Reversing heat conduction loss: Extracting energy from bulk water to enhance solar steam generation

Nano Energy ◽  
2020 ◽  
Vol 78 ◽  
pp. 105269 ◽  
Author(s):  
Yida Wang ◽  
Xuan Wu ◽  
Xiaofei Yang ◽  
Gary Owens ◽  
Haolan Xu
2019 ◽  
Vol 64 (21) ◽  
pp. 1625-1633 ◽  
Author(s):  
Xuan Wu ◽  
Ting Gao ◽  
Chenhui Han ◽  
Jingsan Xu ◽  
Gary Owens ◽  
...  

2019 ◽  
Vol 20 (1) ◽  
pp. 59-64
Author(s):  
Yuan Meng ◽  
Haibo Li

Abstract Solar steam generation (SSG) has been proposed as one of the most advanced techniques to trigger solar energy desalination of sea water. Although many efforts have been dedicated to develop SSG devices, the efficiency remains relatively low. Previous work was mainly focused on thermal insulation film and light absorption. Attention has seldom been concentrated on device structure. Inspired by the manner of water transportation within flowers, we designed an artificial SSG unit which can effectively speed up the water transpiration from the bulk to the surface. Another advantage of such a device is that steam generation is separated from the bulk salty solution and thereby the solar thermal evaporation can be improved greatly. As demonstrated via the desalination experiment, the mass change and evaporation rate under 1 solar irradiation can reach as high as 2.51 kg/m2 and 1.26 kg/m2·h−1, respectively. Meanwhile, the evaporation efficiency is 74%. These values are much higher than those of traditional SSG devices and bulk water.


2016 ◽  
Vol 113 (49) ◽  
pp. 13953-13958 ◽  
Author(s):  
Xiuqiang Li ◽  
Weichao Xu ◽  
Mingyao Tang ◽  
Lin Zhou ◽  
Bin Zhu ◽  
...  

Because it is able to produce desalinated water directly using solar energy with minimum carbon footprint, solar steam generation and desalination is considered one of the most important technologies to address the increasingly pressing global water scarcity. Despite tremendous progress in the past few years, efficient solar steam generation and desalination can only be achieved for rather limited water quantity with the assistance of concentrators and thermal insulation, not feasible for large-scale applications. The fundamental paradox is that the conventional design of direct absorber−bulk water contact ensures efficient energy transfer and water supply but also has intrinsic thermal loss through bulk water. Here, enabled by a confined 2D water path, we report an efficient (80% under one-sun illumination) and effective (four orders salinity decrement) solar desalination device. More strikingly, because of minimized heat loss, high efficiency of solar desalination is independent of the water quantity and can be maintained without thermal insulation of the container. A foldable graphene oxide film, fabricated by a scalable process, serves as efficient solar absorbers (>94%), vapor channels, and thermal insulators. With unique structure designs fabricated by scalable processes and high and stable efficiency achieved under normal solar illumination independent of water quantity without any supporting systems, our device represents a concrete step for solar desalination to emerge as a complementary portable and personalized clean water solution.


2020 ◽  
Vol 165 ◽  
pp. 01002
Author(s):  
Haomin Zhang ◽  
Yuzhe Wu

The solar steam generation system studied in this project is mainly composed of a double-layered structure. The upper layer is a nano-fluid material with a light absorber, and the lower layer is an insulating material with two-dimensional or three-dimensional water transport channels. It is hydrophilic to utilize capillary forces and promote Fluid flows to the hot zone, and interconnected pores are used for fluid inflow and outflow to the structure. The device embeds a semiconductor temperature difference power generation sheet in the lower layer, the upper surface is in contact with the photothermal layer, and the lower surface is in contact with the bulk water. The formation of a temperature difference generates an electromotive force, which makes the energy utilization efficiency higher.


2018 ◽  
Vol 6 (26) ◽  
pp. 12267-12274 ◽  
Author(s):  
Xuan Wu ◽  
Limin Wu ◽  
Jeanette Tan ◽  
George Y. Chen ◽  
Gary Owens ◽  
...  

Inspired by a kerosene oil lamp, a highly efficient solar-evaporation system with the evaporation surface located above the bulk water surface is realized.


Author(s):  
Muhammad Sultan Irshad ◽  
Xianbao Wang ◽  
Misbah Sehar Abbasi ◽  
Naila Arshad ◽  
Zihe Chen ◽  
...  

2021 ◽  
pp. 2100159
Author(s):  
Tien Thanh Pham ◽  
Trung Duc Dao ◽  
Thi An Hang Nguyen ◽  
Dinh Dat Pham ◽  
Kotaro Kajikawa ◽  
...  

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