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Design and Development of a Wheel-less Snake Robot with Active Stiffness Control for Adaptive Pedal Wave Locomotion

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Abstract

This paper presents the design and manufacture process of a wheel-less, modular snake robot with series elastic actuators to reliably measure motor torque signal and investigate the effectiveness of active stiffness control for achieving adaptive snake-like locomotion. A polyurethane based elastic element to be attached between the motor and the links at each joint was designed and manufactured using water jet cutter, which makes the final design easier to develop and more cost-effective, compared to existing snake robots with torque measurement capabilities. The reliability of such torque measurement mechanism was examined using simulated dynamical model of pedal wave motion, which proves the efficacy of the design. A distributed control system was also designed, which with the help of an admittance controller, enables active control of the joint stiffness to achieve adaptive snake robot pedal wave locomotion to climb over obstacles, which unlike existing methods does not require prior information about the location of the obstacle. The effectiveness of the proposed controller in comparison to open-loop control strategy was verified by the number of experiments. The results show the capability of the robot to successfully climb over obstacles with the height of more than 55% of the diameter of the snake robot modules.

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References

  1. Hirose S. Biologically inspired robots: Snake-like locomotors and manipulators. Oxford University Press, New York, USA 1993.

    Google Scholar 

  2. Rollinson D, Choset H. Pipe network locomotion with a snake robot. Journal of Field Robotics, 2016, 33, 322–336.

    Article  Google Scholar 

  3. Marvi H, Gong C, Gravish N, Astley H, Travers M, Hatton R L, Mendelson J R, Choset H, Hu D L, Goldman D I. Sidewinding with minimal slip: Snake and robot ascent of sandy slopes. Science, 2014, 346, 224–229.

    Article  Google Scholar 

  4. Transeth A A, Leine R I, Glocker C, Pettersen K Y, Liljeback P. Snake robot obstacle-aided locomotion: Modeling, simulations, and experiments. IEEE Transactions on Robotics, 2008, 24, 88–104.

    Article  Google Scholar 

  5. Hutchinson H F. About snakes. Nature, 1879, 20, 528–530.

    Article  Google Scholar 

  6. Mosauer W. On the locomotion of snakes. Science, 1932, 76, 583–585.

    Article  Google Scholar 

  7. Gray J. The mechanism of locomotion in snakes. Journal of Experimental Biology, 1946, 23, 101–120.

    Google Scholar 

  8. Toyoshima S, Tanaka M, Matsuno F. A study on sinuslifting motion of a snake robot with sequential optimization of a hybrid system. IEEE Transactions on Automation Science and Engineering, 2014, 11, 139–144.

    Article  Google Scholar 

  9. Hopkins J K, Spranklin B W, Gupta S K. A survey of snake-inspired robot designs. Bioinspiration & Biomimetics, 2009, 4, 21001.

    Article  Google Scholar 

  10. Liljebäck P, Pettersen K Y, Stavdahl O, Gravdahl J T. Hybrid modelling and control of obstacle-aided snake robot locomotion. IEEE Transactions on Robotics, 2010, 26, 781–799.

    Article  MATH  Google Scholar 

  11. Ryu J K, Chong N Y, You B J, Christensen H I. Locomotion of snake-like robots using adaptive neural oscillators. Intelligent Service Robotics, 2009, 3, 1–10.

    Article  Google Scholar 

  12. Li G Y, Zhang H X, Zhang J W, Bye R T. Development of adaptive locomotion of a caterpillar-like robot based on a sensory feedback CPG model. Advanced Robotics, 2014, 28, 389–401.

    Article  Google Scholar 

  13. Yamada H, Hirose S. Steering of pedal wave of a snake-like robot by superposition of curvatures. Proceedings of 2010 IEEE/RSJ International Conference on Intelligent Robots and Systems, Taipei, Taiwan, 2010, 419–424.

  14. Kano T, Watanabe Y, Satake F, Ishiguro A. Decentralized-controlled multi-terrain robot inspired by flatworm locomotion. Advanced Robotics, 2014, 28, 523–531.

    Article  Google Scholar 

  15. Torricelli D, Gonzalez J, Weckx M, Jimenez-Fabian R, Vanderborght B, Sartori M, Dosen S, Farina D, Lefeber D, Pons J L. Human-like compliant locomotion: State of the art of robotic implementations. Bioinspiration & Biomimetics, 2016, 11, 051002.

    Article  Google Scholar 

  16. Vespignani M, Melo K, Bonardi S, Ijspeert A J. Role of compliance on the locomotion of a reconfigurable modular snake robot. Proceedings of 2015 IEEE/RSJ International Conference on Intelligent Robots and Systems, Hamburg, Germany, 2015, 2238–2245.

  17. Kandhari A, Huang Y, Daltorio K A, Chiel H J, Quinn R D. Body stiffness in orthogonal directions oppositely affects worm-like robot turning and straight-line locomotion. Bioinspiration & Biomimetics, 2018, 13, 026003.

    Article  Google Scholar 

  18. Whitman, J, Ruscelli F, Travers M, Choset H. Shape-based compliant control with variable coordination centralization on a snake robot. Proceedings of 2016 IEEE Conference on Decision and Control, Las Vegas, USA, 2016, 5165–5170.

