Publication | Open Access
PARALLEL HIGHER-ORDER FINITE ELEMENT METHOD FOR ACCURATE FIELD COMPUTATIONS IN WAKEFIELD AND PIC SIMULATIONS
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Citations
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2009
Year
Numerical AnalysisEngineeringComputer-aided DesignComputational MechanicsAccelerator PhysicNumerical ComputationPlasma SimulationNumerical SimulationAdvanced Computations DepartmentComputational ElectromagneticsParallel ComputingBoundary Element MethodAccelerator TechnologyMethod Of Fundamental SolutionWhitney Basis FunctionsPhysicsComputer EngineeringScidac SponsorshipUnstructured Mesh GenerationSynchrotron RadiationNumerical Method For Partial Differential EquationFinite Element MethodNatural SciencesParticle PhysicsParallel ProgrammingParticle Accelerator
Over the past years, SLAC's Advanced Computations Department (ACD), under SciDAC sponsorship, has developed a suite of 3D (2D) parallel higher-order finite element (FE) codes, T3P (T2P) and Pic3P (Pic2P), aimed at accurate, large-scale simulation of wakefields and particle-field interactions in radio-frequency (RF) cavities of complex shape. The codes are built on the FE infrastructure that supports SLAC's frequency domain codes, Omega3P and S3P, to utilize conformal tetrahedral (triangular)meshes, higher-order basis functions and quadratic geometry approximation. For time integration, they adopt an unconditionally stable implicit scheme. Pic3P (Pic2P) extends T3P (T2P) to treat charged-particle dynamics self-consistently using the PIC (particle-in-cell) approach, the first such implementation on a conformal, unstructured grid using Whitney basis functions. Examples from applications to the International Linear Collider (ILC), Positron Electron Project-II (PEP-II), Linac Coherent Light Source (LCLS) and other accelerators will be presented to compare the accuracy and computational efficiency of these codes versus their counterparts using structured grids.
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