Experimental Investigations on the Performance of a Hollow Fiber Membrane Evaporative Cooler (HFMEC) in Hot-Dry Regions

Membranes (Basel). 2022 Aug 18;12(8):793. doi: 10.3390/membranes12080793.

Abstract

The applicability of a hollow fiber membrane evaporative cooler in hot-dry regions was investigated by experimental studies. To better understand the actual operating environment of the hollow fiber membrane evaporative cooler, the outdoor air design conditions for summer air conditioning in five cities were simulated by an enthalpy difference laboratory. Subsequently, the effects of water and air flow rates on outlet air parameters and performance parameters were investigated by setting-up a hollow fiber membrane evaporative cooling experimental rig. It was found that the hollow fiber membrane evaporative cooler has good application prospects in hot-dry regions such as Lanzhou, Xi'an, Yinchuan, Urumqi, and Karamay. Among them, the hollow fiber membrane evaporative cooler has higher applicability in regions with higher air temperatures and lower humidity such as Urumqi and Karamay. The results indicate that the air outlet temperature and relative humidity ranged from 26.5 °C to 30.8 °C and 63.5% to 82.8%, respectively. The outlet air temperature and relative humidity of the HFMEC can meet the thermal comfort requirements of hot-dry regions in the summer at an appropriate air flow rate. The maximum air temperature drop, wet-bulb efficiency, cooling capacity, and COP were 7.5 °C, 62.9%, 396.4 W, and 4.81, respectively. In addition, the effect of the air flow rate on the performance parameters was more significant than that of the water flow rate.

Keywords: COP; evaporative cooling; hollow fiber membrane; thermal comfort; wet-bulb efficiency.

Grants and funding

The authors gratefully acknowledge the financial support jointly from the Natural Science Foundation of China (Grant No. 5156002); Guangxi Natural Science Foundation (Grant No. AD22088044, 2018GXNSFAA281347); Innovation Project of GUET Graduate Education (Grant No. 2022YCXB02); the Guangdong Provincial Key Laboratory of Distributed Energy Systems (Grant No. 2020B1212060075).