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3篇 您的检索式:作者名="Fengran Xie"
    题名 作者 年代 出处 被引量
1Central Pattern Generator(CPG)Control of a Biomimetic Robot Fish for Multimodal Swimming显示文摘This paper introduces the design and control of a biomimetic robot fish for multimodal swimming.The biomimetic design consists of three parts:the rigid head,the wire-driven body and the compliant tail.The control is an improved Central Pattern Generator(CPG)with the high-level control command:(M,co,B,R),where M is the amplitude,co is the angular velocity,B is the offtet and R is the time ratio between two phases forming one flapping cycle.This method differs from previous research in two aspects:(1)The CPG control is firstly implemented on the wire-driven robot fish.(2)The improved CPG model synthesizes symmetrical flapping in cruising and asymmetrical flapping in turning for the robot fish.The asymmetrical flapping refers to the asymmetry of the offset and the time ratio.This combination of the design and the control has several advantages over the existing multimodal swimming robot fishes.First,it uses just one driving motor for undulatory oscillation while the others need to use two or more motors.Second,with just one motor,the CPG control can be easily implemented.Third,the use of the time ratio,R,makes the robot fish turn more naturally and effectively.Experimental results show the robot fish achieved the maximum speed of 1.37 Body Length/Second(BL.s-1)and the largest turning rate of 4577s.Additionally,in many swimming conditions,its Strouhal Number falls in the range from 0.2 to 0.4,which implies the robot fish is efficient.Fengran Xie Yong Zhong Ruxu Du Zheng Li 2019Journal of Bionic Engineering2019,16,2:4
2Bioinspired Closed-loop CPG-based Control of a Robot Fish for Obstacle Avoidance and Direction Tracking显示文摘This paper presents a study on bioinspired closed-loop Central Pattern Generator(CPG)based control of a robot fish for obstacle avoidance and direction tracking.The biomimetic robot fish is made of a rigid head with a pair of pectoral fins,a wire-driven active body covered with soft skin,and a compliant tail.The CPG model consists of four input parameters:the flapping amplitude,the flapping angular velocity,the flapping offset,and the time ratio between the beat phase and the restore phase in flapping.The robot fish is equipped with three infrared sensors mounted on the left,front and right of the robot fish,as well as an inertial measurement unit,from which the surrounding obstacles and moving direction can be sensed.Based on these sensor signals,the closed-loop CPG-based control can drive the robot fish to avoid obstacles and to track designated directions.Four sets of experiments are presented,including avoiding a static obstacle,avoiding a moving obstacle,tracking a designated direction and tracking a designated direction with an obstacle in the path.The experiment results indicated that the presented control strategy worked well and the robot fish can accomplish the obstacle avoidance and direction tracking effectively.Jiayong Chen Bo Yin Chengcai Wang Fengran Xie Ruxu Du Yong Zhong 2021Journal of Bionic Engineering2021,18,1:2
3Experimental Study on the Improvement of Yaw Stability by Coordination Control between the Caudal Fin and Anal Fin显示文摘Due to the unique locomotion,the head-shaking problem of biomimetic robotic fish inevitably occurs during rectilinear locomotion,which strongly hinders its practical applications.In this paper,we experimentally study this problem by proposing the method of coordination control between the caudal fin and anal fin.First,an untethered biomimetic robotic fish,equipped with an anal fin,a caudal fin and two pectoral fins,is developed as the experimental platform.Second,a Central Pattern Generator(CPG)-based controller is used to coordinate the motions of the anal fin and caudal fin.Third,extensive experiments are conducted to explore different combinations of the flapping frequencies,the flapping amplitudes,and the phase differences between the anal fin and caudal fin.Notably,through proper control of the anal fin,the amplitude of the yaw motion can be as small as 4.32°,which sees a 65%improvement compared to the scenario without anal fin,and a 57%improvement compared to that with a stationary anal fin.This paper provides a novel way to alleviate the head-shaking problem for biomimetic robotic fish,and first test this method on an untethered,freely swimming robotic platform,which can shed light on the development of underwater robotics.Jiang Ding Changzhen Zheng Chaocheng Song Qiyang Zuo Yaohui Xu Bingbing Dong Jiaxu Cui Kai He Fengran Xie 2022Journal of Bionic Engineering2022,19,5:1
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