12 research outputs found
Advanced development for space robotics with emphasis on fault tolerance
This paper describes the ongoing work in fault tolerance at the University of Texas at Austin. The paper describes the technical goals the group is striving to achieve and includes a brief description of the individual projects focusing on fault tolerance. The ultimate goal is to develop and test technology applicable to all future missions of NASA (lunar base, Mars exploration, planetary surveillance, space station, etc.)
CHAMPION: Chalmers Hierarchical Atomic, Molecular, Polymeric & Ionic Analysis Toolkit
We present CHAMPION: a software developed to automatically detect
time-dependent bonds between atoms based on their dynamics, classify the local
graph topology around them, and analyze the physicochemical properties of these
topologies by statistical physics. In stark contrast to methodologies where
bonds are detected based on static conditions such as cut-off distances,
CHAMPION considers pairs of atoms to be bound only if they move together and
act as a bound pair over time. Furthermore, the time-dependent global bond
graph is possible to split into dynamically shifting connected components or
subgraphs around a certain chemical motif and thereby allow the physicochemical
properties of each such topology to be analyzed by statistical physics.
Applicable to condensed matter and liquids in general, and electrolytes in
particular, this allows both quantitative and qualitative descriptions of local
structure, as well as dynamical processes such as speciation and diffusion. We
present here a detailed overview of CHAMPION, including its underlying
methodology, implementation and capabilities.Comment: 11 pages, 8 figure
Starting Manufacture of the ITER Central Solenoid
The central solenoid (CS) is a key component of the ITER magnet system to provide the magnetic flux swing required to drive induced plasma current up to 15 MA. The manufacture of its different subcomponents has now started, following completion of the design analyses and achievement of the qualification of the manufacturing procedures. A comprehensive set of analyses has been produced to demonstrate that the CS final design meets all requirements. This includes in particular structural analyses carried out with different finite-element models and addressing normal and fault conditions. Following the Final Design Review, held in November 2013, and the subsequent design modifications, the analyses were updated for consistency with the final design details and provide evidence that the Magnet Structural Design Criteria are fully met. Before starting any manufacturing activity of a CS component, a corresponding dedicated qualification program has been carried out. This includes manufacture of mockups using the real manufacturing tools to be tested in relevant conditions. Acceptance criteria have been established for materials and components, winding including joints, cooling inlets and outlets, insulation, precompression, and support structure elements