Paper | Title | Other Keywords | Page |
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MOA01 | Riding the FEL Instability (Dedicated to Alberto Renieri) | electron, laser, free-electron-laser, radiation | 1 |
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The Free Electron Laser (FEL) operation, like that of any Free Electron source of coherent radiation, is associated with the onset of an instability. The interplay between the FEL and other instabilities, affecting the beam, is one of the interesting aspects of the associated dynamics. It involves issues of practical interest (Renieri Limit in Storage Ring FELs, suppression of instabilities like saw-tooth and synchrotron…). The paper reviews these problems and offers an overview of the scientific contribution of Alberto Renieri to the FEL from this perspective. | |||
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Slides MOA01 [5.143 MB] | ||
DOI • | reference for this paper ※ https://doi.org/10.18429/JACoW-FEL2019-MOA01 | ||
About • | paper received ※ 26 August 2019 paper accepted ※ 09 September 2019 issue date ※ 05 November 2019 | ||
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TUP037 | Optimization of the Transverse Gradient Undulator (TGU) for Application in a Storage Ring Based XFELO | electron, radiation, emittance, undulator | 131 |
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Funding: U.S. Dept. of Energy, Office of Science, Office of Basic Energy Sciences, under Contract No. DE-AC02-06CH11357 The stringent energy spread requirement of the XFELO poses a challenge for its application in storage rings. One way to overcome this is by using a transverse gradient undulator (TGU) [1]. The TGU gain formula was discussed previously [2]. In this paper, we begin by reviewing the analytical 3D gain formula derived from the gain convolution formula. Following that, we apply numerical optimization to investigate the optimal beam and field parameters for maximal TGU gain. We found that a small emittance ratio (i.e. "flat beam" configuration) has a strong positive impact on TGU gain, as well as other patterns in the optimal parameters. [1] T. I. Smith et al., J. Appl. Phys. 50 (1979) 4580 [2] R. R. Lindberg et al., in Proceedings FEL’13, New York, USA, 2013, pp. 740-748, paper THOBNO02 |
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DOI • | reference for this paper ※ https://doi.org/10.18429/JACoW-FEL2019-TUP037 | ||
About • | paper received ※ 19 August 2019 paper accepted ※ 27 August 2019 issue date ※ 05 November 2019 | ||
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THP020 | Microbunching Enhancement by Adiabatic Trapping | bunching, laser, emittance, injection | 635 |
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Storage ring based concept called steady-state microbunching was proposed years ago for high average power narrowband coherent radiation generation. There are now active efforts on-going by the SSMB collaboration established among Tsinghua University and several other institutes. In this paper we study the particle trap and filamentation process of beam in RF or Micro Bucket which is useful for understanding the injection beam dynamics of SSMB. One remarkable result is the steady-state current distribution after full filamentation has little dependence on the bucket height as long as it is several times larger than the energy spread. A discrete increase of bucket height can boost the bunching, with the sacrifice of emittance growth. An adiabatic change of bucket height from a smaller value to the final desired value is then proposed to boost the bunching while preserving the longitudinal emittance. | |||
DOI • | reference for this paper ※ https://doi.org/10.18429/JACoW-FEL2019-THP020 | ||
About • | paper received ※ 20 August 2019 paper accepted ※ 28 August 2019 issue date ※ 05 November 2019 | ||
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THP055 | A Storage Ring Design for Steady-State Microbunching to Generate Coherent EUV Light Source | lattice, electron, simulation, radiation | 700 |
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The proposal of Steady State Microbunching (SSMB) makes it available to generate high average power coherent radiation, especially has the potential to generate kW level of EUV source for lithography. In order to achieve and maintain SSMB, we propose several concepts. One is that a very short electron bunch below 100 nm is stored in the ring, inserting a strong focusing part to compress the bunch to ~3 nm, then radiating coherently, which is called longitudinal strong focusing (LSF) scheme. We have optimized the candidate lattice to achieve the very short electron bunch storage and microbunching for electron beam. The tracking results show the equilibrium length of the electron bunch is about 400 nm and no particles lose after 4.3 damping time while only single-particle effect is considered. More optimization and some new design based on the simulation results are still implementing. | |||
DOI • | reference for this paper ※ https://doi.org/10.18429/JACoW-FEL2019-THP055 | ||
About • | paper received ※ 19 August 2019 paper accepted ※ 26 August 2019 issue date ※ 05 November 2019 | ||
Export • | reference for this paper using ※ BibTeX, ※ LaTeX, ※ Text/Word, ※ RIS, ※ EndNote (xml) | ||