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data-tooltip="High Energy Physics - Experiment">hep-ex</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1088/1748-0221/11/09/C09018">10.1088/1748-0221/11/09/C09018 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Preliminary results of Resistive Plate Chambers operated with eco-friendly gas mixtures for application in the CMS experiment </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/physics?searchtype=author&amp;query=Abbrescia%2C+M">M. Abbrescia</a>, <a href="/search/physics?searchtype=author&amp;query=Van+Auwegem%2C+P">P. Van Auwegem</a>, <a href="/search/physics?searchtype=author&amp;query=Benussi%2C+L">L. Benussi</a>, <a href="/search/physics?searchtype=author&amp;query=Bianco%2C+S">S. Bianco</a>, <a href="/search/physics?searchtype=author&amp;query=Cauwenbergh%2C+S">S. Cauwenbergh</a>, <a href="/search/physics?searchtype=author&amp;query=Ferrini%2C+M">M. Ferrini</a>, <a href="/search/physics?searchtype=author&amp;query=Muhammad%2C+S">S. Muhammad</a>, <a href="/search/physics?searchtype=author&amp;query=Passamonti%2C+L">L. Passamonti</a>, <a href="/search/physics?searchtype=author&amp;query=Pierluigi%2C+D">D. Pierluigi</a>, <a href="/search/physics?searchtype=author&amp;query=Piccolo%2C+D">D. Piccolo</a>, <a href="/search/physics?searchtype=author&amp;query=Primavera%2C+F">F. Primavera</a>, <a href="/search/physics?searchtype=author&amp;query=Russo%2C+A">A. Russo</a>, <a href="/search/physics?searchtype=author&amp;query=Saviano%2C+G">G. Saviano</a>, <a href="/search/physics?searchtype=author&amp;query=Tytgat%2C+M">M. Tytgat</a> </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="1605.08172v1-abstract-short" style="display: inline;"> The operations of Resistive Plate Chambers in LHC experiments require Fluorine based (F-based) gases for optimal performance. Recent European regulations demand the use of environmentally unfriendly F-based gases to be limited or banned. In view of the CMS experiment upgrade, several tests are ongoing to measure the performance of the detector with these new ecological gas mixtures, in terms of ef&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1605.08172v1-abstract-full').style.display = 'inline'; document.getElementById('1605.08172v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1605.08172v1-abstract-full" style="display: none;"> The operations of Resistive Plate Chambers in LHC experiments require Fluorine based (F-based) gases for optimal performance. Recent European regulations demand the use of environmentally unfriendly F-based gases to be limited or banned. In view of the CMS experiment upgrade, several tests are ongoing to measure the performance of the detector with these new ecological gas mixtures, in terms of efficiency, streamer probability, induced charge and time resolution. Prototype chambers with readout pads and with the standard CMS electronic setup are under test. In this paper preliminary results on performance of RPCs operated with a potential eco-friendly gas candidate 1,3,3,3-Tetrafluoropropene, commercially known as HFO-1234ze, with CO2 and CF3I based gas mixtures are presented and discussed for the possible application in the CMS experiment. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1605.08172v1-abstract-full').style.display = 'none'; document.getElementById('1605.08172v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 26 May, 2016; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> May 2016. