Design Considerations for the Development of Lower Limb Pediatric Exoskeletons: A Literature Review

被引:6
作者
Gesta, Amandine [1 ]
Achiche, Sofiane [1 ]
Mohebbi, Abolfazl [1 ]
机构
[1] Polytech Montreal, Dept Mech Engn, Montreal, PQ H3T 1J4, Canada
来源
IEEE TRANSACTIONS ON MEDICAL ROBOTICS AND BIONICS | 2023年 / 5卷 / 04期
关键词
Exoskeletons; Pediatrics; Legged locomotion; Medical robotics; Biomimetics; Patient rehabilitation; Nervous system; Medical conditions; Motion control; Cerebral palsy; exoskeleton; rehabilitation robotics; wearable robotics; CEREBRAL-PALSY; CHILDREN; WALKING; GAIT; MANAGEMENT; STRENGTH;
D O I
10.1109/TMRB.2023.3310040
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Cerebral Palsy is the most prevalent cause of gait disorder in childhood, affecting the range of motion, power, and joint torques of children. Several treatments are available, ranging from physical therapy to surgery. However, these treatments are usually complex, costly, and long. Robotic exoskeletons could provide longer, more frequent, and personalized training sessions with quantified data on the gait characteristics. Unfortunately, very few pediatric exoskeletons are available compared to those for adults. Therefore, design guidelines are needed for the development of pediatric exoskeletons to facilitate market entry. This article proposes design considerations through an in-depth review of the available pediatric lower-limb exoskeletons. This research has identified nine exoskeletons with at least one actuated joint at the ankle level and discussed their clinical, mechanical, and control characteristics. Although all the identified exoskeletons use electric motors to reduce their weight, improvements must be made to further minimize it. In addition, these exoskeletons need to be more easily adaptable to the user's morphology. Impedance control methods are commonly used, which ensures the interaction safety. However, they should be more personalized to the specific neurological deficiencies. Furthermore, stronger validation of these exoskeletons is required through clinical trials.
引用
收藏
页码:768 / 779
页数:12
相关论文
共 55 条
[1]   Design and development of lower limb exoskeletons: A survey [J].
Aliman, Norazam ;
Ramli, Rizauddin ;
Haris, Sallehuddin Mohamed .
ROBOTICS AND AUTONOMOUS SYSTEMS, 2017, 95 :102-116
[2]  
Andrade RM, 2019, INT C REHAB ROBOT, P512, DOI 10.1109/ICORR.2019.8779432
[3]  
[Anonymous], 2006, Human walking
[4]  
[Anonymous], 2021, Biomotum Launches New Website and Brand Identity to Support Robotic Exoskeleton Commercialization and Research Partnerships
[5]   Gait analysis in children with cerebral palsy [J].
Armand, Stephane ;
Decoulon, Geraldo ;
Bonnefoy-Mazure, Alice .
EFORT OPEN REVIEWS, 2016, 1 (12) :448-460
[6]   Review of control strategies for lower-limb exoskeletons to assist gait [J].
Baud, Romain ;
Manzoori, Ali Reza ;
Ijspeert, Auke ;
Bouri, Mohamed .
JOURNAL OF NEUROENGINEERING AND REHABILITATION, 2021, 18 (01)
[7]  
Bayón C, 2016, IEEE INT CONF ROBOT, P3736, DOI 10.1109/ICRA.2016.7487561
[8]   A Low-Profile Hip Exoskeleton for Pathological Gait Assistance: Design and Pilot Testing [J].
Bishe, Safoura Sadegh Pour Aji ;
Liebelt, Leah ;
Fang, Ying ;
Lerner, Zachary F. .
2022 IEEE INTERNATIONAL CONFERENCE ON ROBOTICS AND AUTOMATION (ICRA 2022), 2022, :5461-5466
[9]   Low Weight, Morbidity, and Mortality in Children With Cerebral Palsy: New Clinical Growth Charts [J].
Brooks, Jordan ;
Day, Steven ;
Shavelle, Robert ;
Strauss, David .
PEDIATRICS, 2011, 128 (02) :E299-E307
[10]   The effects of adding mass to the legs on the energetics and biomechanics of walking [J].
Browning, Raymond C. ;
Modica, Jesse R. ;
Kram, Rodger ;
Goswami, Ambarish .
MEDICINE AND SCIENCE IN SPORTS AND EXERCISE, 2007, 39 (03) :515-525