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三种侧面粗糙化太阳能空气加热器的性能分析:初步研究

Performance Analysis of Three Side Roughened Solar Air Heater: A Preliminary Investigation.

作者信息

Behura Aruna Kumar, Mohanty Chinmaya Prasad, Singh Manas Ranjan, Kumar Ashwini, Linul Emanoil, Rajak Dipen Kumar

机构信息

School of Mechanical Engineering, Vellore Institute of Technology, Vellore 632014, TN, India.

Department of Mechanical Engineering, Silicon Institute of Technology, Bhubaneswar 751024, OD, India.

出版信息

Materials (Basel). 2022 Mar 30;15(7):2541. doi: 10.3390/ma15072541.

Abstract

In recent years, sunlight has been used in several fields such as photovoltaic cells, flat plate collectors, solar cookers, green buildings, and agricultural applications. Improved thermal performance has been seen which comes of three sides absorber plate with glass cover compared to the traditional one. This paper presents the Nusselt (Nu) number, collector efficiency factor (CEF), and collector heat removal factor (CHRF) for the optimal solution of three sides artificially roughened solar air heater. Five input variables such as Reynolds (Re) number, relative roughness pitch, relative roughness height, mass flow rate, and air temperature of the duct are taken into account for improved efficiency optimization of collector, collector heat removal factor, and Nu number. Technique for order of preference by similarity to ideal solution (TOPSIS) technique is used to identify the best alternative amongst a number of performance measures by converting them into an equivalent single variable. Moreover, the results revealed the high accuracy of the CEF, CHRF, and Nu number of 75-80%, 74-78%, and 63-71%, respectively. Meanwhile, it has been also observed that roughness Re number varies between 12,500 and 13,500, and height of relative roughness is 0.0245, including pitch of relative roughness 10 along with the rate of mass flow is 0.041 kg/s.

摘要

近年来,阳光已被应用于多个领域,如光伏电池、平板集热器、太阳能炊具、绿色建筑和农业应用等。与传统的相比,带有玻璃盖的三面吸热板在热性能方面有了改善。本文给出了三面人工粗糙化太阳能空气加热器最优解的努塞尔数(Nu)、集热器效率因子(CEF)和集热器热去除因子(CHRF)。为了提高集热器的效率优化、集热器热去除因子和努塞尔数,考虑了五个输入变量,如雷诺数(Re)、相对粗糙度间距、相对粗糙度高度、质量流率和管道内空气温度。采用理想解相似排序法(TOPSIS),通过将多个性能指标转换为一个等效单变量,来确定最佳方案。此外,结果显示CEF、CHRF和Nu数的高精度分别为75 - 80%、74 - 78%和63 - 71%。同时,还观察到粗糙度雷诺数在12500至13500之间变化,相对粗糙度高度为0.0245,相对粗糙度间距为10,质量流率为0.041 kg/s。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f0cf/8999575/03c8c19b9162/materials-15-02541-g001.jpg

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