• Title/Summary/Keyword: Finger exoskeleton

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Dynamic Modeling and Design of Finger Exoskeleton Using Polymer Actuator (고분자 구동체를 이용한 손가락 외골격기구의 설계 및 동력학적 모델 개발)

  • Jeong, Gwang-Hun;Kim, Yoon-Jeong;Yoon, Bye-Ri;Wang, Hyuck-Sik;Song, Dae-Seok;Kim, Sul-Ki;Rhee, Kye-Han;Jho, Jae-Young;Kim, Dong-Min;Lee, Soo-Jin
    • Journal of the Korean Society for Precision Engineering
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    • v.29 no.7
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    • pp.717-722
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    • 2012
  • This paper presents the design and dynamic model of the finger exoskeleton actuated by Ionic Polymer Metal Composites (IPMC) to assist a tip pinch task. Although this exoskeleton will be developed to assist 3 degree-of-freedom motion of each finger, it has been currently made to perform the tip pinch task using 1 degree-of-freedom mechanism as the first step. The six layers of IPMC were stacked in parallel to increase the low actuation force of IPMC. In addition, the finger dummy was manufactured to evaluate the performance of the finger exoskeleton. The pinch task experiments, which were performed on the finger dummy with the developed exoskeleton, showed that the pinch force close to the desired level was obtained. Moreover, the dynamic model of the exoskeleton and finger dummy was developed in order to perform the various analyses for the improvement of the exoskeleton.

Study on Grasping Performance of Finger Exoskeleton Actuated by Electroactive Polymers (전기활성 고분자 구동 손가락 외골격 장치의 잡기 성능에 관한 연구)

  • Kim, Min Hyeok;Lee, Soo Jin;Jho, Jae Young;Kim, Dong Min;Rhee, Kyehan
    • Journal of the Korean Society for Precision Engineering
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    • v.32 no.10
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    • pp.873-878
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    • 2015
  • A finger exoskeleton actuated by ionic polymer metal composite (IPMC) actuators has been developed. In order to evaluate performance of cylindrical grasping of finger exoskeletons, they were equipped with a hand dummy, which is composed of four fingers. The finger dummy has three joints that can be actuated by bending the IPMC actuators. A four finger grasping motion was analyzed using cameras, and cylindrical grasping motion was accomplished within two minutes after applying a 4 volt direct voltage to the IPMC actuators. A pull out test was also performed to evaluate the cylindrical grasping force of the finger exoskeletons actuated by the IPMC actuators. Each finger generated about 2 N of holding force when grasping the cylinder which had a diameter of 50 mm.

Bending Motion Control of Electroactive Polymer Actuator-Sensor Hybrid Structure for Finger Exoskeleton (손가락 외골격용 전기활성 고분자 구동체-센서 하이브리드 구조체의 굽힘 동작 제어)

  • Han, Dong Gyun;Song, Dae Seok;Jho, Jae Young;Kim, Dong Min
    • Journal of the Korean Society for Precision Engineering
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    • v.32 no.10
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    • pp.865-871
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    • 2015
  • This study was conducted in order to develop a finger exoskeleton system using ionic polymer metal composites (IPMCs) as the actuator and sensor in a hybrid structure. To use the IPMC as an actuator producing large force, a first order transfer function was obtained using results from a block force for DC excitation that applied to two IPMCs of 20mm-width, 50mm-length, and 2.4mm thickness together. After which the validation of 200gf control with anti-windup PI controller was confirmed. A 5mm-width, 50mm-length, 0.6mm-thickness of IPMC was also modeled as a sensor for tip displacement. As a result, the IPMC sensor could been utilized as a trigger role for the actuator. Finally, an IPMC sensor and actuator were installed on the joint of a single DOF exoskeleton in the hybrid structure, and test for the control of 40gf of block force and predefined sequence of motion was performed.

Analysis of Pinching Motion of a Finger Dummy Actuated by Electro-active Polymer Actuators (전기활성 고분자 구동체에 의한 손가락 모형의 집기 운동 분석)

  • Lee, Doo Won;Min, Min Sik;Lee, Soo Jin;Jho, Jae Young;Kim, Dong Min;Rhee, Kyehan
    • Journal of the Korean Society for Precision Engineering
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    • v.31 no.7
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    • pp.643-649
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    • 2014
  • In order to demonstrate the possibility of applying an ionic polymer metal composite (IPMC) to a finger exoskeleton, pinching motion analysis was performed for a thumb-index finger dummy actuated by IPMC actuators. The IPMC actuators of 5mm in width and 40mm in length with 2.4mm thickness generated 1.52N of blocking force for the applying voltage of 4.0V. Three actuators were installed on the three rotary joint of an index finger, and one actuator was installed on one proximal joint. Positions of each joint and finger tip were recorded on the video camera, and motion was analyzed. Power supply to the index finger actuators preceded power supply to the thumb actuator, and key pinching motion was accomplished in 180s. Tip pinching was accomplished in 135s as power supply to the thumb preceded power supply to the index finger.

Development of Exoskeleton-Type Data Glove for Position/Force Feedback (위치/힘 피드백이 가능한 외골격 구조의 데이터 글로브 개발)

  • Kim, Min-Jeong;Kim, Dae-Gyeong;Park, Han-Gil;Kim, Ui-Kyum;Choi, Byung-June;Choi, Hyouk-Ryeol
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.35 no.12
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    • pp.1585-1591
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    • 2011
  • In this paper, we present a new exoskeleton-type data glove that can sense the movement of the human finger and reflect the force to the finger. The data glove is designed on the basis of the skeletal structure of the human hand, and the finger module has 1 degree-of-freedom because it includes three four-bar mechanism joints in series and a wire-coupling mechanism. In addition, the transmission ratio of the finger module is maintained at 1:1.4:1 over the entire movement range, and hence, the module can perform both extension and flexion. In addition, to enable adduction/abduction motion of the human hand, a unique MCP joint is designed by using two universal joints. To validate the feasibility of the data glove, master-slave control experiments based on force-position control between the data glove and the robot hand are conducted.