Published October 5, 2020 | Version v1
Conference paper Open

Hybrid propulsion control with enhanced lever haptics

  • 1. Kwant Controls, Sneek

Description

During the last decade, hybrid propulsion is proven as an upcoming method to save fuel onboard of vessels. Especially parallel drives with a diesel-engine and an electric machine with a DC electric network under power management system (PMS) control is of interest. Although fuel saving and emission reductions of seagoing vessels are achieved, the safety of manoeuvring must remain priority. Under all circumstances the master must be certain that the demanded thrusts are achieved from the selected station-in-control. For hybrid propulsion so far, much emphasis has been put on PMS from rule-based, via linear programming to grey wolf methods. However, the impact of the human factors on safety of manoeuvring the vessel has not yet attracted much interest. In most cases various modes of operation are selectable via touch-screens.
This paper introduces a method for power management and propulsion mode selection by the use of the propulsion levers with haptic feedback. Instead of touch-screens, the levers, in conjunction with the measured speed-through-water and other variables, are used to estimate the required propulsion load. An advanced rule-based PMS system is used to set the required generator loads and to control the charging and discharging of the batteries. The PMS system uses the lever-based power estimation. Via force feedback and vibration of the lever-in-control, the master is informed about the machinery state and starting / stopping sequences. The lever-in-control can be at various stations. All devices, including rudders and other manoeuvring enhancing devices are under a single control transfer regime.
Furthermore, this paper describes and analyses the safety benefits of intuitive control inputs and machinery state feedback on base of tactile feedback. For the transit mode it is shown, that more fuel-saving is possible by using the power / reversing levers for the load prediction, compared to only using PMS with conventional mode selection. In harbour mode the emphasis is on achieving the required thrusts and yaw moments as fast as possible and in the most efficient way.

