t, t is proportional to L
2
. Therefore, it is thought that
the experimental results have a tendency
approximately agreed with eq. (2).
Figure 15: Almost parabolic relationship between the
mixing ratio R
m
and the distance d from the junction point.
If the curve is parabolic, t is proportional to L
2
.
5 CONCLUSIONS
Micro-fluidic mixer patterns were formed on quartz
substrates using 1:1 optical projection lithography
system, and three types of micro-mixers were
fabricated sandwiching the quartz substrates by
acrylic lid and vessel plates. Mixing of two liquids
were investigated by injecting strong alkali and
phenolphthalein solutions simultaneously from Y-
shape inlets. The state of mixing was in situ observed
on a monitor display using an optical microscope with
a high-resolution digital camera. The mixing was
clearly visualized caused by the chemical color
change from no color to red. Because the flow width
colored in red gradually increased along the flow
paths, mixing ratio was measured as the colored width
devided by the full width of the flow path.
Then, the mixing ratio dependence on flow rate
and flow path was clarified. The mixing ratio
increased when flow rate was decreased, and narrow
flow-path was used. It was demonstrated that the new
in situ observation method was effective to clarify the
diffusion mixing in micro-fluidic mixers. It was also
found that right-angled corners of flow paths were
effective for advancing the mixing of liquids.
In this research, flow path depth was fixed to 100
μm. It is considered that the mixing is also influenced
by the flow path depth or the aspect ratio of the flow-
path cross section. It is necessary to investigate
hereafter.
ACKNOWLEDGEMENTS
This work was partially supported by Research
Institute for Science and Technology of Tokyo Denki
University, Grant Number Q15T-03.
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BIODEVICES 2016 - 9th International Conference on Biomedical Electronics and Devices