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2022 | OriginalPaper | Buchkapitel

Design of a Soft Robotic Glove for Hand Rehabilitation Based on Pneumatic Network Method and Low Cost Electro-pneumatic Device

verfasst von : Boi Mai Quach, Vo Van Toi, Hien Thi Thu Pham

Erschienen in: 8th International Conference on the Development of Biomedical Engineering in Vietnam

Verlag: Springer International Publishing

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Abstract

The state-of-the-art field of bio-inspired soft robotics promises emergent and inventive methods to utilize robots made from soft, flexible materials in a wide range of applications. This research is on-trend, describes an advancement in the design of a wearable robotic glove to assist people suffering from hand impairments regain their ability to control their environment. This study built a streamlined, inexpensive electro-pneumatic system that can work with small and simple actuators to increase for finger movement flexibility. The use of pneumatic pressure to stretch and bend the actuators through inflation or deformation of elastic chambers, making this glove work effectively. The designed pneumatic device consists of STM32F101C8T6 microcontroller combined with a series of pumps and a matrix of solenoid valves. Along with the electro-pneumatic system, we also applied it to develop a wearable robotic glove (made from Ecoflex™ rubbers) which is suitable for the pneumatic system by the series of experiments that mechanically characterize the actuators. The results gathered in this study validate the feasibility of the first prototype of our soft robotic glove as an effective device to assist hand function in individuals. However, performance and ease of use of the system should be improved further in future development phases.

