Biomechanical design of an agile, electricity-powered lower-limb exoskeleton for weight-bearing assistance

被引:81
作者
Hyun, Dong Jin [1 ]
Park, Hyunseok [2 ]
Ha, Taejun [2 ]
Park, Sangin [1 ]
Jung, Kyungmo [1 ]
机构
[1] Hyundai Motor Co, Human Factors & Devices Dev Team, Cent Adv Res & Engn Inst, Seoul, South Korea
[2] Hyundai ROTEM Co, Mech Res Team, Seoul, South Korea
关键词
Lower-limb exoskeleton; Polycentric artificial knee; Universal joint-based artificial hip; Human locomotion assistance; LOWER-EXTREMITY EXOSKELETON; WALKING; FORCE; KINEMATICS; BLEEX;
D O I
10.1016/j.robot.2017.06.010
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
This paper proposes the design of an electricity-powered lower-limb exoskeleton called "Human Universal Mobility Assistance (HUMA)". HUMA was developed as a research platform with the objective of providing its wearer with weight-bearing assistance for human strength/endurance augmentation. It has 12 degrees of active/spring passive/free passive freedom to assist human locomotion. The artificial leg has two electricity-powered degrees of freedom (DoFs) for hip/knee flexions/extensions, passive spring-installed two DoFs for ankle inversion/eversion and plantarfiexion/dorsiflexion, and two free, passive DoFs for hip roll/yaw movements. HUMA has mechanical structures for active artificial hip and knee joints; the hip actuator is not directly connected to the robot's leg system, but a universal joint is installed between the actuator and the leg system to allow a free coaxial hip yaw/roll DoF for the wearer. Therefore, the hip-actuating torque is transferred solely for hip flexion/extension. Its active artificial knee is structured by a four bar-based polycentric linkage, and is power=driven by an actuator in the middle of the robot's thigh segment through the other four bar-based power transmission linkage. This powered knee structure yields several advantages related to (1) human-robot knee alignment during leg motion, (2) the expansion of the zone of voluntary knee stability, (3) the angle-dependent variable knee torque/velocity amplification ratio, and (4) a reduction in the total moment of artificial leg inertia. The exoskeleton was tested for dynamic gait by using assistive torques determined by a control algorithm. Experiments were conducted on the robot while it walked at 5 km/h (approximate to 1.39 m/s) with/without a 20 kg load, as well as for a 10-km/h (approximate to 2.78 m/s) run. 2017 Elsevier B.V. All rights reserved.
引用
收藏
页码:181 / 195
页数:15
相关论文
共 33 条
[1]   Robot Assisted Gait Training With Active Leg Exoskeleton (ALEX) [J].
Banala, Sai K. ;
Kim, Seok Hun ;
Agrawal, Sunil K. ;
Scholz, John P. .
IEEE TRANSACTIONS ON NEURAL SYSTEMS AND REHABILITATION ENGINEERING, 2009, 17 (01) :2-8
[2]   A multiple-task gait analysis approach: Kinematic, kinetic and EMG reference data for healthy young and adult subjects [J].
Bovi, Gabriele ;
Rabuffetti, Marco ;
Mazzoleni, Paolo ;
Ferrarin, Maurizio .
GAIT & POSTURE, 2011, 33 (01) :6-13
[3]  
Celebi B, 2013, IEEE INT C INT ROBOT, P996, DOI 10.1109/IROS.2013.6696472
[4]  
Chiri A, 2012, IEEE ENG MED BIO, P6124, DOI 10.1109/EMBC.2012.6347391
[5]  
Costa N., 2006, The First IEEE/RAS-EMBS International Conference on Biomedical Robotics and Biomechatronics, P495, DOI DOI 10.1109/BIOROB.2006.1639137
[6]   A physiologist's perspective on robotic exoskeletons for human locomotion [J].
Ferris, Daniel P. ;
Sawicki, Gregory S. ;
Daley, Monica A. .
INTERNATIONAL JOURNAL OF HUMANOID ROBOTICS, 2007, 4 (03) :507-528
[7]   Estimating the complete ground reaction forces with pressure insoles in walking [J].
Fong, Daniel Tik-Pui ;
Chan, Yue-Yan ;
Hong, Youlian ;
Yung, Patrick Shu-Hang ;
Fung, Kwai-Yau ;
Chan, Kai-Ming .
JOURNAL OF BIOMECHANICS, 2008, 41 (11) :2597-2601
[8]   Compliant leg behaviour explains basic dynamics of walking and running [J].
Geyer, Hartmut ;
Seyfarth, Andre ;
Blickhan, Reinhard .
PROCEEDINGS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 2006, 273 (1603) :2861-2867
[9]   Effects of a lower-body exoskeleton device on metabolic cost and gait biomechanics during load carriage [J].
Gregorczyk, Karen N. ;
Hasselquist, Leif ;
Schiffman, Jeffrey M. ;
Bensel, Carolyn K. ;
Obusek, John P. ;
Gutekunst, David J. .
ERGONOMICS, 2010, 53 (10) :1263-1275
[10]   Design and characterization of a photo-sensor based force measurement unit (FMU) [J].
Gu, Gwang Min ;
Shin, Yong Kyun ;
Son, Jina ;
Kim, Jung .
SENSORS AND ACTUATORS A-PHYSICAL, 2012, 182 :49-56