Ji-Suk Kim

dblp:137/9772 · DBLP profile ↗
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5ranked-venue papers
2as first author
0since 2021 · last 2015
—ORCID · none

Domains — the database's venue-derived domains; a paper can count in several

Artificial intelligence and machine learning · 4 · 2 first-authorSystems, architecture and hardware · 4 · 2 first-authorApplied, interdisciplinary, general and emerging computing · 1

Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.

Artificial intelligence
2 papers
Robot manipulation · 79% Legged, aerial and field robots · 21%
Computer graphics and multimedia
1 paper
Computational fabrication · 100%

Topics — the 6 heaviest of 6, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Robotics › Robot manipulation › continuum robot
concentric tube robot
0.212014
Toward a solution to the snapping problem in a concentric-tube continuum robot: Grooved tubes with anisotropy · ICRA 2014
Robotics › Robot manipulation
continuum robot
0.212014
Toward a solution to the snapping problem in a concentric-tube continuum robot: Grooved tubes with anisotropy · ICRA 2014
Computational fabrication
origami-inspired fabrication
0.212014
Fabrication of origami wheel using pattern embedded fabric and its application to a deformable mobile robot · ICRA 2014
Robotics › Robot manipulation › robot design
mechanism design
0.112014
Toward a solution to the snapping problem in a concentric-tube continuum robot: Grooved tubes with anisotropy · ICRA 2014
Robotics › Legged, aerial and field robots
mobile robot locomotion
0.112014
Fabrication of origami wheel using pattern embedded fabric and its application to a deformable mobile robot · ICRA 2014
Robotics › Legged, aerial and field robots › rough terrain locomotion
obstacle traversal
0.112014
Fabrication of origami wheel using pattern embedded fabric and its application to a deformable mobile robot · ICRA 2014

Methods — techniques the papers use, named apart from their topics

pattern-embedded fabric fabrication · 0.4cable-driven actuation · 0.4video image analysis · 0.2simulation · 0.2
YearPublicationVenuePosition
2015 Anisotropic Patterning to Reduce Instability of Concentric-Tube Robots
abstract
As a steerable needle or robotic manipulator, the concentric-tube robot shows good potential for use in minimally invasive medical procedures. However, the torsional deformation of the precurved tubes comes at the price of instability, which not only limits the workspace and tool path but also potentially creates danger of tissue rupture when external load is applied. In this paper, we propose anisotropic patterning of tubes to solve the instability problem. Hole-patterning can tune the mechanical properties of the tubes so that the ratio of the torsional rigidity to the bending rigidity becomes higher. This study investigates the effect of pattern design parameters by building a lumped analytical model and examining it with finite-element analysis. The pattern is engraved via laser machining and we experimentally verify that material anisotropy reduces instability.
Dae-Young Lee 0001, Ji-Suk Kim, Changyeob Baek, Gunwoo Noh, Do-Nyun Kim, Keri Kim, Sungchul Kang, Kyu-Jin Cho
IEEE Trans. Robotics3
2014 Toward a solution to the snapping problem in a concentric-tube continuum robot: Grooved tubes with anisotropy
abstract
The concentric-tube continuum robot generates distal end motions by translating and rotating the proximal ends of pre-curved tubes that overlap concentrically. This robot does not require additional actuators along the tubes because the overall curvature and distal end position are determined solely by interactions between the inner and outer tubes. However, under certain conditions, the rotation of the distal end is hindered as the actuation energy accumulates into torsional energy of the tubes. As the distal ends are rotated further, the accumulated energy from the twisting is suddenly released, which makes the tubes snap to a remote position. This is called the snapping problem, and it considerably limits the performance of the robot. In this paper, we propose a novel design for the concentric tubes to eliminate the snapping problem. The new design creates groove patterns on superelastic nitinol tubes to make the tubes more flexible to bending than twisting. Simulations and experiments were performed to verify that the tubes with our groove patterns had anisotropic structural characteristics, and video image analysis verified that this structural property can eliminate the snapping problem. A concentric-tube robot with this new tube design can have a larger workspace area because tubes with greater curvatures can be used without the snapping problem.
Ji-Suk Kim, Dae-Young Lee 0001, Keri Kim, Sungchul Kang, Kyu-Jin Cho
ICRA1
2014 Fabrication of origami wheel using pattern embedded fabric and its application to a deformable mobile robot
abstract
The unique characteristics of origami to realize 3-D shape from 2-D patterns have been fascinating many researchers and engineers. This paper presents a fabrication of origami patterned fabric wheels that can deform and change the radius of the wheels. PVC segments are enclosed in the fabrics to build a tough and foldable structure. A special cable driven mechanism was designed to allow the wheels to deform while rotating. A mobile robot with two origami wheels has been built and tested to show that it can deform its wheels to overcome various obstacles.
Dae-Young Lee 0001, Ji-Suk Kim, Jae-Jun Park, Sareum Kim, Kyu-Jin Cho
ICRA2
2014 Role of compliant leg in the flea-inspired jumping mechanism
abstract
Jumping locomotion has been widely employed in milliscale mobile robots to help overcome their size limitations by extending their range and enabling them to overcome obstacles. During jumping, the robot's legs experience acceleration that is up to an order of magnitude greater than the gravitational acceleration. This large force results in bending of the jumping legs. In this paper, we study how the bending of the leg affects the jumping performance of a flea-inspired jumping robot. To judge the effect of the leg compliance, the amount of energy lost during jumping is determined by examining the ratio of kinetic energy to input energy, which we define as the mechanical efficiency. The bending leg is dynamically modeled using a pseudo-rigid-body model in order to precisely analyze the energy transfer. Jumping experiments are performed for five different legs, each with a different stiffness. Shape memory polymer rivets, which are lightweight and compact, were used to easily switch out the legs. The mechanical efficiency of the robot with appropriately chosen leg compliance was 41.27% compared with 36.93% for the rigid case and 21.51% for the much more compliant case. The results show that optimizing the compliance of a jumping leg can improve the performance of a jumping robot.
Gwang-Pil Jung, Ji-Suk Kim, Je-Sung Koh, Sun-Pil Jung, Kyu-Jin Cho
IROS2
2013 Meso-scale robot assembly using shape memory polymer rivet fastener
abstract
This paper describes a novel rivet fastener made with shape memory polymer (SMP). Shape recovery and modulus change are main two properties of SMPs that enable themselves to be promising base materials for fasteners. The new type of fastener was used to join two composite parts of a meso-scale robot. The fabrication procedure includes macro molding and subsequent laser machining in order to enhance manufacturability, and change size and design on demand. By pull-off experiment it was demonstrated that one single rivet can endure 8N of disengagement force. We applied this fastener to meso-scale flea robot and verified its feasibility.
Ji-Suk Kim, Gwang-Pil Jung, Je-Sung Koh, Kyu-Jin Cho
IROS1