Model-based mechanical design of a passive lower-limb exoskeleton for assisting workers in shotcrete projection
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Enrico Meli | Nicola Secciani | Alessandro Ridolfi | Marco Pagliai | Matteo Bianchi | Stefano L. Capitani | M. Bianchi | S. Capitani | Nicola Secciani | M. Pagliai | E. Meli | A. Ridolfi
[1] H. Tullos,et al. The anatomic basis of femoral component design. , 1988, Clinical orthopaedics and related research.
[2] David A. Winter,et al. Biomechanics and Motor Control of Human Movement , 1990 .
[3] A. R. Frisancho. Anthropometric Standards for the Assessment of Growth and Nutritional Status , 1990 .
[4] P. Leyvraz,et al. The morphology of the proximal femur. A three-dimensional radiographic analysis. , 1992, The Journal of bone and joint surgery. British volume.
[5] P. Leva. Adjustments to Zatsiorsky-Seluyanov's segment inertia parameters. , 1996 .
[6] P. Leyvraz,et al. Three-dimensional morphology of the proximal femur. , 1997, The Journal of arthroplasty.
[7] T. Brown,et al. Assessment of elbow joint kinematics in passive motion by electromagnetic motion tracking , 2000, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[8] Banchong Mahaisavariya,et al. Morphological study of the proximal femur: a new method of geometrical assessment using 3-dimensional reverse engineering. , 2002, Medical engineering & physics.
[9] T. Cook,et al. Symptoms of musculoskeletal disorders among apprentice construction workers. , 2003, Applied occupational and environmental hygiene.
[10] Jerry E. Pratt,et al. The RoboKnee: an exoskeleton for enhancing strength and endurance during walking , 2004, IEEE International Conference on Robotics and Automation, 2004. Proceedings. ICRA '04. 2004.
[11] D. Goldsheyder,et al. Musculoskeletal symptom survey among cement and concrete workers. , 2004, Work.
[12] Lihua Huang,et al. Hybrid Control of the Berkeley Lower Extremity Exoskeleton (BLEEX) , 2006, Int. J. Robotics Res..
[13] J.C. Perry,et al. Upper-Limb Powered Exoskeleton Design , 2007, IEEE/ASME Transactions on Mechatronics.
[14] Ken Endo,et al. A Quasi-Passive Leg Exoskeleton for Load-Carrying Augmentation , 2007, Int. J. Humanoid Robotics.
[15] Aaron M. Dollar,et al. Lower Extremity Exoskeletons and Active Orthoses: Challenges and State-of-the-Art , 2008, IEEE Transactions on Robotics.
[16] Frans C. T. van der Helm,et al. Self-Aligning Exoskeleton Axes Through Decoupling of Joint Rotations and Translations , 2009, IEEE Transactions on Robotics.
[17] Jose L Pons,et al. Rehabilitation Exoskeletal Robotics , 2010, IEEE Engineering in Medicine and Biology Magazine.
[18] R. Malhotra,et al. Anthropometric measurements to design best-fit femoral stem for the Indian population , 2012, Indian journal of orthopaedics.
[19] Marco Cempini,et al. Self-Alignment Mechanisms for Assistive Wearable Robots: A Kinetostatic Compatibility Method , 2013, IEEE Transactions on Robotics.
[20] D. Robertson. Body Segment Parameters , 2014 .
[21] Mario Cortese,et al. A Powered Finger–Thumb Wearable Hand Exoskeleton With Self-Aligning Joint Axes , 2015, IEEE/ASME Transactions on Mechatronics.
[22] Minerva V. Pillai,et al. Evaluation of Trunk-Supporting Exoskeleton , 2019, Proceedings of the Human Factors and Ergonomics Society Annual Meeting.
[23] S. M. Bruijn,et al. The effect of a passive trunk exoskeleton on metabolic costs during lifting and walking , 2019, Ergonomics.
[24] Axel S. Koopman,et al. SPEXOR passive spinal exoskeleton decreases metabolic cost during symmetric repetitive lifting , 2019, European Journal of Applied Physiology.
[25] H. Kazerooni,et al. Evaluation of a Trunk Supporting Exoskeleton for reducing Muscle Fatigue , 2019, Proceedings of the Human Factors and Ergonomics Society Annual Meeting.
[26] B. So,et al. The effects of a passive exoskeleton on trunk muscle activity and perceived exertion for experienced auxiliary medical service providers in cardiopulmonary resuscitation chest compression , 2020 .