  19. Sato T, Kano T, Ishiguro A. A decentralized control scheme for an effective coordination of phasic and tonic control in a snake-like robot. Bioinspiration & Biomimetics, 2012, 7, 016005.

    Article  Google Scholar 

  20. Liljebäck P, Pettersen K Y, Stavdahl Ø, Gravdahl J T. Snake Robots: Modelling, Mechatronics, and Control. Springer-Verlag London, UK 2013.

    Book  MATH  Google Scholar 

  21. Liljebäck P, Stavdahl Ø, Pettersen K Y, Gravdahl J T. A modular and waterproof snake robot joint mechanism with a novel force/torque sensor. Proceedings of 2012 IEEE International Conference on Intelligent Robots and Systems, Vilamoura, Portugal, 2012, 4898–4905.

  22. Takaoka S, Yamada H, Hirose S. Snake-like active wheel robot ACM-R4.1 with joint torque sensor and limiter. Proceedings of 2011 IEEE International Conference on Intelligent Robots and Systems, San Francisco, USA, 2011, 1081–1086.

  23. Rollinson D, Bilgen Y, Brown B, Enner F, Ford S, Layton C, Rembisz J, Schwerin M, Willig A, Velagapudi P, Choset H. Design and architecture of a series elastic snake robot. Proceedings of IEEE International Conference on Intelligent Robots and Systems, Chicago, USA, 2014, 4630–4636.

  24. Martins L T, Arend Tatsch C A, Maciel E H, Gerndt R, da Silva Guerra R. A polyurethane-based compliant element for upgrading conventional servos into series elastic actuators. IFAC-PapersOnLine, 2015, 48, 112–117.

    Article  Google Scholar 

  25. Pratt G A, Williamson M. Series elastic actuators. Proceedings of 1995 IEEE/RSJ International Conference on Intelligent Robots and Systems. Human Robot Interaction and Cooperative Robots, Pittsburgh, USA, 1995, 399–406.

  26. Zhao Y, Paine N, Jorgensen S J, Sentis L. Impedance control and performance measure of series elastic actuators. IEEE Transactions on Industrial Electronics, 2018, 65, 2817–2827.

    Article  Google Scholar 

  27. Kano T, Sato T, Kobayashi R, Ishiguro A. Local reflexive mechanisms essential for snakes’ scaffold-based locomotion. Bioinspiration & Biomimetics, 2012, 7, 46008.

    Article  Google Scholar 

  28. Tesch M, Lipkin K, Brown I, Hatton R, Peck A, Rembisz J, Choset H. Parameterized and scripted gaits for modular snake robots. Advanced Robotics, 2009, 23, 1131–1158.

    Article  Google Scholar 

  29. Chen L, Ma S G, Wang Y C, Li B, Duan D P. Design and modelling of a snake robot in traveling wave locomotion. Mechanism and Machine Theory, 2007, 42, 1632–1642.

    Article  MATH  Google Scholar 

  30. Li G Y, Li W, Zhang J W, Zhang H X. Analysis and design of asymmetric oscillation for caterpillar-like locomotion. Journal of Bionic Engineering, 2015, 12, 190–203.

    Article  Google Scholar 

  31. Moreira F, Abundis A, Aguirre M, Castillo J, Bhounsule P. An inchworm-inspired robot based on modular body, electronics and passive friction pads performing the two-anchor crawl gait. Journal of Bionic Engineering, 2018, 15, 820–826.

    Article  Google Scholar 

  32. Akbarzadeh A, Kalani H. Design and modeling of a snake robot based on worm-like locomotion. Advanced Robotics, 2012, 26, 537–560.

    Article  Google Scholar 

  33. De Luca A, Book W. Robots with flexible elements. Handbook of Robotics, Springer, 2008, 287–319.

  34. Chen L, Ma S G, Wang Y C, Li B, Duan D P. Design and modelling of a snake robot in traveling wave locomotion. Mechanism and Machine Theory, 2007, 42, 1632–1642.

    Article  MATH  Google Scholar 

  35. Kerdok A E, Biewener A A, Mcmahon T A, Weyand P G, Herr H M. Energetics and mechanics of human running on surfaces of different stiffnesses. Journal of Applied Physiology, 2002, 92, 469–478.

    Article  Google Scholar 

  36. Geyer H, Seyfarth A, Blickhan R. Compliant leg behaviour explains basic dynamics of walking and running. Proceedings of the Royal Society B: Biological Sciences 2006, 273, 2861–2867.

    Article  Google Scholar 

  37. Hurst J W. The Role and Implementation of Compliance in Legged Locomotion, PhD thesis, Carnegie Mellon University, Pittsburgh, USA, 2008.

    Google Scholar 

  38. Calanca A, Muradore R, Fiorini P. Impedance control of series elastic actuators: Passivity and acceleration-based control. Mechatronics, 2017, 47, 37–48.

    Article  Google Scholar 

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Correspondence to Mohammadali Javaheri Koopaee.

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Koopaee, M.J., Bal, S., Pretty, C. et al. Design and Development of a Wheel-less Snake Robot with Active Stiffness Control for Adaptive Pedal Wave Locomotion. J Bionic Eng 16, 593–607 (2019). https://doi.org/10.1007/s42235-019-0048-x

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