Numerical Simulation and Experimental Study of Natural Convection Flow in a Test Bench for Solar Air Heaters

IF 0.8 Q3 ENGINEERING, MULTIDISCIPLINARY International Journal of Engineering Research in Africa Pub Date : 2022-03-15 DOI:10.4028/p-muwal6
B. Bakri, Hani Benguesmia, A. Ketata, Slah Diriss, Z. Driss
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Abstract

This paper is intended to check the thermal convection flow during a new solar air heater (SAH) test bench, which is conducted in the LASEM laboratory. In fact, the applied system includes two-passage heater solar air separated by an absorber. On the other hand, a glass piece is connected to the box prototype via a pipe. Then, the piece of the glass is attached to the front side of this device in which an absorber is inserted. Moreover, two circular holes are made on the same face of the box prototype. The first is an entry hole through which hot air goes inside, and an exit hole through which air is released into the surrounding area. The study was conducted using the Navier-Stokes equations associated with the k–ω turbulence model through the use of the newly released Ansys 17.0 software to characterize the aero-thermal structure of our new system operating in natural convection. In these conditions, it has been observed that the hot zone created on the mirror side receiving the solar radiation generates an ascendant movement. It goes from the bottom to the top and enters the box prototype. The same phenomenon is also created in the box where the airflow coming from the solar heat escapes into the environment. This movement created between the hot zone of the solar heat and the box prototype is also imposed in the cold zone of the solar heat on the heat-insulating side. In these conditions, the air movement is however from the top to the bottom. Indeed, the acceleration of the air velocity at the inlet of the solar heat is due to the change of the section which is more reduced by comparison to the rest of the air circulation duct. Based on our experimental results generated in a two-passage solar air heater connected to the box prototype, the computational approach and the simulation results were validated. By referring to the classic solar air heater with one passage, the energy efficiency measured in the same conditions was enhanced and presented the efficient one with an improvement of about 27%. Finally, the numerical results are compared to our experimental results and those obtained by the authors. The comparison proved a good agreement.
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太阳能空气加热器试验台内自然对流流动的数值模拟与实验研究
本文对在LASEM实验室安装的新型太阳能空气加热器(SAH)试验台的热对流流动进行了研究。实际上,应用的系统包括由吸收器分开的双通道加热器太阳能空气。另一方面,玻璃片通过管道连接到盒子原型上。然后,这块玻璃被连接到这个装置的前面,其中插入了一个吸收器。此外,在箱体原型的同一面上做了两个圆孔。第一个是入口孔,热空气通过这个孔进入内部,还有一个出口孔,空气通过这个孔被释放到周围区域。本研究采用与k -ω湍流模型相关的Navier-Stokes方程,利用新发布的Ansys 17.0软件对新系统在自然对流中运行的气动热结构进行表征。在这些条件下,已经观察到,在接受太阳辐射的镜面一侧产生的热区产生上升运动。它从底部到顶部进入盒子原型。同样的现象也在盒子里产生,来自太阳热量的气流逃逸到环境中。这种在太阳热的热区和盒子原型之间产生的运动也被施加在隔热侧的太阳热的冷区。在这种情况下,空气运动是从顶部到底部的。事实上,太阳热量入口的空气速度的加速是由于与空气循环管道的其余部分相比更少的部分的变化。基于与箱式样机相连的双通道太阳能空气加热器的实验结果,验证了计算方法和仿真结果。参考经典的单通道太阳能空气加热器,在相同条件下的能效测量得到提高,能效提高约27%。最后,将数值计算结果与我们的实验结果和作者的计算结果进行了比较。这种比较证明是很一致的。
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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来源期刊
CiteScore
1.80
自引率
14.30%
发文量
62
期刊介绍: "International Journal of Engineering Research in Africa" is a peer-reviewed journal which is devoted to the publication of original scientific articles on research and development of engineering systems carried out in Africa and worldwide. We publish stand-alone papers by individual authors. The articles should be related to theoretical research or be based on practical study. Articles which are not from Africa should have the potential of contributing to its progress and development.
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