Measurement of the calorimetric energy scale in MINOS

MINOS is a long-baseline neutrino oscillation experiment. A neutrino beam is created at the Fermi National Accelerator Laboratory in Illinois and fired down through the Earth. Measurements of the energy spectra and composition of the neutrino beam are made both at the source using the Near detector...

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Main Author: Hartnell, Jeffrey John
Other Authors: Weber, Alfons : Litchfield, Peter
Published: University of Oxford 2005
Subjects:
Online Access:http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.427617
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spelling ndltd-bl.uk-oai-ethos.bl.uk-4276172015-03-19T05:15:39ZMeasurement of the calorimetric energy scale in MINOSHartnell, Jeffrey JohnWeber, Alfons : Litchfield, Peter2005MINOS is a long-baseline neutrino oscillation experiment. A neutrino beam is created at the Fermi National Accelerator Laboratory in Illinois and fired down through the Earth. Measurements of the energy spectra and composition of the neutrino beam are made both at the source using the Near detector and 735 km away at the Soudan Underground Laboratory in Minnesota using the Far detector. By comparing the spectrum and flavour composition of the neutrino beam between the two detectors neutrino oscillations can be observed. Such a comparison depends on the accuracy of the relative calorimetric energy scale. This thesis details a precise measurement of the calorimetric energy scale of the MINOS Far detector and Calibration detector using stopping muons with a new "track window" technique. These measurements are used to perform the relative calibration between the two detectors. This calibration has been accomplished to 1.7% in data and to significantly better than 2% in the Monte Carlo simulation, thus achieving the MINOS relative calibration target of 2%. A number of cross-checks have been performed to ensure the robustness of the calorimetric energy scale measurements. At the Calibration detector the test-beam energy between run periods is found to be consistent with the detector response to better than 2% after the relative calibration is applied. The muon energy loss in the MINOS detectors determined from Bethe-Bloch predictions, data and Monte Carlo are compared and understood. To estimate the systematic error on the measurement of the neutrino oscillation parameters caused by a relative miscalibration a study is performed. A 2% relative miscalibration is shown to cause a 0.6% bias in the values of Δm<sup>2</sup> and sin<sup>2</sup>(2θ).539.72150287Calorimetry : Calorimeters : Neutrinos : MeasurementUniversity of Oxfordhttp://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.427617http://ora.ox.ac.uk/objects/uuid:9287fd83-e5f8-4341-9158-89ae7a83c269Electronic Thesis or Dissertation
collection NDLTD
sources NDLTD
topic 539.72150287
Calorimetry : Calorimeters : Neutrinos : Measurement
spellingShingle 539.72150287
Calorimetry : Calorimeters : Neutrinos : Measurement
Hartnell, Jeffrey John
Measurement of the calorimetric energy scale in MINOS
description MINOS is a long-baseline neutrino oscillation experiment. A neutrino beam is created at the Fermi National Accelerator Laboratory in Illinois and fired down through the Earth. Measurements of the energy spectra and composition of the neutrino beam are made both at the source using the Near detector and 735 km away at the Soudan Underground Laboratory in Minnesota using the Far detector. By comparing the spectrum and flavour composition of the neutrino beam between the two detectors neutrino oscillations can be observed. Such a comparison depends on the accuracy of the relative calorimetric energy scale. This thesis details a precise measurement of the calorimetric energy scale of the MINOS Far detector and Calibration detector using stopping muons with a new "track window" technique. These measurements are used to perform the relative calibration between the two detectors. This calibration has been accomplished to 1.7% in data and to significantly better than 2% in the Monte Carlo simulation, thus achieving the MINOS relative calibration target of 2%. A number of cross-checks have been performed to ensure the robustness of the calorimetric energy scale measurements. At the Calibration detector the test-beam energy between run periods is found to be consistent with the detector response to better than 2% after the relative calibration is applied. The muon energy loss in the MINOS detectors determined from Bethe-Bloch predictions, data and Monte Carlo are compared and understood. To estimate the systematic error on the measurement of the neutrino oscillation parameters caused by a relative miscalibration a study is performed. A 2% relative miscalibration is shown to cause a 0.6% bias in the values of Δm<sup>2</sup> and sin<sup>2</sup>(2θ).
author2 Weber, Alfons : Litchfield, Peter
author_facet Weber, Alfons : Litchfield, Peter
Hartnell, Jeffrey John
author Hartnell, Jeffrey John
author_sort Hartnell, Jeffrey John
title Measurement of the calorimetric energy scale in MINOS
title_short Measurement of the calorimetric energy scale in MINOS
title_full Measurement of the calorimetric energy scale in MINOS
title_fullStr Measurement of the calorimetric energy scale in MINOS
title_full_unstemmed Measurement of the calorimetric energy scale in MINOS
title_sort measurement of the calorimetric energy scale in minos
publisher University of Oxford
publishDate 2005
url http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.427617
work_keys_str_mv AT hartnelljeffreyjohn measurementofthecalorimetricenergyscaleinminos
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