Nanoscale fluid pumping using a symmetric temperature gradient: a molecular dynamics study

IF 2.7 3区 工程技术 Q2 ENGINEERING, MECHANICAL Nanoscale and Microscale Thermophysical Engineering Pub Date : 2022-05-01 DOI:10.1080/15567265.2022.2070561
M. Sahebi, A. Azimian
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引用次数: 1

Abstract

ABSTRACT In this study, using the molecular dynamics simulation method, three systems for fluid pumping at the nanoscale have been proposed based on the thermo-osmotic mechanism. These pumps work by applying a symmetric temperature gradient along the wall of a nanopore, which is asymmetric in shape or material. The three systems are a composite nanotube, a conical nanotube, and a composite conical nanopore. The simulation results show that, in all of the proposed systems, the fluid can be pumped continuously by means of heat energy and without using any external force or moving component. The physical mechanisms of the flow in these pumps are clarified using the principles of the thermo-osmotic phenomenon. The simulations show the geometry of the pump and the fluid-solid interaction strength play an important role in determining the pumping strength in all systems. It is shown that a composite conical nanopump compared to other proposed systems has a better performance in fluid pumping.
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使用对称温度梯度的纳米流体泵送:分子动力学研究
摘要本研究采用分子动力学模拟方法,基于热渗机理,提出了三种纳米级流体泵送系统。这些泵通过沿纳米孔壁施加对称的温度梯度来工作,纳米孔在形状或材料上是不对称的。这三个系统是复合纳米管、锥形纳米管和复合锥形纳米孔。仿真结果表明,在所有提出的系统中,流体都可以通过热能连续泵送,而不需要任何外力或移动部件。利用热渗现象的原理阐明了这些泵中流动的物理机制。模拟结果表明,在所有系统中,泵的几何形状和流固相互作用强度在决定泵送强度方面起着重要作用。结果表明,与其他提出的系统相比,复合锥形纳米泵在流体泵送方面具有更好的性能。
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来源期刊
Nanoscale and Microscale Thermophysical Engineering
Nanoscale and Microscale Thermophysical Engineering 工程技术-材料科学:表征与测试
CiteScore
5.90
自引率
2.40%
发文量
12
审稿时长
3.3 months
期刊介绍: Nanoscale and Microscale Thermophysical Engineering is a journal covering the basic science and engineering of nanoscale and microscale energy and mass transport, conversion, and storage processes. In addition, the journal addresses the uses of these principles for device and system applications in the fields of energy, environment, information, medicine, and transportation. The journal publishes both original research articles and reviews of historical accounts, latest progresses, and future directions in this rapidly advancing field. Papers deal with such topics as: transport and interactions of electrons, phonons, photons, and spins in solids, interfacial energy transport and phase change processes, microscale and nanoscale fluid and mass transport and chemical reaction, molecular-level energy transport, storage, conversion, reaction, and phase transition, near field thermal radiation and plasmonic effects, ultrafast and high spatial resolution measurements, multi length and time scale modeling and computations, processing of nanostructured materials, including composites, micro and nanoscale manufacturing, energy conversion and storage devices and systems, thermal management devices and systems, microfluidic and nanofluidic devices and systems, molecular analysis devices and systems.
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