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Featured researches published by A. Di Virgilio.


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 1990

The VIRGO Project: A wide band antenna for gravitational wave detection

C. Bradaschia; R. Del Fabbro; A. Di Virgilio; A. Giazotto; H. Kautzky; V. Montelatici; D. Passuello; A. Brillet; O. Cregut; P. Hello; C. N. Man; P. T. Manh; Alain Marraud; D. Shoemaker; J. Y. Vinet; F. Barone; L. Di Fiore; L. Milano; G. Russo; J. M. Aguirregabiria; H. Bel; J. P. Duruisseau; G. Le Denmat; P. h. Tourrenc; M. Capozzi; Maurizio Longo; M. Lops; I. Pinto; G. Rotoli; Thibault Damour

Abstract The status of advancement of the VIRGO Project is presented: the first-generation results from the Pisa seismic noise super attenuator give an upper limit to the noise transfer function of 2 × 10 −8 at 10 Hz. The upper limit to the absolute noise of the 400 kg test mass at 10 Hz has been measured to be 1.5 × 10 −13 m/√Hz. The scheme and the related problems of the VIRGO interferometer, which is supposed to work down to 10 Hz, are also presented. At the 3rd Pisa Meeting in 1986 we presented the idea of what could be a very efficient seismic noise reduction system able to give a sensitivity h ∼ 10 −25 at 10 Hz, in a 3 km interferometer for 1 year integration time. Now we have two new facts to present: the first is that the attenuation has been built, is working in Pisa, and shows remarkable characteristics. The second is the Italian-French interferometer VIRGO [1,2], a 3 km long antenna for low and high frequency (10–1000 Hz) gravitational wave (GW) detection. These two items will be presented in this article.


Classical and Quantum Gravity | 1997

The Virgo interferometer

B. Caron; A. Dominjon; C. Drezen; R. Flaminio; X. Grave; F. Marion; L. Massonnet; C. Mehmel; R. Morand; B. Mours; V. Sannibale; M. Yvert; D. Babusci; S. Bellucci; S. Candusso; G. Giordano; G. Matone; J.-M. Mackowski; L. Pinard; F. Barone; E. Calloni; L. Di Fiore; M. Flagiello; F. Garufi; A. Grado; Maurizio Longo; M. Lops; S. Marano; L. Milano; S. Solimeno

The Virgo gravitational wave detector is an interferometer with 3 km long arms in construction near Pisa to be commissioned in the year 2000. Virgo has been designed to achieve a strain sensitivity of a few times at 200 Hz. A large effort has gone into the conception of the mirror suspension system, which is expected to reduce noise to the level of at 10 Hz. The expected signals and main sources of noise are briefly discussed; the choices made are illustrated together with the present status of the experiment.


Physical Review D | 2011

Measuring Gravito-magnetic Effects by Multi Ring-Laser Gyroscope

Filippo Bosi; G. Cella; A. Di Virgilio; A. Ortolan; Alberto Porzio; S. Solimeno; M. Cerdonio; J. P. Zendri; M. Allegrini; Jacopo Belfi; Nicolo' Beverini; Bachir Bouhadef; Giorgio Carelli; I. Ferrante; Enrico Maccioni; R. Passaquieti; Fabio Stefani; Matteo Luca Ruggiero; Angelo Tartaglia; K. U. Schreiber; A. Gebauer; J. P. Wells

SUMMARY We propose an under-ground experiment to detect the general relativistic effects due to the curvature of space-time around the Earth (de Sitter effect) and to rotation of the planet (dragging of the inertial frames or Lense-Thirring effect). It is based on the comparison between the IERS value of the Earth rotation vector and corresponding measurements obtained by a tri-axial laser detector of rotation. The proposed detector consists of six large ring-lasers arranged along three orthogonal axes. In about two years of data taking, the 1% sensitivity required for the measurement of the Lense-Thirring drag can be reached with square rings of 6


Review of Scientific Instruments | 2001

Measurement of the VIRGO superattenuator performance for seismic noise suppression

G. Ballardin; L. Bracci; S. Braccini; C. Bradaschia; C. Casciano; G. Calamai; R. Cavalieri; R. Cecchi; G. Cella; Elena Cuoco; E. D’Ambrosio; V. Dattilo; A. Di Virgilio; L. Fabbroni; F. Fidecaro; F. Frasconi; A. Gaddi; A. Gennai; G. Gennaro; A. Giazotto; G. Losurdo; L. Holloway; P. La Penna; F. Lelli; E. Majorana; M. Mazzoni; F. Paoletti; M. Pasotti; A. Pasqualetti; R. Passaquieti

m


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 1988

The CDF Central and Endwall Hadron Calorimeter

S. Bertolucci; M. Cordelli; B. Esposito; M. Curatolo; P. Giromini; S. Miscetti; A. Sansoni; G. Apollinari; Franco Bedeschi; S. Belforte; G. Bellettini; N. Bonavita; F. Cervelli; G. Chiarelli; R. Del Fabbro; Mauro Dell'Orso; E. Focardi; P. Giannetti; A. Menzione; R. Paoletti; Giovanni Punzi; L. Ristori; A. Scribano; P. Sestini; A. Stefanini; G. Tonelli; F. Zetti; V. Barnes; A. Di Virgilio; A.F. Garfinkel

side, assuming a shot noise limited sensitivity (


Review of Scientific Instruments | 1999

An inverted pendulum preisolator stage for the VIRGO suspension system

G. Losurdo; M. Bernardini; S. Braccini; C. Bradaschia; C. Casciano; V. Dattilo; R. De Salvo; A. Di Virgilio; F. Frasconi; A. Gaddi; A. Gennai; A. Giazotto; Hb Pan; F. Paoletti; A. Pasqualetti; R. Passaquieti; D. Passuello; R. Taddei; Z. Zhang; G. Cella; Elena Cuoco; E. D’Ambrosio; F. Fidecaro; S. Gaggero; P. La Penna; S. Mancini; R. Poggiani; A. Viceré; M. Mazzoni; R. Stanga

