Engineering High‐Tortuosity 3D Gradient Structure and CFD‐Assisted Multifield Analysis for Solar Interfacial Evaporation

Author:

Zhao Guanru123,Sun Xing4,Fu Gangwen1,Liu Qingsong2,Cui Jiaojiao1,Jiang Ruiyi1,He Junyuan1,Cao Leiqing1,Jing Tingting4,Qin Fei4,Tian Miao2,Xu Xi135ORCID

Affiliation:

1. Frontiers Science Center for Flexible Electronics Institute of Flexible Electronics Northwestern Polytechnical University Xi'an 710072 P. R. China

2. School of Ecology and Environment Northwestern Polytechnical University Xi'an 710072 P. R. China

3. Key Laboratory of Flexible Electronics of Zhejiang Province Ningbo Institute of Northwestern Polytechnical University Ningbo 315103 China

4. School of Astronautics Northwestern Polytechnical University Xi'an 710072 P. R. China

5. Research & Development Institute of Northwestern Polytechnical University in Shenzhen Sanhang Science &Technology Building No. 45th, Gaoxin South 9th Road, Nanshan District Shenzhen City 518063 China

Abstract

AbstractSolar interfacial evaporation is a promising method for solving the global shortage of fresh water. While 2D evaporators can efficiently localize solar‐converted heat at the thin layer of the water–air interface, 3D solar evaporators can maximize energy reutilization while maintaining effective mass transport ability, few studies are conducted to explore the effect of gradient porosity on evaporation performance. In this study, a multifield assisted strategy based on a gradient 3D structure with high tortuosity is proposed, which creates a thermal field environment for efficient evaporation through high absorption of sunlight and excellent photothermal conversion and uses the gradient structure to optimize the internal pressure field to enhance water evaporation and transport. This hierarchically nanostructured solar absorber, with porosity inhomogeneity‐induced pressure gradient and optimized temperature management, is a valuable design idea for manufacturing a more efficient 3D solar evaporator in the field of seawater desalination. Owing to the understanding of optimizing the dimension by various simulation parameters, the evaporation efficiencies of such structures are found to be 165.7%, suppressing the most evaporator. Moreover, it can provide new ideas and references for the fields of mass transfer and thermal management.

Funder

Natural Science Foundation of Shaanxi Province

Fundamental Research Funds for the Central Universities

National Natural Science Foundation of China

Fundamental Research Funds for Central Universities of the Central South University

Natural Science Foundation of Shaanxi Provincial Department of Education

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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