G. Dilts’s research while affiliated with Los Alamos National Laboratory and other places

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Publications (5)


CoSyR: A novel beam dynamics code for the modeling of synchrotron radiation effects
  • Article

May 2022

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31 Reads

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1 Citation

Nuclear Instruments and Methods in Physics Research Section A Accelerators Spectrometers Detectors and Associated Equipment

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H.N. Rakotoarivelo

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The self-consistent nonlinear dynamics of a relativistic charged particle beam interacting with its complete self-fields is a fundamental problem underpinning many of the accelerator design issues in high brightness beam applications, as well as the development of advanced accelerators. Particularly, synchrotron radiation induced effects in a magnetic dispersive beamline element can lead to collective beam instabilities and emittance growth. A novel beam dynamic code is developed based on a Lagrangian method for the calculation of the particles2̆019 radiation near-fields using wavefront/wavelet meshes via the Green’s function of the Maxwell equations. These fields are then interpolated onto a moving mesh for dynamic update of the beam. This method allows radiation co-propagation and self-consistent interaction with the beam in 2D/3D simulations at greatly reduced numerical errors. Multiple levels of parallelisms are inherent in this method and implemented in our code CoSyR to enable at-scale simulations of nonlinear beam dynamics on modern computing platforms using MPI, multi-threading, and GPUs. The current 2D implementation of CoSyR has been used to evaluate the transverse and longitudinal coherent radiation effects on the beam and to investigate beam optics designs proposed for mitigation of beam brightness degradation in a magnetic bunch compressor. In this paper, the design of CoSyR, as well as the benchmark with other coherent synchrotron radiation models, are described and discussed. Extension of the core algorithms to 3D is possible and planned.


Figure 3. (Left) The wavefronts (red circles) and the trajectories of a fixed set of wavelets chosen according to Shintake's scheme (blue curves) from an emitting electron of instantaneous velocity v. The clustered wavelets indicate the location of the incoherent field traced by the wavefronts and wavelets. (Right) Multi-scale self-similar structure of the longitudinal radiation near field E rad s in 2D for an electron in uniform circular motion. The field structure consists of a "trough" (orange surface) and a smooth region (blue surface). The self-similar scaling is given by˜Eby˜ by˜E rad s ≡ E rad s R 2 /(eγ 4 ) in the Frenet-Serret coordinates scaled by the Lorentz factor (˜ x ≡ xγ 2 /R, ˜ y ≡ yγ 2 /R, ˜ α ≡ sγ 3 /R). The emitting particle is at the origin and its motion is in the x − α plane. The "trough" feature in 2D becomes a "needle" in 3D with opening ∆α ∼ γ −3 and ∆y ∼ γ −2 /R [20, 21]. Similar features and scaling exist for the transverse fields, and scalar/vector potentials.
Figure 5. Map of the retarded angle/time Ψ in the coordinates of the comoving mesh (α, χ), properly scaled with electron energy γ for the case of γ = 100 and R = 1m. The contour lines show constant Ψ at equal separations of ∆Ψ = 1 × 10 −2 in the right region and ∆Ψ = 1 × 10 −4 on the left.
Figure 12. Comparison of the longitudinal wakefield field lineouts at two transverse locations χ = ±1.5σ with the convolution result ("LW-CSR"). No extra smoothing is used for the lineouts.
CoSyR: a novel beam dynamics code for the modeling of synchrotron radiation effects
  • Preprint
  • File available

September 2021

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86 Reads

The self-consistent nonlinear dynamics of a relativistic charged particle beam interacting with its complete self-fields is a fundamental problem underpinning many of the accelerator design issues in high brightness beam applications, as well as the development of advanced accelerators. Particularly, synchrotron radiation induced effects in a magnetic dispersive beamline element can lead to collective beam instabilities and emittance growth. A novel beam dynamic code is developed based on a Lagrangian method for the calculation of the particles' radiation near-fields using wavefront/wavelet meshes via the Green's function of the Maxwell equations. These fields are then interpolated onto a moving mesh for dynamic update of the beam. This method allows radiation co-propagation and self-consistent interaction with the beam in the simulation at greatly reduced numerical errors. Multiple levels of parallelisms are inherent in this method and implemented in our code CoSyR to enable at-scale simulations of nonlinear beam dynamics on modern computing platforms using MPI, multi-threading, and GPUs. CoSyR has been used to evaluate the transverse and longitudinal coherent radiation effects on the beam and to investigate beam optics designs proposed for mitigation of beam brightness degradation in a magnetic bunch compressor. In this paper, the design of CoSyR, as well as the benchmark with other coherent synchrotron radiation models, are described and discussed.

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Portage: A Modular Data Remap Library for Multiphysics Applications on Advanced Architectures

September 2021

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194 Reads

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6 Citations

Journal of Open Research Software

Portage is a scalable and extensible remap library for numerical simulations. It supports state-of-the-art remap schemes for meshes and particles in 2D and 3D up to a second-order accuracy. Portage ensures critical properties such as local/global conservation and bounds preservation for mesh remap. It enables multi-material field remap through a dedicated plugin, and leverages the hybrid parallelism exposed by advanced architectures using multi-processing and multi-threading.



Citations (2)


... The particle accelerator require attention to each parameter of components to develop a well-established system. Today in the research and development fields and in literature the beam parameters are studied by various scientific groups using different computer program codes [10][11][12][13][14][15][16][17][18][19][20][21][22][23]. ...

Reference:

RF LINAC DESIGN MODELLING FOR OPTIMIZATION OF BEAM PARAMETERS FOR ICS γ-RAY SOURCE SYSTEM
CoSyR: A novel beam dynamics code for the modeling of synchrotron radiation effects
  • Citing Article
  • May 2022

Nuclear Instruments and Methods in Physics Research Section A Accelerators Spectrometers Detectors and Associated Equipment

... Since this element is not usually located on the same MPI rank querying the point, some MPI communication is required. A workaround for this problem in the context of mesh-to-mesh remap is a rendezvous algorithm to re-partition copies of the meshes such that elements in same physical region are located on same MPI ranks [1,2,3,4]. While the rendezvous algorithm incurs storage overhead due to use of mesh copies, it makes the overlapping element search a processor-local problem. ...

Portage: A Modular Data Remap Library for Multiphysics Applications on Advanced Architectures

Journal of Open Research Software