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">7 pages, 7 figures. arXiv admin note: text overlap with arXiv:1505.01648</span> </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1604.04550">arXiv:1604.04550</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1604.04550">pdf</a>, <a href="https://arxiv.org/format/1604.04550">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Instrumentation and Detectors">physics.ins-det</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Experiment">hep-ex</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1088/1748-0221/11/06/P06014">10.1088/1748-0221/11/06/P06014 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Resistive Plate Chamber Digitization in a Hadronic Shower Environment </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/physics?searchtype=author&amp;query=Deng%2C+Z">Z. Deng</a>, <a href="/search/physics?searchtype=author&amp;query=Li%2C+Y">Y. Li</a>, <a href="/search/physics?searchtype=author&amp;query=Wang%2C+Y">Y. Wang</a>, <a href="/search/physics?searchtype=author&amp;query=Yue%2C+Q">Q. Yue</a>, <a href="/search/physics?searchtype=author&amp;query=Yang%2C+Z">Z. Yang</a>, <a href="/search/physics?searchtype=author&amp;query=Apostolakis%2C+J">J. Apostolakis</a>, <a href="/search/physics?searchtype=author&amp;query=Folger%2C+G">G. Folger</a>, <a href="/search/physics?searchtype=author&amp;query=Grefe%2C+C">C. Grefe</a>, <a href="/search/physics?searchtype=author&amp;query=Ivantchenko%2C+V">V. Ivantchenko</a>, <a href="/search/physics?searchtype=author&amp;query=Ribon%2C+A">A. Ribon</a>, <a href="/search/physics?searchtype=author&amp;query=Uzhinskiy%2C+V">V. Uzhinskiy</a>, <a href="/search/physics?searchtype=author&amp;query=Boumediene%2C+D">D. Boumediene</a>, <a href="/search/physics?searchtype=author&amp;query=Carloganu%2C+C">C. Carloganu</a>, <a href="/search/physics?searchtype=author&amp;query=Fran%C3%A7ais%2C+V">V. Fran莽ais</a>, <a href="/search/physics?searchtype=author&amp;query=Cho%2C+G">G. Cho</a>, <a href="/search/physics?searchtype=author&amp;query=Kim%2C+D">D-W. Kim</a>, <a href="/search/physics?searchtype=author&amp;query=Lee%2C+S+C">S. C. Lee</a>, <a href="/search/physics?searchtype=author&amp;query=Park%2C+W">W. Park</a>, <a href="/search/physics?searchtype=author&amp;query=Vallecorsa%2C+S">S. Vallecorsa</a>, <a href="/search/physics?searchtype=author&amp;query=Cauwenbergh%2C+S">S. Cauwenbergh</a>, <a href="/search/physics?searchtype=author&amp;query=Tytgat%2C+M">M. Tytgat</a>, <a href="/search/physics?searchtype=author&amp;query=Pingault%2C+A">A. Pingault</a>, <a href="/search/physics?searchtype=author&amp;query=Zaganidis%2C+N">N. Zaganidis</a>, <a href="/search/physics?searchtype=author&amp;query=Brianne%2C+E">E. Brianne</a>, <a href="/search/physics?searchtype=author&amp;query=Ebrahimi%2C+A">A. Ebrahimi</a> , et al. (103 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="1604.04550v1-abstract-short" style="display: inline;"> The CALICE Semi-Digital Hadron Calorimeter (SDHCAL) technological prototype is a sampling calorimeter using Glass Resistive Plate Chamber detectors with a three-threshold readout as the active medium. This technology is one of the two options proposed for the hadron calorimeter of the International Large Detector for the International Linear Collider. The prototype was exposed to beams of muons, e&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1604.04550v1-abstract-full').style.display = 'inline'; document.getElementById('1604.04550v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1604.04550v1-abstract-full" style="display: none;"> The CALICE Semi-Digital Hadron Calorimeter (SDHCAL) technological prototype is a sampling calorimeter using Glass Resistive Plate Chamber detectors with a three-threshold readout as the active medium. This technology is one of the two options proposed for the hadron calorimeter of the International Large Detector for the International Linear Collider. The prototype was exposed to beams of muons, electrons and pions of different energies at the CERN Super Proton Synchrotron. To be able to study the performance of such a calorimeter in future experiments it is important to ensure reliable simulation of its response. In this paper we present our prototype simulation performed with GEANT4 and the digitization procedure achieved with an algorithm called SimDigital. A detailed description of this algorithm is given and the methods to determinate its parameters using muon tracks and electromagnetic showers are explained. The comparison with hadronic shower data shows a good agreement up to 50 GeV. Discrepancies are observed at higher energies. The reasons for these differences are investigated. