1 |
Chandel S S, Agarwal T. Review of cooling techniques using phase change materials for enhancing efficiency of photovoltaic power systems [J]. Renewable and Sustainable Energy Reviews, 2017, 73: 1342-1351.
|
2 |
Yuan Y P, Ouyang L P, Sun L L, et al. Effect of connection mode and mass flux on the energy output of a PVT hot water system [J]. Solar Energy, 2017, 158: 285-294.
|
3 |
Xu H T, Karimi F, Chen J, et al. Experimental investigation on a photovoltaic thermal solar system with a linear Fresnel lens [J]. Journal of Energy Engineering, 2018, 144(3): 04018012.
|
4 |
Bellos E, Said Z, Tzivanidis C. The use of nanofluids in solar concentrating technologies: a comprehensive review [J]. Journal of Cleaner Production, 2018, 196: 84-99.
|
5 |
Browne M C, Norton B, Mccormack S J. Phase change materials for photovoltaic thermal management [J]. Renewable and Sustainable Energy Reviews, 2015, 47: 762-782.
|
6 |
Thaib R, Rizal S, Riza M, et al. Beeswax as phase change material to improve solar panel s performance [J]. IOP Conference Series: Materials Science and Engineering, 2018, 308: 012024.
|
7 |
Khanna S, Reddy K S, Mallick T K. Optimization of finned solar photovoltaic phase change material (finned PV PCM) system [J]. International Journal of Thermal Sciences, 2018, 130: 313-322.
|
8 |
Joshi S S, Dhoble A S. Photovoltaic -thermal systems (PVT): technology review and future trends [J]. Renewable and Sustainable Energy Reviews, 2018, 92: 848-882.
|
9 |
Boumaaraf B, Touafek K, Ait-cheikh M S, et al. Comparison of electrical and thermal performance evaluation of a classical PV generator and a water glazed hybrid photovoltaic-thermal collector [J]. Mathematics and Computers in Simulation, 2020, 167: 176-193.
|
10 |
Dupeyrat P, Ménézo C,Fortuin S. Study of the thermal and electrical performances of PVT solar hot water system [J]. Energy & Buildings, 2014, 68: 751-755.
|
11 |
Aste N, Pero C D, Leonforte F, et al. Performance monitoring and modeling of an uncovered photovoltaic-thermal (PVT) water collector [J]. Solar Energy, 2016, 135: 551-568.
|
12 |
Herrando M, Markides C N, Hellgardt K. A UK-based assessment of hybrid PV and solar-thermal systems for domestic heating and power: system performance [J]. Applied Energy, 2014, 122: 88-309.
|
13 |
Franklin J C, Chandrasekar M. Performance enhancement of a single pass solar photovoltaic thermal system using staves in the trailing portion of the air channel [J]. Renewable Energy, 2019, 135: 248-258.
|
14 |
Gholampour M, Ameri M. Energy and exergy analyses of photovoltaic/thermal flat transpired collectors: experimental and theoretical study [J]. Applied Energy, 2016, 164: 837-856.
|
15 |
Abadeh A, Rejeb O, Sardarabadi M, et al. Economic and environmental analysis of using metal-oxides/water nanofluid in photovoltaic thermal systems (PVTs) [J]. Energy, 2018, 159: 1234-1243.
|
16 |
Al-Shamani A N, Sopian K, Mat S, et al. Performance enhancement of photovoltaic grid-connected system using PVT panels with nanofluid [J]. Solar Energy, 2017, 150: 38-48.
|
17 |
Al-Waeli A H A, Chaichan M T, Kazem H A, et al. Comparative study to use nano-(Al2O3, CuO, and SiC) with water to enhance photovoltaic thermal PV/T collectors [J]. Energy Conversion and Management, 2017, 148: 963-973.
|
18 |
Al-Waeli A H A, Sopian K, Chaichan M T, et al. Evaluation of the nanofluid and nano-PCM based photovoltaic thermal (PVT) system: an experimental study [J]. Energy Conversion and Management, 2017, 151: 693-708.
|
19 |
Al-Waeli A H A, Sopian K, Kazem H A, et al. Comparison of prediction methods of PV/T nanofluid and nano-PCM system using a measured dataset and artificial neural network [J]. Solar Energy, 2018, 162: 378-396.
|
20 |
Preet S. Water and phase change material based photovoltaic thermal management systems: a review [J]. Renewable and Sustainable Energy Reviews, 2018, 82: 791-807.
|
21 |
凌空, 封永亮, 陶文铨. 带环状翅片管式相变储热器的数值模拟[J]. 工程热物理学报, 2012, 33(8): 1407-1410.
|
|
Ling K, Feng Y L, Tao W Q. Numerical simulation of latent heat storage system with criculai-finned tube [J]. Journal of Engineering Thermophysics, 2012, 33(8): 1407-1410.
|
22 |
Preet S, Bhushan B, Mahajan T. Experimental investigation of water based photovoltaic/thermal (PV/T) system with and without phase change material (PCM) [J]. Solar Energy, 2017, 155: 1104-1120.
|
23 |
Biwole P H, Eclache P, Kuznik F. Phase-change materials to improve solar panel s performance [J]. Energy and Buildings, 2013, 62: 59-67.
|
24 |
纪珺, 刘宇飞, 任迎蕾, 等. Ba(OH)2·8H2O复合相变材料及其在太阳能光伏/热集热器上的释热特性[J]. 化工学报, 2017, 68(8): 2985-2990.
|
|
Ji J, Liu Y F, Ren Y L, et al. Ba(OH)2·8H2O composite phase-change material and its heat release characteristics in solar photovoltaic/photo-thermal collectors [J]. CIESC Journal, 2017, 68(8): 2985-2990.
|
25 |
Browne M C, Norton B, McCormack S J. Heat retention of a photovoltaic/thermal collector with PCM [J]. Solar Energy, 2016, 133: 533-548.
|
26 |
Hossain M S, Pandey A K, Selvaraj J, et al. Two side serpentine flow based photovoltaic-thermal-phase change materials (PVT-PCM) system: energy, exergy and economic analysis [J]. Renewable Energy, 2019, 136: 1320-1336.
|
27 |
Asgharian H, Baniasadi E. A review on modeling and simulation of solar energy storage systems based on phase change materials [J]. Journal of Energy Storage, 2019, 21: 186-201.
|
28 |
Atkin P, Farid M M. Improving the efficiency of photovoltaic cells using PCM infused graphite and aluminium fins [J]. Solar Energy, 2015, 114: 217-228.
|
29 |
Khanna S, Reddy K S, Mallick T K. Climatic behaviour of solar photovoltaic integrated with phase change material [J]. Energy Conversion and Management, 2018, 166: 590-601.
|
30 |
Al-Waeli A H A, Chaichan M T, Sopian K, et al. Modeling and experimental validation of a PVT system using nanofluid coolant and nano-PCM [J]. Solar Energy, 2019, 177: 178-191.
|