Modified vacuum tubes for overheating limitation of solar collectors: A dynamical modeling approach

被引:14
作者
Juanico, Luis E. [1 ,2 ]
机构
[1] Consejo Nacl Invest Cient & Tecn, Inst Andino Patagon Tecnol Biol & Geoambientales, RA-8400 San Carlos De Bariloche, Rio Negro, Argentina
[2] Natl Univ Comahue, RA-8400 San Carlos De Bariloche, Rio Negro, Argentina
关键词
Thermal-solar modeling; Dynamical modeling; Vacuum-tube solar collectors; Solar collector overheating; THERMAL PERFORMANCE; STORAGE;
D O I
10.1016/j.solener.2018.07.021
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
In this paper are presented two designs of vacuum tubes designed to avoid the overheating of solar collectors. As we discuss, this behavior must be studied by considering the collector's nonlinear dynamic, which is numerically studied by developing a solar-thermal modeling based on a fourth-order approximation for the efficiency function. In this way, the two main heat-losses mechanisms involved can be simulated and so, two kinds of modified vacuum tubes are studied: (a) by increasing its heat convection coefficient and (b) by increasing its infrared emissivity. Therefore, we have calculated their modified efficiencies in order to get a non-overheating collector, in which the maximum design temperature is always kept below 111 degrees C (for water-in-glass tubes) or 131 degrees C (for heat-pipe tubes). Then, we have studied the performance of these collectors when they work on low temperatures, showing that the first design of modified vacuum tubes (increasing the convection heat losses) penalizes the collector's performance up to 26%, meanwhile the second design (increasing the infrared heat losses) does not change the collector's performance. Therefore, a new collector based on these tubes could improve its performance on cloudy days by using a greater number of vacuum tubes. In this way, we found that by using 50 standard tubes (instead of 20 tubes) a solar collector based on a 200-I water tank could satisfy the daily household demand of hot water (200 kg@45 degrees C) even during cloudy days.
引用
收藏
页码:804 / 810
页数:7
相关论文
共 17 条
[1]  
[Anonymous], 2017, HOMEPOWER MAGAZINE
[2]  
Bergman T.L., 2011, Introduction to Heat Transfer, DOI DOI 10.1016/J.APPLTHERMALENG.2011.03.022
[3]   Comparative field experimental investigations of different flat plate solar collectors [J].
Chen, Guangming ;
Doroshenko, Alexander ;
Koltun, Paul ;
Shestopalov, Kostyantyn .
SOLAR ENERGY, 2015, 115 :577-588
[4]   Numerical and experimental analysis of convection heat transfer in passive solar heating room with greenhouse and heat storage [J].
Chen, W ;
Liu, W .
SOLAR ENERGY, 2004, 76 (05) :623-633
[5]   Thermal performance of a solar cooker integrated vacuum-tube collector with heat pipes containing different refrigerants [J].
Esen, M .
SOLAR ENERGY, 2004, 76 (06) :751-757
[6]  
ESTIF (European Solar Thermal Industry Federation), 2006, AD SPREADSH JE NIELS
[7]  
Frank E., 2015, IEA SOLAR HEATING CO, V49
[8]   Full thermal-hydraulic and solar modeling to study low-cost solar collectors based on a single long LDPE hose [J].
Juanico, Luis E. ;
Di Lalla, Nicolas ;
Gonzalez, Alejandro D. .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2017, 73 :187-195
[9]   Predictive Power of Machine Learning for Optimizing Solar Water Heater Performance: The Potential Application of High-Throughput Screening [J].
Li, Hao ;
Liu, Zhijian ;
Liu, Kejun ;
Zhang, Zhien .
INTERNATIONAL JOURNAL OF PHOTOENERGY, 2017, 2017
[10]   Design of high-performance water-in-glass evacuated tube solar water heaters by a high-throughput screening based on machine learning: A combined modeling and experimental study [J].
Liu, Zhijian ;
Li, Hao ;
Liu, Kejun ;
Yu, Hancheng ;
Cheng, Kewei .
SOLAR ENERGY, 2017, 142 :61-67