F. Gastaldi
École Polytechnique
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Publication
Featured researches published by F. Gastaldi.
Journal of Instrumentation | 2015
G. Baulieu; M. Bedjidian; K. Belkadhi; J. Berenguer; V. Boudry; P. Calabria; S. Callier; E. Calvo Almillo; S. Cap; L. Caponetto; C. Combaret; R. Cornat; E. Cortina Gil; B. De Callatay; F. Davin; C. de la Taille; R. Dellanegra; D. Delaunay; F. Doizon; F. Dulucq; A. Eynard; M. C. Fouz; F. Gastaldi; L. Germani; G. Grenier; Y. Haddad; R. Han; J. C. Ianigro; R. Kieffer; I. Laktineh
A large prototype of 1.3m3 was designed and built as a demonstrator of the semi-digital hadronic calorimeter (SDHCAL) concept proposed for the future ILC experiments. The prototype is a sampling hadronic calorimeter of 48 units. Each unit is built of an active layer made of 1m2 Glass Resistive Plate Chamber(GRPC) detector placed inside a cassette whose walls are made of stainless steel. The cassette contains also the electronics used to read out the GRPC detector. The lateral granularity of the active layer is provided by the electronics pick-up pads of 1cm2 each. The cassettes are inserted into a self-supporting mechanical structure built also of stainless steel plates which, with the cassettes walls, play the role of the absorber. The prototype was designed to be very compact and important efforts were made to minimize the number of services cables to optimize the efficiency of the Particle Flow Algorithm techniques to be used in the future ILC experiments. The different components of the SDHCAL prototype were studied individually and strict criteria were applied for the final selection of these components. Basic calibration procedures were performed after the prototype assembling. The prototype is the first of a series of new-generation detectors equipped with a power-pulsing mode intended to reduce the power consumption of this highly granular detector. A dedicated acquisition system was developed to deal with the output of more than 440000 electronics channels in both trigger and triggerless modes. After its completion in 2011, the prototype was commissioned using cosmic rays and particles beams at CERN.
IEEE Transactions on Nuclear Science | 1998
I. Adam; R. Alcksan; D. Aston; P. Bailly; C. Beigbeder; M. Benayoun; M. Benkebil; G. R. Bonneaud; D. Breton; H. Briand; D. N. Brown; P. Bourgeois; J. Chauveau; R. Cizeron; J. Cohen-Tanugi; M. R. Convery; P. David; C de la Vaissiere; A. de Lesquen; L. Del Buono; G. Fouque; A. Gaidot; F. Gastaldi; J.F. Genat; L. Gosset; Daniel E. Hale; H. Hamel de Monchenault; O. Hamon; J. Kadyk; M. Karolak
The DIRC, a new type of ring-imaging Cherenkov detector that images internally reflected Cherenkov light, is being constructed as the main hadronic particle identification component of the BABAR detector at SLAC. The device makes use of 5 meter long fused silica (colloquially called quartz) bars, which serve both as the Cherenkov radiators and as light pipes for transmitting the light to an array of photo-multiplier tubes. This paper describes a program of research and development aimed at determining whether bars that meet the stringent requirements of the DIRC can be obtained from commercial sources. The results of studies of bulk absorption of fused silica, surface finish, radiation damage and bulk inhomogeneities are discussed.
IEEE Transactions on Nuclear Science | 1998
P. Bailly; C. Beigbeder; R. Bernier; D. Breton; G. R. Bonneaud; T. Caceres; R. Chase; J. Chauveau; L. Del Buono; F. Dohou; A. Ducorps; F. Gastaldi; J.F. Genat; A. Hrisoho; P. Imbert; H. Lebbolo; P. Matricon; G. Oxoby; C. Renard; L. Roos; S. Sen; C. Thiebaux; K. Trong; V. Tocut; G. Vasileiadis; J. Va'vra; M. Verderi; D. Warner; R. J. Wilson; G. Wormser
The Front-End electronics of the Detector of Internally Reflected Cerenkov light (DIRC) for the BaBar experiment is presented. Its aim is to measure to better than 1 ns the arrival time of Cerenkov photoelectrons, detected in a 11000 phototubes array and their amplitude spectra. It mainly comprises 64-channel DIRC Front-End Boards (DFB) equipped with eight full-custom analog chips performing zero-cross discrimination with 2 mV threshold and pulse shaping, four full-custom digital TDC chips for timing measurements with and a readout logic selecting hits in the trigger window, and DIRC Crate Controller cards (DCC) serializing the data collected from up to 16 DFBs onto a 1.2 Gb/s optical link. Extensive test results of the pre-production chips are presented, as well as system tests.
Journal of Instrumentation | 2017
V. Balagura; A. Thiebault; Sh. Jain; R. Cornat; M. Rubio-Roy; F. Gastaldi; S. Callier; R. Poeschl; H. Hirai; L. Mastrolorenzo; A. Pozdnyakov; J. Bonis; D. Lacour; A. Psallidas; J. Nanni; T. Cheng; M. Ruan; C. de la Taille; N. Seguin-Moreau; M. Frotin; L. Lavergne; J.C. Brient; S. Bilokin; A. Lleres; K. Shpak; V. Boudry; Taikan Suehara; Thi Hien Doan; Shilpi Jain; F. Magniette
Calorimeters with silicon detectors have many unique features and are proposed for several world-leading experiments. We discuss the tests of the first three 18×18 cm2 layers segmented into 1024 pixels of the technological prototype of the silicon-tungsten electromagnetic calorimeter for a future e+e− collider. The tests have beem performed in November 2015 at CERN SPS beam line.
