TY - JOUR
T1 - Dynamics of buoyancy-driven microflow in a narrow annular space
AU - Wang, Yanzhong
AU - Zhang, Yaping
AU - Yang, Kai
AU - Lu, Boji
AU - Gao, Hao
N1 - Publisher Copyright:
© 2023, Zhejiang University Press.
PY - 2023/12
Y1 - 2023/12
N2 - This paper aims to investigate the dynamics of buoyancy-driven microflow in a narrow annular space inside a liquid floated gyroscope (LFG). Several theoretical models with a non-uniform thermal boundary for fluid flow in annular channels are given to analyze the effects of various parameters, such as the clearance size h, roughness height r c, and rough density ε, on the flow and temperature profiles as well as on the fluid-drag torque. In the narrow annular regime, the relationship between the temperature and the angular displacement of the outer wall is defined as a cosine function, and the surface roughness of the inner wall is structured as a series of surface protrusions with a circular shape. With the increase of clearance size h, the flow velocity gradually increases to a stable level, and the drag torque increases initially and then decreases to a stable level. Furthermore, the increase of roughness height r c and roughness density ε intensifies the frictional effect of fluid on the inner-wall surface. However, these two parameters have no significant effect on the flow velocity. This study can provide theoretical references for precision manufacturing and precision improvement of gyro instruments.
AB - This paper aims to investigate the dynamics of buoyancy-driven microflow in a narrow annular space inside a liquid floated gyroscope (LFG). Several theoretical models with a non-uniform thermal boundary for fluid flow in annular channels are given to analyze the effects of various parameters, such as the clearance size h, roughness height r c, and rough density ε, on the flow and temperature profiles as well as on the fluid-drag torque. In the narrow annular regime, the relationship between the temperature and the angular displacement of the outer wall is defined as a cosine function, and the surface roughness of the inner wall is structured as a series of surface protrusions with a circular shape. With the increase of clearance size h, the flow velocity gradually increases to a stable level, and the drag torque increases initially and then decreases to a stable level. Furthermore, the increase of roughness height r c and roughness density ε intensifies the frictional effect of fluid on the inner-wall surface. However, these two parameters have no significant effect on the flow velocity. This study can provide theoretical references for precision manufacturing and precision improvement of gyro instruments.
KW - Annular channel
KW - Fluid drag
KW - Liquid floated gyroscope (LFG)
KW - Roughness feature
UR - https://www.scopus.com/pages/publications/85179370057
U2 - 10.1631/jzus.A2200617
DO - 10.1631/jzus.A2200617
M3 - 文章
AN - SCOPUS:85179370057
SN - 1673-565X
VL - 24
SP - 1131
EP - 1139
JO - Journal of Zhejiang University: Science A
JF - Journal of Zhejiang University: Science A
IS - 12
ER -