TY - JOUR
T1 - A review of flow-induced vibration energy harvesters
AU - Ma, Xiaoqing
AU - Zhou, Shengxi
N1 - Publisher Copyright:
© 2022 Elsevier Ltd
PY - 2022/2/15
Y1 - 2022/2/15
N2 - With the rapid development of wireless sensor networks, medical equipment, and microelectromechanical systems, providing clean and self-sustained energy for these devices is of great significance. Flow-induced vibration energy harvesting technology is one of the most popular energy harvesting technologies, which can harvest wind or water energy from surrounding environments and convert it into usable energy. This paper comprehensively reviews the state-of-the-art advances on flow-induced vibration energy harvesters in terms of their working principles, categories, enhancement methods, model derivation and calculation methods, influence of interface circuits, and energy harvesting efficiency calculation methods. The working principles and current development progress of vortex-induced vibration, flutter, galloping, wake-galloping, and hybrid energy harvesters are discussed. Enhancement methods, such as the addition of nonlinear force, construction of multi-degree-of-freedom or multi-directional energy harvesters, and connection of interface circuits are reviewed and discussed to provide a reference for the design of high-performance flow-induced vibration energy harvesters. The modeling methods and critical challenges are characterized and summarized. Furthermore, future research directions and prospects are proposed and discussed in this paper.
AB - With the rapid development of wireless sensor networks, medical equipment, and microelectromechanical systems, providing clean and self-sustained energy for these devices is of great significance. Flow-induced vibration energy harvesting technology is one of the most popular energy harvesting technologies, which can harvest wind or water energy from surrounding environments and convert it into usable energy. This paper comprehensively reviews the state-of-the-art advances on flow-induced vibration energy harvesters in terms of their working principles, categories, enhancement methods, model derivation and calculation methods, influence of interface circuits, and energy harvesting efficiency calculation methods. The working principles and current development progress of vortex-induced vibration, flutter, galloping, wake-galloping, and hybrid energy harvesters are discussed. Enhancement methods, such as the addition of nonlinear force, construction of multi-degree-of-freedom or multi-directional energy harvesters, and connection of interface circuits are reviewed and discussed to provide a reference for the design of high-performance flow-induced vibration energy harvesters. The modeling methods and critical challenges are characterized and summarized. Furthermore, future research directions and prospects are proposed and discussed in this paper.
KW - Enhancement methods
KW - Flow-induced vibration
KW - Interface circuits
KW - Modeling methods
KW - Wind energy
UR - http://www.scopus.com/inward/record.url?scp=85123956020&partnerID=8YFLogxK
U2 - 10.1016/j.enconman.2022.115223
DO - 10.1016/j.enconman.2022.115223
M3 - 文献综述
AN - SCOPUS:85123956020
SN - 0196-8904
VL - 254
JO - Energy Conversion and Management
JF - Energy Conversion and Management
M1 - 115223
ER -