TY - JOUR
T1 - Study on a passive concentrating photovoltaic-membrane distillation integrated system
AU - Liang, Shen
AU - Zheng, Hongfei
AU - Ma, Xinglong
AU - Liu, Fangzhou
AU - Wang, Ge
AU - Zhao, Zhiyong
N1 - Publisher Copyright:
© 2021 Elsevier Ltd
PY - 2021/8/15
Y1 - 2021/8/15
N2 - The traditional photovoltaic-thermal desalination systems generally need to consume produced electricity to power their pumps and fans, thus fail to provide users sufficient household electricity. This paper presents a concentrating photovoltaic-thermal membrane distillation integrated system, innovatively combining concentrating photovoltaic and membrane distillation. Besides producing electricity and fresh water, it is designed with cultivation chambers to directly use the produced water for growing crops. The system could be fully embedded underground and operating passively when tempered glasses are used as its top transparent cover, which can also serve as pavement. In such a way, it has strong resistance to typhoons and saves land sources as well. Here, the system design scheme is introduced. An experimental setup is developed, during which the structural design and optimization method for the concentrator is given, to verify the system's feasibility. Mathematical models for the photovoltaic and thermal processes are established and well-validated via testing. The maximal overall efficiency is about 42% under solar radiation of 900 W/m2, in which the system's electrical and water production efficiency is 10% and 32%, respectively. The system also performs well during the whole-day testing. There is more than 40% of solar energy can be utilized on sunny days.
AB - The traditional photovoltaic-thermal desalination systems generally need to consume produced electricity to power their pumps and fans, thus fail to provide users sufficient household electricity. This paper presents a concentrating photovoltaic-thermal membrane distillation integrated system, innovatively combining concentrating photovoltaic and membrane distillation. Besides producing electricity and fresh water, it is designed with cultivation chambers to directly use the produced water for growing crops. The system could be fully embedded underground and operating passively when tempered glasses are used as its top transparent cover, which can also serve as pavement. In such a way, it has strong resistance to typhoons and saves land sources as well. Here, the system design scheme is introduced. An experimental setup is developed, during which the structural design and optimization method for the concentrator is given, to verify the system's feasibility. Mathematical models for the photovoltaic and thermal processes are established and well-validated via testing. The maximal overall efficiency is about 42% under solar radiation of 900 W/m2, in which the system's electrical and water production efficiency is 10% and 32%, respectively. The system also performs well during the whole-day testing. There is more than 40% of solar energy can be utilized on sunny days.
KW - Compound parabolic concentrator
KW - Concentrating photovoltaic
KW - Membrane distillation
KW - Seawater agriculture
KW - Solar desalination
UR - http://www.scopus.com/inward/record.url?scp=85107028453&partnerID=8YFLogxK
U2 - 10.1016/j.enconman.2021.114332
DO - 10.1016/j.enconman.2021.114332
M3 - Article
AN - SCOPUS:85107028453
SN - 0196-8904
VL - 242
JO - Energy Conversion and Management
JF - Energy Conversion and Management
M1 - 114332
ER -