Precursor film dynamics during imbibition in capillaries with variable cross sections

S Shengting Zhang (State Key Laboratory of Petroleum Resources and Engineering, China University of Petroleum (Beijing) 1 , Beijing 102249,) J Jing Li R Rodrigo C. V. Coelho (Centro Brasileiro de Pesquisas Físicas) K Keliu Wu Z Zhangxin Chen (Zhejiang Key Laboratory of New Drug Development for Central Nervous System Diseases Taizhou University Taizhou China)

Abstract

Understanding imbibition and the associated microscopic wetting dynamics is essential for advances in microfluidics, energy-related applications, and surface material design. In this work, we numerically investigate imbibition in straight, converging, and diverging capillaries under various pressure differences using a three-dimensional (3D) Shan–Chen lattice Boltzmann method. In straight capillaries, the meniscus advances steadily with a dynamic contact angle that remains consistently larger than the static value. In converging capillaries, imbibition initiates slowly due to the wide inlet and the resulting weak capillary pressure but accelerates as the interface propagates downstream. In contrast, imbibition in diverging capillaries is initially rapid and progressively decelerates as the channel expands. The imbibition rate is found to strongly regulate precursor film formation, with slower meniscus advancement favoring earlier film propagation. Under small pressure differences, precursor films emerge at early stages in converging capillaries, whereas in diverging geometries they appear only at intermediate or late stages. We further examine precursor film dynamics in rapidly diverging capillaries subjected to adverse pressure gradients. With increasing adverse pressure, the main meniscus progressively slows and may eventually arrest, while the precursor film continues to spread and can fully coat the capillary wall. Beyond a critical pressure threshold, both imbibition and precursor film propagation are completely suppressed. These results highlight that by tuning the axial capillary geometry and the driving pressure difference, the imbibition velocity can be effectively regulated, enabling the controlled manipulation of precursor film dynamics in capillary-driven microfluidic systems.

Article Details

Volume / Issue Vol. 139, Issue 5
Published February 07, 2026
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (5)

S

Shengting Zhang

State Key Laboratory of Petroleum Resources and Engineering, China University of Petroleum (Beijing) 1 , Beijing 102249,

J

Jing Li

R

Rodrigo C. V. Coelho

Centro Brasileiro de Pesquisas Físicas

K

Keliu Wu

Z

Zhangxin Chen

Zhejiang Key Laboratory of New Drug Development for Central Nervous System Diseases Taizhou University Taizhou China