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基于多相液体的液-固摩擦纳米发电机原型性能研究

Research on the Performance of a Liquid-Solid Triboelectric Nanogenerator Prototype Based on Multiphase Liquid.

作者信息

Wang Wei, Yan Jin, Wang Xianzhang, Pang Hongchen, Sun Chengqi, Sun Yin, Wang Lijun, Zhang Dapeng

机构信息

College of Naval Architecture and Shipping, Guangdong Ocean University, Zhanjiang 524088, China.

Guangdong Provincial Key Laboratory of Intelligent Equipment for South China Sea Marine Ranching, Guangdong Ocean University, Zhanjiang 524088, China.

出版信息

Micromachines (Basel). 2025 Jan 11;16(1):78. doi: 10.3390/mi16010078.

Abstract

In recent years, liquid-solid triboelectric nanogenerators (L-S TENGs) have been rapidly developed in the field of liquid energy harvesting and self-powered sensing. This is due to a number of advantages inherent in the technology, including the low cost of fabricated materials, structural diversity, high charge-energy conversion efficiency, environmental friendliness, and a wide range of applications. As liquid phase dielectric materials typically used in L-S TENG, a variety of organic and inorganic single-phase liquids, including distilled water, acidic solutions, sodium chloride solutions, acetone, dimethyl sulfoxide, and acetonitrile, as well as paraffinic oils, have been used in experiments. However, it is noteworthy that the function of multiphase liquids as dielectric materials is still understudied. The "Multiphase Liquid Triboelectric Nanogenerator Prototype (ML-TENG Pro)" presented in this paper takes a single-electrode solid-liquid triboelectric nanogenerator as the basic model and uses lubricating oil and deionized water as dielectric materials. After verifying the stability of single-phase liquid materials (e.g., DI water, seawater, ethanol, etc.) for power generation, the power generation performances of oil-water two-phase, gas-oil-water three-phase (with a small number of bubbles), and gas-oil-water three-phase (with many bubbles) in open space are further investigated. COMSOL Multiphysics 6.0 software was used to investigate the material transport mechanism and formation of oil-water two-phase and gas-oil-water three-phase. Finally, this study presents the power generation performance of ML-TENG Pro in the extreme state of gas-oil-water three-phase "emulsification". This paper outlines the limitations of the ML-TENG, named PRO, and suggests avenues for future improvement. The research presented in this paper provides a theoretical basis for evaluating the quality of lubricants for mechanical power equipment.

摘要

近年来,液固摩擦电纳米发电机(L-S TENGs)在液体能量收集和自供电传感领域得到了迅速发展。这归因于该技术固有的诸多优点,包括制造材料成本低、结构多样性、高电荷-能量转换效率、环境友好性以及广泛的应用范围。作为L-S TENG中典型使用的液相介电材料,各种有机和无机单相液体,包括蒸馏水、酸性溶液、氯化钠溶液、丙酮、二甲基亚砜和乙腈,以及石蜡油,都已用于实验。然而,值得注意的是,多相液体作为介电材料的功能仍未得到充分研究。本文提出的“多相液体摩擦电纳米发电机原型(ML-TENG Pro)”以单电极固液摩擦电纳米发电机为基本模型,并使用润滑油和去离子水作为介电材料。在验证了单相液体材料(如去离子水、海水、乙醇等)发电的稳定性之后,进一步研究了油水两相、气-油-水三相(含少量气泡)和气-油-水三相(含大量气泡)在开放空间中的发电性能。使用COMSOL Multiphysics 6.0软件研究了油水两相和气-油-水三相的物质传输机制和形成过程。最后,本研究展示了ML-TENG Pro在气-油-水三相“乳化”极端状态下的发电性能 。本文概述了名为PRO的ML-TENG的局限性,并提出了未来改进的途径。本文提出的研究为评估机械动力设备润滑剂的质量提供了理论依据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0907/11768017/ec560007bcad/micromachines-16-00078-g001.jpg

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