Published November 14, 2011 | Version v1
Report

Community Petascale Project for Accelerator Science and Simulation: Advancing Computational Science for Future Accelerators and Accelerator Technologies

Description

The design and performance optimization of particle accelerators are essential for the success of the DOE scientific program in the next decade. Particle accelerators are very complex systems whose accurate description involves a large number of degrees of freedom and requires the inclusion of many physics processes. Building on the success of the SciDAC-1 Accelerator Science and Technology project, the SciDAC-2 Community Petascale Project for Accelerator Science and Simulation (ComPASS) is developing a comprehensive set of interoperable components for beam dynamics, electromagnetics, electron cooling, and laser/plasma acceleration modelling. ComPASS is providing accelerator scientists the tools required to enable the necessary accelerator simulation paradigm shift from high-fidelity single physics process modeling (covered under SciDAC1) to high-fidelity multiphysics modeling. Our computational frameworks have been used to model the behavior of a large number of accelerators and accelerator R and D experiments, assisting both their design and performance optimization. As parallel computational applications, the ComPASS codes have been shown to make effective use of thousands of processors. ComPASS is in the first year of executing its plan to develop the next-generation HPC accelerator modeling tools. ComPASS aims to develop an integrated simulation environment that will utilize existing and new accelerator physics modules with petascale capabilities, by employing modern computing and solver technologies. The ComPASS vision is to deliver to accelerator scientists a virtual accelerator and virtual prototyping modeling environment, with the necessary multiphysics, multiscale capabilities. The plan for this development includes delivering accelerator modeling applications appropriate for each stage of the ComPASS software evolution. Such applications are already being used to address challenging problems in accelerator design and optimization. The ComPASS organization for software development and applications accounts for the natural domain areas (beam dynamics, electromagnetics, and advanced acceleration), and all areas depend on the enabling technologies activities, such as solvers and component technology, to deliver the desired performance and integrated simulation environment. The ComPASS applications focus on computationally challenging problems important for design or performance optimization to all major HEP, NP, and BES accelerator facilities. With the cost and complexity of particle accelerators rising, the use of computation to optimize their designs and find improved operating regimes becomes essential, potentially leading to significant cost savings with modest investment.

Availability note (English)

Available from http://www.slac.stanford.edu/cgi-wrap/getdoc/slac-pub-14745.pdf; http://www.slac.stanford.edu/cgi-wrap/pubpage?slac-pub-14745.html; PURL: https://www.osti.gov/servlets/purl/1029527/

Additional details

Publishing Information

Imprint Pagination
14 p.
Report number
SLAC-PUB--14745

Conference

Title
Scientific discovery through advanced computing
Acronym
Prepared for SCIDAC 2008
Dates
13-17 Jul 2008
Place
Seattle, WA (United States)

INIS

Country of Publication
United States
Country of Input or Organization
United States
INIS RN
43058957
Subject category
S43: PARTICLE ACCELERATORS;
Resource subtype / Literary indicator
Conference, Non-conventional Literature
Descriptors DEI
ACCELERATION; ACCELERATOR FACILITIES; ACCELERATORS; BEAM DYNAMICS; DEGREES OF FREEDOM; DESIGN; ELECTRON COOLING; OPTIMIZATION; PERFORMANCE; PHYSICS; SIMULATION
Descriptors DEC
BEAM COOLING; DYNAMICS; MECHANICS

Optional Information

Contract/Grant/Project number
AC02-76SF00515
Notes
J.Phys.Conf.Ser.125:012005,2008
Funding organization
US Department of Energy (United States)