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High Speed Robotics. Mechanical Engineering and Kinematics for Maximum Velocity Robotics. - 3: Robotic Fish iSplash-II

Realizing Fast Carangiform Swimming to Outperform a Real Fish

Parametry

  • 32 stránek
  • 2 hodiny čtení

Více o knize

Abstract—This paper introduces a new robotic fish, iSplash-II, capable of outperforming real carangiform fish in terms of average maximum velocity (measured in body lengths/ second) and endurance, the duration that top speed is maintained. A new fabrication technique and mechanical drive system were developed, effectively transmitting large forces at high frequencies to obtain high-speed propulsion. The lateral and thrust forces were optimized around the center of mass, generating accurate kinematic displacements and greatly increasing the magnitude of added mass. The prototype, with a length of 32cm has significantly increased the linear swimming speed of robotic fish, achieving consistent untethered stabilized swimming speeds of 11.6BL/s (i.e. 3.7m/s), with a frequency of 20Hz. Robotic fish • Carangiform swimming • Mechanical drive system • Full-Body length.

Nákup knihy

High Speed Robotics. Mechanical Engineering and Kinematics for Maximum Velocity Robotics. - 3: Robotic Fish iSplash-II, Richard James Clapham

Jazyk
Rok vydání
2016
Vazba
(měkká),
Stav knihy
Dobrá
Cena
209 Kč

Doručení

Platební metody

Nikdo zatím neohodnotil.Ohodnotit

Titul
High Speed Robotics. Mechanical Engineering and Kinematics for Maximum Velocity Robotics. - 3: Robotic Fish iSplash-II
Podtitul
Realizing Fast Carangiform Swimming to Outperform a Real Fish
Jazyk
anglicky
Vazba
měkká
Počet stran
32
ISBN10
1537270907
ISBN13
9781537270906
Série
Anotace
Abstract—This paper introduces a new robotic fish, iSplash-II, capable of outperforming real carangiform fish in terms of average maximum velocity (measured in body lengths/ second) and endurance, the duration that top speed is maintained. A new fabrication technique and mechanical drive system were developed, effectively transmitting large forces at high frequencies to obtain high-speed propulsion. The lateral and thrust forces were optimized around the center of mass, generating accurate kinematic displacements and greatly increasing the magnitude of added mass. The prototype, with a length of 32cm has significantly increased the linear swimming speed of robotic fish, achieving consistent untethered stabilized swimming speeds of 11.6BL/s (i.e. 3.7m/s), with a frequency of 20Hz. Robotic fish • Carangiform swimming • Mechanical drive system • Full-Body length.