布基纳法索泡沫混凝土可居住单元内部大气平均温度的演变

A. Ouedraogo, Etienne Malbila, Dieudonné Dabilgou, Fati Oumarou Amadou, S. Ouédraogo, Salifou Ouedraogo, A. Messan, S. Kam, D. Bathiébo, F. Kiéno, P. Blanchart
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引用次数: 0

摘要

目的:能量域负责产生许多气体,液体和固体污染物,对气候变化有很大贡献。因此,向家庭提供生物气候生境是必要的,因为这将有助于减少能源消耗。这项工作包括研究用泡沫混凝土(FC)设计的栖息地的热行为,以评估其热性能,以改善其热舒适性,并将其平均内部温度与其他材料的温度进行比较。研究设计:使用COMSOL Multiphysics 5.3a软件开发的计算模型来模拟泡沫混凝土栖息地的热行为。使用的气象数据为2019年4月15日(4月15日为2019年一年中最热的一天)瓦加杜古4月(布基纳法索最热的月份)的气象数据。此外,研究了壁厚对平均内部温度的影响,使确定最佳厚度成为可能。然后进行了热相移、热幅值减小和阻尼系数的计算。结果:在瓦加杜古4月份的天气条件下获得的结果导致建筑物的平均内部温度约为304 K,壁厚为17.5 cm。热相位移为8小时,热幅值降低9°C或阻尼系数为8.6%。将泡沫混凝土的最高平均内部温度与水泥块、CEB、土坯、CLB的最高平均内部温度进行了比较,后者分别为311 K;309.2 k;309 k;308.5 k。结论:与煤渣砌块、CEB、土坯和CLB相比,泡沫混凝土建筑具有较低的平均内部温度。因此,这种材料可以提供更多的热舒适性,并可用于建造具有良好能源效率的栖息地。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evolution of the Average Temperature of the Interior Atmosphere of a Habitable Cell Made of Foamed Concrete in Burkina Faso
Aims: The energy domain is responsible for the production of many gaseous, liquid and solid pollutants, strongly contributing to climate change. The provision of bioclimatic habitats to households is therefore necessary since it will contribute to the reduction of energy consumption. This work consists in making a study of the thermal behavior of a habitat designed with foamed concrete (FC) in order to evaluate its thermal performance for the improvement of its thermal comfort and to compare its average internal temperature with those of other materials. Study Design: A calculation model developed under the COMSOL Multiphysics 5.3a software was used to simulate the thermal behavior of a foamed concrete habitat. The meteorological data used are those of Ouagadougou in the month of April (hottest month in Burkina Faso) on April 15, 2019 (with April 15, the hottest day of the year 2019) Methodology: The temperatures of each side of the walls were determined. Moreover, the study of the influence of the thickness of the walls on the average internal temperature made it possible to determine an optimal thickness. Then, the thermal phase shift, the thermal amplitude reduction and the damping factor were carried out. Results: The results obtained in the weather conditions of April in Ouagadougou, lead to an average internal temperature of the building of about 304 K, for a wall thickness of 17.5 cm. There is a thermal phase shift of 8 hours, and a reduction in thermal amplitude of 9°C or a damping factor of 8.6%. The maximum average internal temperature of the foamed concrete was compared with those of the cement block, the CEB, the adobe, the CLB which present respectively 311 K; 309.2K; 309K; 308.5K. Conclusion: A building constructed with foamed concrete has a low average internal temperature compared to cinderblock, CEB, adobe and CLB. Thus, this material makes it possible to provide more thermal comfort and can be used for the construction of habitats with good energy efficiency.
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