Lattice Boltzmann simulation of neutrally buoyant circular slip particle motion in a clockwise double-lid-driven square cavity

Author:

Wang Liang12ORCID,Li Zhitao12,Wu Sen12,Tao Shi3ORCID,Zhang Kai12,Bi Jingliang4,Lu Gui1ORCID

Affiliation:

1. Beijing Key Laboratory of Emission Surveillance and Control for Thermal Power Generation, North China Electric Power University 1 , Beijing 102206, China

2. School of Energy Power and Mechanical Engineering, North China Electric Power University 2 , Beijing 102206, China

3. Guangdong Provincial Key Laboratory of Distributed Energy Systems, Dongguan University of Technology 3 , Dongguan 523808, China

4. CNNC Key Laboratory on Nuclear Reactor Thermal Hydraulics Technology, Nuclear Power Institute of China 4 , Chengdu 610213, China

Abstract

This paper is on the motion of a neutrally buoyant but circular slip particle in a clockwise double-lid-driven square cavity. The slip flow at the particle surface is implemented by the lattice Boltzmann method with corrected slip boundary schemes. The effects of slip length (Ls), initial particle position, Reynolds number (Re), and particle size (D) are studied on the migration of the slip particle. The motion of the circular slip particle is dominated by the centrifugal and boundary-repulsion forces. The results show that the cavity center is the unique fixed point, and once the slip particle initially deviates from the cavity center, it is always stabilized at the same limit cycle. With the increase in slip length, the limit cycle of the circular slip particle is closer to the cavity boundaries, which brings a stronger centrifugal force to balance the increased boundary-confinement effect. As the slip length, Ls, exceeds 0.02D, the limit cycle forms more quickly than the circular no-slip particle. When Re increases to within 1000, the limit cycle is squashed along the leading diagonal of the cavity and pushed toward the boundaries; however, when Re increases beyond 1000, two developing secondary vortices confine the limit cycle to shrink toward the cavity center. With the increase in particle size, the enhanced boundary confinements lead to the shrinkage of the limit cycle toward the cavity center.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities of the Central Universities

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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