Limit-cycle behavior in free electron lasers
Many Free Electron Lasers (FEL) are driven by short electron pulses which create equally short optical pulses. At saturation, the strong optical fields present in the undulator result in the trapped particle instability which drives the carrier wave unstable and modulates the optical pulse. The trap...
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Monterey, California. Naval Postgraduate School
2012
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ndltd-nps.edu-oai-calhoun.nps.edu-10945-74712014-11-27T16:06:58Z Limit-cycle behavior in free electron lasers Mabe, Roger M. Armstead, Robert L. Colson, W.B. Physics Many Free Electron Lasers (FEL) are driven by short electron pulses which create equally short optical pulses. At saturation, the strong optical fields present in the undulator result in the trapped particle instability which drives the carrier wave unstable and modulates the optical pulse. The trapped particle instability coupled with the short optical pulses can result in periodic oscillations of the pulse shape. This results in oscillations of the output power even though all input parameters are constant. The effect is known as limit cycle behavior. The character of the oscillation is highly nonlinear and is dependent on the physical input parameters of the current density, resonator losses, electron pulse length, and desynchronism of the resonator cavity. These power oscillations affect the operation of the FEL requiring better insight into their cause and control. Using simulations based on a self consistent Maxwell Lorentz theory of FEL operation, the dependence of the limit cycle oscillations on these physical parameters is examined. 2012-07-31T19:53:06Z 2012-07-31T19:53:06Z 1995-12 Thesis http://hdl.handle.net/10945/7471 en_US This publication is a work of the U.S. Government as defined in Title 17, United States Code, Section 101. As such, it is in the public domain, and under the provisions of Title 17, United States Code, Section 105, it may not be copyrighted. Monterey, California. Naval Postgraduate School |
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en_US |
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description |
Many Free Electron Lasers (FEL) are driven by short electron pulses which create equally short optical pulses. At saturation, the strong optical fields present in the undulator result in the trapped particle instability which drives the carrier wave unstable and modulates the optical pulse. The trapped particle instability coupled with the short optical pulses can result in periodic oscillations of the pulse shape. This results in oscillations of the output power even though all input parameters are constant. The effect is known as limit cycle behavior. The character of the oscillation is highly nonlinear and is dependent on the physical input parameters of the current density, resonator losses, electron pulse length, and desynchronism of the resonator cavity. These power oscillations affect the operation of the FEL requiring better insight into their cause and control. Using simulations based on a self consistent Maxwell Lorentz theory of FEL operation, the dependence of the limit cycle oscillations on these physical parameters is examined. |
author2 |
Armstead, Robert L. |
author_facet |
Armstead, Robert L. Mabe, Roger M. |
author |
Mabe, Roger M. |
spellingShingle |
Mabe, Roger M. Limit-cycle behavior in free electron lasers |
author_sort |
Mabe, Roger M. |
title |
Limit-cycle behavior in free electron lasers |
title_short |
Limit-cycle behavior in free electron lasers |
title_full |
Limit-cycle behavior in free electron lasers |
title_fullStr |
Limit-cycle behavior in free electron lasers |
title_full_unstemmed |
Limit-cycle behavior in free electron lasers |
title_sort |
limit-cycle behavior in free electron lasers |
publisher |
Monterey, California. Naval Postgraduate School |
publishDate |
2012 |
url |
http://hdl.handle.net/10945/7471 |
work_keys_str_mv |
AT maberogerm limitcyclebehaviorinfreeelectronlasers |
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1716721120602750976 |