渗透力
电
缓压渗透
盐度
发电
渗透
工艺工程
环境科学
正渗透
余热
环境工程
反渗透
功率(物理)
工程类
机械工程
热交换器
化学
电气工程
热力学
膜
生态学
生物化学
物理
生物
作者
Qizhao Luo,Junxian Pei,Panfeng Yun,Xuejiao Hu,Bin Cao,Kunpeng Shan,Bin Tang,Kaiming Huang,Aofei Chen,Lu Huang,Zhi Huang,Haifeng Jiang
出处
期刊:Applied Energy
[Elsevier BV]
日期:2023-08-30
卷期号:351: 121810-121810
被引量:10
标识
DOI:10.1016/j.apenergy.2023.121810
摘要
Low-grade heat energy is enormous and widely distributed around the world, but it cannot be effectively converted to electricity owing to the small temperature difference and fluctuating heat source. As a promising technology that can convert low-grade heat energy into electricity while obtaining additional freshwater, thermo-osmotic energy conversion has attracted attentions of numerous researchers. However, traditional thermo-osmotic energy conversion technologies lack the utilization of the accompanying variation in salinity gradients throughout the process. In this study, a hybrid system was presented to achieve simultaneous freshwater production and electricity generation by combining thermo-osmosis system with a salinity gradient power recovery module. Continuous operation of the thermo-osmosis system will naturally produce a range of salinity differences, which will then be converted into electricity by the salinity gradient power recovery module. Our results show that this hybrid system can optimally increase the electricity output by ∼0.99 W m−2 over the conventional thermo-osmotic energy conversion system. Overall, our research demonstrates a promising device to harvest low-grade waste heat for co-generation of electricity and freshwater. This innovative approach has the potential to broaden the application possibilities of thermo-osmosis technology.
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