A light-weight passive upper arm assistive exoskeleton based on multi-linkage spring-energy dissipation mechanism for overhead tasks

Robotics and Autonomous Systems - Tập 122 - Trang 103309 - 2019
Dong Jin Hyun1, KiHyeon Bae1, KyuJung Kim1, Seungkyu Nam1, Donghyun Lee1
1Robotics Team in the R&D Division of Hyundai Motor Company, Korea

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MacDougall, 2014

Jellema, 2001, Lumbar supports for prevention and treatment of low back pain: a systematic review within the framework of the cochrane back review group, Spine, 26, 377, 10.1097/00007632-200102150-00014

Zoss, 2006, Design of an electrically actuated lower extremity exoskeleton, Adv. Robot., 20, 967, 10.1163/156855306778394030

Lockheed Martin, Human Universal Load Carrier (HULC), United States of America, http://www.army-technology.com/projects/human-universal-load-carrier-hulc/.

Hyun, 2019, Walking propulsion generation in double stance by powered exoskeleton for paraplegics, Robot. Auton. Syst., 10.1016/j.robot.2019.03.002

Sankai, 2010, Hal: Hybrid assistive limb based on cybernics, 25

Saito, 2005, Development of externally powered lower limb orthosis with bilateral-servo actuator, 394

Voilqué, 2019, Industrial exoskeleton technology: Classification, structural analysis, and structural complexity indicator, 13

M. Lazzaroni, S. Toxiri, J. Ortiz, E. De Momi, D. Caldwell, Towards standards for the evaluation of active back-support exoskeletons to assist lifting task, in: Sixth International Congress of Bioengineering, 2018.

De Rijcke, 2017, Spexor: Towards a passive spinal exoskeleton, 325

Laevo. Supports you., http://www.laevo.nl/.

LOCKHEED MARTIN, FORTIS, https://www.lockheedmartin.com/en-us/products/exoskeleton-technologies/industrial.html.

Matthew, 2015, Introduction and initial exploration of an active/passive exoskeleton framework for portable assistance, 5351

Shin, 2015, Effects of overhead work involving different heights and distances on neck and shoulder muscle activity, Work, 51, 321, 10.3233/WOR-141867

de Looze, 2016, Exoskeletons for industrial application and their potential effects on physical work load, Ergonomics, 59, 671, 10.1080/00140139.2015.1081988

Theurel, 2018, Physiological consequences of using an upper limb exoskeleton during manual handling tasks, Applied Ergon., 67, 211, 10.1016/j.apergo.2017.10.008

Kim, 2018, Assessing the influence of a passive, upper extremity exoskeletal vest for tasks requiring arm elevation: Part i–”expected” effects on discomfort, shoulder muscle activity, and work task performance, Applied Ergon., 70, 315, 10.1016/j.apergo.2018.02.025

BUREAU OF LABOR STATISTICS, Nonfatal Occupational In- juries and Illnesses Requiring Days Away From Work, 2016, https://www.bls.gov/news.release/osh2.toc.htm.

EXOSKELETON MATE, https://www.comau.com/EN/MATE.

LEVITATE TECHNOLOGIES, INC., //www.levitatetech.com/.

Dynamic Shoulder Support, https://www.suitx.com/shoulderx.

EksoVest, https://eksobionics.com/eksoworks/eksovest/.

Marieb, 2007

W. Maurel, 3d modeling of the human upper limb including the biomechanics of joints, muscles and soft tissues, EPFL, Tech. Rep., 1999.

Wu, 2005, Isb recommendation on definitions of joint coordinate systems of various joints for the reporting of human joint motion-part ii: shoulder, elbow, wrist and hand, J. Biomech., 38, 981, 10.1016/j.jbiomech.2004.05.042

Ball, 2008

Yalcin, 2012, Kinematics and design of assiston-SE: A self-adjusting shoulder-elbow exoskeleton, 1579

Maurel, 1996, A biomechanical musculoskeletal model of human upper limb for dynamic simulation, 121

Näf, 2018, Misalignment compensation for full human-exoskeleton kinematic compatibility: State of the art and evaluation, Appl. Mech. Rev., 70, 050802, 10.1115/1.4042523

Lum, 2009, Gains in upper extremity function after stroke via recovery or compensation: potential differential effects on amount of real-world limb use, Top. Stroke Rehabil., 16, 237, 10.1310/tsr1604-237

Hyun, 2017, Biomechanical design of an agile, electricity-powered lower-limb exoskeleton for weight-bearing assistance, Robot. Auton. Syst., 95, 181, 10.1016/j.robot.2017.06.010

P. Cavanagh, Recommendations for standardization in the reporting of kinematic data, Report from the ISB Committee for Standardization and Terminology, ISB Newsletter, vol. 44, no. 2, p. 3, 1992.

Maurel, 1999, A case study on human upper limb modeling for dynamic simulation, Comput. Methods Biomech. Biomed. Eng., 2, 65, 10.1080/10255849908907979

Jones, 2006

Kim, 2012, Development of the exoskeleton knee rehabilitation robot using the linear actuator, Int. J. Precis. Eng. Manuf., 13, 1889, 10.1007/s12541-012-0248-3

Högfors, 1991, Biomechanical model of the human shoulder joint-ii. The shoulder rhythm, J. Biomech., 24, 699, 10.1016/0021-9290(91)90334-J

Hyun, 2017, Development of ankle-less active lower-limb exoskeleton controlled using finite leg function state machine, Int. J. Precis. Eng. Manuf., 18, 803, 10.1007/s12541-017-0096-2

Kim, 2013, Electromyographic analysis: theory and application, Seoul: Hanmi Med., 43

Hislop, 2013

Boettcher, 2008, Standard maximum isometric voluntary contraction tests for normalizing shoulder muscle emg, J. Orthop. Res., 26, 1591, 10.1002/jor.20675

Halaki, 2012, Normalization of emg signals: To normalize or not to normalize and what to normalize to?

McCauley, 2008, Time vs. ensemble averages for nonstationary time series, Physica A, 387, 5518, 10.1016/j.physa.2008.05.057

Ghasemi, 2012, Normality tests for statistical analysis: a guide for non-statisticians, Int. J. Endocrinol. Metab., 10, 486, 10.5812/ijem.3505