Design and analytical investigation on air-to-air cross flow heat exchanger of an industrial heat recovery ventilation system

Ş. Güngör, Emre Taş
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Abstract

Energy consumption based on the building heating, ventilation, and air-conditioning (HVAC) systems is sharply rising daily. At this point, heat recovery ventilation systems save energy while contributing to indoor air quality and thermal comfort. This work mainly focuses on designing the air-to-air cross-flow heat exchanger system and duct lines. First, the ducts, bends, vents, and heat recovery ventilation unit are placed around the selected domain complying with the ASHRAE 55 and 62.1 standards. The requirements on temperature levels of the cold and hot streams, air flow rates, number of vents, velocity at the supply air vent outlets are considered. Then, calculations are conducted for the cross-flow air-to-air heat exchanger to determine the number of layers, heat transfer surface areas, flow regime, and heat transfer rate. Thermal calculations of the recuperator system are initially performed by effectiveness-number of transfer unit (ϵ-NTU) method as the outlet temperatures are not known at the beginning of the design. In addition, the findings are compared and validated via logarithmic mean temperature difference methodology. The results show that the fresh air temperature can increase from 5 °C to 13.32 °C when the exhaust air temperature is at 26 °C in winter. Furthermore, the heat transfer rate of air-to-air heat exchanger system is analytically calculated as 1806.7 W and 1807.5 W via ϵ-NTU and logarithmic mean temperature difference (LMTD) methods, respectively.
某工业热回收通风系统空气-空气交叉流换热器的设计与分析研究
建筑暖通空调(HVAC)系统的能耗日益增加。在这一点上,热回收通风系统节省能源,同时有助于室内空气质量和热舒适。本文主要对空气-空气交叉流换热器系统和管道进行了设计。首先,在符合ASHRAE 55和62.1标准的选定区域周围放置管道、弯道、通风口和热回收通风装置。考虑了冷热流的温度水平、空气流速、通风口数量和送风出口的速度要求。然后,对横流式空气-空气换热器进行计算,确定层数、传热表面积、流态和传热速率。由于在设计之初不知道出口温度,因此最初采用效率-传递单元数(ϵ-NTU)方法进行热计算。此外,通过对数平均温差方法对研究结果进行了比较和验证。结果表明:冬季排风温度为26℃时,新风温度可从5℃升高到13.32℃;通过ϵ-NTU和对数平均温差(LMTD)法分别解析计算出空气-空气换热系统的换热速率为1806.7 W和1807.5 W。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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