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Power Generation Properties of Flow Nanogenerator With Mixture of Magnetic Nanofluid and Bubbles in Circulating System

机译:磁性纳米流体与气泡混合的循环流发电机的发电特性

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A method has been developed for demonstrating a flow nanogenerator by using a mixture of magnetic nanofluid (MNF) and bubbles in a fluid circulating system, and notable phenomena related to the power generation properties of the nanogenerator have been explored. MNF is widely used in various areas because of its interesting magnetic properties under an external magnetic field. The objective of the proposed technique is to obtain the induced electromotive force (EMF) based on Faraday's law due to the flow of MNF in a closed-circulating system. To maximize the induced EMF, magnetic nanoparticles (MNPs) should pass through the induction coil with a perpendicular magnetization direction in accordance with Faraday's law. To control the magnetization direction of the MNPs, a permanent magnet was employed to produce an external magnetic field that considers the Brownian and Néel motions. To obtain a continuously induced voltage, a circulation system was implemented ensuring the flow of the MNF in the closed cycle. Further, power generation properties were investigated considering electric, magnetic, and fluidic effects. To analyze this complicated physics, a multiphysics analysis was used to calculate the flow pattern of the MNF according to its magnetic properties, and the acquired results were compared with those obtained from the experiment. From these experiments, we investigated the generation properties of the nanogenerator considering the flowrate of the MNF as well as the presence or absence of bubbles within the MNF. Our experimental tests demonstrated that the continuous power generation mode was successfully achieved with a mixture of MNF and bubbles.
机译:已经开发了一种通过在流体循环系统中使用磁性纳米流体(MNF)和气泡的混合物来演示流动纳米发电机的方法,并且已经探索了与纳米发电机的发电特性有关的显着现象。 MNF由于其在外部磁场下具有令人感兴趣的磁性能而被广泛用于各个领域。提出的技术的目的是基于法拉第定律获得由于闭环系统中MNF的流动而产生的感应电动势(EMF)。为了使感应电动势最大化,根据法拉第定律,磁性纳米粒子(MNP)应该以垂直磁化方向穿过感应线圈。为了控制MNP的磁化方向,采用了永磁体来产生考虑布朗运动和Neel运动的外部磁场。为了获得连续感应的电压,实施了循环系统以确保MNF在闭合循环中流动。此外,研究了考虑电,磁和流体效应的发电特性。为了分析这种复杂的物理现象,使用多物理场分析方法根据其磁特性计算MNF的流动模式,并将获得的结果与从实验中获得的结果进行比较。从这些实验中,我们考虑了MNF的流量以及MNF中是否存在气泡,研究了纳米发电机的发电特性。我们的实验测试表明,使用MNF和气泡的混合物成功实现了连续发电模式。

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