Key technology developments for solar-driven interface evaporation on structural innovation and thermal design

被引:1
|
作者
Chang, Kai-Feng [1 ]
Li, Yun-Ze [1 ]
Xi, Yan-Ao-Ming [1 ]
Xu, Jia-Lu [1 ]
Zhang, Yan [1 ]
机构
[1] Beihang Univ, Sch Aeronaut Sci & Engn, Beijing 100191, Peoples R China
关键词
Solar thermal evaporation; Structural innovation; Thermal design; Energy conversion; Heat transfer; BOILING HEAT-TRANSFER; VAPOR GENERATION; EFFICIENT; DESALINATION; SURFACES; NANOPARTICLES; ENHANCEMENT; CONVERSION; CAPTURE; AEROGEL;
D O I
10.1016/j.nanoen.2024.110369
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Solar-driven interface evaporation, a green technology, has gained great attention in recent years as one of the most promising ways to solve the current complex problems such as water shortage, energy crisis, and environmental pollution. In this review, we summarize the main features and unique designs for enhancing the performance of solar-driven interface evaporation units with different structure forms. A performance comparison investigation is made to assess their development potential. We also analyze the energy conversion and heat transfer throughout the process from solar input to freshwater output. Improving performance strategies are reviewed in detail from reducing heat loss, increasing energy intake, enhancing solid-liquid interface heat transfer, enhancing condensation heat transfer, and reducing evaporation latent heat, some principles guiding the optimal design are summarized. The remaining challenges, potential solutions of solar-driven interface evaporation as well as the future development directions are summarized and pointed out.
引用
收藏
页数:20
相关论文
共 50 条
  • [41] Design parameters of a solar-driven heat engine
    Goktun, S
    ENERGY SOURCES, 1996, 18 (01): : 37 - 42
  • [42] Research progress in carbon-based photothermal materials based on solar-driven interfacial evaporation design
    Xu, Bing
    Zhou, Jing
    Liu, Jia
    Zhang, Xu
    Yang, Xiaotong
    Yao, Xingjie
    Guo, Peixun
    Ma, Liang
    Zhang, Xinyu
    CAILIAO GONGCHENG-JOURNAL OF MATERIALS ENGINEERING, 2024, 52 (10): : 44 - 56
  • [43] Acid-doped polyaniline membranes for solar-driven interfacial evaporation
    Li, Xia
    Yue, Dongmin
    Liu, Fei
    Yu, Jingtong
    Li, Bingbing
    Sun, De
    Ma, Xin
    KOREAN JOURNAL OF CHEMICAL ENGINEERING, 2023, 40 (01) : 223 - 234
  • [44] Tailoring surface wetting states for ultrafast solar-driven water evaporation
    Guo, Youhong
    Zhao, Xiao
    Zhao, Fei
    Jiao, Zihao
    Zhou, Xingyi
    Yu, Guihua
    ENERGY & ENVIRONMENTAL SCIENCE, 2020, 13 (07) : 2087 - 2095
  • [45] Recent Advances in High-Rate Solar-Driven Interfacial Evaporation
    Kim, Hyeon Tae
    Philip, Ligy
    McDonagh, Andrew
    Johir, Md
    Ren, Jiawei
    Shon, Ho Kyong
    Tijing, Leonard D.
    ADVANCED SCIENCE, 2024, 11 (26)
  • [46] Multiscale Characteristic in Symmetric/Asymmetric Solar-Driven Nanofluid Droplet Evaporation
    Yan, Xin
    Xu, Jinliang
    Meng, Zhijun
    Xie, Jian
    Liu, Guohua
    LANGMUIR, 2020, 36 (07) : 1680 - 1690
  • [47] Condensation device design represents a critical step for solar-driven water evaporation toward practical applications
    Zhao, Zexiang
    Wang, Chengbing
    Wei, Dan
    Wang, Fan
    CELL REPORTS PHYSICAL SCIENCE, 2024, 5 (02):
  • [48] Portable water collection bag based on solar-driven interfacial evaporation
    Jia, Ye
    Kong, Lingxue
    Zhang, Tengdi
    Wang, Yuping
    Liu, Anmin
    Gao, Liguo
    Ma, Tingli
    ENVIRONMENTAL TECHNOLOGY, 2025,
  • [49] The impact of surface chemistry on the performance of localized solar-driven evaporation system
    Shengtao Yu
    Yao Zhang
    Haoze Duan
    Yanming Liu
    Xiaojun Quan
    Peng Tao
    Wen Shang
    Jianbo Wu
    Chengyi Song
    Tao Deng
    Scientific Reports, 5
  • [50] Band Gap Engineering in an Efficient Solar-Driven Interfacial Evaporation System
    Ying, Peijin
    Li, Meng
    Yu, Feilin
    Geng, Yang
    Zhang, Liyang
    He, Junjie
    Zheng, Yujie
    Chen, Rong
    ACS APPLIED MATERIALS & INTERFACES, 2020, 12 (29) : 32880 - 32887