Michel Kireeff Covo
Lawrence Berkeley National Laboratory
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Featured researches published by Michel Kireeff Covo.
Review of Scientific Instruments | 2014
Michel Kireeff Covo
A fast current transformer is mounted after the deflectors of the Berkeley 88-Inch Cyclotron. The measured signal is amplified and connected to the input of a lock-in amplifier. The lock-in amplifier performs a synchronous detection of the signal at the cyclotron second harmonic frequency. The magnitude of the signal detected is calibrated against a Faraday cup and corresponds to the beam intensity. It has exceptional resolution, long term stability, and can measure the beam current leaving the cyclotron as low as 1 nA.A fast current transformer is mounted after the deflectors of the Berkeley 88-Inch Cyclotron. The measured signal is amplified and connected to the input of a lock-in amplifier. The lock-in amplifier performs a synchronous detection of the signal at the cyclotron second harmonic frequency. The magnitude of the signal detected is calibrated against a Faraday cup and corresponds to the beam intensity. It has exceptional resolution, long term stability, and can measure the beam current leaving the cyclotron as low as 1 nA.
IEEE Transactions on Plasma Science | 2011
Michel Kireeff Covo; J. Y. Benitez; Alessandro Ratti; J. Vujic
A radio frequency system of 500 W output power from 10.75 to 12.75 GHz frequency range was designed and integrated into the Advanced Electron Cyclotron Resonance-Upgrade (AECR-U) ion source of the 88-inch cyclotron at Lawrence Berkeley National Laboratory. The AECR-U produces ion beams for the cyclotron, giving large flexibility of ion species and charge states. The broadband frequency of a traveling-wave tube (TWT) allows modifying the volume that couples and heats the plasma. The TWT system design and integration with the AECR-U ion source and results from commissioning are presented.
Review of Scientific Instruments | 2014
Michel Kireeff Covo
The Dee probe used for measuring internal radial beam intensity shows large losses inside the radius of 20 cm of the 88 in. cyclotron. The current of the top and bottom innermost trim coil 1 is unbalanced to study effects of the axial injection displacement. A beam profile monitor images the ion beam bunches, turn by turn. The experimental bunch center of mass position is compared with calculations of the magnetic mirror effect displacement and shows good agreement.The Dee probe used for measuring internal radial beam intensity shows large losses inside the radius of 20 cm of the 88 in. cyclotron. The current of the top and bottom innermost trim coil 1 is unbalanced to study effects of the axial injection displacement. A beam profile monitor images the ion beam bunches, turn by turn. The experimental bunch center of mass position is compared with calculations of the magnetic mirror effect displacement and shows good agreement.
ieee particle accelerator conference | 2007
Michel Kireeff Covo; A.W. Molvik; R.H. Cohen; A. Friedman; P.A. Seidl; Grant Logan; Frank Bieniosek; D. Baca; Jean-Luc Vay; Ernest Orlando; J. Vujic
Beam interaction with background gas and walls produces ubiquitous clouds of stray electrons that frequently limit the performance of particle accelerator and storage rings. Counterintuitively we obtained the electron cloud accumulation by measuring the expelled ions that are originated from the beam-background gas interaction, rather than by measuring electrons that reach the walls. The kinetic ion energy measured with a retarding field analyzer (RFA) maps the depressed beam space-charge potential and provides the dynamic electron cloud density. Clearing electrode current measurements give the static electron cloud background that complements and corroborates with the RFA measurements, providing an absolute measurement of electron cloud density during a 5 mus duration beam pulse in a drift region of the magnetic transport section of the High-Current Experiment (HCX) at LBNL.
Physical Review Letters | 2006
Michel Kireeff Covo; A.W. Molvik; A. Friedman; Jean-Luc Vay; P.A. Seidl; Grant Logan; D. Baca; J. Vujic
Physical Review Special Topics-accelerators and Beams | 2006
Michel Kireeff Covo; A.W. Molvik; A. Friedman; G. Westenskow; J.J. Barnard; R. C. Cohen; P.A. Seidl; Joe W. Kwan; Grant Logan; D. Baca; Frank Bieniosek; C. M. Celata; Jean-Luc Vay; J. Vujic
Journal Name: Physical Review Special Topics - Accelerator and Beams, vol. 9, no. 6, June 12, 2006, pp. 063201 | 2006
Michel Kireeff Covo; A.W. Molvik; A. Friedman; G Westenskow; J.J. Barnard; R. C. Cohen; P.A. Seidl; J W Kwan; Grant Logan; D. Baca; Frank Bieniosek; C.M. Celata; J.-L. Vay; J. Vujic
Archive | 2013
Michel Kireeff Covo
Physical Review A | 2008
Michel Kireeff Covo; Igor D. Kaganovich; Ariel Shnidman; A.W. Molvik; J. Vujic
Presented at: 16th International Symposiuum on Heavy Ion Inertial Fusion, Saint-Malo, France, Jul 09 - Jul 14, 2006 | 2006
Michel Kireeff Covo; A.W. Molvik; A. Friedman; J.J. Barnard; P.A. Seidl; B.G. Logan; D. Baca; J. Vujic