TY - CONF
T1 - Microfluidic device for automated generation of toroidal-like spheroids
AU - Takai, Hirochika
AU - Kojima, Masaru
AU - Ohara, Kenichi
AU - Horade, Mitsuhiro
AU - Tanikawa, Tamio
AU - Mae, Yasushi
AU - Yamato, Masayuki
AU - Arai, Tatsuo
PY - 2013
Y1 - 2013
N2 - In the field of tissue engineering, it is called for to automate generation of various-shaped spheroids. We propose a micro fluidic device that generates rotational flow for producing toroidal-like spheroid. This paper reports the concept of construction of toroidal-like spheroid, designs of microchannels, and fundamental verification about generation of rotational flow in the device using simulation and experiment using created mi-crochannels. Concept of construction is non-contact operation in a continuous flow stimulus by using centrifugal force of rotational flow. Designs of the micro fluidic device was optimized to generate micro-rotational flow, and the results of flow simulation models show that rotational flow is generated at the flow velocity more than fixed. We made these designs. The large size channel was made with 3D printer and the small channel was made by poly-dimethysiloxane (PDMS) molding, and generation of rotational flow was observed in an experiment using particles. In both types of channels, particles were rotated similar to the simulations.
AB - In the field of tissue engineering, it is called for to automate generation of various-shaped spheroids. We propose a micro fluidic device that generates rotational flow for producing toroidal-like spheroid. This paper reports the concept of construction of toroidal-like spheroid, designs of microchannels, and fundamental verification about generation of rotational flow in the device using simulation and experiment using created mi-crochannels. Concept of construction is non-contact operation in a continuous flow stimulus by using centrifugal force of rotational flow. Designs of the micro fluidic device was optimized to generate micro-rotational flow, and the results of flow simulation models show that rotational flow is generated at the flow velocity more than fixed. We made these designs. The large size channel was made with 3D printer and the small channel was made by poly-dimethysiloxane (PDMS) molding, and generation of rotational flow was observed in an experiment using particles. In both types of channels, particles were rotated similar to the simulations.
KW - Biorobotics
KW - Micro fluidics
KW - Micro-rotational flow
KW - Spheroid
KW - tissue engineering
UR - http://www.scopus.com/inward/record.url?scp=84899097966&partnerID=8YFLogxK
U2 - 10.1109/URAI.2013.6677497
DO - 10.1109/URAI.2013.6677497
M3 - Paper
AN - SCOPUS:84899097966
SP - 140
EP - 143
T2 - 2013 10th International Conference on Ubiquitous Robots and Ambient Intelligence, URAI 2013
Y2 - 30 October 2013 through 2 November 2013
ER -