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Dive into the research topics where Stefano De Santis is active.

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Featured researches published by Stefano De Santis.


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2014

Electron Cloud Density Measurements in Accelerator Beam-pipe Using Resonant Microwave Excitation

J. Sikora; B. Carlson; Danielle O. Duggins; Kenneth Hammond; Stefano De Santis; Alister J. Tencate

Abstract An accelerator beam can generate low energy electrons in the beam-pipe, generally called electron cloud, that can produce instabilities in a positively charged beam. One method of measuring the electron cloud density is by coupling microwaves into and out of the beam-pipe and observing the response of the microwaves to the presence of the electron cloud. In the original technique, microwaves are transmitted through a section of beam-pipe and a change in EC density produces a change in the phase of the transmitted signal. This paper describes a variation on this technique in which the beam-pipe is resonantly excited with microwaves and the electron cloud density calculated from the change that it produces in the resonant frequency of the beam-pipe. The resonant technique has the advantage that measurements can be localized to sections of beam-pipe that are a meter or less in length with a greatly improved signal to noise ratio.


arXiv: Accelerator Physics | 2013

TE Wave Measurement and Modeling

J. Sikora; Robert Schwartz; Kiran G. Sonnad; Stefano De Santis; D. Alesini

In the TE wave method, microwaves are coupled into the beam-pipe and the effect of the electron cloud on these microwaves is measured. An electron cloud (EC) density can then be calculated from this measurement. There are two analysis methods currently in use. The first treats the microwaves as being transmitted from one point to another in the accelerator. The second more recent method, treats the beam-pipe as a resonant cavity. This paper will summarize the reasons for adopting the resonant TE wave analysis as well as give examples from CESRTA and DA{\Phi}NE of resonant beam-pipe. The results of bead-pull bench measurements will show some possible standing wave patterns, including a cutoff mode (evanescent) where the field decreases exponentially with distance from the drive point. We will outline other recent developments in the TE wave method including VORPAL simulations of microwave resonances, as well as the simulation of transmission in the presence of both an electron cloud and magnetic fields.


7th International Particle Accelerator Conference (IPAC'16), Busan, Korea, May 8-13, 2016 | 2016

Physics Design Progress towards a Diffraction Limited Upgrade of the ALS

C. Steier; John M. Byrd; Stefano De Santis; Hiroshi Nishimura; David Robin; Fernando Sannibale; Changchun Sun; Marco Venturini; Weishi Wan

Improvements in brightness and coherent flux of more than two orders of magnitude are possible using multi bend achromat lattice designs [1]. These improvements can be implemented as upgrades of existing facilities, like the proposed upgrade of the Advanced Light Source. We will describe the progress in the physics design of this upgrade, including lattice evolution, error tolerance studies, simulations of collective effects, and intra beam scattering.


5th Int. Particle Accelerator Conf. (IPAC'14), Dresden, Germany, June 15-20, 2014 | 2014

Proposal for a Soft X-ray Diffraction Limited Upgrade of the ALS

C. Steier; André Anders; D. Arbelaez; K. Baptiste; Walter Barry; John M. Byrd; Ken Chow; Stefano De Santis; Robert M. Duarte; R. W. Falcone; J.Y. Jung; Stephen Kevan; Slawomir Kwiatkowski; Tianhuan Luo; Arnaud Madur; Hiroshi Nishimura; James Osborn; Chris Pappas; Lou Reginato; David Robin; Fernando Sannibale; R. Schlueter; Changchun Sun; Charles Swenson; Hamed Tarawneh; W.L. Waldron; Weishi Wan


5th Int. Particle Accelerator Conf. (IPAC'14), Dresden, Germany, June 15-20, 2014 | 2012

Status of the APEX Project at LBNL

Fernando Sannibale; K. Baptiste; Carl Cork; J. Corlett; Stefano De Santis; Lawrence Doolittle; Jennifer Doyle; Daniele Filippetto; Gregory Harris; Gang Huang; Hanjing Huang; R.Huang; Tobin Kramasz; Slawomir Kwiatkowski; Richard Lellinger; Vladimir Moroz; Eric Norum; C. F. Papadopoulos; Gregory Portmann; Houjun Qian; John Staples; Massimiliano Vinco; Steve Virostek; Russell Wells; M. Zolotorev


Lawrence Berkeley National Laboratory | 2004

CIRCE, the Coherent Infrared Center at the ALS

J.M. Byrd; Stefano De Santis; J.Y. Jung; Derun Li; Michael C. Martin; Wayne R. McKinney; Dawn Munson; Hiroshi Nishimura; David Robin; Fernando Sannibale; R. Schlueter; Marco Venturini; Weishi Wan; M. Zolotorev


5th Int. Particle Accelerator Conf. (IPAC'14), Dresden, Germany, June 15-20, 2014 | 2014

A Wideband Slotted Kicker Design for SPS Transverse Intra-Bunch Feedback

John Cesaratto; D. Alesini; Stefano De Santis; J. Fox; A. Gallo; Wolfgang Höfle; Claudio Rivetta; M. Zobov


5th Int. Particle Accelerator Conf. (IPAC'14), Dresden, Germany, June 15-20, 2014 | 2014

Injection/Extraction Kicker for the ALS-U Project

Stefano De Santis; Walter Barry; Slawomir Kwiatkowski; Tianhuan Luo; Chris Pappas; Lou Reginato; David Robin; C. Steier; Changchun Sun; Hamed Tarawneh; W.L. Waldron


5th Int. Particle Accelerator Conf. (IPAC'14), Dresden, Germany, June 15-20, 2014 | 2014

FAST KICKER SYSTEMS FOR ALS-U

Chris Pappas; Stefano De Santis; James E. Galvin; L. Reginato; C. Steier; Changchun Sun; Hamed Tarawneh; W.L. Waldron


8th European Workshop on Beam Diagnostics andInstrumentation for Particle Accelerators, Mestre, Italy, May 20-23,2007 | 2007

Fiberoptics-Based Instrumentation for Storage Ring BeamDiagnostics

John M. Byrd; Stefano De Santis; Y. Yin

Collaboration


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John M. Byrd

Lawrence Berkeley National Laboratory

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C. Steier

Lawrence Berkeley National Laboratory

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Chris Pappas

Lawrence Berkeley National Laboratory

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J. Fox

Stanford University

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W.L. Waldron

Los Alamos National Laboratory

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Changchun Sun

Lawrence Berkeley National Laboratory

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David Robin

Lawrence Berkeley National Laboratory

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Hiroshi Nishimura

Lawrence Berkeley National Laboratory

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J.Y. Jung

Lawrence Berkeley National Laboratory

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