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Optimization of low aspect ratio, iron dominated dipole magnets
A study of the optimization of iron dominated dipole magnets with pole face widths comparable or less than the gap size, i.e., low aspect ratio (AR), is conducted using both theoretical and computational approaches. This regime of magnet design is particularly relevant in the context of laser plasma accelerators (LPA) due to unique beam parameters and geometric constraints, namely large energy spreads and the requirement for large apertures to accommodate drive laser passage. The breakdown of commonly employed approximations and rules of thumb in typical AR1 magnet design is examined. A library of generalized, optimized pole face geometries is provided to expedite optimization of future magnets. Finally, this methodology is used to design an electromagnetic chicane which has been fabricated, validated, and is currently in use in an x-ray free electron laser driven LPA experiment at LBNL
ENLIVE: An Efficient Nonlinear Method for Calibrationless and Robust Parallel Imaging
Robustness against data inconsistencies, imaging artifacts and acquisition
speed are crucial factors limiting the possible range of applications for
magnetic resonance imaging (MRI). Therefore, we report a novel calibrationless
parallel imaging technique which simultaneously estimates coil profiles and
image content in a relaxed forward model. Our method is robust against a wide
class of data inconsistencies, minimizes imaging artifacts and is comparably
fast combining important advantages of many conceptually different
state-of-the-art parallel imaging approaches. Depending on the experimental
setting, data can be undersampled well below the Nyquist limit. Here, even high
acceleration factors yield excellent imaging results while being robust to
noise and the occurrence of phase singularities in the image domain, as we show
on different data. Moreover, our method successfully reconstructs acquisitions
with insufficient field-of-view. We further compare our approach to ESPIRiT and
SAKE using spin-echo and gradient echo MRI data from the human head and knee.
In addition, we show its applicability to non-Cartesian imaging on radial FLASH
cardiac MRI data. Using theoretical considerations, we show that ENLIVE can be
related to a low-rank formulation of blind multi-channel deconvolution,
explaining why it inherently promotes low-rank solutions.Comment: 17 pages, 10 figure
Simultaneous Multi-Slice MRI using Cartesian and Radial FLASH and Regularized Nonlinear Inversion: SMS-NLINV
Purpose: The development of a calibrationless parallel imaging method for
accelerated simultaneous multi-slice (SMS) MRI based on Regularized Nonlinear
Inversion (NLINV), evaluated using Cartesian and radial FLASH. Theory and
Methods: NLINV is a parallel imaging method that jointly estimates image
content and coil sensitivities using a Newton-type method with regularization.
Here, NLINV is extended to SMS-NLINV for reconstruction and separation of all
simultaneously acquired slices. The performance of the extended method is
evaluated for different sampling schemes using phantom and in-vivo experiments
based on Cartesian and radial SMS-FLASH sequences. Results: The basic algorithm
was validated in Cartesian experiments by comparison with ESPIRiT. For
Cartesian and radial sampling, improved results are demonstrated compared to
single-slice experiments, and it is further shown that sampling schemes using
complementary samples outperform schemes with the same samples in each
partition. Conclusion: The extension of the NLINV algorithm for SMS data was
implemented and successfully demonstrated in combination with a Cartesian and
radial SMS-FLASH sequence.Comment: Part of this work has been presented at the ISMRM Annual Conference
2016 (Singapore) and 2017 (Honolulu). 25 pages, 8+4 figure
Transition from Poisson to gaussian unitary statistics: The two-point correlation function
We consider the Rosenzweig-Porter model of random matrix which interpolates
between Poisson and gaussian unitary statistics and compute exactly the
two-point correlation function. Asymptotic formulas for this function are given
near the Poisson and gaussian limit.Comment: 19 pages, no figure
Energy Loss of a High Charge Bunched Electron Beam in Plasma
There has been much interest in the blowout regime of plasma wakefield
acceleration (PWFA), which features ultra-high fields and nonlinear plasma
motion. Using an exact analysis, we examine here a fundamental limit of
nonlinear PWFA excitation, by an infinitesimally short, relativistic electron
beam. The beam energy loss in this case is shown to be linear in charge even
for nonlinear plasma response, where a normalized, unitless charge exceeds
unity. The physical basis for this effect is discussed, as are deviations from
linear behavior observed in simulations with finite length beams.Comment: Submitted to Physical Review Letter
Radiative Losses in Plasma Accelerators
We investigate the dynamics of a relativistic electron in a strongly
nonlinear plasma wave in terms of classical mechanics by taking into account
the action of the radiative reaction force. The two limiting cases are
considered. In the first case where the energy of the accelerated electrons is
low, the electron makes many betatron oscillations during the acceleration. In
the second case where the energy of the accelerated electrons is high, the
betatron oscillation period is longer than the electron residence time in the
accelerating phase. We show that the force of radiative friction can severely
limit the rate of electron acceleration in a plasma accelerator.Comment: 17 pages, 5 figure
Semiclassical wave equation and exactness of the WKB method
The exactness of the semiclassical method for three-dimensional problems in
quantum mechanics is analyzed. The wave equation appropriate in the
quasiclassical region is derived. It is shown that application of the standard
leading-order WKB quantization condition to this equation reproduces exact
energy eigenvalues for all solvable spherically symmetric potentials.Comment: 13 page
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