A review of manual wheelchairs
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[1] Christian Krämer,et al. Effect of different handgrip angles on work distribution during hand cycling at submaximal power levels , 2009, Ergonomics.
[2] James Patrick Kitchen. Design of Wheelchair Seating Systems for Users with High-Tone Extensor Thrust , 2006 .
[3] Jaimie A. Roper,et al. Comparison of metabolic cost, performance, and efficiency of propulsion using an ergonomic hand drive mechanism and a conventional manual wheelchair. , 2014, Archives of physical medicine and rehabilitation.
[4] W Mark Richter,et al. Reduced finger and wrist flexor activity during propulsion with a new flexible handrim. , 2006, Archives of physical medicine and rehabilitation.
[5] Philippe Vaslin,et al. Upper limb joint dynamics during manual wheelchair propulsion. , 2010, Clinical biomechanics.
[6] P. Requejo,et al. Impact of Gender on Shoulder Torque and Manual Wheelchair Usage for Individuals with Paraplegia: A Preliminary Report. , 2009, Topics in spinal cord injury rehabilitation.
[7] M. Boninger,et al. Manual wheelchair stroke characteristics during an extended period of propulsion , 2009, Spinal Cord.
[8] John W Chow,et al. Wheelchair propulsion biomechanics and wheelers' quality of life: an exploratory review , 2011, Disability and rehabilitation. Assistive technology.
[9] H J Stam,et al. Physical capacity in wheelchair-dependent persons with a spinal cord injury: a critical review of the literature , 2006, Spinal Cord.
[10] L. V. D. van der Woude,et al. A systematic review of wheelchair skills tests for manual wheelchair users with a spinal cord injury: towards a standardized outcome measure , 2010, Clinical rehabilitation.
[11] M. Boninger,et al. Shoulder joint kinetics and pathology in manual wheelchair users. , 2006, Clinical biomechanics.
[12] Ursina Arnet,et al. Force application during handcycling and handrim wheelchair propulsion: an initial comparison. , 2013, Journal of applied biomechanics.
[13] L. V. D. van der Woude,et al. Wheelchair skills tests: a systematic review , 2003, Clinical rehabilitation.
[14] Fausto Orsi Medola,et al. Aspects of Manual Wheelchair Configuration Affecting Mobility: A Review , 2014, Journal of physical therapy science.
[15] L. V. D. van der Woude,et al. A power balance model for handcycling , 2010, Disability and rehabilitation.
[16] Rory A Cooper,et al. Preliminary outcomes of the SmartWheel Users' Group database: a proposed framework for clinicians to objectively evaluate manual wheelchair propulsion. , 2008, Archives of physical medicine and rehabilitation.
[17] Han Houdijk,et al. Effects of Hand Cycle Training on Physical Capacity in Individuals With Tetraplegia: A Clinical Trial , 2009, Physical Therapy.
[18] Clark R Dickerson,et al. Use of a geared wheelchair wheel to reduce propulsive muscular demand during ramp ascent: analysis of muscle activation and kinematics. , 2010, Clinical biomechanics.
[19] C Sauret,et al. Measurement of wheelchair adjustment effects on turning deceleration , 2015, Computer methods in biomechanics and biomedical engineering.
[20] Kenton R Kaufman,et al. Wheelchair propulsion demands during outdoor community ambulation. , 2009, Journal of electromyography and kinesiology : official journal of the International Society of Electrophysiological Kinesiology.
[21] S. Nadeau,et al. Assessment of agonist–antagonist shoulder torque ratios in individuals with paraplegia: a new interpretative approach , 2008, Spinal Cord.
[22] Clark R Dickerson,et al. Trunk muscle activity during wheelchair ramp ascent and the influence of a geared wheel on the demands of postural control. , 2010, Archives of physical medicine and rehabilitation.
[23] Jaimie A. Roper,et al. Upper Extremity Kinematics During Ergonomic Hand Drive Wheelchair Propulsion: 3013 , 2011 .
[24] E Watelain,et al. Physiological responses in handcycling. Preliminary study. , 2009, Annals of physical and rehabilitation medicine.
[25] Liping Qi,et al. Coordination patterns of shoulder muscles during level-ground and incline wheelchair propulsion. , 2013, Journal of rehabilitation research and development.
[26] JoAnne K. Gronley,et al. Evidence-Based Strategies to Preserve Shoulder Function in Manual Wheelchair Users with Spinal Cord Injury , 2008 .
[27] Alicia M Koontz,et al. Pushrim biomechanics and injury prevention in spinal cord injury: recommendations based on CULP-SCI investigations. , 2005, Journal of rehabilitation research and development.
[28] Thomas W J Janssen,et al. Manual wheelchairs: Research and innovation in rehabilitation, sports, daily life and health. , 2006, Medical engineering & physics.
[29] Johan S Rietman,et al. A systematic review on the pros and cons of using a pushrim-activated power-assisted wheelchair , 2013, Clinical rehabilitation.
[30] A J Dallmeijer,et al. Alternative Modes of Manual Wheelchair Ambulation: An Overview , 2001, American journal of physical medicine & rehabilitation.
[31] J. Perry,et al. Shoulder Muscular Demand During Lever-Activated Vs Pushrim Wheelchair Propulsion In Persons With Spinal Cord Injury , 2008, The journal of spinal cord medicine.
[32] Han Houdijk,et al. The effects of upper body exercise on the physical capacity of people with a spinal cord injury: a systematic review , 2007, Clinical rehabilitation.
[33] S. Keteyian,et al. Predicting maximal HR in heart failure patients on β-blockade therapy. , 2012, Medicine and science in sports and exercise.
