Literature DB >> 22918717

Hand-rim forces and gross mechanical efficiency at various frequencies of wheelchair propulsion.

J P Lenton1, L H V van der Woude, N E Fowler, G Nicholson, K Tolfrey, V L Goosey-Tolfrey.   

Abstract

To determine the effects of push frequency changes on force application, fraction of effective force (FEF) and gross efficiency (GE) during hand-rim propulsion. 8 male able-bodied participants performed five 4-min sub-maximal exercise bouts at 1.8 ms(-1); the freely chosen frequency (FCF), followed by 4 counter-balanced trials at 60, 80, 120 and 140% FCF. Kinetic data was obtained using a SMART(Wheel), measuring forces and moments. The GE was determined as the ratio of external work done and the total energy expended. Increased push frequency led to reductions in peak resultant force (P<0.05), ranging from 167 to 117 N and peak tangential force (P<0.05), ranging from 117 to 77 N. However, FEF only demonstrated a significant difference between 60% and 140% FCF (69 ± 9% and 63 ± 7, respectively; P<0.05). Work per cycle decreased significantly (P<0.05) and rate of force development increased significantly (P<0.05) with increased push frequency. GE values were significantly lower at 60%, 120% and 140% FCF than 80% and 100% FCF (P<0.05). No meaningful associations were present between FEF and GE. Under the current testing conditions, changes in push frequency are accompanied with changes in the absolute force values, albeit without changes in either the gross pattern/trend of force application or FEF. Changes in GE are not explained by different levels of force effectiveness. © Georg Thieme Verlag KG Stuttgart · New York.

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Year:  2012        PMID: 22918717     DOI: 10.1055/s-0032-1311650

Source DB:  PubMed          Journal:  Int J Sports Med        ISSN: 0172-4622            Impact factor:   3.118


  4 in total

1.  The physiological and biomechanical effects of forwards and reverse sports wheelchair propulsion.

Authors:  Barry S Mason; John P Lenton; Victoria L Goosey-Tolfrey
Journal:  J Spinal Cord Med       Date:  2014-03-05       Impact factor: 1.985

2.  Modeling manual wheelchair propulsion cost during straight and curvilinear trajectories.

Authors:  Jacob Misch; Morris Huang; Stephen Sprigle
Journal:  PLoS One       Date:  2020-06-18       Impact factor: 3.240

3.  Variability in bimanual wheelchair propulsion: consistency of two instrumented wheels during handrim wheelchair propulsion on a motor driven treadmill.

Authors:  Riemer J K Vegter; Claudine J Lamoth; Sonja de Groot; Dirkjan H E J Veeger; Lucas H V van der Woude
Journal:  J Neuroeng Rehabil       Date:  2013-01-29       Impact factor: 4.262

4.  Wheelchair Propulsion Biomechanics in Junior Basketball Players: A Method for the Evaluation of the Efficacy of a Specific Training Program.

Authors:  Elena Bergamini; Francesca Morelli; Flavia Marchetti; Giuseppe Vannozzi; Lorenzo Polidori; Francesco Paradisi; Marco Traballesi; Aurelio Cappozzo; Anna Sofia Delussu
Journal:  Biomed Res Int       Date:  2015-10-12       Impact factor: 3.411

  4 in total

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