The electrokinetic energy conversion and streaming potential analytical solutions of couple stress nanofluids in the circular polyelectrolyte-grafted nanochannel

IF 4.6 2区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Chinese Journal of Physics Pub Date : 2024-08-16 DOI:10.1016/j.cjph.2024.08.021
Yue Zhang , Guangpu Zhao , Bo Xue , Mandula Buren , Yongjun Jian
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Abstract

The purpose of this study is to investigate the variation of streaming potential and EKEC efficiency of nanofluids with couple stress in the circular polyelectrolyte-grafted (PE-grafted) nanochannel under the combined effect of periodic pressure and magnetic field. The analytical solutions of the velocity field in the PEL region and electrolyte solution are obtained by solving the modified Navier-Stokes equation and the influence of several dimensionless parameters on the streaming potential and electrokinetic energy conversion (EKEC) efficiency are further discussed graphically. The results indicate that the streaming potential decreases with increasing Hartmann number and nanoparticle diameter within a certain parameter range. The dimensionless velocity shows an oscillating trend at different oscillating Reynolds numbers, and the oscillation is more pronounced at the interface between the PEL and the electrolyte solution. In addition, the EKEC efficiency of nanofluids in soft nanochannel is compared with that in a rigid one. It is shown that the EKEC efficiency is higher in PE-grafted nanochannel, and the couple stress plays an important role in improving the EKEC efficiency. We anticipate that these findings will help to reveal a novel understanding of energy conversion in the circular PE-grafted nanochannel.

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环形聚电解质接枝纳米通道中耦合应力纳米流体的电动能量转换和流势解析解
本研究旨在探讨在周期性压力和磁场的共同作用下,纳米流体在圆形聚电解质接枝(PE-grafted)纳米通道中的流势和电动能转换效率随耦合应力的变化。通过求解修正的纳维-斯托克斯方程,得到了PEL区域速度场和电解质溶液的解析解,并进一步用图表讨论了几个无量纲参数对流势和电动能量转换(EKEC)效率的影响。结果表明,在一定参数范围内,流势随哈特曼数和纳米粒子直径的增加而减小。在不同的振荡雷诺数下,无量纲速度呈振荡趋势,在 PEL 与电解质溶液的界面处振荡更为明显。此外,还比较了软纳米通道与硬纳米通道中纳米流体的 EKEC 效率。结果表明,PE 接枝纳米通道中的 EKEC 效率更高,耦合应力在提高 EKEC 效率方面发挥了重要作用。我们预计这些发现将有助于揭示环形 PE 接枝纳米通道能量转换的新理念。
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来源期刊
Chinese Journal of Physics
Chinese Journal of Physics 物理-物理:综合
CiteScore
8.50
自引率
10.00%
发文量
361
审稿时长
44 days
期刊介绍: The Chinese Journal of Physics publishes important advances in various branches in physics, including statistical and biophysical physics, condensed matter physics, atomic/molecular physics, optics, particle physics and nuclear physics. The editors welcome manuscripts on: -General Physics: Statistical and Quantum Mechanics, etc.- Gravitation and Astrophysics- Elementary Particles and Fields- Nuclear Physics- Atomic, Molecular, and Optical Physics- Quantum Information and Quantum Computation- Fluid Dynamics, Nonlinear Dynamics, Chaos, and Complex Networks- Plasma and Beam Physics- Condensed Matter: Structure, etc.- Condensed Matter: Electronic Properties, etc.- Polymer, Soft Matter, Biological, and Interdisciplinary Physics. CJP publishes regular research papers, feature articles and review papers.
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