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1604.04550v1-abstract-full').style.display = 'none'; document.getElementById('1604.04550v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 15 April, 2016; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> April 2016. </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1602.02276">arXiv:1602.02276</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1602.02276">pdf</a>, <a href="https://arxiv.org/format/1602.02276">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Instrumentation and Detectors">physics.ins-det</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Experiment">hep-ex</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1088/1748-0221/11/04/P04001">10.1088/1748-0221/11/04/P04001 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> First results of the CALICE SDHCAL technological prototype </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/physics?searchtype=author&amp;query=Buridon%2C+V">V. Buridon</a>, <a href="/search/physics?searchtype=author&amp;query=Combaret%2C+C">C. Combaret</a>, <a href="/search/physics?searchtype=author&amp;query=Caponetto%2C+L">L. Caponetto</a>, <a href="/search/physics?searchtype=author&amp;query=Et%C3%A9%2C+R">R. Et茅</a>, <a href="/search/physics?searchtype=author&amp;query=Garillot%2C+G">G. Garillot</a>, <a href="/search/physics?searchtype=author&amp;query=Grenier%2C+G">G. Grenier</a>, <a href="/search/physics?searchtype=author&amp;query=Han%2C+R">R. Han</a>, <a href="/search/physics?searchtype=author&amp;query=Ianigro%2C+J+C">J. C. Ianigro</a>, <a href="/search/physics?searchtype=author&amp;query=Kieffer%2C+R">R. Kieffer</a>, <a href="/search/physics?searchtype=author&amp;query=Laktineh%2C+I">I. Laktineh</a>, <a href="/search/physics?searchtype=author&amp;query=Lumb%2C+N">N. Lumb</a>, <a href="/search/physics?searchtype=author&amp;query=Mathez%2C+H">H. Mathez</a>, <a href="/search/physics?searchtype=author&amp;query=Mirabito%2C+L">L. Mirabito</a>, <a href="/search/physics?searchtype=author&amp;query=Petrukhin%2C+A">A. Petrukhin</a>, <a href="/search/physics?searchtype=author&amp;query=Steen%2C+A">A. Steen</a>, <a href="/search/physics?searchtype=author&amp;query=Antequera%2C+J+B">J. Berenguer Antequera</a>, <a href="/search/physics?searchtype=author&amp;query=Alamillo%2C+E+C">E. Calvo Alamillo</a>, <a href="/search/physics?searchtype=author&amp;query=Fouz%2C+M+-">M. -C. Fouz</a>, <a href="/search/physics?searchtype=author&amp;query=Marin%2C+J">J. Marin</a>, <a href="/search/physics?searchtype=author&amp;query=Puerta-Pelayo%2C+J">J. Puerta-Pelayo</a>, <a href="/search/physics?searchtype=author&amp;query=Verdugo%2C+A">A. Verdugo</a>, <a href="/search/physics?searchtype=author&amp;query=Gil%2C+E+C">E. Cortina Gil</a>, <a href="/search/physics?searchtype=author&amp;query=Mannai%2C+S">S. Mannai</a>, <a href="/search/physics?searchtype=author&amp;query=Cauwenbergh%2C+S">S. Cauwenbergh</a>, <a href="/search/physics?searchtype=author&amp;query=Tytgat%2C+M">M. Tytgat</a> , et al. (96 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="1602.02276v2-abstract-short" style="display: inline;"> The CALICE Semi-Digital Hadronic Calorimeter (SDHCAL) prototype, built in 2011, was exposed to beams of hadrons, electrons and muons in two short periods in 2012 on two different beam lines of the CERN SPS. The prototype with its 48 active layers, made of Glass Resistive Plate Chambers and their embedded readout electronics, was run in triggerless and power-pulsing mode. The performance of the SDH&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1602.02276v2-abstract-full').style.display = 