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Literatur
1.
Zurück zum Zitat W. G. Members, Roger VL, Go AS, Lloyd-Jones DM, Benjamin EJ, Berry JD, Borden WB, Bravata DM, Dai S, Ford ES et al (2012) Heart disease and stroke statistics—2012 update: a report from the American Heart Association. Circulation 125(1):e2 W. G. Members, Roger VL, Go AS, Lloyd-Jones DM, Benjamin EJ, Berry JD, Borden WB, Bravata DM, Dai S, Ford ES et al (2012) Heart disease and stroke statistics—2012 update: a report from the American Heart Association. Circulation 125(1):e2
2.
Zurück zum Zitat S. C. I. C. National (2014) Spinal cord injury facts and figures at a glance. J Spinal Cord Med 37(3):355 S. C. I. C. National (2014) Spinal cord injury facts and figures at a glance. J Spinal Cord Med 37(3):355
3.
Zurück zum Zitat Takahashi CD, Der-Yeghiaian L, Le V, Motiwala RR, Cramer SC (2008) Robot-based hand motor therapy after stroke. Brain 131(2):425–437CrossRef Takahashi CD, Der-Yeghiaian L, Le V, Motiwala RR, Cramer SC (2008) Robot-based hand motor therapy after stroke. Brain 131(2):425–437CrossRef
4.
Zurück zum Zitat Wolf SL, Winstein CJ, Miller JP, Thompson PA, Taub E, Uswatte G, Morris D, Blanton S, Nichols-Larsen D, Clark PC (2008) Retention of upper limb function in stroke survivors who have received constraint-induced movement therapy: the excite randomised trial. Lancet Neurol 7(1):33–40 Wolf SL, Winstein CJ, Miller JP, Thompson PA, Taub E, Uswatte G, Morris D, Blanton S, Nichols-Larsen D, Clark PC (2008) Retention of upper limb function in stroke survivors who have received constraint-induced movement therapy: the excite randomised trial. Lancet Neurol 7(1):33–40
5.
Zurück zum Zitat Liepert J, Bauder H, Miltner WH, Taub E, Weiller C (2000) Treatment-induced cortical reorganization after stroke in humans. Stroke 31(6):1210–1216CrossRef Liepert J, Bauder H, Miltner WH, Taub E, Weiller C (2000) Treatment-induced cortical reorganization after stroke in humans. Stroke 31(6):1210–1216CrossRef
6.
Zurück zum Zitat Laschi C, Mazzolai B, Cianchetti M (2016) Soft robotics: technologies and systems pushing the boundaries of robot abilities. Sci Robot 1(1):eaah3690 Laschi C, Mazzolai B, Cianchetti M (2016) Soft robotics: technologies and systems pushing the boundaries of robot abilities. Sci Robot 1(1):eaah3690
7.
Zurück zum Zitat Laschi C, Cianchetti M, Mazzolai B, Margheri L, Follador M, Dario P (2012) Soft robot arm inspired by the octopus. Adv Robot 26(7):709–727CrossRef Laschi C, Cianchetti M, Mazzolai B, Margheri L, Follador M, Dario P (2012) Soft robot arm inspired by the octopus. Adv Robot 26(7):709–727CrossRef
8.
Zurück zum Zitat Calisti M, Giorelli M, Levy G, Mazzolai B, Hochner B, Laschi C, Dario P (2011) An octopus-bioinspired solution to movement and manipulation for soft robots. Bioinspiration Biomimetics 6(3):036002 Calisti M, Giorelli M, Levy G, Mazzolai B, Hochner B, Laschi C, Dario P (2011) An octopus-bioinspired solution to movement and manipulation for soft robots. Bioinspiration Biomimetics 6(3):036002
9.
Zurück zum Zitat Jung K, Koo JC, Lee YK, Choi HR et al (2007) Artificial annelid robot driven by soft actuators. Bioinspiration Biomimetics 2(2):S42CrossRef Jung K, Koo JC, Lee YK, Choi HR et al (2007) Artificial annelid robot driven by soft actuators. Bioinspiration Biomimetics 2(2):S42CrossRef
10.
Zurück zum Zitat In H, Kang BB, Sin M, Cho K-J (2015) Exo-glove: a wearable robot for the hand with a soft tendon routing system. IEEE Robot Autom Mag 22(1):97–105CrossRef In H, Kang BB, Sin M, Cho K-J (2015) Exo-glove: a wearable robot for the hand with a soft tendon routing system. IEEE Robot Autom Mag 22(1):97–105CrossRef
11.
Zurück zum Zitat Stilli A, Cremoni A, Bianchi M, Ridolfi A, Gerii F, Vannetti F, Wurdemann HA, Al-lotta B, Althoefer K (2018) Airexglove—a novel pneumatic exoskeleton glove for adaptive hand rehabilitation in post-stroke patients. In: 2018 IEEE international conference on soft robotics (RoboSoft). IEEE, pp 579–584 Stilli A, Cremoni A, Bianchi M, Ridolfi A, Gerii F, Vannetti F, Wurdemann HA, Al-lotta B, Althoefer K (2018) Airexglove—a novel pneumatic exoskeleton glove for adaptive hand rehabilitation in post-stroke patients. In: 2018 IEEE international conference on soft robotics (RoboSoft). IEEE, pp 579–584
12.
Zurück zum Zitat Shintake J, Cacucciolo V, Floreano D, Shea H (2018) Soft robotic grippers. Adv Mater 30(29):1707035CrossRef Shintake J, Cacucciolo V, Floreano D, Shea H (2018) Soft robotic grippers. Adv Mater 30(29):1707035CrossRef
13.
Zurück zum Zitat Connelly L, Jia Y, Toro ML, Stoykov ME, Kenyon RV, Kamper DG (2010) A pneumatic glove and immersive virtual reality environment for hand rehabilitative training after stroke. IEEE Trans Neural Syst Rehabil Eng 18(5):551–559CrossRef Connelly L, Jia Y, Toro ML, Stoykov ME, Kenyon RV, Kamper DG (2010) A pneumatic glove and immersive virtual reality environment for hand rehabilitative training after stroke. IEEE Trans Neural Syst Rehabil Eng 18(5):551–559CrossRef
14.
Zurück zum Zitat Polygerinos P, Galloway KC, Sanan S, Herman M, Walsh CJ (2015) EMG controlled soft robotic glove for assistance during activities of daily living. In: 2015 IEEE international conference on rehabilitation robotics (ICORR). IEEE, pp 55–60 Polygerinos P, Galloway KC, Sanan S, Herman M, Walsh CJ (2015) EMG controlled soft robotic glove for assistance during activities of daily living. In: 2015 IEEE international conference on rehabilitation robotics (ICORR). IEEE, pp 55–60
15.
Zurück zum Zitat Kim B, In H, Lee D-Y, Cho K-J (2017) Development and assessment of a hand assist device: Gripit. J Neuroeng Rehabil 14(1):15CrossRef Kim B, In H, Lee D-Y, Cho K-J (2017) Development and assessment of a hand assist device: Gripit. J Neuroeng Rehabil 14(1):15CrossRef
16.
Zurück zum Zitat Chan YH, Tse Z, Ren H (2017) Design evolution and pilot study for a Kirigami-inspired flexible and soft anthropomorphic robotic hand. In: 2017 18th international conference on advanced robotics (ICAR). IEEE, pp 432–437 Chan YH, Tse Z, Ren H (2017) Design evolution and pilot study for a Kirigami-inspired flexible and soft anthropomorphic robotic hand. In: 2017 18th international conference on advanced robotics (ICAR). IEEE, pp 432–437
17.
Zurück zum Zitat Song YS, Sun YS, Van Den Brand R, Von Zitzewitz J, Micera S, Courtine G, Paik J (2013) Soft robot for gait rehabilitation of spinalized rodents. In: 2013 IEEE/RSJ international conference on intelligent robots and systems. IEEE, pp 971–976 Song YS, Sun YS, Van Den Brand R, Von Zitzewitz J, Micera S, Courtine G, Paik J (2013) Soft robot for gait rehabilitation of spinalized rodents. In: 2013 IEEE/RSJ international conference on intelligent robots and systems. IEEE, pp 971–976
18.
Zurück zum Zitat Polygerinos P, Wang Z, Galloway KC, Wood RJ, Walsh CJ (2015) Soft robotic glove for combined assistance and at-home rehabilitation. Robot Auton Syst 73:135–143CrossRef Polygerinos P, Wang Z, Galloway KC, Wood RJ, Walsh CJ (2015) Soft robotic glove for combined assistance and at-home rehabilitation. Robot Auton Syst 73:135–143CrossRef
19.
Zurück zum Zitat Pacchierotti C, Sinclair S, Solazzi M, Frisoli A, Hayward V, Prattichizzo D (2017) Wearable haptic systems for the fingertip and the hand: taxonomy, review, and perspectives. IEEE Trans Haptics 10(4):580–600CrossRef Pacchierotti C, Sinclair S, Solazzi M, Frisoli A, Hayward V, Prattichizzo D (2017) Wearable haptic systems for the fingertip and the hand: taxonomy, review, and perspectives. IEEE Trans Haptics 10(4):580–600CrossRef
Metadaten
Titel
Design of a Soft Robotic Glove for Hand Rehabilitation Based on Pneumatic Network Method and Low Cost Electro-pneumatic Device
verfasst von
Boi Mai Quach
Vo Van Toi
Hien Thi Thu Pham
Copyright-Jahr
2022
DOI
https://doi.org/10.1007/978-3-030-75506-5_8

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