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Cosmic Rays at Extreme Energies The Pierre Auger Observatory
Ezio Menichetti Dip. di Fisica Sperimentale, Universita’ di Torino INFN, Sez. di Torino Lecture 2
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EAS Detectors Long history, dating back to the ’60s AGASA HiRes
Volcano Ranch (USA) – Sampling Haverah Park (UK) – Sampling SUGAR (Australia) - Sampling Yakutsk (Russia) - Sampling Fly’s Eye (USA) – Fluorescence AGASA HiRes
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AGASA Akeno Giant Air Shower Array
111 scintillators + 27 muon det. Akeno, Japan 11 Super-GZK events Small Scale Clustering Constraints on Composition: protons at UHEs. (“Classical” analysis based on Ne vs Nm)
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HiRes - High Resolution Fly’s Eye
Pioneers of FluorescenceTechnique Air fluorescence detectors HiRes mirrors HiRes mirrors Dugway, Utah, USA No Super-GZK flux No Small Scale Clustering Composition Change
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EAS – Early History
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Ground Array EAS sampled at ground by a number of detector stations
Shower front Shower core hard muons EM shower
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Particle Composition
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Shower Development
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Universality of EM Component
Emax=25 MeV
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The Muon Component
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Tank: Signal Components
e 1 GeV 10 MeV 1.2m Pure Water 240 MeV 10 MeV ~track ~ energy
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Tank: Light Emission by Muons
photomultiplier 41° Retro-diffusing Walls Water When a particle travels faster than the velocity of light in water, Cerenkov light is emitted
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Pulse Shape
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Pulse Height from Muons
Signal unit ~ 1 VEM ~ 94 ph.e.
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Pulse Height for Calibration
Most frequent signals ~ atmospheric muons . . A/D ratio - sliding average over 3 min of signals > 512
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EAS Direction from Timing
B.Rossi, 1953
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Direction from Timing cDt d
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Timing
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Ground Array - LDF Lateral Distribution Function LDF Parametrization
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Constant Intensity Cut
Need to unfold the zenith angle dependence of the tank response to any given energy Assume isotropic flux at high energy: Expect same flux at all angles at any given E →Plot cumulative (i.e. N(S>S0) vs. S0 ) pulse height distribution for each q bin Normalize q=380 150 evts Relative tank response vs angle
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Ground Array - Energy Measured signal density extrapolated to a reference point Typ. S(600m) to S(1000m) to minimize fluctuations Compare to Monte Carlo simulation Good linearity with Eprimary Results somewhat depending on : Primary interaction (physics) Composition (p vs. Iron) E range fixed by detector spacing Lot of fun for us accelerator physicists! Get energy from lateral density…
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Ground Array - Composition
Several tool available. All in all, looks like a tricky business… Just as an example: Signal rise time Iron nucleus: Less cascade steps before reaching More ’s. Less EM energy Smaller muon rise time
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Atmospheric Fluorescence
Radiative De-excitation High energy electron N2 Molecule UV Photons Excited N2 Molecule Collision excitation N2 Molecule + Fluorescence light E.Menichetti – Bari, Aprile 2007
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Fluorescence Yield Atmosphere working as a large scale calorimeter
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A Recent Measurement
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The Fly’s Eye Concept Fluorescence Light EAS Path Sensor Array
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Fluorescence Detector
Shower-detector plane Each PM seeing one segment of the shower Sequence of fast pulses by adjacent PMs Impact point Photomultiplier array
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Atmospheric Headaches - I
Effect of Molecular (Rayleigh) Scattering ~18km h~7.5km =h/~0.41
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Atmospheric Headaches - II
Effect of Aerosol (Mie) Scattering ~20km h~1.2km =h/~0.06
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Cherenkov Headaches Estimate of Cherenkov contamination
Time (100ns bins) Photons (equiv 370nm) Estimate of Cherenkov contamination Total F(t) Direct Rayleigh aerosol
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Fluorescence Detector
Practical implementation of light collection (also in Auger) Pixel camera (Photomultipliers) Spherical mirror (Large ~ 10 m2!)
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Fluorescence Detector
PM current Signal formation: One PM, sequence of time slices
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Fluorescence Detector
Composition (Fly’s Eye) E= eV (Fly’s Eye) p Xmax Fe Unique FD capability: Longitudinal profile
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Comparison: GA vs. FD GA FD Sampling detector 100% duty cycle
Large number of simple, modular elements Shower parameters from x-section Need reliable MCarlo simulation FD Integral calorimeter 10% duty cycle Small number of complex stations Shower parameters from full shower track Need good atmospheric monitoring+calibration
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The Hybrid Concept FD: Measuring Etot & Longitudinal Profile
SD: Sampling Lateral Profile at ground
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