'inline'; document.getElementById('1602.02276v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1602.02276v2-abstract-full" style="display: none;"> The CALICE Semi-Digital Hadronic Calorimeter (SDHCAL) prototype, built in 2011, was exposed to beams of hadrons, electrons and muons in two short periods in 2012 on two different beam lines of the CERN SPS. The prototype with its 48 active layers, made of Glass Resistive Plate Chambers and their embedded readout electronics, was run in triggerless and power-pulsing mode. The performance of the SDHCAL during the test beam was found to be very satisfactory with an efficiency exceeding 90% for almost all of the 48 active layers. A linear response (within 5%) and a good energy resolution are obtained for a large range of hadronic energies (5-80GeV) by applying appropriate calibration coefficients to the collected data for both the Digital (Binary) and the Semi-Digital (Multi-threshold) modes of the SDHCAL prototype. The Semi-Digital mode shows better performance at energies exceeding 30GeV <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1602.02276v2-abstract-full').style.display = 'none'; document.getElementById('1602.02276v2-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 20 March, 2016; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 6 February, 2016; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> February 2016. </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1512.08529">arXiv:1512.08529</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1512.08529">pdf</a>, <a href="https://arxiv.org/ps/1512.08529">ps</a>, <a href="https://arxiv.org/format/1512.08529">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Instrumentation and Detectors">physics.ins-det</span> </div> </div> <p class="title is-5 mathjax"> A novel application of Fiber Bragg Grating (FBG) sensors in MPGD </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/physics?searchtype=author&amp;query=Abbaneo%2C+D">D. Abbaneo</a>, <a href="/search/physics?searchtype=author&amp;query=Abbas%2C+M">M. Abbas</a>, <a href="/search/physics?searchtype=author&amp;query=Abbrescia%2C+M">M. Abbrescia</a>, <a href="/search/physics?searchtype=author&amp;query=Abdelalim%2C+A+A">A. A. Abdelalim</a>, <a href="/search/physics?searchtype=author&amp;query=Akl%2C+M+A">M. Abi Akl</a>, <a href="/search/physics?searchtype=author&amp;query=Aboamer%2C+O">O. Aboamer</a>, <a href="/search/physics?searchtype=author&amp;query=Acosta%2C+D">D. Acosta</a>, <a href="/search/physics?searchtype=author&amp;query=Ahmad%2C+A">A. Ahmad</a>, <a href="/search/physics?searchtype=author&amp;query=Ahmed%2C+W">W. Ahmed</a>, <a href="/search/physics?searchtype=author&amp;query=Ahmed%2C+W">W. Ahmed</a>, <a href="/search/physics?searchtype=author&amp;query=Aleksandrov%2C+A">A. Aleksandrov</a>, <a href="/search/physics?searchtype=author&amp;query=Aly%2C+R">R. Aly</a>, <a href="/search/physics?searchtype=author&amp;query=Altieri%2C+P">P. Altieri</a>, <a href="/search/physics?searchtype=author&amp;query=Asawatangtrakuldee%2C+C">C. Asawatangtrakuldee</a>, <a href="/search/physics?searchtype=author&amp;query=Aspell%2C+P">P. Aspell</a>, <a href="/search/physics?searchtype=author&amp;query=Assran%2C+Y">Y. Assran</a>, <a href="/search/physics?searchtype=author&amp;query=Awan%2C+I">I. Awan</a>, <a href="/search/physics?searchtype=author&amp;query=Bally%2C+S">S. Bally</a>, <a href="/search/physics?searchtype=author&amp;query=Ban%2C+Y">Y. Ban</a>, <a href="/search/physics?searchtype=author&amp;query=Banerjee%2C+S">S. Banerjee</a>, <a href="/search/physics?searchtype=author&amp;query=Barashko%2C+V">V. Barashko</a>, <a href="/search/physics?searchtype=author&amp;query=Barria%2C+P">P. Barria</a>, <a href="/search/physics?searchtype=author&amp;query=Bencze%2C+G">G. Bencze</a>, <a href="/search/physics?searchtype=author&amp;query=Beni%2C+N">N. Beni</a>, <a href="/search/physics?searchtype=author&amp;query=Benussi%2C+L">L. Benussi</a> , et