TY - GEN
T1 - Interface motion driven by capillary action in microchannel
AU - Ichikawa, Naoki
AU - Maeda, Ryutaro
PY - 2003
Y1 - 2003
N2 - In microchannel flow, gas-liquid interface behavior will be important for developing a wide range of microfluidic applications, especially in micro reactors. In this paper, we discuss some topics related to capillary action and two-phase fluid behavior in a microchannel. One of the topics is interface motion in the flow driven only by capillary action. We examined circular and rectangular microchannel with diameter of 50 μm and 100 μm × 67 μm, respectively. For the circular channel, experiments well agreed with the previous theory in the case of ethyl alcohol as the test liquid. The effects of inner surface condition are found to be critical for interface motion on a microscopic scale. We have extended our theory to a rectangular microchannel. We obtained the same formula of relation between non-dimensional time and interface position as that of the circular channel. We compared predictions with experimental results of a PDMS microchannel. They agreed qualitatively, but not quantitatively. The difference was considered to be caused by contact angle estimation.
AB - In microchannel flow, gas-liquid interface behavior will be important for developing a wide range of microfluidic applications, especially in micro reactors. In this paper, we discuss some topics related to capillary action and two-phase fluid behavior in a microchannel. One of the topics is interface motion in the flow driven only by capillary action. We examined circular and rectangular microchannel with diameter of 50 μm and 100 μm × 67 μm, respectively. For the circular channel, experiments well agreed with the previous theory in the case of ethyl alcohol as the test liquid. The effects of inner surface condition are found to be critical for interface motion on a microscopic scale. We have extended our theory to a rectangular microchannel. We obtained the same formula of relation between non-dimensional time and interface position as that of the circular channel. We compared predictions with experimental results of a PDMS microchannel. They agreed qualitatively, but not quantitatively. The difference was considered to be caused by contact angle estimation.
UR - https://www.scopus.com/pages/publications/1242264029
U2 - 10.1115/icmm2003-1061
DO - 10.1115/icmm2003-1061
M3 - 会议稿件
AN - SCOPUS:1242264029
SN - 0791836673
SN - 9780791836675
T3 - International Conference on Microchannels and Minichannels
SP - 499
EP - 506
BT - International Conference on Microchannels and Minichannels
PB - American Society of Mechanical Engineers
T2 - First International Conference on Microchannels and Minichannels
Y2 - 24 April 2003 through 25 April 2003
ER -