Cargando…

Feasibility Study of a Wearable Exoskeleton for Children: Is the Gait Altered by Adding Masses on Lower Limbs?

We are designing a pediatric exoskeletal ankle robot (pediatric Anklebot) to promote gait habilitation in children with Cerebral Palsy (CP). Few studies have evaluated how much or whether the unilateral loading of a wearable exoskeleton may have the unwanted effect of altering significantly the gait...

Descripción completa

Detalles Bibliográficos
Autores principales: Rossi, Stefano, Colazza, Alessandra, Petrarca, Maurizio, Castelli, Enrico, Cappa, Paolo, Krebs, Hermano Igo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3762849/
https://www.ncbi.nlm.nih.gov/pubmed/24023822
http://dx.doi.org/10.1371/journal.pone.0073139
_version_ 1782282947371466752
author Rossi, Stefano
Colazza, Alessandra
Petrarca, Maurizio
Castelli, Enrico
Cappa, Paolo
Krebs, Hermano Igo
author_facet Rossi, Stefano
Colazza, Alessandra
Petrarca, Maurizio
Castelli, Enrico
Cappa, Paolo
Krebs, Hermano Igo
author_sort Rossi, Stefano
collection PubMed
description We are designing a pediatric exoskeletal ankle robot (pediatric Anklebot) to promote gait habilitation in children with Cerebral Palsy (CP). Few studies have evaluated how much or whether the unilateral loading of a wearable exoskeleton may have the unwanted effect of altering significantly the gait. The purpose of this study was to evaluate whether adding masses up to 2.5 kg, the estimated overall added mass of the mentioned device, at the knee level alters the gait kinematics. Ten healthy children and eight children with CP, with light or mild gait impairment, walked wearing a knee brace with several masses. Gait parameters and lower-limb joint kinematics were analyzed with an optoelectronic system under six conditions: without brace (natural gait) and with masses placed at the knee level (0.5, 1.0, 1.5, 2.0, 2.5 kg). T-tests and repeated measures ANOVA tests were conducted in order to find noteworthy differences among the trial conditions and between loaded and unloaded legs. No statistically significant differences in gait parameters for both healthy children and children with CP were observed in the five “with added mass” conditions. We found significant differences among “natural gait” and “with added masses” conditions in knee flexion and hip extension angles for healthy children and in knee flexion angle for children with CP. This result can be interpreted as an effect of the mechanical constraint induced by the knee brace rather than the effect associated with load increase. The study demonstrates that the mechanical constraint induced by the brace has a measurable effect on the gait of healthy children and children with CP and that the added mass up to 2.5 kg does not alter the lower limb kinematics. This suggests that wearable devices weighing 25 N or less will not noticeably modify the gait patterns of the population examined here.
format Online
Article
Text
id pubmed-3762849
institution National Center for Biotechnology Information
language English
publishDate 2013
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-37628492013-09-10 Feasibility Study of a Wearable Exoskeleton for Children: Is the Gait Altered by Adding Masses on Lower Limbs? Rossi, Stefano Colazza, Alessandra Petrarca, Maurizio Castelli, Enrico Cappa, Paolo Krebs, Hermano Igo PLoS One Research Article We are designing a pediatric exoskeletal ankle robot (pediatric Anklebot) to promote gait habilitation in children with Cerebral Palsy (CP). Few studies have evaluated how much or whether the unilateral loading of a wearable exoskeleton may have the unwanted effect of altering significantly the gait. The purpose of this study was to evaluate whether adding masses up to 2.5 kg, the estimated overall added mass of the mentioned device, at the knee level alters the gait kinematics. Ten healthy children and eight children with CP, with light or mild gait impairment, walked wearing a knee brace with several masses. Gait parameters and lower-limb joint kinematics were analyzed with an optoelectronic system under six conditions: without brace (natural gait) and with masses placed at the knee level (0.5, 1.0, 1.5, 2.0, 2.5 kg). T-tests and repeated measures ANOVA tests were conducted in order to find noteworthy differences among the trial conditions and between loaded and unloaded legs. No statistically significant differences in gait parameters for both healthy children and children with CP were observed in the five “with added mass” conditions. We found significant differences among “natural gait” and “with added masses” conditions in knee flexion and hip extension angles for healthy children and in knee flexion angle for children with CP. This result can be interpreted as an effect of the mechanical constraint induced by the knee brace rather than the effect associated with load increase. The study demonstrates that the mechanical constraint induced by the brace has a measurable effect on the gait of healthy children and children with CP and that the added mass up to 2.5 kg does not alter the lower limb kinematics. This suggests that wearable devices weighing 25 N or less will not noticeably modify the gait patterns of the population examined here. Public Library of Science 2013-09-04 /pmc/articles/PMC3762849/ /pubmed/24023822 http://dx.doi.org/10.1371/journal.pone.0073139 Text en © 2013 Rossi et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Rossi, Stefano
Colazza, Alessandra
Petrarca, Maurizio
Castelli, Enrico
Cappa, Paolo
Krebs, Hermano Igo
Feasibility Study of a Wearable Exoskeleton for Children: Is the Gait Altered by Adding Masses on Lower Limbs?
title Feasibility Study of a Wearable Exoskeleton for Children: Is the Gait Altered by Adding Masses on Lower Limbs?
title_full Feasibility Study of a Wearable Exoskeleton for Children: Is the Gait Altered by Adding Masses on Lower Limbs?
title_fullStr Feasibility Study of a Wearable Exoskeleton for Children: Is the Gait Altered by Adding Masses on Lower Limbs?
title_full_unstemmed Feasibility Study of a Wearable Exoskeleton for Children: Is the Gait Altered by Adding Masses on Lower Limbs?
title_short Feasibility Study of a Wearable Exoskeleton for Children: Is the Gait Altered by Adding Masses on Lower Limbs?
title_sort feasibility study of a wearable exoskeleton for children: is the gait altered by adding masses on lower limbs?
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3762849/
https://www.ncbi.nlm.nih.gov/pubmed/24023822
http://dx.doi.org/10.1371/journal.pone.0073139
work_keys_str_mv AT rossistefano feasibilitystudyofawearableexoskeletonforchildrenisthegaitalteredbyaddingmassesonlowerlimbs
AT colazzaalessandra feasibilitystudyofawearableexoskeletonforchildrenisthegaitalteredbyaddingmassesonlowerlimbs
AT petrarcamaurizio feasibilitystudyofawearableexoskeletonforchildrenisthegaitalteredbyaddingmassesonlowerlimbs
AT castellienrico feasibilitystudyofawearableexoskeletonforchildrenisthegaitalteredbyaddingmassesonlowerlimbs
AT cappapaolo feasibilitystudyofawearableexoskeletonforchildrenisthegaitalteredbyaddingmassesonlowerlimbs
AT krebshermanoigo feasibilitystudyofawearableexoskeletonforchildrenisthegaitalteredbyaddingmassesonlowerlimbs