al. (133 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="1512.08529v1-abstract-short" style="display: inline;"> We present a novel application of Fiber Bragg Grating (FBG) sensors in the construction and characterisation of Micro Pattern Gaseous Detector (MPGD), with particular attention to the realisation of the largest triple (Gas electron Multiplier) GEM chambers so far operated, the GE1/1 chambers of the CMS experiment at LHC. The GE1/1 CMS project consists of 144 GEM chambers of about 0.5 m2 active are&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1512.08529v1-abstract-full').style.display = 'inline'; document.getElementById('1512.08529v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1512.08529v1-abstract-full" style="display: none;"> We present a novel application of Fiber Bragg Grating (FBG) sensors in the construction and characterisation of Micro Pattern Gaseous Detector (MPGD), with particular attention to the realisation of the largest triple (Gas electron Multiplier) GEM chambers so far operated, the GE1/1 chambers of the CMS experiment at LHC. The GE1/1 CMS project consists of 144 GEM chambers of about 0.5 m2 active area each, employing three GEM foils per chamber, to be installed in the forward region of the CMS endcap during the long shutdown of LHC in 2108-2019. The large active area of each GE1/1 chamber consists of GEM foils that are mechanically stretched in order to secure their flatness and the consequent uniform performance of the GE1/1 chamber across its whole active surface. So far FBGs have been used in high energy physics mainly as high precision positioning and re-positioning sensors and as low cost, easy to mount, low space consuming temperature sensors. FBGs are also commonly used for very precise strain measurements in material studies. In this work we present a novel use of FBGs as flatness and mechanical tensioning sensors applied to the wide GEM foils of the GE1/1 chambers. A network of FBG sensors have been used to determine the optimal mechanical tension applied and to characterise the mechanical tension that should be applied to the foils. We discuss the results of the test done on a full-sized GE1/1 final prototype, the studies done to fully characterise the GEM material, how this information was used to define a standard assembly procedure and possible future developments. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1512.08529v1-abstract-full').style.display = 'none'; document.getElementById('1512.08529v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 28 December, 2015; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> December 2015. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">4 pages, 4 figures, presented by Luigi Benussi at MPGD 2015 (Trieste, Italy). arXiv admin note: text overlap with arXiv:1512.08481</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> INFN-15-10/LNF </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1512.08481">arXiv:1512.08481</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1512.08481">pdf</a>, <a href="https://arxiv.org/ps/1512.08481">ps</a>, <a href="https://arxiv.org/format/1512.08481">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Instrumentation and Detectors">physics.ins-det</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1016/j.nima.2016.01.059">10.1016/j.nima.2016.01.059 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Fiber Bragg Grating (FBG) sensors as flatness and mechanical stretching sensors </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/physics?searchtype=author&amp;query=Abbaneo%2C+D">D. Abbaneo</a>, <a href="/search/physics?searchtype=author&amp;query=Abbas%2C+M">M. Abbas</a>, <a href="/search/physics?searchtype=author&amp;query=Abbrescia%2C+M">M. Abbrescia</a>, <a href="/search/physics?searchtype=author&amp;query=Abdelalim%2C+A+A">A. A. Abdelalim</a>, <a href="/search/physics?searchtype=author&amp;query=Akl%2C+M+A">M. Abi