دانلود مقاله ISI انگلیسی شماره 56942
ترجمه فارسی عنوان مقاله

بررسی ترمودینامیک یک سیستم انرژی خورشیدی یکپارچه روغن و نمک مذاب به عنوان مایعات انتقال حرارت

عنوان انگلیسی
Thermodynamics investigation of a solar power system integrated oil and molten salt as heat transfer fluids
کد مقاله سال انتشار تعداد صفحات مقاله انگلیسی
56942 2016 11 صفحه PDF
منبع

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

Journal : Applied Thermal Engineering, Volume 93, 25 January 2016, Pages 967–977

ترجمه کلمات کلیدی
سیستم برق خورشیدی از طریق سیستم پارابولیک، میدان دوگانه خورشیدی، انتقال حرارت انتقال، بررسی ترمودینامیک، طراحی غیر مجاز
کلمات کلیدی انگلیسی
Parabolic trough solar power system; Dual-solar field; Heat transfer fluid; Thermodynamics investigation; Off-design

چکیده انگلیسی

In this paper, a new parabolic trough solar power system that incorporates a dual-solar field with oil and molten salt as heat transfer fluids (HTFs) is proposed to effectively utilize the solar energy. The oil is chosen as a HTF in the low temperature solar field to heat the feeding water, and the high temperature solar field uses molten salt to superheat the steam that the temperature is higher than 773 K. The produced superheated steam enters a steam turbine to generate power. Energy analysis and exergy analysis of the system are implemented to evaluate the feasibility of the proposed system. Under considerations of variations of solar irradiation, the on-design and off-design thermodynamic performances of the system and the characteristics are investigated. The annual average solar-to-electric efficiency and the nominal efficiency under the given condition for the proposed solar thermal power generation system reach to 15.86% and 22.80%, which are higher than the reference system with a single HTF. The exergy losses within the solar heat transfer process of the proposed system are reduced by 7.8% and 45.23% compared with the solar power thermal systems using oil and molten salt as HTFs, respectively. The integrated approach with oil and molten salt as HTFs can make full use of the different physical properties of the HTFs, and optimize the heat transfer process between the HTFs and the water/steam. The exergy loss in the water evaporation and superheated process are reduced, the system efficiency and the economic performance are improved. The research findings provide a new approach for the improvement of the performances of solar thermal power plants.