[34] P. Ludewig,et al. Clinical Trial of Exercise for Shoulder Pain in Chronic Spinal Injury , 2006, Physical Therapy.
[35] N Louis,et al. Wheelchair propulsion kinematics in beginners and expert users: influence of wheelchair settings. , 2012, Clinical biomechanics.
[36] R A Cooper,et al. Wheelchair racing sports science: a review. , 1990, Journal of rehabilitation research and development.
[37] Kai-Nan An,et al. A new method to quantify demand on the upper extremity during manual wheelchair propulsion. , 2004, Archives of physical medicine and rehabilitation.
[38] P. Gorce,et al. Kinematic analysis of handbike propulsion in various gear ratios: implications for joint pain. , 2006, Clinical biomechanics.
[39] Shun-hwa Wei,et al. Wrist kinematic characterization of wheelchair propulsion in various seating positions: implication to wrist pain. , 2003, Clinical biomechanics.
[40] Sam C C Chan,et al. User satisfaction, community participation and quality of life among Chinese wheelchair users with spinal cord injury: a preliminary study. , 2007, Occupational therapy international.
[41] Fausto O. Medola,et al. Conceptual project of a servo-controlled power-assisted wheelchair , 2014, 5th IEEE RAS/EMBS International Conference on Biomedical Robotics and Biomechatronics.
[42] Richard R Neptune,et al. The influence of altering push force effectiveness on upper extremity demand during wheelchair propulsion. , 2010, Journal of biomechanics.
[43] Alicia M Koontz,et al. Multisite comparison of wheelchair propulsion kinetics in persons with paraplegia. , 2007, Journal of rehabilitation research and development.
[44] Philippe Gorce,et al. The effects of crank adjustments on handbike propulsion: A kinematic model approach , 2008 .
[45] Fausto O. Medola,et al. Partitioning Kinetic Energy During Freewheeling Wheelchair Maneuvers , 2014, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[46] John Rasmussen,et al. Validation of a musculoskeletal model of wheelchair propulsion and its application to minimizing shoulder joint forces. , 2008, Journal of biomechanics.
[47] Mary M Rodgers,et al. Effect of 2-speed geared manual wheelchair propulsion on shoulder pain and function. , 2007, Archives of physical medicine and rehabilitation.
[48] M. Bernardi,et al. Low-grade systemic inflammation and leptin levels were improved by arm cranking exercise in adults with chronic spinal cord injury. , 2014, Archives of physical medicine and rehabilitation.
[49] A J Dallmeijer,et al. Submaximal physical strain and peak performance in handcycling versus handrim wheelchair propulsion , 2004, Spinal Cord.
[50] Daniel Theisen,et al. Influence of crank rate in hand cycling. , 2004, Medicine and science in sports and exercise.
[51] Yagesh Bhambhani,et al. Physiology of Wheelchair Racing in Athletes with Spinal Cord Injury , 2002, Sports medicine.
[52] Amalendu Samanta,et al. Effect of chronic use of different propulsion systems in wheelchair design on the aerobic capacity of Indian users. , 2005, The Indian journal of medical research.
[53] Victoria L Goosey-Tolfrey,et al. Wheelchair propulsion: effects of experience and push strategy on efficiency and perceived exertion. , 2008, Applied physiology, nutrition, and metabolism = Physiologie appliquee, nutrition et metabolisme.
[54] Fausto Orsi Medola,et al. O esporte na qualidade de vida de indivíduos com lesão da medula espinhal: série de casos , 2011 .
[55] Rory A. Cooper,et al. Manual Wheelchair Propulsion Over Cross-Sloped Surfaces: A Literature Review , 2011 .
[56] Kenton R Kaufman,et al. Biomechanic evaluation of upper-extremity symmetry during manual wheelchair propulsion over varied terrain. , 2008, Archives of physical medicine and rehabilitation.
[57] Danilo Corrêa Silva,et al. The influence of handrim design on the contact forces on hands' surface: A preliminary study , 2014 .
[58] Philip S Requejo,et al. Comparison of shoulder muscle electromyographic activity during standard manual wheelchair and push-rim activated power assisted wheelchair propulsion in persons with complete tetraplegia. , 2009, Archives of physical medicine and rehabilitation.
[59] Gerald Seet,et al. Multiple-Robot Systems for USAR: Key Design Attributes and Deployment Issues , 2011 .
[60] Shirley G Fitzgerald,et al. Effect of a pushrim-activated power-assist wheelchair on the functional capabilities of persons with tetraplegia. , 2005, Archives of physical medicine and rehabilitation.
[61] Music Musi. Georgia Institute of Technology , 2002 .
[62] Stephen Sprigle,et al. Changes in inertia and effect on turning effort across different wheelchair configurations. , 2013, Journal of rehabilitation research and development.
[63] T. Harrington,et al. Lever propulsion design for manual wheelchairs , 2004, IEEE 30th Annual Northeast Bioengineering Conference, 2004. Proceedings of the.
[64] Aaron L. Souza,et al. Propulsion patterns and pushrim biomechanics in manual wheelchair propulsion. , 2002, Archives of physical medicine and rehabilitation.
[65] Han Houdijk,et al. Influence of hand cycling on physical capacity in the rehabilitation of persons with a spinal cord injury: a longitudinal cohort study. , 2008, Archives of physical medicine and rehabilitation.
[66] Ahmad Rifai Sarraj,et al. Design History and Advantages of a New Lever-Propelled Wheelchair Prototype , 2011 .
[67] Claudine Auger,et al. Issues for the selection of wheelchair-specific activity and participation outcome measures: a review. , 2008, Archives of physical medicine and rehabilitation.