Akl</a>, <a href="/search/physics?searchtype=author&amp;query=Aboamer%2C+O">O. Aboamer</a>, <a href="/search/physics?searchtype=author&amp;query=Acosta%2C+D">D. Acosta</a>, <a href="/search/physics?searchtype=author&amp;query=Ahmad%2C+A">A. Ahmad</a>, <a href="/search/physics?searchtype=author&amp;query=Ahmed%2C+W">W. Ahmed</a>, <a href="/search/physics?searchtype=author&amp;query=Ahmed%2C+W">W. Ahmed</a>, <a href="/search/physics?searchtype=author&amp;query=Aleksandrov%2C+A">A. Aleksandrov</a>, <a href="/search/physics?searchtype=author&amp;query=Aly%2C+R">R. Aly</a>, <a href="/search/physics?searchtype=author&amp;query=Altieri%2C+P">P. Altieri</a>, <a href="/search/physics?searchtype=author&amp;query=Asawatangtrakuldee%2C+C">C. Asawatangtrakuldee</a>, <a href="/search/physics?searchtype=author&amp;query=Aspell%2C+P">P. Aspell</a>, <a href="/search/physics?searchtype=author&amp;query=Assran%2C+Y">Y. Assran</a>, <a href="/search/physics?searchtype=author&amp;query=Awan%2C+I">I. Awan</a>, <a href="/search/physics?searchtype=author&amp;query=Bally%2C+S">S. Bally</a>, <a href="/search/physics?searchtype=author&amp;query=Ban%2C+Y">Y. Ban</a>, <a href="/search/physics?searchtype=author&amp;query=Banerjee%2C+S">S. Banerjee</a>, <a href="/search/physics?searchtype=author&amp;query=Barashko%2C+V">V. Barashko</a>, <a href="/search/physics?searchtype=author&amp;query=Barria%2C+P">P. Barria</a>, <a href="/search/physics?searchtype=author&amp;query=Bencze%2C+G">G. Bencze</a>, <a href="/search/physics?searchtype=author&amp;query=Beni%2C+N">N. Beni</a>, <a href="/search/physics?searchtype=author&amp;query=Benussi%2C+L">L. Benussi</a> , et al. (133 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="1512.08481v1-abstract-short" style="display: inline;"> A novel approach which uses Fibre Bragg Grating (FBG) sensors has been utilised to assess and monitor the flatness of Gaseous Electron Multipliers (GEM) foils. The setup layout and preliminary results are presented. </span> <span class="abstract-full has-text-grey-dark mathjax" id="1512.08481v1-abstract-full" style="display: none;"> A novel approach which uses Fibre Bragg Grating (FBG) sensors has been utilised to assess and monitor the flatness of Gaseous Electron Multipliers (GEM) foils. The setup layout and preliminary results are presented. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1512.08481v1-abstract-full').style.display = 'none'; document.getElementById('1512.08481v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 28 December, 2015; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> December 2015. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">Two pages, one figure. Presented by Luigi Benussi (corresponding author) to Elba 2015 conference</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Report number:</span> Frascati Preprint INFN-15-09/LNF </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1412.0228">arXiv:1412.0228</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1412.0228">pdf</a>, <a href="https://arxiv.org/format/1412.0228">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Instrumentation and Detectors">physics.ins-det</span> </div> </div> <p class="title is-5 mathjax"> Performance of a Large-Area GEM Detector Prototype for the Upgrade of the CMS Muon Endcap System </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/physics?searchtype=author&amp;query=Abbaneo%2C+D">D. Abbaneo</a>, <a href="/search/physics?searchtype=author&amp;query=Abbas%2C+M">M. Abbas</a>, <a href="/search/physics?searchtype=author&amp;query=Abbrescia%2C+M">M. Abbrescia</a>, <a href="/search/physics?searchtype=author&amp;query=Abdelalim%2C+A+A">A. A. Abdelalim</a>, <a href="/search/physics?searchtype=author&amp;query=Akl%2C+M+A">M. Abi Akl</a>, <a href="/search/physics?searchtype=author&amp;query=Ahmed%2C+W">W. Ahmed</a>, <a href="/search/physics?searchtype=author&amp;query=Ahmed%2C+W">W. Ahmed</a>, <a