovery potential. • The developed model was validated against real data to evaluate its suitability and accuracy. Obtained results show that it could be satisfactory for predicting the dual-core system performances. • The approach adopted in this study could be a convenient method for modeling single or/and dual-core air-to-air heat/energy recovery systems.
随着当前倾向于寻找有效的解决方案来维持房屋和建筑物内良好的室内空气质量(IAQ)并同时降低能源消耗,具有热/能量回收功能的空气对空气交换器已成为提供健康舒适室内环境的有前途的技术之一。为了深入评估这些系统的性能,本研究重点使用效能-传热单元数(ε-NTU)方法对组合式全热回收器-显热回收器(ERV-HRV)交换器进行建模。为此,开发了一个引入热质交换机制的详细数学模型,并将其应用于预测系统的能量回收效率。为了评估其适用性,对所开发的模型进行了验证,并与在加拿大大西洋地区天气条件下进行的实际测量结果进行了比较。比较结果表明,所开发的模型能够以最大相对偏差小于10%的精度预测系统性能。
• 使用ε-NTU方法清晰地开发了包含热质交换机制的详细数学模型,以便在显热和潜热回收潜力方面精确预测双核系统的性能。
• 针对实际数据对所开发的模型进行了验证,以评估其适用性和准确性。获得的结果表明,它在预测双核系统性能方面可能是令人满意的。
• 本研究采用的ε-NTU方法可能是对单核或/和双核空气对空气热/能量回收系统进行建模的便捷方法。