Sustainable Buildings and Cities | |
Solar air heating system: design and dynamic simulation | |
土木建筑工程 | |
Bououd, M.^1 ; Hachchadi, O.^1 ; Janusevicius, K.^2 ; Martinaitis, V.^2 ; Mechaqrane, A.^1 | |
Sidi Mohamed Ben Abdellah University, Electrical Engineering Department, Faculty of Sciences and Technology, Renewable Energies and Intelligent Systems Laboratory, BP 2202, Fez, Morocco^1 | |
Laboratory of Building Energy and Microclimate Systems, Faculty of Environmental Engineering, Vilnius Gediminas Technical University, Sauletekio al.11, Vilnius, Lithuania^2 | |
关键词: Heating system; Renewable energy systems; Simulation environment; Solar air heating system; Solar collector areas; Tertiary building; Total energy consumption; Vacuum tube collectors; | |
Others : https://iopscience.iop.org/article/10.1088/1757-899X/353/1/012004/pdf DOI : 10.1088/1757-899X/353/1/012004 |
|
学科分类:土木及结构工程学 | |
来源: IOP | |
【 摘 要 】
The building sector is one of the big energy consumers in Morocco, accounting for about 23% of the country's total energy consumption. Regarding the population growth, the modern lifestyle requiring more comfort and the increase of the use rate of electronic devices, the energy consumption will continue to increase in the future. In this context, the introduction of renewable energy systems, along with energy efficiency, is becoming a key factor in reducing the energy bill of buildings. This study focuses on the design and dynamic simulation of an air heating system for the mean categories of the tertiary sector where the area exceeds 750 m3. Heating system has been designed via a dynamic simulation environment (TRNSYS) to estimate the produced temperature and airflow rate by one system consisting of three essential components: vacuum tube solar collector, storage tank and water-to-air finned heat exchanger. The performances estimation of this system allows us to evaluate its capacity to meet the heating requirements in Ifrane city based on the prescriptive approach according to the Moroccan Thermal Regulation. The simulation results show that in order to maintain a comfort temperature of 20°C in a building of 750m3, the places requires a thermal powers of approximately 21 kW, 29 kW and 32 kW, respectively, for hotels, hospitals, administrative and public-school. The heat generation is ensured by a solar collector areas of 5 m2, 7 m2 and 10 m2, respectively, for hotels, hospitals, administrative and public-school spaces, a storage tank of 2 m3 and a finned heat exchanger with 24 tubes. The finned tube bundles have been modelled and integrated into the system design via a Matlab code. The heating temperature is adjusted via two controllers to ensure a constant air temperature of 20°C during the heating periods.
【 预 览 】
Files | Size | Format | View |
---|---|---|---|
Solar air heating system: design and dynamic simulation | 1075KB | download |