Integration of solar assisted solid desiccant cooling system with efficient evaporative cooling technique for separate load handling

被引:65
作者
Chaudhary, Ghulam Qadar [1 ,2 ]
Ali, Muzaffar [1 ]
Sheikh, Nadeem Ahmed [3 ]
Gilani, Syed Ihtsham ul Haq [4 ]
Khushnood, Shahab [1 ]
机构
[1] Univ Engn & Technol, Dept Mech Engn, Taxila, Pakistan
[2] MUST, Mirpur 10250, Ajk, Pakistan
[3] Int Islamic Univ Islamabad, Fac Engn & Technol, Dept Mech Engn, Islamabad 44000, Pakistan
[4] Univ Teknol PETRONAS, Dept Mech Engn, Seri Iskandar 31750, Malaysia
关键词
Solar air conditioning; Integrated cooling system; Desiccant integrated M cycle; Dew point evaporative cooling; MAISOTSENKO CYCLE; AIR COOLER; PERFORMANCE; HEAT;
D O I
10.1016/j.applthermaleng.2018.05.081
中图分类号
O414.1 [热力学];
学科分类号
摘要
Air-conditioning load is generally composed of sensible and latent parts. Currently, various stand-alone electric and heat driven HVAC systems serve the purpose with each having performance limitations while managing cumulative load. However, integration of both electric and heat driven systems can be efficient especially if sensible and latent loads are handled separately. Here an integrated solar assisted cooling system is proposed consisting of a solid desiccant system for handling latent load and a Maisotsenko cycle (MC) based evaporative cooling system for sensible loads. The experimental setup consists of a purposely designed hybrid arrays of solar thermal collectors, a solid desiccant wheel with heat recovery and a coupled indirect MC evaporative cooler in cross flow arrangement. The integrated system is tested for the dehumidification effectiveness, dew point effectiveness, thermal COP, and cooling capacity. The resulted average cooling capacity of the system is around 3.78 kW with average COP of 0.91 at solar fraction of about 70%. The uncertainties for cooling capacity and COP are +/- 8.6% and +/- 9.3%, respectively.
引用
收藏
页码:696 / 706
页数:11
相关论文
共 32 条
[1]   Performance study of the indirect evaporative air cooler and heat recovery exchanger in air conditioning system during the summer and winter operation [J].
Anisimov, Sergey ;
Pandelidis, Demis ;
Jedlikowski, Andrzej .
ENERGY, 2015, 89 :205-225
[2]   Theoretical study of the basic cycles for indirect evaporative air cooling [J].
Anisimov, Sergey ;
Pandelidis, Demis .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2015, 84 :974-989
[3]   Numerical study and optimization of the combined indirect evaporative air cooler for air-conditioning systems [J].
Anisimov, Sergey ;
Pandelidis, Demis ;
Danielewicz, Jan .
ENERGY, 2015, 80 :452-464
[4]   Experimental assessment of a solar desiccant cooling system for an institutional building in subtropical Queensland, Australia [J].
Baniyounes, Ali M. ;
Rasul, M. G. ;
Khan, M. M. K. .
ENERGY AND BUILDINGS, 2013, 62 :78-86
[5]   Experimental investigations on a solar assisted liquid desiccant cooling system with indirect contact dehumidifier [J].
Das, Rajat Subhra ;
Jain, Sanjeev .
SOLAR ENERGY, 2017, 153 :289-300
[6]   A review of thermally activated cooling technologies for combined cooling, heating and power systems [J].
Deng, J. ;
Wang, R. Z. ;
Han, G. Y. .
PROGRESS IN ENERGY AND COMBUSTION SCIENCE, 2011, 37 (02) :172-203
[7]   Indirect evaporative cooling: Past, present and future potentials [J].
Duan, Zhiyin ;
Zhan, Changhong ;
Zhang, Xingxing ;
Mustafa, Mahmud ;
Zhao, Xudong ;
Alimohammadisagvand, Behrang ;
Hasan, Ala .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2012, 16 (09) :6823-6850
[8]  
Elberling L., 2006, Laboratory Evaluation of the Coolerado Cooler Indirect Evaporative Cooling Unit
[9]  
Elgendy E., 2015, INT J REFRIG, V51, P1251
[10]   Field testing of a novel hybrid solar assisted desiccant evaporative cooling system coupled with a vapour compression heat pump [J].
Frein, A. ;
Muschera, M. ;
Scoccia, R. ;
Aprile, M. ;
Motta, M. .
APPLIED THERMAL ENGINEERING, 2018, 130 :830-846