href="/search/physics?searchtype=author&amp;query=Altieri%2C+P">P. Altieri</a>, <a href="/search/physics?searchtype=author&amp;query=Aly%2C+R">R. Aly</a>, <a href="/search/physics?searchtype=author&amp;query=Asawatangtrakuldee%2C+C">C. Asawatangtrakuldee</a>, <a href="/search/physics?searchtype=author&amp;query=Ashfaq%2C+A">A. Ashfaq</a>, <a href="/search/physics?searchtype=author&amp;query=Aspell%2C+P">P. Aspell</a>, <a href="/search/physics?searchtype=author&amp;query=Assran%2C+Y">Y. Assran</a>, <a href="/search/physics?searchtype=author&amp;query=Awan%2C+I">I. Awan</a>, <a href="/search/physics?searchtype=author&amp;query=Bally%2C+S">S. Bally</a>, <a href="/search/physics?searchtype=author&amp;query=Ban%2C+Y">Y. Ban</a>, <a href="/search/physics?searchtype=author&amp;query=Banerjee%2C+S">S. Banerjee</a>, <a href="/search/physics?searchtype=author&amp;query=Barria%2C+P">P. Barria</a>, <a href="/search/physics?searchtype=author&amp;query=Benussi%2C+L">L. Benussi</a>, <a href="/search/physics?searchtype=author&amp;query=Bhopatkar%2C+V">V. Bhopatkar</a>, <a href="/search/physics?searchtype=author&amp;query=Bianco%2C+S">S. Bianco</a>, <a href="/search/physics?searchtype=author&amp;query=Bos%2C+J">J. Bos</a>, <a href="/search/physics?searchtype=author&amp;query=Bouhali%2C+O">O. Bouhali</a>, <a href="/search/physics?searchtype=author&amp;query=Braibant%2C+S">S. Braibant</a>, <a href="/search/physics?searchtype=author&amp;query=Buontempo%2C+S">S. Buontempo</a> , et al. (113 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="1412.0228v2-abstract-short" style="display: inline;"> Gas Electron Multiplier (GEM) technology is being considered for the forward muon upgrade of the CMS experiment in Phase 2 of the CERN LHC. Its first implementation is planned for the GE1/1 system in the $1.5 &lt; \mid畏\mid &lt; 2.2$ region of the muon endcap mainly to control muon level-1 trigger rates after the second long LHC shutdown. A GE1/1 triple-GEM detector is read out by 3,072 radial strips wi&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1412.0228v2-abstract-full').style.display = 'inline'; document.getElementById('1412.0228v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1412.0228v2-abstract-full" style="display: none;"> Gas Electron Multiplier (GEM) technology is being considered for the forward muon upgrade of the CMS experiment in Phase 2 of the CERN LHC. Its first implementation is planned for the GE1/1 system in the $1.5 &lt; \mid畏\mid &lt; 2.2$ region of the muon endcap mainly to control muon level-1 trigger rates after the second long LHC shutdown. A GE1/1 triple-GEM detector is read out by 3,072 radial strips with 455 $渭$rad pitch arranged in eight $畏$-sectors. We assembled a full-size GE1/1 prototype of 1m length at Florida Tech and tested it in 20-120 GeV hadron beams at Fermilab using Ar/CO$_{2}$ 70:30 and the RD51 scalable readout system. Four small GEM detectors with 2-D readout and an average measured azimuthal resolution of 36 $渭$rad provided precise reference tracks. Construction of this largest GEM detector built to-date is described. Strip cluster parameters, detection efficiency, and spatial resolution are studied with position and high voltage scans. The plateau detection efficiency is [97.1 $\pm$ 0.2 (stat)]\%. The azimuthal resolution is found to be [123.5 $\pm$ 1.6 (stat)] $渭$rad when operating in the center of the efficiency plateau and using full pulse height information. The resolution can be slightly improved by $\sim$ 10 $渭$rad when correcting for the bias due to discrete readout strips. The CMS upgrade design calls for readout electronics with binary hit output. When strip clusters are formed correspondingly without charge-weighting and with fixed hit thresholds, a position resolution of [136.8 $\pm$ 2.5 stat] $渭$rad is measured, consistent with the expected resolution of strip-pitch/$\sqrt{12}$ = 131.3 $渭$rad. Other $畏$-sectors of the detector show similar response and performance. