Numerical study on flow rate limitation of open capillary channel flow through a wedge

Author:

Zhang Ting-Ting1,Yang Wen-Jing1,Lin Yu-Fei2,Cao Yu1,Wang Miao1,Wang Qian1,Wei Yue-Xing1

Affiliation:

1. State Key Laboratory of High Performance Computing, College of Computer, National University of Defense Technology, Changsha, China

2. Graduate School, National University of Defense Technology, Changsha, China

Abstract

The flow characteristics of slender-column flow in wedge-shaped channel under microgravity condition are investigated in this work. The one-dimensional theoretical model is applied to predict the critical flow rate and surface contour of stable flow. However, the one-dimensional model overestimates the critical flow rate for not considering the extra pressure loss. Then, we develop a three-dimensional simulation method with OpenFOAM, a computational fluid dynamics tool, to simulate various phenomena in wedge channels with different lengths. The numerical results are verified with the capillary channel flow experimental data on the International Space Station. We find that the three-dimensional simulation perfectly predicts the critical flow rates and surface contours under various flow conditions. Meanwhile, the general behaviors in subcritical, critical, and supercritical flow are studied in three-dimensional simulation considering variations of flow rate and open channel length. The numerical techniques for three-dimensional simulation is validated for a wide range of configurations and is hopeful to provide valuable guidance for capillary channel flow experiment and efficient liquid management in space.

Publisher

SAGE Publications

Subject

Mechanical Engineering

Cited by 7 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. A general form of capillary rise equation in micro-grooves;Scientific Reports;2020-11-12

2. OpenFOAM Simulations of Late Stage Container Draining in Microgravity;Fluids;2020-11-11

3. Numerical Simulation of Pitching Sloshing under Microgravity;Journal of Applied Fluid Mechanics;2019-09-01

4. ARMetis: OpenFOAM Oriented AR Based Mesh Partitioning Optimization Method;2018 IEEE 20th International Conference on High Performance Computing and Communications; IEEE 16th International Conference on Smart City; IEEE 4th International Conference on Data Science and Systems (HPCC/SmartCity/DSS);2018-06

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