Geometric modifications to bluff body for enhanced performance in a wind-induced vibration energy harvester

被引:7
|
作者
Sagar, Anjani Kumar [1 ]
Adhikari, Jitendra [1 ]
Chauhan, Reeta [2 ]
Kumar, Rajeev [1 ]
机构
[1] Indian Inst Technol, Sch Mech & Mat Engn, Mandi 175005, Himachal Prades, India
[2] Raj Kumar Goel Inst Technol, Ghaziabad, India
关键词
Piezoelectric; galloping; wind energy harvesting; performance enhancement; vibrations; bluff body modification; CYLINDERS; ANGLES;
D O I
10.1080/15376494.2023.2222397
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Specialized sensors in wireless networks monitor the environment with minimal power, which is typically provided by batteries but it can also be powered with renewable sources using smart materials. One such solution is piezoelectric wind energy harvesting to power these sensors. However, the low output power of piezoelectric materials is still a concern. This research aims to improve piezoelectric wind energy harvesting by modifying the geometry of the bluff body. A square-shaped bluff body is used as a reference, and geometric changes are made by attaching square-shaped extensions. The study creates a mathematical model of a cantilever beam system with a piezoelectric material at fix end and a bluff body at the free end, using a multi-physics approach that combines electromechanical and aerodynamic models. The study uses MATLAB Simulink to solve the differential equations and verify the results with experiments. A parametric analysis examines the impact of external resistance, wind speed, and bluff body shape on circuit metrics. The study found that at a wind speed of 6 m/s and an optimal load resistance of 200 k ohm, the system generated 4.984 mW of power. This result demonstrates the potential of wind energy harvesting to power various distributed sensors for a wide range of applications.
引用
收藏
页码:5942 / 5952
页数:11
相关论文
共 50 条
  • [31] Segmented layered bistable piezoelectric laminates for enhanced energy harvesting from wind-induced vibration
    Liu, Xiaohui
    Yan, Tao
    Dai, Fuhong
    POLYMER COMPOSITES, 2024, 45 (07) : 6239 - 6251
  • [32] Response of a stochastic multiple attractors wind-induced vibration energy with
    Zhang, Wenting
    Xu, Wei
    Su, Meng
    INTERNATIONAL JOURNAL OF NON-LINEAR MECHANICS, 2022, 138
  • [33] Optimal piezoelectric energy harvesting from wind-induced vibration
    Zhang, Jiantao
    Shu, Chang
    Fang, Zhou
    FERROELECTRICS, 2017, 506 (01) : 10 - 23
  • [34] Bistable Wind-Induced Vibration Energy Harvester for Self-Powered Wireless Sensors in Smart Bridge Monitoring Systems
    Farhangdoust, Saman
    Mehrabi, Armin
    Younesian, Davood
    NONDESTRUCTIVE CHARACTERIZATION AND MONITORING OF ADVANCED MATERIALS, AEROSPACE, CIVIL INFRASTRUCTURE, AND TRANSPORTATION XIII, 2019, 10971
  • [35] Wind Pressure and Wind-induced Vibration of Heliostat
    Wang, Ying-ge
    Li, Zheng-nong
    Gong, Bo
    Li, Qiu-sheng
    ADVANCES IN CONCRETE AND STRUCTURES, 2009, 400-402 : 935 - 940
  • [36] Wind pressure and wind-induced vibration of heliostat
    College of Civil Engineering, Hunan University, Changsha, Hunan, China
    Key Eng Mat, 2009, (935-940):
  • [37] Estimation and improvement of the performance of a bistable vibration energy harvester with geometric nonlinearities
    Miao, Weiting
    Shang, Huilin
    CHAOS SOLITONS & FRACTALS, 2025, 191
  • [38] Low-Wind-Speed Galloping Wind Energy Harvester Based on a W-Shaped Bluff Body
    Zheng, Jianfeng
    Li, Zichang
    Zhang, Han
    ENERGIES, 2024, 17 (04)
  • [39] Numerical investigation of bluff body for vortex induced vibration energy harvesting
    Zheng, Mingrui
    Han, Dong
    Gao, Sijie
    Wang, Jincheng
    OCEAN ENGINEERING, 2020, 213 (213)
  • [40] Wind-induced vibration of offshore platforms
    Petrov, AA
    FLOW-INDUCED VIBRATION, 2000, : 467 - 470