JOURNAL ARTICLE

Investigation of Piezoelectric Energy Harvesting via Nonlinear Friction-Induced Vibration

Dahua WangM. X. LiuXuan WuWeiji QianQuan MaZ. Q. Wu

Year: 2020 Journal:   Shock and Vibration Vol: 2020 Pages: 1-22   Publisher: Hindawi Publishing Corporation

Abstract

In this work, piezoelectric energy harvesting (PEH) performance via friction-induced vibration (FIV) is studied numerically. A nonlinear two-degree-of-freedom friction system (mass-on-belt) with piezoelectric elements, which simultaneously considers the stick-slip motion, model coupling instability, separation, and reattachment between the mass and belt, is proposed. Both complex eigenvalue analyses and transient dynamic analysis of this nonlinear system are carried out. Results show that it is feasible to convert FIV energy to electrical energy when the friction system is operating in the unstable vibration region. There exists a critical friction coefficient ( μ c ) for the system to generate FIV and output visible voltage. The friction coefficient plays a significant role in affecting the dynamics and PEH performance of the friction system. The friction system is able to generate stronger vibration and higher voltage in the case that both the kinetic friction coefficient and static friction coefficient are larger than μ c . Moreover, it is seen that the separation behavior between contact pair can result in overestimating or underestimating the vibration magnitude and output voltage amplitude, and the overestimate or underestimate phenomenon is determined by the located range of friction coefficient. Furthermore, it is confirmed that an appropriate value of external resistance is beneficial for the friction system to achieve the highest output voltage. The obtained results will be beneficial for the design of PEH device by means of FIV.

Keywords:
Vibration Nonlinear system Piezoelectricity Control theory (sociology) Mechanics Kinetic energy Voltage Dynamical friction Mechanical energy Energy harvesting Instability Materials science Energy (signal processing) Acoustics Engineering Physics Classical mechanics

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3
Cited By
0.25
FWCI (Field Weighted Citation Impact)
56
Refs
0.50
Citation Normalized Percentile
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Citation History

Topics

Innovative Energy Harvesting Technologies
Physical Sciences →  Engineering →  Mechanical Engineering
Vibration Control and Rheological Fluids
Physical Sciences →  Engineering →  Civil and Structural Engineering
Vibration and Dynamic Analysis
Physical Sciences →  Engineering →  Control and Systems Engineering

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