4.6 Article

A Triboelectric Nanogenerator for Energy Harvesting from Transformers' Vibrations

期刊

MACHINES
卷 10, 期 3, 页码 -

出版社

MDPI
DOI: 10.3390/machines10030215

关键词

energy harvesting; triboelectric nanogenerator; ZnO nanorods; graphene oxide; PDMS; transformer

资金

  1. CPFL group [PD-00063-3067/2019]
  2. ANEEL's RD program
  3. CNPq-Conselho Nacional de Desenvolvimento Cientifico e Tecnologico
  4. FAPESP-Fundacao de Amparo a Pesquisa do Estado de Sao Paulo [CEPID-CDMF 2013/07296-2]

向作者/读者索取更多资源

In this study, a low-cost and straightforward triboelectric nanogenerator (TENG) based on ZnO nanorods and PDMS:GO composites was proposed. Adding a steel spring into the TENG improved its generating output, achieving a power density of 246 mV M-2 and an output voltage of 4 V. The vibration frequencies of the transformer walls and the device's performance at these frequencies were analyzed and discussed.
Transformers can produce gases dissolved in oil that can cause damage to their structures, and preventing failures caused by these gases is a goal to be reached. There is a demand for wireless sensors to monitor those gases. Alongside its development, there is a growing interest in new energy sources enabling these technologies. Triboelectric nanogenerators can gather energy from the environment, such as mechanical energy from vibrations, and convert it into electricity from the contact of two dielectric materials. In this work, the authors propose the study of a low-cost and straightforward triboelectric nanogenerator (TENG) based on ZnO nanorods as a positive dielectric material, with PDMS:GO composites at different concentrations as the negative dielectric material. All the studies were carried out in a wide frequency range varying from 45 to 250 Hz. Additionally, an analysis of the addition of a steel spring into the TENG to improve the device's generating output is shown. A power density of 246 mV M-2 and 4 V of the output voltage was obtained using a PDMS:GO 4% (w/w) composite and a steel spring. A correlation between the mass-spring system and the better performance of the triboelectric device is presented. Further, vibration frequencies in several external points of the transformer walls and the device's performance in these frequencies are shown, and the results gathered from this data are discussed.

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