Contribution of the Provençal Well for the Improvement of the Thermal Comfort in the Building in Turbulent Regime

K. N’wuitcha, Ouro-Djobo Essoavana Samah, Yendouban Kolani, M. Banna, B. Zeghmati
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Abstract

In the current energy context, geothermal systems are highly developed in the building field. Among these interesting systems on the energy plan, one finds in particular the earth-to-air heat  exchanger commonly called ‘Canadian or Provençal well’. It consists of tubes buried in which the ambient air is pushed in order to be refreshed in contact with the ground whose temperature is quasi-constant throughout the year. In this work, a study of the performance of an earth-to-air heat exchanger was undertaken by means of numerical modeling of heat exchange by forced convection in a buried tube. The transfer equations in the tube are discretized using the finite volume method in turbulent regime and solved using the Thomas algorithm. For the determination of the ground temperature, the model of the semi-infinite mass subjected to a periodic excitation was adopted. The soil temperature was used as a boundary condition for the buried tube. The results show that the interest of the earth-to-air heat exchanger is major, since it improves throughout the year, the thermal conditions sought. It intervenes in an effective way on the damping of the thermal amplitudes in the building. The variation of the diameter and the length of earth-to-air heat exchanger does not influence notably the distribution of the streamlines and isotherms but affect significantly the values of stream function and temperature inside de tube of the earth-to-air heat exchanger. When diameter of the pipe increases, the outlet temperature increases. The increase of the length of the earth-to-air heat exchanger leads to the isotherms increase as a result of the intensification of heat exchange between the walls and the convective jet. The temperature in the air outlet compartment is lower as the length of the earth-to-air exchanger increases.
紊流条件下provenal井对改善建筑热舒适性的贡献
在当前的能源环境下,地热系统在建筑领域得到了高度发展。在能源计划上的这些有趣的系统中,人们特别发现了通常被称为“加拿大或普罗旺斯帕尔井”的地对空热交换器。它由埋在地下的管道组成,在这些管道中,周围的空气被推动,以便与全年温度近乎恒定的地面接触时得到更新。在这项工作中,通过地埋管强制对流换热的数值模拟,对地空换热器的性能进行了研究。在紊流状态下,采用有限体积法对管内传递方程进行离散,并采用Thomas算法进行求解。为了确定地温,采用了周期激励下的半无限质量模型。土温作为地埋管的边界条件。结果表明,地空热交换器的利益是主要的,因为它全年改善,热条件所寻求的。它以一种有效的方式干预了建筑中热振幅的阻尼。地空换热器直径和长度的变化对流线和等温线的分布没有显著影响,但对地空换热器的流函数值和管内温度有显著影响。当管径增大时,出口温度升高。地-空气换热器长度的增加导致壁面与对流射流之间的热交换加剧,从而导致等温线的增加。随着地-空气交换器长度的增加,出风口室内的温度降低。
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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