Applied thermal engineering2022,Vol.2089.DOI:10.1016/j.applthermaleng.2022.118279

Harvesting conductive heat loss of interfacial solar evaporator for thermoelectric power generation

Li, Haoran Wang, Shiming Yan, Zhe Niu, Xiaojuan Sun, Xinri Hong, Wenpeng
Applied thermal engineering2022,Vol.2089.DOI:10.1016/j.applthermaleng.2022.118279

Harvesting conductive heat loss of interfacial solar evaporator for thermoelectric power generation

Li, Haoran 1Wang, Shiming 1Yan, Zhe 1Niu, Xiaojuan 1Sun, Xinri 1Hong, Wenpeng1
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作者信息

  • 1. Northeast Elect Power Univ
  • 折叠

Abstract

The solar-driven interfacial water evaporation technique enables to sustainably produce potable water from sewage, wastewater, and seawater. Limited by the advanced functional materials and structures, however, the contradiction between high evaporation rate and low heat loss needs to be further optimized in terms of improving energy efficiency. Herein, a two-dimensional solar absorber in which the vertical substrate pumps water to the top surface for sustainable evaporation and reducing heat conduction channels between the evaporation surface and the bulk water is introduced. In addition, the surplus heat of the solar absorber is directly and quickly conducted to a thermoelectric device for electricity generation. This configuration endows the hybrid device with a power density of 1.2 W m(- 2) at an external resistance of 4 omega together with an evaporation rate of 4.51 kg m(- 2) h(-1) at 4 suns illumination. Importantly, both the fast response of the hybrid device to the optical concentration and the repeatability of the output current are well supported. Such a hybrid device provides an opportunity to construct an on-site and/or off-network water treatment system with low energy consumption and trade investment.

Key words

Solar energy conversion/Heat loss harvesting/Interfacial solar evaporator/Thermoelectric generation/Two-dimensional material/SIMULTANEOUS STEAM/WATER/DRIVEN/PURIFICATION/ELECTRICITY/CONVERSION

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出版年

2022
Applied thermal engineering

Applied thermal engineering

EISCI
ISSN:1359-4311
被引量15
参考文献量49
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