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Theoretical Prediction of Longitudinal Heat Conduction Effects on the Efficiency of the Heat Wheel Used for Ventilation in Powerhouse Building 'Kjorbo' in Norway

机译:纵向热传导对挪威电力室建筑“Kjorbo”通风效率的纵向导热效应的理论预测

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The present study investigates effects of longitudinal heat conduction (LHC) on the heat recovery effectiveness of the heat wheel in the Powerhouse building "Kjorbo". The effects LHC which are usually ignored in the heat wheel design play a relatively significant role in the heat wheel with high temperature efficiency and short depth in flow direction. The correlation developed by Shah, Kays and London is applied to predict the temperature efficiency and to investigate the impacts of the LHC. Good agreements have been observed between the theoretical predictions obtained from the correlation and experimental data collected from the field test at "Kjorbo". The influence of the depth of the heat wheel, the airflow rates on the LHC and temperature efficiency were analysed. It was found that the heat wheel has difficulty to achieve a high temperature efficiency (85%) due to the effects of LHC. There is an optimal depth design for heat wheel in the flow direction to recovery maximum thermal energy with low pressure loss with considering the LHC effects. The present study provides preliminary analysis to optimize the heat wheel design and operation with the LHC being taken into account.
机译:本研究研究了纵向热传导(LHC)对电力室建筑“KJORBO”的热轮的热回收效果的影响。在热轮设计中通常被忽略的效果LHC在热轮中具有高温效率和流动方向的短深度在热轮中起着相对显着的作用。 Shah,Kays和London开发的相关性应用于预测温度效率并研究LHC的影响。从“Kjorbo”的现场测试中收集的相关性和实验数据所获得的理论预测之间观察到了良好协议。分析了热轮的深度的影响,分析了LHC和温度效率的气流速率。发现,由于LHC的影响,热轮难以达到高温效率(85%)。在考虑LHC效果,在流动方向上有一个最佳深度设计,用于恢复最大热能,低压损失低压损失。本研究提供了初步分析,以优化热轮设计和使用LHC考虑的操作。

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