Thermodynamic analysis of an organic rankine cycle using a tubular solar cavity receiver

被引:88
作者
Loni, R. [1 ]
Kasaeian, A. B. [2 ]
Mahian, O. [3 ]
Sahin, A. Z. [4 ]
机构
[1] Univ Mohaghegh Ardabili, Dept Mech Biosyst Engn, Ardebil, Iran
[2] Univ Tehran, Fac New Sci & Technol, Dept Renewable Energies, Tehran, Iran
[3] Islamic Azad Univ, Mashhad Branch, Young Researchers & Elite Club, Mashhad, Iran
[4] King Fahd Univ Petr & Minerals, Dept Mech Engn, Dhahran, Saudi Arabia
关键词
Thermodynamic analysis; Cavity receiver; Solar ORC; Thermal efficiency; Second law efficiency; THERMAL BRAYTON CYCLE; PERFORMANCE ANALYSIS; WORKING FLUIDS; DESIGN; SYSTEM; OPTIMIZATION; EFFICIENCY;
D O I
10.1016/j.enconman.2016.09.007
中图分类号
O414.1 [热力学];
学科分类号
摘要
In this study, a non-regenerative Organic Rankine Cycle (ORC) has been thermodynamically analyzed under superheated conditions, constant evaporator pressure of 2.5 MPa, and condenser temperature of 300 K. R113, R601, R11, R141b, Ethanol and Methanol were employed as the working fluid. A parabolic dish concentrator with a square prismatic tubular cavity receiver was used as the heat source of the ORC system. The effects of the tube diameter, the cavity depth, and the solar irradiation on the thermodynamic performance of the selected working fluid were investigated. Some thermodynamic parameters were analyzed in this study. These thermodynamic parameters included the thermal efficiency, second law efficiency, total irreversibility, availability ratio, mass flow rate, and net power output. The results showed that, among the selected working fluids, methanol had the highest thermal efficiency, net power output, second law efficiency, and availability ratio in the range of turbine inlet temperature (TIT) considered. On the other hand, methanol had the smallest total irreversibility in the same range of TIT. The results showed also that mass flow rate and consequently the net power output increased for higher solar irradiation, smaller tube diameter, and for the case of cubical cavity receiver (i.e. cavity depth h equal to the receiver aperture side length a). (C) 2016 Elsevier Ltd. All rights reserved.
引用
收藏
页码:494 / 503
页数:10
相关论文
共 31 条
[1]   Volumetric receivers in Solar Thermal Power Plants with Central Receiver System technology: A review [J].
Avila-Marin, Antonio L. .
SOLAR ENERGY, 2011, 85 (05) :891-910
[2]   Thermoeconomic Methodology for Analysis and Optimization of a Hybrid Solar Thermal Power Plant [J].
Baghernejad, A. ;
Yaghoubi, M. .
INTERNATIONAL JOURNAL OF GREEN ENERGY, 2013, 10 (06) :588-609
[3]   Solar-hybrid gas turbine-based power tower systems (REFOS) [J].
Buck, R ;
Bräuning, T ;
Denk, T ;
Pfänder, M ;
Schwarzbözl, P ;
Tellez, F .
JOURNAL OF SOLAR ENERGY ENGINEERING-TRANSACTIONS OF THE ASME, 2002, 124 (01) :2-9
[4]   Design and simulation of a prototype of a small-scale solar CHP system based on evacuated flat-plate solar collectors and Organic Rankine Cycle [J].
Calise, Francesco ;
d'Accadia, Massimo Dentice ;
Vicidomini, Maria ;
Scarpellino, Marco .
ENERGY CONVERSION AND MANAGEMENT, 2015, 90 :347-363
[5]  
Cengel Y, 2013, THERMODYNAMICS ENG A, Vseventh
[6]   Analysis of two heat storage integrations for an Organic Rankine Cycle Parabolic trough solar power plant [J].
Chacartegui, R. ;
Vigna, Leo ;
Becerra, J. A. ;
Verda, V. .
ENERGY CONVERSION AND MANAGEMENT, 2016, 125 :353-367
[7]   Potential use of photovoltaic-integrated solar heat pump system in Hong Kong [J].
Chow, T. T. ;
Fong, K. F. ;
Pei, G. ;
Ji, J. ;
He, M. .
APPLIED THERMAL ENGINEERING, 2010, 30 (8-9) :1066-1072
[8]  
Davidson T.A., 1977, Design and Analysis of a 1 KW Rankine Power Cycle Employing a Multi-Vane Expander, for Use With Low Temperature Solar Collector
[9]   Analysis and optimization of the low-temperature solar organic Rankine cycle (ORC) [J].
Delgado-Torres, Agustin M. ;
Garcia-Rodriguez, Lourdes .
ENERGY CONVERSION AND MANAGEMENT, 2010, 51 (12) :2846-2856
[10]  
Gunther Michael J., 2012, ADV CSP TEACHING MAT, P1