The Influence of Bat Wings For Producing Efficient Net Body Forces in Bio-inspired Flapping Robots

Julian Colorado, Claudio Rossi, Antonio Barrientos, Diego Patino

2014

Abstract

Bat wings contain dozens of joints that enable the animal to perform aggressive maneuvers by means of changing the wing shape during flight. There is evidence that the inertial forces produced by their wings during flapping have a key role in the attitude movements of the animal, i.e. aerial rotations. In fact, bats efficiently generate net body forces to manoeuvre by taking advantage of their large wing-to-body mass ratio. In this paper, the following question is formulated: Could a Micro Aerial Vehicle (MAV) inspired by the biomechanics of bats take advantage of the morphing-wings aimed at increasing net body forces? Using BaTboT, a novel bat-like MAV with highly articulated wings actuated by shape memory alloy actuators, our goal is to quantify the effects of different wing modulation patterns on the generation of net body forces. Experiments are carried out to confirm the important physical role that changing the wing shape enables: the contraction time of the wings (upstroke) should be faster than the extension time (downstroke), taking about 37.5% of the wingbeat period. This modulation pattern has enabled a lift force increment of 22% (from L = 0:92N to L = 1:12N), abrupt drag reduction (from D = 0:22N to D = 0:11N) and also an increase of net body forces (Fnet ) about 28% compared to those wing modulation patterns defined with equal periods for contraction/extension. These findings can be useful for accurate dynamics modelling and efficient design of flight controllers applied to morphing-wing micro aerial vehicles.

References

  1. Bahlman, J., Swartz, S., and Breuer, K. (2013). Design and characterization of a multi-articulated robotic bat wing. Bioinspir. Biomim., (8):016009.
  2. Colorado, J., Barrientos, A., Rossi, C., Bahlman, J., and Breuer, K. (2012). Biomechanics of smart wings in a bat robot: morphing wings using sma actuators. Bioinspir. Biomim., (7):036006.
  3. Colorado, J., Barrientos, A., Rossi, C., and Parra, C. (2013). Inertial attitude control of a bat-like morphing-wing air vehicle. Bioinspir. Biomim., (8):016001.
  4. Gomez, J. and Garcia, E. (2011). Morphing unmanned aerial vehicles. Smart Mater Struct, (20):1-16.
  5. Hedenstrom, A., Johansson, L., and Spedding, G. (2009). Bird or bat: comparing airframe design and flight performance. Bioinsp. Biomim, vol. 4, no.1, pp. 5001.
  6. Iriarte-Diaz, J., Riskin, D., Willis, D., Breuer, K., and Swartz, S. (2011). Whole-body kinematics of a fruit bat reveal the influence of wing inertia on body accelerations. Journal of Experimental Biology, vol. 214, no. 9, pp. 1546-1553.
  7. Lentink, D. and Biewener, A. (2010). Nature inspired flight-beyond the leap. Bioinsp. Biomim, vol. 5, no. 4, p040201.
  8. Riskin, D., Bergou, A., Breuer, K., and Swartz, S. (2012). Upstroke wing flexion and the inertial cost of bat flight. Proceedings of the Royal Society B: Biological Sciences, vol. 279, p2945-2950.
  9. Riskin, D., Iriarte-Diaz, J., Middleton, K., Breuer, K., and Swartz, S. (2010). The effect of body size on the wing movements of pteropodid bats, with insights into thrust and lift production. The Journal of Experimental Biology, vol. 213 (23) pp. 4110-4122.
  10. Swartz, S., Iriarte-Diaz, J., Riskin, D., and Breuer, K. (2012). A bird? a plane? no, its a bat: an introduction to the biomechanics of bat flight. Evolutionary History of Bats Fossils, Molecules and Morphology, p317-352, Cambridge.
  11. Thollesson, M. and Norberg, U. (1991). Moments of inertia of bat wings and body. Journal of Experimental Biology, vol. 158, 1991, pp. 19-35.
  12. Winter, Y. and Helversen, O. V. (1998). The energy cost of flight: do small bats fly more cheaply than birds? J Comp Physiol B 168: 105-111.
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Paper Citation


in Harvard Style

Colorado J., Rossi C., Barrientos A. and Patino D. (2014). The Influence of Bat Wings For Producing Efficient Net Body Forces in Bio-inspired Flapping Robots . In Proceedings of the 11th International Conference on Informatics in Control, Automation and Robotics - Volume 2: ICINCO, ISBN 978-989-758-040-6, pages 528-532. DOI: 10.5220/0005085805280532


in Bibtex Style

@conference{icinco14,
author={Julian Colorado and Claudio Rossi and Antonio Barrientos and Diego Patino},
title={The Influence of Bat Wings For Producing Efficient Net Body Forces in Bio-inspired Flapping Robots},
booktitle={Proceedings of the 11th International Conference on Informatics in Control, Automation and Robotics - Volume 2: ICINCO,},
year={2014},
pages={528-532},
publisher={SciTePress},
organization={INSTICC},
doi={10.5220/0005085805280532},
isbn={978-989-758-040-6},
}


in EndNote Style

TY - CONF
JO - Proceedings of the 11th International Conference on Informatics in Control, Automation and Robotics - Volume 2: ICINCO,
TI - The Influence of Bat Wings For Producing Efficient Net Body Forces in Bio-inspired Flapping Robots
SN - 978-989-758-040-6
AU - Colorado J.
AU - Rossi C.
AU - Barrientos A.
AU - Patino D.
PY - 2014
SP - 528
EP - 532
DO - 10.5220/0005085805280532