4.7 Article

Dynamically synergistic regulation mechanism for rotation energy harvesting

Journal

MECHANICAL SYSTEMS AND SIGNAL PROCESSING
Volume 169, Issue -, Pages -

Publisher

ACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ymssp.2021.108637

Keywords

Rotation energy harvesting; Dynamically synergistic regulation mechanism; Dynamic regulation evolution; Adaptive-anastomotic barricade; Piezoelectric-triboelectric

Funding

  1. National Science Fund for Distinguished Young Scholars [11625208]
  2. National Natural Science of China [2019-01-07-00-02-E00030]
  3. Hunan Province Science and Technology Innovation Program
  4. Innovation Program of Shanghai Municipal Education Commission

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This study proposes a novel dynamically synergistic regulation mechanism for rotation energy harvesting in order to achieve sustainable energy supply for wireless sensor networks. Through experiments and simulations, the effectiveness and efficiency of this mechanism are verified. This research is of great significance for improving the comprehensive performance of rotation energy harvesters.
To realize the sustainable energy supply of wireless sensor networks, a novel dynamically synergistic regulation mechanism is proposed for rotation energy harvesting under the guidance of the dynamic regulation evolution. The connotation of synergy includes: (1) Nonlinear magnetic force and variable stiffness (centrifugal stiffening effect and penalty stiffness of adaptiveanastomotic barricades) synergistically regulate the dynamic behavior of the system; (2) The adaptive-anastomotic barricades also convert mechanical energy into electrical energy when regulating the dynamic behavior of the system, i.e., the triboelectric nanogenerator synergistically generates electricity with piezoelectric energy harvester in different states (collision and vibration) of the system, respectively. Based on the energy method of Hamiltonian principle, the electromechanical coupling dynamic model of the system is developed. The parameters analysis is performed for the discussion of dynamic characteristics and electrical performance of the system in a wide rotation speed range. The prototype is fabricated and the experiments under different conditions are carried out. The experimental data are in good agreement with the simulation results, which verifies the effectiveness of the theoretical model. The experimental results show that the proposed harvester can harvest energy effectively in a wide speed range of 0-1000 r/min. The peak-peak voltage and the average power for PEH and TENG can reach 122.1 V, 1600 mu W; 774.3 V, 205.1 mu W, respectively. The proposed dynamically synergistic regulation mechanism provides a new perspective to improve the comprehensive performance of the rotation energy harvester, which exhibits a promising application prospect in the self-powered IoT applications.

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