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Vytas Sunspiral

14 accepted papers

2020

Spinal Helical Actuation Patterns for Locomotion in Soft Robots

RA-L 2020

Spinal-driven locomotion was first hypothesized to exist in biological systems in the 1980s. However, only recently has the concept been applied to legged robots. In implementing spinal-driven locomotion in robots to-date, researchers have focused on bending in the spine. In this article, we propose

Cited by 5SourceScholar
2018

Bio-Inspired Tensegrity Flexural Joints

ICRA 2018poster

Most robotics literature model the human's knee and hip as a revolute joint with limited range of rotation. Although somehow close to reality, this approach neglects a critical aspect of these joints, which is their internal flexibility. This paper presents a prototype tensegrity flexural manipulato…

Cited by 42SourceScholar
2018

Design of SUPERball v2, a Compliant Tensegrity Robot for Absorbing Large Impacts

IROS 2018poster

In this paper, we present the system design and initial testing of SUPERball v2, a completely re-designed 2-meter spherical six-bar tensegrity robot designed to survive high-speed landings as well as locomote to desired locations. SUPERball v2 was designed to enable a host of new actuation and exper…

Cited by 113SourceScholar
2017

Deep reinforcement learning for tensegrity robot locomotion

ICRA 2017poster

Tensegrity robots, composed of rigid rods connected by elastic cables, have a number of unique properties that make them appealing for use as planetary exploration rovers. However, control of tensegrity robots remains a difficult problem due to their unusual structures and complex dynamics. In this…

Cited by 135SourceScholar
2016

A bio-inspired tensegrity manipulator with multi-DOF, structurally compliant joints

IROS 2016poster

Most traditional robotic mechanisms feature inelastic joints that are unable to robustly handle large deformations and off-axis moments. As a result, the applied loads are transferred rigidly throughout the entire structure. The disadvantage of this approach is that the exerted leverage is magnified…

Cited by 108SourceScholar
2016

A lightweight, multi-axis compliant tensegrity joint

ICRA 2016

In this paper, we present a lightweight, multi-axis compliant tensegrity joint that is biologically inspired by the human elbow. This tensegrity elbow actuates by shortening and lengthening cables in a method inspired by muscular actuation in a person. Unlike many series elastic actuators, this join

Cited by 37SourceScholar
2016

Hopping and rolling locomotion with spherical tensegrity robots

IROS 2016poster

This work presents a 10 kg tensegrity ball probe that can quickly and precisely deliver a 1 kg payload over a 1 km distance on the Moon by combining cable-driven rolling and thruster-based hopping. Previous research has shown that cable-driven rolling is effective for precise positioning, even in ro…

Cited by 80SourceScholar
2016

Morphological design for controlled tensegrity quadruped locomotion

IROS 2016poster

From the viewpoint of evolution, vertebrates first accomplished locomotion via motion of the spine. Legs evolved later, to enhance mobility, but the spine remains central. Contrary to this, most robots have rigid torsos and rely primarily on movement of the legs for mobility. The force distributing…

Cited by 56SourceScholar
2016

The second generation prototype of a Duct Climbing Tensegrity robot, DuCTTv2

ICRA 2016

Duct exploration and maintenance is a task well suited for small agile robots, which must be capable of navigating complex and irregular systems of ducts. Previously, we presented a tensegrity robot, DuCTT (Duct Climbing Tetrahedral Tensegrity), which demonstrated the plausibility of such a robot fo

Cited by 52SourceScholar
2015

System design and locomotion of SUPERball, an untethered tensegrity robot

ICRA 2015poster

The Spherical Underactuated Planetary Exploration Robot ball (SUPERball) is an ongoing project within NASA Ames Research Center's Intelligent Robotics Group and the Dynamic Tensegrity Robotics Lab (DTRL). The current SUPERball is the first full prototype of this tensegrity robot platform, eventually…

Cited by 261SourceScholar
2015

Towards bridging the reality gap between tensegrity simulation and robotic hardware

IROS 2015poster

Using a new hardware implementation of our designs for tunably compliant spine-like tensegrity robots, we show that the NASA Tensegrity Robotics Toolkit can effectively generate and predict desirable locomotion strategies for these many degree of freedom systems. Tensegrity, which provides structura…

Cited by 51SourceScholar