Arrow Research search

Author name cluster

Chris Thorne

Possible papers associated with this exact author name in Arrow. This page groups case-insensitive exact name matches and is not a full identity disambiguation profile.

2 papers
1 author row

Possible papers

2

ICRA Conference 2011 Conference Paper

Towards the development of gyroscopically controlled micro air vehicles

  • Chris Thorne
  • Mark Yim

Micro air vehicles have emerged as a popular option for diverse robotic and teleoperated applications because of their inherent stealth, portability, and disposability. In this work, we adopt a system-level perspective for the development of a rotary-wing micro air vehicle and propose a new design that utilizes gyroscopic dynamics for attitude control. Unlike traditional vehicles where attitude control moments are generated by aerodynamic control surfaces, the proposed vehicle will leverage the existing angular momentum of its rotating components to generate gyroscopic moments for controlling attitude. The capacity to rapidly generate large gyroscopic control moments, coupled with the precision gained from eliminating the need for complex and restrictive aerodynamic models, improves both agility and adaptability. We present the design and analysis of a new flying machine including the dynamic model with simplified aerodynamics and a control scheme based on a model linearized around hover. Simulations show the responsiveness and stabilization of a simple linear controller for hover.

ICRA Conference 2010 Conference Paper

Brake design for dynamic modular robots

  • Chris Thorne
  • Nikita Skorodinski
  • Hughes Tipton
  • Travis Van Schoyck
  • Mark Yim

An energy efficient joint-locking mechanism that works in conjunction with the main actuator of a robot module is presented. The mechanism will enable chain-style modular reconfigurable robots to perform a wide array of tasks such as dynamic motion and bio-inspired locomotion while consuming less power. The design process for developing this mechanism is presented, and analysis is provided. This mechanism is ideal for modular reconfigurable robot systems, but can be modified to suit many applications. A prototype is developed that outperforms comparable devices such as those that utilize piezoelectrics, magnetic particles, and electromagnetically-actuated disc and drum brakes in terms of power consumption and specific torque.

v2026.09.13