Effects of an industrial passive assistive exoskeleton on muscle activity, oxygen consumption and subjective responses during lifting tasks
The purpose of this study was to evaluate the effects of an industrial passive assisted exoskeleton (IPAE) with simulated lifting tasks on muscle activity, oxygen consumption, perceived level of exertion, local perceived pressure, and systemic usability. Eight workers were required to complete two l...
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Published in | PloS one Vol. 16; no. 1; p. e0245629 |
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Main Authors | , , , , , , |
Format | Journal Article |
Language | English |
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20.01.2021
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ISSN | 1932-6203 1932-6203 |
DOI | 10.1371/journal.pone.0245629 |
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Abstract | The purpose of this study was to evaluate the effects of an industrial passive assisted exoskeleton (IPAE) with simulated lifting tasks on muscle activity, oxygen consumption, perceived level of exertion, local perceived pressure, and systemic usability. Eight workers were required to complete two lifting tasks with and without the IPAE, that were single lifting tasks (repeated 5 times) and 15 min repeated lifting tasks respectively. Both of the tasks required subjects to remove a toolbox from the ground to the waist height. The test results showed that IPAE significantly reduced the muscle activity of the lumbar erector spinae, thoracic erector spinae, middle deltoid and labrum-biceps muscles; the reduction effect during the 15 min lifting task was reached 21%, 12%, 32% and 38% respectively. The exoskeleton did not cause significant differences in oxygen consumption and the perceived level of exertion, but local perceived pressure on the shoulders, thighs, wrists, and waist of the subjects could be produced. 50% of the subjects rated the usability of the equipment as acceptable. The results illustrate the good potential of the exoskeleton to reduce the muscle activity of the low back and upper arms. However, there is still a concern for the obvious contact pressure. |
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AbstractList | The purpose of this study was to evaluate the effects of an industrial passive assisted exoskeleton (IPAE) with simulated lifting tasks on muscle activity, oxygen consumption, perceived level of exertion, local perceived pressure, and systemic usability. Eight workers were required to complete two lifting tasks with and without the IPAE, that were single lifting tasks (repeated 5 times) and 15 min repeated lifting tasks respectively. Both of the tasks required subjects to remove a toolbox from the ground to the waist height. The test results showed that IPAE significantly reduced the muscle activity of the lumbar erector spinae, thoracic erector spinae, middle deltoid and labrum-biceps muscles; the reduction effect during the 15 min lifting task was reached 21%, 12%, 32% and 38% respectively. The exoskeleton did not cause significant differences in oxygen consumption and the perceived level of exertion, but local perceived pressure on the shoulders, thighs, wrists, and waist of the subjects could be produced. 50% of the subjects rated the usability of the equipment as acceptable. The results illustrate the good potential of the exoskeleton to reduce the muscle activity of the low back and upper arms. However, there is still a concern for the obvious contact pressure. The purpose of this study was to evaluate the effects of an industrial passive assisted exoskeleton (IPAE) with simulated lifting tasks on muscle activity, oxygen consumption, perceived level of exertion, local perceived pressure, and systemic usability. Eight workers were required to complete two lifting tasks with and without the IPAE, that were single lifting tasks (repeated 5 times) and 15 min repeated lifting tasks respectively. Both of the tasks required subjects to remove a toolbox from the ground to the waist height. The test results showed that IPAE significantly reduced the muscle activity of the lumbar erector spinae, thoracic erector spinae, middle deltoid and labrum-biceps muscles; the reduction effect during the 15 min lifting task was reached 21%, 12%, 32% and 38% respectively. The exoskeleton did not cause significant differences in oxygen consumption and the perceived level of exertion, but local perceived pressure on the shoulders, thighs, wrists, and waist of the subjects could be produced. 