Structural design strategies of triboelectric nanogenerators for omnidirectional wind energy harvesting

被引:0
|
作者
Jingu Jeong [1 ]
Eunhwan Jo [2 ]
Jong-An Choi [1 ]
Yunsung Kang [3 ]
Soonjae Pyo [1 ]
机构
[1] Department of Mechanical Design and Robot Engineering, Seoul National University of Science and Technology, 232 Gongneung-ro, Nowon-gu, Seoul
[2] Department of Mechanical Engineering, Kumoh National Institute of Technology, 61 Daehak-ro, Gyeongbuk, Gumi
[3] Department of Precision Mechanical Engineering, Kyungpook National University, 2559 Gyeongsang-daero, Gyeongbuk, Sangju
[4] Department of Mechanical System Design Engineering, Seoul National University of Science and Technology, 232 Gongneung-ro, Nowon-gu, Seoul
关键词
Aeroelastic energy conversion; Omnidirectional wind energy harvesting; Rolling mechanisms; Rotation; Triboelectric nanogenerators;
D O I
10.1186/s40486-025-00224-6
中图分类号
学科分类号
摘要
Omnidirectional wind energy harvesting has gained increasing attention as a means of harnessing the inherently variable and multidirectional flows encountered in real-world environments. Triboelectric nanogenerators (TENGs), which leverage contact electrification and electrostatic induction to convert mechanical motion into electrical power, are particularly well-suited for such applications due to their ability to operate effectively under low-speed and intermittent wind conditions. In this review, we first outline the fundamental triboelectric processes and operating modes that underpin TENG functionality, emphasizing how their low inertia and high-voltage outputs make them compatible with a wide range of wind profiles. We then discuss three predominant device classifications—rotary, aeroelastic, and rolling-based—highlighting their distinct mechanical configurations and capacities for omnidirectional capture. Key examples illustrate how strategically designed rotor geometries, flutter-driven films, and rolling elements can maximize contact–separation events and enhance triboelectric generation under complex airflow patterns. Finally, we examine the major obstacles faced by TENG-based harvesters, including durability, hybrid system design, and intelligent power management. Strategies to overcome these barriers involve wear-resistant materials, adaptive architectures, and advanced circuitry, offering TENG solutions that are feasible in micro- or off-grid scenarios. © The Author(s) 2025.
引用
收藏
相关论文
共 50 条
  • [41] Synergistic effects of rGO functionalization in nanocomposite-based triboelectric nanogenerators for enhanced energy harvesting
    Yashaswini, V. L.
    Farheen, S. M. Rumana
    Mahadevaswamy, B. P.
    Madhukar, B. S.
    Sangamesha, M. A.
    Krishnaveni, S.
    SENSORS AND ACTUATORS A-PHYSICAL, 2024, 370
  • [42] Enhanced Durability and Robustness of Triboelectric Nanogenerators with Blade-Enclosed Structure for Breeze Energy Harvesting
    Liu, Yuhe
    Zhu, Mingkang
    Nan, Donghong
    Li, Xiang
    Wang, Yuqi
    Su, Wenhai
    Wang, Zhong Lin
    Cheng, Tinghai
    ADVANCED SUSTAINABLE SYSTEMS, 2023, 7 (02)
  • [43] Thin, soft, garment-integrated triboelectric nanogenerators for energy harvesting and human machine interfaces
    Liu, Yiming
    Yiu, Chunki
    Jia, Huiling
    Wong, Tszhung
    Yao, Kuanming
    Huang, Ya
    Zhou, Jingkun
    Huang, Xingcan
    Zhao, Ling
    Li, Dengfeng
    Wu, Mengge
    Gao, Zhan
    He, Jiahui
    Song, Enming
    Yu, Xinge
    ECOMAT, 2021, 3 (04)
  • [44] Analytical modeling for optimum energy harvesting using Triboelectric Nanogenerators under steady state operation
    Gupta, Robin
    Verma, Amit
    8TH IEEE ELECTRON DEVICES TECHNOLOGY & MANUFACTURING CONFERENCE, EDTM 2024, 2024, : 199 - 201
  • [45] Sustainable energy harvesting from medical waste: Utilizing discarded ointment tubes in triboelectric nanogenerators
    Suneetha, V. Lakshmi
    Supraja, P.
    Kumar, K. Uday
    Kumar, R. Rakesh
    MATERIALS LETTERS, 2024, 377
  • [46] Bifilar-Pendulum-Assisted Multilayer-Structured Triboelectric Nanogenerators for Wave Energy Harvesting
    Zhang, Chuguo
    Zhou, Linglin
    Cheng, Ping
    Liu, Di
    Zhang, Chunlei
    Li, Xinyuan
    Li, Shaoxin
    Wang, Jie
    Wang, Zhong Lin
    ADVANCED ENERGY MATERIALS, 2021, 11 (12)
  • [47] Soft Ball-Based Triboelectric-Electromagnetic Hybrid Nanogenerators for Wave Energy Harvesting
    Pang, Yaokun
    Fang, Yuhui
    Su, Jiaji
    Wang, Huigang
    Tan, Yeqiang
    Cao, Changyong
    ADVANCED MATERIALS TECHNOLOGIES, 2023, 8 (06)
  • [48] Advancements in hybrid energy harvesting: Combining triboelectric nanogenerators and photovoltaic cells for next-generation energy solutions
    Priya, A. Sathiya
    Idris, Muhammad Idzdihar Bin
    Henry, J.
    Indhumathi, R.
    Aepuru, Radhamanohar
    MATERIALS TODAY ENERGY, 2025, 48
  • [49] Self-charging power textiles integrating energy harvesting triboelectric nanogenerators with energy storage batteries/supercapacitors
    Dong, Kai
    Wang, Zhong Lin
    JOURNAL OF SEMICONDUCTORS, 2021, 42 (10)
  • [50] Rotary Triboelectric Nanogenerator Based on a Hybridized Mechanism for Harvesting Wind Energy
    Xie, Yannan
    Wang, Sihong
    Lin, Long
    Jing, Qingshen
    Lin, Zong-Hong
    Niu, Simiao
    Wu, Zhengyun
    Wang, Zhong Lin
    ACS NANO, 2013, 7 (08) : 7119 - 7125