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Stable Haptic Interaction with Reference Energy Following Scheme

에너지 추종방법을 이용한 안정적 햅틱 상호작용

  • 유지환 (한국기술교육대학교 기계정보공학부)
  • Published : 2006.03.01

Abstract

A recently proposed method for stabilizing haptic interfaces and teleoperation systems was tested with a 'PHANToM' commercial haptic device. The 'Passivity Observer' (PO) and 'Passivity Control1er' (PC) stabilization method was applied to stabilize the system but also excited a high frequency mode in the device. To solve this problem, we propose a method to use a timevarying desired energy threshold instead of fixed zero energy threshold for the PO, and make the actual energy input follow the timevarying energy threshold. With the time-varying energy threshold, we make the PC control action smooth without sudden impulsive behavior by distributing the dissipation. The proposed new PO/PC approach is applied to PHANToM with high stiffness (K = 5000N/m), and stable and smooth contact is guaranteed. Resetting and active environment display problems also can be solved with the reference energy following idea.

Keywords

References

  1. R. J. Anderson and M. W. Spong, 'Asymptotic stability for force reflecting teleoperators with time delay,' Int. Journal of Robotics Research, vol. 11, no. 2, pp. 135-149, 1992 https://doi.org/10.1177/027836499201100204
  2. J. E. Colgate, M. C. Stanley, J. M. Brown, 'Issues in the haptic display of tool use,' Proc. IEEE/RSJ Int. Conf. on Intelligent Robotics and Systems, Pittsburgh, PA, 1995, pp. 140-145 https://doi.org/10.1109/IROS.1995.525875
  3. J. E. Colgate, and G. Schenkel, 'Passivity of a class of sampled data systems: application to haptic interfaces,' American Control Conference, Baltimore, MD, 1994, pp. 3236-3240 https://doi.org/10.1109/ACC.1994.735172
  4. B. Hannaford and J. H. Ryu, 'Time domain passivity control of haptic interfaces,' IEEE Trans. on Robotics and Automation, vol. 18, no. 1, pp. 1-10, 2002 https://doi.org/10.1109/70.988969
  5. Y. S. Kim and B. Hannaford, 'Some practical issues in time domain passivity control of haptic interfaces,' Proc. IEEE/RSJ Int. Conf. on Intelligent Robotics and Systems, Maui, Hawaii, 2001 https://doi.org/10.1109/IROS.2001.977230
  6. B. E. Miller, J. E. Colgate and R. A. Freeman, 'Environment delay in haptic systems,' Proc. IEEE Int. Conf. Robot. Automat., San Francisco, CA, April, 2000, pp. 2434-2439 https://doi.org/10.1109/ROBOT.2000.846392
  7. G. Niemeyer and J. J. Slotine, 'Stable adaptive teleoperation,' IEEE Journal of Oceanic Engineering, vol. 16, pp. 152-162, 1991 https://doi.org/10.1109/48.64895
  8. J. H. Ryu, D. S. Kwon and B. Hannaford, 'Stable teleoperation with time domain passivity control,' IEEE Trans. on Robotics and Automation, vol. 20, no. 2, pp. 365-373, 2004 https://doi.org/10.1109/TRA.2004.824689
  9. J. H. Ryu, Y. S. Kim and B. Hannaford, 'Sampled and continuous time passivity and stability of virtual environments,' IEEE Trans. on Robotics, vol. 20, no. 4, pp. 772-776, 2004 https://doi.org/10.1109/TRO.2004.829453
  10. S. Stramigioli, C. Secchi and A. J. van der Schaft, 'A novel theory for sampled data system passivity,' IEEE/RSJ Int. Conf. on Intelligent Robotics and Systems, Switzerland, 2002, pp. 1936-1941 https://doi.org/10.1109/IRDS.2002.1044039
  11. A. J. van der Schaft, 'L2-gain and passivity techniques in nonlinear control,' Communications and Control Engineering Series, Springer, 2000
  12. J. C. Willems, 'Dissipative dynamical systems, part I: general theory,' Arch. Rat. Mech. An., vol. 45, pp. 321-351, 1972 https://doi.org/10.1007/BF00276493
  13. C. B. Zilles and J. K. Salisbury, 'A constraint-based god-object method for haptic display,' Proc. IEEE/RSJ Int. Conf. on Intelligent Robotics and Systems, Pittsburgh, PA, 1995, pp. 146-151 https://doi.org/10.1109/IROS.1995.525876