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Brian H. Do
dblp:223/6436
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5ranked-venue papers
2as first author
4since 2021 · last 2022
0000-0002-6012-8052ORCID · reported
Domains — the database's venue-derived domains; a paper can count in several
Artificial intelligence and machine learning · 5 · 2 first-author · 4 since 2021Systems, architecture and hardware · 5 · 2 first-author · 4 since 2021
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2022 | Task-Specific Design Optimization and Fabrication for Inflated-Beam Soft Robots with Growable Discrete JointsabstractSoft robot serial chain manipulators with the capability for growth, stiffness control, and discrete joints have the potential to approach the dexterity of traditional robot arms, while improving safety, lowering cost, and providing an increased workspace, with potential application in home environments. This paper presents an approach for design optimization of such robots to reach specified targets while minimizing the number of discrete joints and thus construction and actuation costs. We define a maximum number of allowable joints, as well as hardware constraints imposed by the materials and actuation available for soft growing robots, and we formulate and solve an optimization problem to output a planar robot design, i.e., the total number of potential joints and their locations along the robot body, which reaches all the desired targets, avoids known obstacles, and maximizes the workspace. We demonstrate a process to rapidly construct the resulting soft growing robot design. Finally, we use our algorithm to evaluate the ability of this design to reach new targets and demonstrate the algorithm's utility as a design tool to explore robot capabilities given various constraints and objectives. Ioannis Exarchos, Karen Wang, Brian H. Do, Fabio Stroppa, Margaret M. Coad, Allison M. Okamura, C. Karen Liu |
ICRA | 3 |
| 2022 | A Lightweight, High-Extension, Planar 3-Degree-of-Freedom Manipulator Using Pinched Bistable TapesabstractTo facilitate sensing and physical interaction in remote and/or constrained environments, high-extension, lightweight robot manipulators are easier to transport and reach substantially further than traditional serial chain manipulators. We propose a novel planar 3-degree-of-freedom manipulator that achieves low weight and high extension through the use of a pair of spooling bistable tapes, commonly used in self-retracting tape measures, which are pinched together to form a reconfigurable revolute joint. The pinching action flattens the tapes to produce a localized bending region, resulting in a revolute joint that can change its orientation by cable tension and its location on the tapes though friction-driven movement of the pinching mechanism. We present the design, implementation, kinematic modeling, stiffness behavior of the revolute joint, and quasi-static performance of this manipulator. In particular, we demonstrate the ability of the manipulator to reach specified targets in free space, reach a 2D target with various orientations, and maintain an end-effector angle or stationary bending point while changing the other. The long-term goal of this work is to integrate the manipulator with an aerial robot to enable more capable aerial manipulation. O. Godson Osele, Allison M. Okamura, Brian H. Do |
ICRA | 3 |
| 2022 | A Large-Area Wearable Soft Haptic Device Using Stacked Pneumatic Pouch ActuationabstractWhile haptics research has traditionally focused on the fingertips and hands, other locations on the body provide large areas of skin that could be utilized to relay large-area haptic sensations. Researchers have thus developed wearable devices that use distributed vibrotactile actuators and distributed pneumatic force displays, but these methods have limitations. In prior work, we presented a novel actuation technique involving stacking pneumatic pouches and evaluated the actuator output. In this work, we developed a wearable haptic device using this actuation technique and evaluated how the actuator output is perceived. We conducted a user study with 20 participants to evaluate users' perception thresholds, ability to localize, and ability to detect differences in contact area and compare their perception using the stacked pneumatic pouch actuation to traditional single-layer pouch actuation. We also used our device with stacked pneumatic actuation in a demonstration of a haptic hug that replicates the dynamics, pressure profile, and mapping to the human back, showcasing how this actuation technique can be used to create novel haptic stimuli. Cara M. Nunez, Brian H. Do, Andrew K. Low, Laura H. Blumenschein, Katsu Yamane, Allison M. Okamura |
IROS | 2 |
| 2021 | Macro-Mini Actuation of Pneumatic Pouches for Soft Wearable Haptic DisplaysabstractPneumatic wearable haptic devices can provide distributed pressure feedback to human operators during robot teleoperation and in virtual and augmented reality. However, these devices have an inherent trade-off between the spatial coverage of their pressure output and their resolution and dynamic response. To achieve specified spatial resolution and dynamic response, we propose a macro-mini actuation approach that stacks a number of smaller inflatable pouches atop a larger inflatable pouch. We develop models for the static and dynamic responses of single and stacked pouches and compare these with experimental results, providing guidelines for the design of wearable stacked pneumatic displays. Finally, we demonstrate this pneumatic macro-mini approach by replicating the time series pressure profiles of data collected from a huggable robot embedded with distributed force sensors. Brian H. Do, Allison M. Okamura, Katsu Yamane, Laura H. Blumenschein |
ICRA | 1 |
| 2020 | Dynamically Reconfigurable Discrete Distributed Stiffness for Inflated Beam RobotsabstractInflated continuum robots are promising for a variety of navigation tasks, but controlling their motion with a small number of actuators is challenging. These inflated beam robots tend to buckle under compressive loads, producing extremely tight local curvature at difficult-to-control buckle point locations. In this paper, we present an inflated beam robot that uses distributed stiffness changing sections enabled by positive pressure layer jamming to control or prevent buckling. Passive valves are actuated by an electromagnet carried by an electromechanical device that travels inside the main inflated beam robot body. The valves themselves require no external connections or wiring, allowing the distributed stiffness control to be scaled to long beam lengths. Multiple layer jamming elements are stiffened simultaneously to achieve global stiffening, allowing the robot to support greater cantilevered loads and longer unsupported lengths. Local stiffening, achieved by leaving certain layer jamming elements unstiffened, allows the robot to produce "virtual joints" that dynamically change the robot kinematics. Implementing these stiffening strategies is compatible with growth through tip eversion and tendonsteering, and enables a number of new capabilities for inflated beam robots and tip-everting robots. Brian H. Do, Valory Banashek, Allison M. Okamura |
ICRA | 1 |