50% of the subjects rated the usability of the equipment as acceptable. The results illustrate the good potential of the exoskeleton to reduce the muscle activity of the low back and upper arms. However, there is still a concern for the obvious contact pressure.The purpose of this study was to evaluate the effects of an industrial passive assisted exoskeleton (IPAE) with simulated lifting tasks on muscle activity, oxygen consumption, perceived level of exertion, local perceived pressure, and systemic usability. Eight workers were required to complete two lifting tasks with and without the IPAE, that were single lifting tasks (repeated 5 times) and 15 min repeated lifting tasks respectively. Both of the tasks required subjects to remove a toolbox from the ground to the waist height. The test results showed that IPAE significantly reduced the muscle activity of the lumbar erector spinae, thoracic erector spinae, middle deltoid and labrum-biceps muscles; the reduction effect during the 15 min lifting task was reached 21%, 12%, 32% and 38% respectively. The exoskeleton did not cause significant differences in oxygen consumption and the perceived level of exertion, but local perceived pressure on the shoulders, thighs, wrists, and waist of the subjects could be produced. 50% of the subjects rated the usability of the equipment as acceptable. The results illustrate the good potential of the exoskeleton to reduce the muscle activity of the low back and upper arms. However, there is still a concern for the obvious contact pressure. |
Audience | Academic |
Author | Yin, Peng Qu, Xishuai Zhao, Ning Xia, Yumeng Qu, Chenxi Ma, Tao Qu, Shengguan |
AuthorAffiliation | 2 School of Mechanical, Aerospace and Civil Engineering, The University of Manchester, Manchester, United Kingdom 4 China North Advanced Technology Generalization Institute, Beijing, China 1 School of Mechanical and Automotive Engineering, South China University of Technology, Guangzhou, China 3 State Key Laboratory of Smart Manufacturing for Special Vehicles and Transmission System, Inner Mongolia First Machinery Group Co., Ltd., Baotou, China BG-Universitatsklinikum Bergmannsheil, Ruhr-Universitat Bochum, GERMANY |
AuthorAffiliation_xml | – name: BG-Universitatsklinikum Bergmannsheil, Ruhr-Universitat Bochum, GERMANY – name: 2 School of Mechanical, Aerospace and Civil Engineering, The University of Manchester, Manchester, United Kingdom – name: 4 China North Advanced Technology Generalization Institute, Beijing, China – name: 3 State Key Laboratory of Smart Manufacturing for Special Vehicles and Transmission System, Inner Mongolia First Machinery Group Co., Ltd., Baotou, China – name: 1 School of Mechanical and Automotive Engineering, South China University of Technology, Guangzhou, China |
Author_xml | – sequence: 1 givenname: Xishuai surname: Qu fullname: Qu, Xishuai – sequence: 2 givenname: Chenxi surname: Qu fullname: Qu, Chenxi – sequence: 3 givenname: Tao surname: Ma fullname: Ma, Tao – sequence: 4 givenname: Peng surname: Yin fullname: Yin, Peng – sequence: 5 givenname: Ning surname: Zhao fullname: Zhao, Ning – sequence: 6 givenname: Yumeng surname: Xia fullname: Xia, Yumeng – sequence: 7 givenname: Shengguan surname: Qu fullname: Qu, Shengguan |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/33471870$$D View this record in MEDLINE/PubMed |
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Cites_doi | 10.1080/00140139.2015.1081988 10.1016/j.eswa.2012.03.043 10.1016/j.ergon.2013.10.002 10.1007/s005860050192 10.1016/S0169-8141(02)00179-8 10.1615/JLongTermEffMedImplants.v14.i6.70 10.1097/BRS.0000000000003476 10.1016/j.jelekin.2005.07.003 10.1123/jab.13.2.135 10.1177/0018720819885788 10.1016/j.apergo.2017.11.004 10.1097/00007632-200006150-00018 10.1097/j.pain.0000000000001396 10.1016/S0021-9290(03)00249-5 10.1016/j.clinbiomech.2005.12.021 10.1016/j.jelekin.2007.08.006 10.1109/TII.2020.2992984 10.1016/j.apergo.2015.12.003 10.1016/j.clinbiomech.2007.10.012 10.1002/9780470987667 10.1136/annrheumdis-2013-204428 |
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Notes | ObjectType-Article-1 SourceType-Scholarly Journals-1 ObjectType-Feature-2 content type line 14 content type line 23 Competing Interests: We confirm that the authors and this manuscript have no affiliations with or involvement in any organization or entity with any financial interest, or non-financial interest in experimental procedures. All authors include the 3 authors affiliated to Inner Mongolia First Machinery Group declare that they have no conflicts of interest to disclose, and have approved the final version of this manuscript for submission. The commercial affiliation does not alter our adherence to PLOS ONE policies on sharing data and materials. |
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SubjectTerms | Aerospace engineering Automobiles Automotive engineering Biology and Life Sciences Civil engineering Electrodes Electromyography Exoskeleton Exoskeletons Fatigue Fatigue tests Hoisting Laboratories Manufacturing Materials handling Medicine and Health Sciences Muscle function Muscles Musculoskeletal diseases Observations Oxygen Oxygen consumption Physical Sciences Physiological research Posture Research and Analysis Methods Robotic surgery Self-help devices for the disabled Surgery Technology |
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Title | Effects of an industrial passive assistive exoskeleton on muscle activity, oxygen consumption and subjective responses during lifting tasks |
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