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Concept of the Hexa-Quad Bimorph Walking Robot and the Design of its Prototype Cover

Concept of the Hexa-Quad Bimorph Walking Robot and the Design of its Prototype

Open Access
|Apr 2018

References

  1. 1. Bartsch S. (2012), Development, control, and empirical evaluation of the six-legged robot SpaceClimber designed for extraterrestrial crater exploration, dissertation, Bremen, University of Bremen.
  2. 2. Boston Dynamics website https://www.bostondynamics.com/robots [Access date: 26.10.2017].
  3. 3. Garcia E., Estremera J., Gonzalez-de-Santos P. (2002) A comparative study of stability margins for walking machines. Robotica, 20, 595-606.10.1017/S0263574702004502
  4. 4. Garcia E., Estremera J., Gonzalez-de-Santos P. (2002), A classification of stability margins for walking robots, Proceedings of CLA-WAR, Paris, France.
  5. 5. Hajiabadi M.M.A. (2013), Analytical workspace, kinematics, and foot force based stability of hexapod walking robots, dissertation, Worcester: Worcester Polytechnic Institute.
  6. 6. Hirsoe S., Tsukagoshi H., Yoneda K. (2001), Normalized energy stability margin and its contour of walking vehicles on rough terrain, International Conference on Robotics & Automation, Seoul Korea.
  7. 7. Hung M-H., Cheng F-T., Lee H-L. (2005), Orin DE. Increasing the stability margin of multilegged vehicles through body sway. J Chin. Inst. Eng, 28, 39-54.10.1080/02533839.2005.9670971
  8. 8. Inagaki K. (1998), A gait study for one-leg-disabled hexapod robot, Advanced Robotics, 12, 593-604.10.1163/156855397X00489
  9. 9. Kim J-Y., Jun B-H. (2014), Design of six-legged walking robot, Little Crabster for underwater walking and operation, Advanced Robotics, 28, 77-89.10.1080/01691864.2013.856832
  10. 10. Kolouche S., Rollinson D., Choset H. (2015), Modularity for maximum mobility and manipulation: control of a reconfigurable legged robot with series-elastic actuators, Proceedings of the IEEE International Symposium on Safety, Security and Robotics (SSRR), 1-8.10.1109/SSRR.2015.7442943
  11. 11. Lewinger W.A, Branicky M.S., Quinn R.D. (2005), Insect-inspired, actively compliant hexapod capable of object manipulation, Proceedings of CLAWAR, Londom, 65-72.10.1007/3-540-26415-9_7
  12. 12. Manz M., Bartsch S., Kirchner F. (2013), MANTIS - a robot with advanced locomotion and manipulation abilities, Proceedings of Symposium on Advanced Space Technologies in Robotics and Automation, Noordwijk the Netherlands.
  13. 13. Morecki A., Knapczyk.J. (1999), Basics of Robotics – theory and elements of manipulators and robots (in polish), Warszawa.10.1007/978-3-7091-2532-8
  14. 14. Roennau A., Heppner G., Nowicki M., Dillmann R. (2014), LAURON V: A versatile six-legged walking robot with Advanced Maneuverability, IEEE/ASME International Conference on Advanced Intelligent Mechatronics (AIM), Besançon, France, 82-87.10.1109/AIM.2014.6878051
  15. 15. Saunders A., Goldman D.I., Full R.J., Buehler M. (2006), The RiSE climbing robot: body and leg design, Proceedings of The International Society of Optical Engineering, Orlando USA, 6230, 623017.10.1117/12.666150
  16. 16. Tang Y., Ma S., Sun Y., Ge D. (2015), Planar legged walking of passive-spine hexapod robot, Advanced Robotics, 29, 1510-1525.10.1080/01691864.2015.1070105
  17. 17. Todd D.J. (1985), Walking machines - An introduction to legged robots, Springer, London.10.1007/978-1-4684-6858-8
  18. 18. Wojtkowiak D., Malujda I., Talaśka K., Magdziak Ł., Wieczorek B. (2017), Influence of the Body Weight Distribution on the Walking Robot's Gait Stability, Proceedia Engineering, 177, 419-424.10.1016/j.proeng.2017.02.239
  19. 19. Wojtkowiak D., Talaśka K., Malujda I. (2016), Computer analysis of insect-like robot leg structure – part 1 – Static Finite-Element analysis, Journal of Mechanical and Transport Engineering, 68(3), 53-62.10.21008/j.2449-920X.2016.68.3.05
  20. 20. Wojtkowiak D., Talaśka K., Malujda I. (2016), Computer analysis of insect-like robot leg structure – part 2 – kinematic and dynamic analyses, Journal of Mechanical and Transport Engineering, 68(3), 63-75.10.21008/j.2449-920X.2016.68.3.06
  21. 21. Wojtkowiak D., Talaśka K., Malujda I. (2017), The selection of the bimorph walking robot drives based on the dynamic model of its legs (in polish), Inżynieria wytwarzania, Wyd. uczelniane Państwowej Wyższej Szkoły Zawodowej w Kaliszu, in press.
  22. 22. Zielińska T. (2014), Walking robots – basics, design, steering and biological patterns, PWN, Warszawa.
DOI: https://doi.org/10.2478/ama-2018-0010 | Journal eISSN: 2300-5319 | Journal ISSN: 1898-4088
Language: English
Page range: 60 - 65
Submitted on: Jun 1, 2017
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Accepted on: Mar 20, 2018
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Published on: Apr 4, 2018
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2018 Dominik Wojtkowiak, Krzysztof Talaśka, Ireneusz Malujda, published by Bialystok University of Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.