Home
  • English
  • Čeština
  • Deutsch
  • Español
  • Français
  • Gàidhlig
  • Latviešu
  • Magyar
  • Nederlands
  • Português
  • Português do Brasil
  • Suomi
  • Log In
    New user? Click here to register. Have you forgotten your password?
Home
  • Browse Our Collections
  • Publications
  • Researchers
  • Research Data
  • Institutions
  • Statistics
    • English
    • Čeština
    • Deutsch
    • Español
    • Français
    • Gàidhlig
    • Latviešu
    • Magyar
    • Nederlands
    • Português
    • Português do Brasil
    • Suomi
    • Log In
      New user? Click here to register. Have you forgotten your password?
  1. Home
  2. Research Output and Publications
  3. Faculty of Chemical Engineering & Technology
  4. Journal Articles
  5. 3D spacer fabric structured airflow channel for enhanced solar desalination with efficient multi-energy harvesting
 
Options

3D spacer fabric structured airflow channel for enhanced solar desalination with efficient multi-energy harvesting

Journal
Separation and Purification Technology
ISSN
1383-5866
Date Issued
2025
Author(s)
Can Ge
Soochow University, China
Duo Xu
Soochow University, China
Xiao Feng
Soochow University, China
Heng Du
Soochow University, China
Ze, Chen
Wuhan Textile University, China
Ong Hui Lin
Universiti Malaysia Perlis
Chong Gao
Wuhan Textile University, China
Guilong Yan
Southwest Petroleum University, China
Jian Fang
Soochow University, China
DOI
10.1016/j.seppur.2024.128849
Handle (URI)
https://www.sciencedirect.com/science/article/pii/S1383586624025887
https://hdl.handle.net/20.500.14170/15854
Abstract
Solar steam generation (SSG) is a sustainable way to drive seawater desalination and wastewater purification with green environmental energies including solar radiation, ambient heat, and airflow. Airflow is ubiquitous in outdoor environments, however, the utilization of airflow for accelerated evaporation through structure engineering remains unclear. Herein, environmental energies are efficiently utilized in an integrated way with the rational design of 3D spacer fabric. Carbon fiber bundles with broadband photothermal conversion ability and Tencel yarns with superior hydrophilicity are fabricated into the 3D spacer fabric. The stereoscopic airflow channel, wide evaporation surface area, and separated layers are constructed to optimize airflow pathways. Heat loss is reduced through the accelerated evaporation cooling effect. Extra ambient heat is harvested for cold evaporation by efficient airflow utilization. The evaporation rate of 3D spacer fabric reaches 5.15 kg·m−2·h−1 under a convective airflow of 3.5 m·s−1, which is twice the rate of traditional plain fabrics. The outstanding salt resistance is realized due to the separate design of photothermal and water supply layers as well as the continuous water circulation. The structural engineering of condenser devices is also investigated for enhanced airflow utilization. Overall, this work presents an effective and comprehensive multi-energy harvesting strategy to achieve rapid and durable SSG for practical clean water production.
Subjects
  • Airflow

  • Carbon fiber bundle

  • Desalination

  • Energy harvest

  • Photothermal conversi...

File(s)
3D spacer fabric structured airflow channel for enhanced solar desalination with efficient multi-energy harvesting.pdf (85.4 KB)
google-scholar
Views
Downloads
  • About Us
  • Contact Us
  • Policies