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References

  • Armstrong-Hélouvry, B., Dupont, P., & De Wit, C. C. (1994). A survey of models, analysis tools and compensation methods for the control of machines with friction. Automatica, 30(7), 1083-1138.
  • Asif, A., Heuten, W., & Boll, S. (2010, October). Exploring distance encodings with a tactile display to convey turn by turn information in automobiles. In Proceedings of the 6th Nordic conference on human-computer interaction: Extending boundaries (pp. 32-41).
  • Barrow, A., & Harwin, W. (2016). Design and analysis of a haptic device design for large and fast movements. Machines, 4(1), 8.
  • Bernstein, N. L., Lawrence, D. A., & Pao, L. Y. (2005, March). Friction modeling and compensation for haptic interfaces. In First Joint Eurohaptics Conference and Symposium on Haptic Interfaces for Virtual Environment and Teleoperator Systems. World Haptics Conference (pp. 290-295). IEEE.
  • Boff, K. R., Kaufman, L., & Thomas, J. P. (Eds.). (1986). Handbook of perception and human performance.
  • Bossert, V. et al. (2017), More efficient diesel-electric power-plant for dredgers, Dredging Summit & Expo '17 Proceedings
  • Chawda, V., Celik, O., & O'Malley, M. K. (2018). Evaluation of velocity estimation methods based on their effect on haptic device performance. IEEE/ASME Transactions on Mechatronics, 23(2), 604-613.
  • Colgate, J. E., & Brown, J. M. (1994, May). Factors affecting the z-width of a haptic display. In Proceedings of the 1994 IEEE International Conference on Robotics and Automation (pp. 3205-3210). IEEE.
  • Einsiedler. M. (2017). Hybrid Energy and Propulsion System for Vessels in Timetable Operation, Technology and Science for the Ships of the Future.
  • El Saddik, A., Orozco, M., Eid, M., & Cha, J. (2011). Haptics technologies: bringing touch to multimedia. Springer Science & Business Media.
  • Ghaffari, T. K., & Kövecses, J. (2013, April). A high-performance velocity estimator for haptic applications. In 2013 World Haptics Conference (WHC) (pp. 127-132). IEEE.
  • Gosselin, F., Ferlay, F., & Janot, A. (2016, June). Development of a new backdrivable actuator for haptic interfaces and collaborative robots. In Actuators (Vol. 5, No. 2, p. 17). Multidisciplinary Digital Publishing Institute.
  • Grimmelius, H., de Vos, P., Krijgsman, M., & van Deursen, E. (2011, May). Control of hybrid ship drive systems. In 10th International conference on computer and IT applications in the maritime industries (pp. 1-15).
  • Grunwald, M. (Ed.). (2008). Human haptic perception: Basics and applications. Springer Science & Business Media.
  • Haruhisa, K. (2015). Robot Hands and Multi-fingered Haptic Interfaces: Fundamentals and Applications. World Scientific.
  • Karnopp, D. (1985). Computer simulation of stick-slip friction in mechanical dynamic systems.
  • Kilchenman, R., & Goldfarb, M. (2001, May). Force saturation, system bandwidth, information transfer, and surface quality in haptic interfaces. In Proceedings 2001 ICRA. IEEE International Conference on Robotics and Automation (Cat. No. 01CH37164) (Vol. 2, pp. 1382-1387). IEEE.
  • Kosuge, K., Fujisawa, Y., & Fukuda, T. (1992, July). Control of mechanical system with man-machine interaction. In Proceedings of the IEEE/RSJ international conference on intelligent robots and systems (Vol. 1, pp. 87-92). IEEE.
  • Lawrence, D. A. (1993). Stability and transparency in bilateral teleoperation. IEEE transactions on robotics and automation, 9(5), 624-637.
  • Minsky, M. D. R. (1995). Computational haptics: the sandpaper system for synthesizing texture for a force-feedback display (Doctoral dissertation, Massachusetts Institute of Technology).
  • National Transportation Safety Board. (2019). Collision between US Navy Destroyer John S McCain and Tanker Alnic MC, Singapore Strait, 5 Miles Northeast of Horsburgh Lighthouse, August 21, 2017. Marine Accident Report NTSB/MAR-19/01.
  • Pacchierotti, C. (2015). Cutaneous haptic feedback in robotic teleoperation. Springer International Publishing.
  • Qin, H., Song, A., Liu, Y., Jiang, G., & Zhou, B. (2015). Design and calibration of a new 6 DOF haptic device. Sensors, 15(12), 31293-31313.
  • Qin, H.; Song, A.; Liu, Y.; Jiang, G.; Zhou, B. Design and calibration of a new 6 DOF haptic device. Sensors 2015, 15, 31293–31313
  • Rauer, E. (2019). Methodology to Analyse Handling Qualities Under Force Gradient Transitions of an Active Sidestick. Aerotecnica Missili & Spazio, 98(3), 231-242.
  • Rovers, A. F., Steinbuch, M., & Lammerts, I. M. M. (2003). Design of a robust master-slave controller for surgery applications with haptic feedback. Technische Universiteit Eindhoven.
  • Shimoga, K. B. (1992). Finger force and touch feedback issues in dextrous telemanipulation. In Proc. NASA-CIRSSE Int. Conf. Intelligent Robotic Systems for Space Exploration.
  • Tsuji, T., Goto, K., Moritani, M., Kaneko, M., & Morasso, P. (1994, September). Spatial characteristics of human hand impedance in multi-joint arm movements. In Proceedings of IEEE/RSJ International Conference on Intelligent Robots and Systems (IROS'94) (Vol. 1, pp. 423-430). IEEE.
  • Ueberle, M. W. (2006). Design, control, and evaluation of a family of kinesthetic haptic interfaces (Doctoral dissertation, Technische Universität München).
  • Van der Linde, R. Q., Lammertse, P., Frederiksen, E., & Ruiter, B. (2002, July). The Haptic Master, a new high-performance haptic interface. In Proc. Eurohaptics (pp. 1-5).
  • Weber, B., Schätzle, S., Hulin, T., Preusche, C., & Deml, B. (2011, June). Evaluation of a vibrotactile feedback device for spatial guidance. In 2011 IEEE World Haptics Conference (pp. 349-354). IEEE.
  • Werner Blendermann (1994), Parameter identification of wind loads on ships. In Journal of Wind Engineering and Industrial Aerodynamics Volume 51, Issue 3, May 1994, Pages 339-351.