20 prad/s/\sqrt{Hz}


Review of Scientific Instruments | 2001

Inertial control of the mirror suspensions of the VIRGO interferometer for gravitational wave detection

G. Losurdo; G. Calamai; Elena Cuoco; L. Fabbroni; G. Guidi; M. Mazzoni; R. Stanga; F. Vetrano; L. Holloway; D. Passuello; G. Ballardin; S. Braccini; C. Bradaschia; R. Cavalieri; R. Cecchi; G. Cella; V. Dattilo; A. Di Virgilio; F. Fidecaro; F. Frasconi; A. Gennai; A. Giazotto; I. Ferrante; P. La Penna; F. Lelli; T. Lomtadze; A. Marin; S. Mancini; F. Paoletti; A. Pasqualetti

). The multi-gyros system, composed of rings whose planes are perpendicular to one or the other of three orthogonal axes, can be built in several ways. Here, we consider cubic and octahedron structures. The symmetries of the proposed configurations provide mathematical relations that can be used to study the stability of the scale factors, the relative orientations or the ring-laser planes, very important to get rid of systematics in long-term measurements, which are required in order to determine the relativistic effects.


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 1997

Extending the VIRGO gravitational wave detection band down to a few Hz: metal blade springs and magnetic antisprings

M. Beccaria; M. Bernardini; E. Bougleux; S. Braccini; C. Bradaschia; C. Casciano; G. Cella; E. Cuoco; E. D'Ambrosio; G. De Carolis; R. Del Fabbro; R. De Salvo; A. Di Virgilio; I. Ferrante; F. Fidecaro; R. Flaminio; A. Gaddi; A. Gennai; G. Gennaro; A. Giazotto; L. Holloway; P. La Penna; G. Losurdo; S. Malik; S. Mancini; J. Nicolas; F. Palla; Hb Pan; F. Paoletti; A. Pasqualetti

Below a few tens of hertz interferometric detection of gravitational waves is masked by seismic vibrations of the optical components. In order to isolate the mirrors of the VIRGO interferometer, a sophisticated suspension system, called superattenuator, has been developed. Its working principle is based on a multistage pendulum acting on seismic vibrations as a chain of second order mechanical low-pass filters. A complete superattenuator has been built and tested. This apparatus allows extending the VIRGO detection band down to a few Hz. A detailed description of the attenuation system and its performance are presented in this article.


Classical and Quantum Gravity | 1998

Relevance of Newtonian seismic noise for the VIRGO interferometer sensitivity

M. Beccaria; M Bernardini; S. Braccini; C. Bradaschia; A Bozzi; C. Casciano; G. Cella; A. Ciampa; Elena Cuoco; G. Curci; E D'Ambrosio; V. Dattilo; G. De Carolis; R. De Salvo; A. Di Virgilio; A Delapierre; D Enard; A Errico; G. Feng; I. Ferrante; F. Fidecaro; F. Frasconi; A. Gaddi; Alberto Gennai; G. Gennaro; A. Giazotto; P. La Penna; G. Losurdo; Michele Maggiore; S. Mancini

Abstract The CDF central and endwall hadron calorimeter covers the polar region between 30° and 150° and a full 2π in azimuth. It consists of 48 steel-scintillator central modules with 2.5 cm sampling and 48 steel-scintillator endwall modules with 5.0 cm sampling. A general description of the detector is given. Calibration techniques and performance are discussed. Some results of the test beam studies are shown.


Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 1998

THE CREEP PROBLEM IN THE VIRGO SUSPENSIONS : A POSSIBLE SOLUTION USING MARAGING STEEL

M. Beccaria; M. Bernardini; S. Braccini; C. Bradaschia; G. Cagnoli; C. Casciano; G. Cella; E. Cuoco; V. Dattilo; G. De Carolis; R. De Salvo; A. Di Virgilio; G. Feng; I. Ferrante; F. Fidecaro; F. Frasconi; A. Gaddi; L. Gammaitoni; A. Gennai; A. Giazotto; L. Holloway; J. Kovalik; P. La Penna; G. Losurdo; S. Malik; S. Mancini; F. Marchesoni; J. Nicolas; F. Palla; Hb Pan

The design of a new preisolator stage for the VIRGO superattenuator is presented. The device is essentially a 6 m high inverted pendulum with horizontal resonant frequency of 30 mHz. An isolation of 65 dB at 1 Hz has been achieved. Very low forces are needed to move the whole superattenuator acting on the inverted pendulum. For this reason, the system is a suitable platform for the active control of the mirror suspension.

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C. Bradaschia

Scuola Normale Superiore di Pisa

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G. Cella

Istituto Nazionale di Fisica Nucleare

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