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Optimal nanocone geometry for water flow

Zheng SunState Key Laboratory of Coal Resources and Safe Mining China University of Mining and Technology Xuzhou ChinaSuran WangHao XiongDepartment of Molecular Biophysics and Biochemistry Yale University New Haven Connecticut USAKeliu WuState Key Laboratory of Petroleum Resources and Prospecting in China University of Petroleum (Beijing) Beijing ChinaJuntai ShiState Key Laboratory of Petroleum Resources and Prospecting in China University of Petroleum (Beijing) Beijing China
2021en
ABI

Abstract

Abstract The pursuit, toward transport efficiency, is significantly necessary for energy conversion, water filtration. However, structure design, aiming at further enhancing nanoconfined water flow, is still lacking. With the motivation to bridge the knowledge gap, a simple yet practical model regarding the nanocone structure design is established. This research demonstrates that nanocone, with desirable opening angle and length, possesses the capacity to achieve the optimal flow behavior. Flow resistance occurring inside nanocones, and that at cone entrance, exit, are considered. Optimal nanocone geometry can be determined based on the minimization of total resistance. Results show that (a) suitable opening angle spans from 10° to 30° over a wide range of nanocone geometry; (b) evident decline tendency of the suitable opening angle toward the increasing surface wettability is captured; and (c) water transport capacity inside optimal nanocone is 4–50 times that within cylindrical nanopores. This article forms a theoretical framework for nanocone design.

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