4.8 Article

An ultra-low-frequency, broadband and multi-stable tri-hybrid energy harvester for enabling the next-generation sustainable power

期刊

APPLIED ENERGY
卷 291, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.apenergy.2021.116825

关键词

Tri-/quad-stable nonlinearity; Tri-hybrid harvester; Frequency up-conversion; Structural vibration; Biomechanical energy

资金

  1. National Natural Science Foundation of China [12002300, 12072233, 11872044]
  2. Research Grants Council of the Hong Kong Special Administrative Region [R5020-18, PolyU 252026/16E]
  3. Innovation and Technology Commission of the Hong Kong Special Administrative Region [K-BBY1]
  4. Center of Sports Training and Rehabilitation at Department of Rehabilitation Sciences, The Hong Kong Polytechnic University

向作者/读者索取更多资源

This work presents a highly miniaturized, ultra-low-frequency, multi-stable, and tri-hybrid portable energy harvester that efficiently harnesses structural and biomechanical vibration energy. By combining novel technologies and multiple generators, this energy harvester can generate more electric power from a single mechanical motion and is suitable for wearable/portable electronics and wireless monitoring systems.
This work presents a highly miniaturized, ultra-low-frequency, multi-stable and tri-hybrid portable energy harvester to harness structural and biomechanical vibration energy efficiently. This energy harvester is developed by using a novel multi-stability-based frequency up-converted approach, in which two new configurations of magneto-multi-stable oscillators are closely integrated. Hence, the displacement stroke of low-frequency vibration and the mechanical energy transfer process can almost completely overlap, and consequently magnify the power output and power density under low-frequency broadband vibration sources. By hybridizing two impact-driven piezoelectric generators, an array-type electromagnetic generator, a sliding-mode triboelectric nanogenerator and a contact-separation triboelectric nanogenerator in a highly compact design arrangement, more electric power can be generated from a single mechanical motion, which can successfully enhance the output performance. A fabricated prototype of the present design is tested using shaker excitations and body-induced motions. Under the shaker test, the prototype works well at a wide bandwidth of 1-11 Hz under 1 g (=9.8 m s(-2)) and generates a maximum output power of 85.9 mW across the optimum resistance loads, corresponding to the normalized power density of 3.70 mW cm(-3)g(-2) at 3 Hz under 1 g. During the human activity motions (i.e., walking, slow running, and handshaking), the prototype also shows good performance under different wearable positions of the human body and can power up 20 thermohygrometers and 296 commercial light-emitting diodes continuously. The present energy harvester is a promising application to enable as a sustainable power source for wearable/portable electronics and wireless monitoring systems.

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