دانلود مقاله ISI انگلیسی شماره 149371
ترجمه فارسی عنوان مقاله

ارزیابی عملکرد انتقال حرارت یک گیرنده حفره بزرگ در نیروگاه برج خورشیدی بر اساس عوامل زاویه

عنوان انگلیسی
Heat transfer performance evaluation of a large-size cavity receiver in the solar power tower plant based on angle factors
کد مقاله سال انتشار تعداد صفحات مقاله انگلیسی
149371 2017 9 صفحه PDF
منبع

Publisher : Elsevier - Science Direct (الزویر - ساینس دایرکت)

Journal : Solar Energy, Volume 148, 15 May 2017, Pages 78-86

ترجمه کلمات کلیدی
گیرنده حفره، مدل انتقال حرارت تابشی، عامل زاویه، بازده حرارتی،
کلمات کلیدی انگلیسی
Cavity receiver; Radiation heat transfer model; Angle factor; Thermal efficiency;
پیش نمایش مقاله
پیش نمایش مقاله  ارزیابی عملکرد انتقال حرارت یک گیرنده حفره بزرگ در نیروگاه برج خورشیدی بر اساس عوامل زاویه

چکیده انگلیسی

The thermal performance of a cavity receiver in the solar tower power plant crucially relies on the spatial relationship of its polyhedral geometric inner surfaces. So far, it has always been a focus to propose a model coupling the convection and radiation heat transfer for a large-size receiver. Based on the net energy exchange and thermal equilibrium principle, a radiation heat transfer model in terms of the angle factor equations of inner surfaces in the receiver was developed in this work. The finite difference method with an automatic mesh generation technique was employed to disperse the angle factor equations of inner surfaces in the receiver. Consequently, the thermal performance of the cavity receiver was evaluated while convection heat transfer between the receiver inner surfaces and ambient air was to consider with the available convection correlation. The results showed that the thermal efficiency of the cavity receiver increased with the increase of incident heat flux. When the width-depth ratio decreased, the cavity efficiency increased first and then decreased. With regard to different receiver structure parameters, the total heat loss of the receiver varied differently with the increase of the heat absorption area to the aperture area ratio. Meanwhile, the design of the cavity receiver structure in the MW solar power tower plant in Yanqing, Beijing was optimized according to the model proposed.