Effect of Active and Passive Protective Soft Skins on Collision Forces in Human-robot Collaboration
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[1] Chaomin Luo,et al. Safety assurance mechanisms of collaborative robotic systems in manufacturing , 2021, Robotics Comput. Integr. Manuf..
[2] Renato Vidoni,et al. Emerging research fields in safety and ergonomics in industrial collaborative robotics: A systematic literature review , 2021, Robotics Comput. Integr. Manuf..
[3] Kerstin Johansen,et al. Safe Collaborative Assembly on a Continuously Moving Line with Large Industrial Robots , 2021, Robotics Comput. Integr. Manuf..
[4] S. Tsuji,et al. Self-Capacitance Proximity and Tactile Skin Sensor With Shock-Absorbing Structure for a Collaborative Robot , 2020, IEEE Sensors Journal.
[5] Andrea Maria Zanchettin,et al. Combining Speed and Separation Monitoring With Power and Force Limiting for Safe Collaborative Robotics Applications , 2020, IEEE Robotics and Automation Letters.
[6] Petr Svarny,et al. 3D Collision-Force-Map for Safe Human-Robot Collaboration , 2020, 2021 IEEE International Conference on Robotics and Automation (ICRA).
[7] Federico Vicentini,et al. Terminology in safety of collaborative robotics , 2020, Robotics Comput. Integr. Manuf..
[8] Federico Vicentini,et al. Collaborative Robotics: A Survey , 2020 .
[9] George Michalos,et al. Power and force limiting on industrial robots for human-robot collaboration , 2019, Robotics Comput. Integr. Manuf..
[10] Jasmin Wachter,et al. On the trustability of the safety measures of collaborative robots: 2D Collision-force-map of a sensitive manipulator for safe HRC , 2019, 2019 IEEE 15th International Conference on Automation Science and Engineering (CASE).
[11] M. Shin,et al. Assessment of pressure pain thresholds in collisions with collaborative robots , 2019, PloS one.
[12] Gilbert Tang,et al. The development and evaluation of Robot Light Skin: A novel robot signalling system to improve communication in industrial human–robot collaboration , 2019, Robotics and Computer-Integrated Manufacturing.
[13] Sungsoo Rhim,et al. Identifying Safety Conditions of Human-Robot Collision based on Skin Injury Analysis , 2018, 2018 15th International Conference on Ubiquitous Robots (UR).
[14] B. Vemula,et al. A design metric for safety assessment of industrial robot design suitable for power- and force-limited collaborative operation , 2018, International Journal of Intelligent Robotics and Applications.
[15] Sami Haddadin,et al. Safety Map: A Unified Representation for Biomechanics Impact Data and Robot Instantaneous Dynamic Properties , 2018, IEEE Robotics and Automation Letters.
[16] Alessandro De Luca,et al. Robot Collisions: A Survey on Detection, Isolation, and Identification , 2017, IEEE Transactions on Robotics.
[17] Bhanoday Reddy Vemula,et al. Human-robot impact model: For safety assessment of collaborative robot design , 2017, 2017 IEEE International Symposium on Robotics and Intelligent Sensors (IRIS).
[18] Jae-Bok Song,et al. Human–robot collision model with effective mass and manipulability for design of a spatial manipulator , 2013, Adv. Robotics.
[19] Wendelin Feiten,et al. A versatile tactile sensor system for covering large and curved surface areas , 2012, 2012 IEEE/RSJ International Conference on Intelligent Robots and Systems.
[20] G. Oriolo,et al. Robotics: Modelling, Planning and Control , 2008 .
[21] Oussama Khatib,et al. Inertial Properties in Robotic Manipulation: An Object-Level Framework , 1995, Int. J. Robotics Res..
[22] Sami Haddadin,et al. Physical Human-Robot Interaction , 2016, Springer Handbook of Robotics, 2nd Ed..
[23] Sami Haddadin,et al. Physical Safety in Robotics , 2015, SyDe Summer School.
[24] Thomas S. Buchanan,et al. BIOMECHANICS OF HUMAN MOVEMENT , 2005 .