The throughput calibration of the VERITAS telescopes
arXiv:2111.04676 · doi:10.1051/0004-6361/202142275
Abstract
Context. The response of imaging atmospheric Cherenkov telescopes to incident γ-ray-initiated showers in the atmosphere changes as the telescopes age due to exposure to light and weather. These aging processes affect the reconstructed energies of the events and γ-ray fluxes. Aims. This work discusses the implementation of signal calibration methods for the Very Energetic Radiation Imaging Telescope Array System (VERITAS) to account for changes in the optical throughput and detector performance over time. Methods. The total throughput of a Cherenkov telescope is the product of camera-dependent factors, such as the photomultiplier tube gains and their quantum efficiencies, and the mirror reflectivity and Winston cone response to incoming radiation. This document summarizes different methods to determine how the camera gains and mirror reflectivity have evolved over time and how we can calibrate this changing throughput in reconstruction pipelines for imaging atmospheric Cherenkov telescopes. The implementation is validated against seven years of observations with the VERITAS telescopes of the Crab Nebula, which is a reference object in very-high-energy astronomy. Results. Regular optical throughput monitoring and the corresponding signal calibrations are found to be critical for the reconstruction of extensive air shower images. The proposed implementation is applied as a correction to the signals of the photomultiplier tubes in the telescope simulation to produce fine-tuned instrument response functions. This method is shown to be effective for calibrating the acquired γ-ray data and for recovering the correct energy of the events and photon fluxes. At the same time, it keeps the computational effort of generating Monte Carlo simulations for instrument response functions affordably low.
19 pages, 20 figures, 2 tables Received: 22 September 2021 / Accepted: 03 November 2021
References in corpus (12)
- Background Modelling in Very-High-Energy gamma-ray Astronomy
- The First VERITAS Telescope
- Teraelectronvolt emission from the -ray burst GRB 190114C
- VERITAS Observations of the gamma-Ray Binary LS I +61 303
- Sky Quality Meter measurements in a colour changing world
- Gamma-Hadron Separation Methods for the VERITAS Array of Four Imaging Atmospheric Cherenkov Telescopes
- Improved /hadron separation for the detection of faint gamma-ray sources using boosted decision trees
- Using Muon Rings for the Calibration of the Cherenkov Telescope Array: A Systematic Review of the Method and its Potential Accuracy
- Photon Detection Efficiency Measurements of the VERITAS Cherenkov Telescope Photomultipliers after four Years of Operation
- Calibration of the Cherenkov Telescope Array using Cosmic Ray Electrons
- A method to measure the mirror reflectivity of a prime focus telescope
- In-situ measurements of whole-dish reflectivity for VERITAS
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- Sensitivity to Axion-like Particle dark matter with very-high-energy gamma-ray observations of Active Galactic Nuclei located behind Galaxy Clusters
- Investigation of the Microquasar SS 433 with VERITAS
- Exploring the Potential of the Pulsed Laser onboard the CALIPSO Satellite to Improve Calibration with VERITAS