Journal of Instrumentation | 2014
R. Cornat; F. Gastaldi; F. Magniette
A DAQ system is developed within the SiW-Ecal ILC collaboration. It provides a flexible and scalable architecture, compound of four parts. A detector interface (DIF) extracting data from front-end electronics and sending them as packets. Two levels of data concentration, control clock and fast command fanout. The two cards, named DCC and GDCC, use respectively FastEthernet and GigaEthernet. A software suite (named Calicoes) allows to control the DAQ and the detector chips and to acquire data from GigaEthernet. It also includes programs for decoding frontend readout to various formats, and also dispatching and aggregating data. Overall architecture, performance in test beam and prospects for use with hundreds of thousands channels are discussed.
nuclear science symposium and medical imaging conference | 1999
I. Adam; R. Aleksan; D. Aston; P. Bailly; C. Beigbeder; M. Benayoun; M. Benkebil; G. R. Bonneaud; D. Breton; H. Briand; D. N. Brown; P. Bourgeois; J. Chauveau; R. Cizeron; J. Cohen-Tanugi; M. R. Convery; S. Dardin; P. David; G. De Domenico; C de la Vaissiere; A. de Lesquen; S. Emery; G. Fouque; A. Gaidot; F. Gastaldi; J.F. Genat; T.L. Geld; L. Gosset; Daniel E. Hale; G. Hamel de Monchenault
The DIRC (acronym for Detection of Internally Reflected Cherenkov (light)) is a new type of Cherenkov ring imaging detector based on total internal reflection that is used for the first time in the BaBar detector at the PEP-II ring of SLAC. The Cherenkov radiators are long rectangular bars made of synthetic fused silica, the photon detector is a water tank equipped with an array of 10,752 conventional photomultipliers. The first year operational experience in the BaBar detector is presented using cosmic data and collision data in the energy region of the /spl Upsi/(4S) resonance.
nuclear science symposium and medical imaging conference | 1998
P. Bailly; C. Beigbeder; R. Bernier; D. Breton; G. R. Bonneaud; T. Caceres; R. Chase; J. Chauveau; L. Del Buono; F. Dohou; A. Ducorps; F. Gastaldi; J.F. Genat; A. Hrisoho; P. Imbert; H. Lebbolo; P. Matricon; G. Oxoby; C. Renard; L. Roos; S. Sen; C. Thiebaux; K. Truong; V. Tocut; G. Vasileiadis; J. Va'vra; M. Verderi; D. Warner; R. J. Wilson; G. Wormser
Recent results from the Front-End electronics of the Detector of Internally Reflected Cerenkov light (DIRC) for the BaBar experiment at SLAC (Stanford, USA) are presented. It measures to better than 1 ns the arrival time of Cerenkov photoelectrons detected in a 11000 phototubes array and their amplitude spectra. It mainly comprises 64-channel DIRC Front-End Boards (DFB) equipped with eight full-custom analog chips performing zero-cross discrimination with 2 mV threshold and pulse shaping, four full-custom digital time to digital chips (TDC) for timing measurements with 500 ps binning and a readout logic selecting hits in the trigger window, and DIRC Crate Controller cards (DCC) serializing the data collected front up to 16 DFBs onto a 1.2 Gb/s optical link. Extensive test results of the pre-production chips are presented, as well as system tests.
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 1999
P. Bailly; J. Chauveau; L. Del Buono; J.F. Genat; H. Lebbolo; L. Roos; B. Zhang; C. Beigbeder; R. Bernier; D. Breton; T. Caceres; R. Chase; A. Ducorps; A. Hrisoho; P. Imbert; S. Sen; V. Tocut; K. Truong; G. Wormser; F. Zomer; G. R. Bonneaud; F. Dohou; F. Gastaldi; P. Matricon; C. Renard; C. Thiebaux; G. Vasileiadis; M. Verderi; G. Oxoby; J. Va'vra
Archive | 2011
C. Adloff; J. Blaha; J.J. Blaising; M. Chefdeville; C. Drancourt; A Espargilière; R. Gaglione; N. Geffroy; Y. Karyotakis; J. Prast; G. Vouters; M. Benyamna; C. Cârloganu; F Fehr; S. Manen; L. Royer; D. Dzahini; L. Gallin-Martel; J. Giraud; D. Grondin; Jean-Yves Hostachy; K. Krastev; L. Morin; F.E. Rarbi; M. Bedjidian; A. Bonnevaux; C. Combaret; L. Caponetto; Gérald Grenier; R. Han
arXiv: Instrumentation and Detectors | 2018
S. Bilokin; A. Thiebault; D. Yu; R. Cornat; H. Videau; G. Fayolle; F. Gastaldi; S. Callier; A. Lobanov; M. Anduze; H. Yamashiro; Ch. de la Taille; D. Jeans; M. Rubio-Roy; J. Bonis; D. Lacour; J. Nanni; V. Balagura; A. Gallas; R. Pöschl; J. David; J.-E. Augustin; P. Ghislain; N. Seguin-Moreau; M. Frotin; L. Lavergne; J.S. Chai; I. Sekiya; T. Yoshioka; Jc. Brient