TY - GEN
T1 - Development of a novel underwater microrobot with proximity sensors
AU - Shi, Liwei
AU - Guo, Shuxiang
AU - Asaka, Kinji
PY - 2011
Y1 - 2011
N2 - In the field of underwater monitoring for applications such as pollution detection and video mapping in limited space, underwater microrobots are urgently demanded. Compact structure, multi-functionality, and flexibility are normally considered as incompatible characteristics for underwater microrobots. To implement these purposes, we have developed several types of microrobots with both compact structure and flexible locomotion. However, they just implemented one or two motions, such as walking, rotating, swimming, grasping, or floating motions. So, in this paper, we designed a novel type of biomimetic locomotion employing ionic polymer metal composite (IPMC) actuator as one-DOF leg. Then we proposed a new type of underwater microrobot using ten ionic polymer metal composite (IPMC) actuators as legs, fins, or fingers, which could implement walking, rotating, floating, swimming, and grasping motions at the same time. Also, we developed a prototype of this underwater microrobot and carried out some experiments to evaluate its walking, rotating, and floating speeds. In addition, we used two IPMC actuators as fingers to grasp some small objects, and used other two actuators as fins to implement the swimming motion like a frog. To implement the closed-loop control for the microrobot, we used three proximity sensors to detect the object or avoid the obstacle while walking.
AB - In the field of underwater monitoring for applications such as pollution detection and video mapping in limited space, underwater microrobots are urgently demanded. Compact structure, multi-functionality, and flexibility are normally considered as incompatible characteristics for underwater microrobots. To implement these purposes, we have developed several types of microrobots with both compact structure and flexible locomotion. However, they just implemented one or two motions, such as walking, rotating, swimming, grasping, or floating motions. So, in this paper, we designed a novel type of biomimetic locomotion employing ionic polymer metal composite (IPMC) actuator as one-DOF leg. Then we proposed a new type of underwater microrobot using ten ionic polymer metal composite (IPMC) actuators as legs, fins, or fingers, which could implement walking, rotating, floating, swimming, and grasping motions at the same time. Also, we developed a prototype of this underwater microrobot and carried out some experiments to evaluate its walking, rotating, and floating speeds. In addition, we used two IPMC actuators as fingers to grasp some small objects, and used other two actuators as fins to implement the swimming motion like a frog. To implement the closed-loop control for the microrobot, we used three proximity sensors to detect the object or avoid the obstacle while walking.
KW - biomimetic underwater microrobot
KW - ionic polymer metal composite actuator
KW - micromechanism
UR - http://www.scopus.com/inward/record.url?scp=79960004147&partnerID=8YFLogxK
U2 - 10.1109/ICCME.2011.5876707
DO - 10.1109/ICCME.2011.5876707
M3 - Conference contribution
AN - SCOPUS:79960004147
SN - 9781424493241
T3 - 2011 IEEE/ICME International Conference on Complex Medical Engineering, CME 2011
SP - 69
EP - 73
BT - 2011 IEEE/ICME International Conference on Complex Medical Engineering, CME 2011
T2 - 2011 5th IEEE/ICME International Conference on Complex Medical Engineering, CME 2011
Y2 - 22 May 2011 through 25 May 2011
ER -