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1412.0228v2-abstract-full').style.display = 'none'; document.getElementById('1412.0228v2-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 8 December, 2014; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 30 November, 2014; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> December 2014. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">8 pages, 32 figures, submitted to Proc. 2014 IEEE Nucl. Sci. Symposium, Seattle, WA, reference added</span> </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1411.7215">arXiv:1411.7215</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1411.7215">pdf</a>, <a href="https://arxiv.org/format/1411.7215">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Instrumentation and Detectors">physics.ins-det</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Experiment">hep-ex</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1016/j.nima.2015.05.009">10.1016/j.nima.2015.05.009 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> Testing Hadronic Interaction Models using a Highly Granular Silicon-Tungsten Calorimeter </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/physics?searchtype=author&amp;query=The+CALICE+Collaboration"> The CALICE Collaboration</a>, <a href="/search/physics?searchtype=author&amp;query=Bilki%2C+B">B. Bilki</a>, <a href="/search/physics?searchtype=author&amp;query=Repond%2C+J">J. Repond</a>, <a href="/search/physics?searchtype=author&amp;query=Schlereth%2C+J">J. Schlereth</a>, <a href="/search/physics?searchtype=author&amp;query=Xia%2C+L">L. Xia</a>, <a href="/search/physics?searchtype=author&amp;query=Deng%2C+Z">Z. Deng</a>, <a href="/search/physics?searchtype=author&amp;query=Li%2C+Y">Y. Li</a>, <a href="/search/physics?searchtype=author&amp;query=Wang%2C+Y">Y. Wang</a>, <a href="/search/physics?searchtype=author&amp;query=Yue%2C+Q">Q. Yue</a>, <a href="/search/physics?searchtype=author&amp;query=Yang%2C+Z">Z. Yang</a>, <a href="/search/physics?searchtype=author&amp;query=Eigen%2C+G">G. Eigen</a>, <a href="/search/physics?searchtype=author&amp;query=Mikami%2C+Y">Y. Mikami</a>, <a href="/search/physics?searchtype=author&amp;query=Price%2C+T">T. Price</a>, <a href="/search/physics?searchtype=author&amp;query=Watson%2C+N+K">N. K. Watson</a>, <a href="/search/physics?searchtype=author&amp;query=Thomson%2C+M+A">M. A. Thomson</a>, <a href="/search/physics?searchtype=author&amp;query=Ward%2C+D+R">D. R. Ward</a>, <a href="/search/physics?searchtype=author&amp;query=Benchekroun%2C+D">D. Benchekroun</a>, <a href="/search/physics?searchtype=author&amp;query=Hoummada%2C+A">A. Hoummada</a>, <a href="/search/physics?searchtype=author&amp;query=Khoulaki%2C+Y">Y. Khoulaki</a>, <a href="/search/physics?searchtype=author&amp;query=C%C3%A2rloganu%2C+C">C. C芒rloganu</a>, <a href="/search/physics?searchtype=author&amp;query=Chang%2C+S">S. Chang</a>, <a href="/search/physics?searchtype=author&amp;query=Khan%2C+A">A. Khan</a>, <a href="/search/physics?searchtype=author&amp;query=Kim%2C+D+H">D. H. Kim</a>, <a href="/search/physics?searchtype=author&amp;query=Kong%2C+D+J">D. J. Kong</a>, <a href="/search/physics?searchtype=author&amp;query=Oh%2C+Y+D">Y. D. Oh</a> , et al. (127 additional authors not shown) </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="1411.7215v2-abstract-short" style="display: inline;"> A detailed study of hadronic interactions is presented using data recorded with the highly granular CALICE silicon-tungsten electromagnetic calorimeter. Approximately 350,000 selected negatively charged pion events at energies between 2 and 10 GeV have been studied. The predictions of several physics models available within the Geant4 simulation tool kit are compared to this data. A reasonable ove&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1411.7215v2-abstract-full').style.display = 'inline'; document.getElementById('1411.7215v2-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1411.7215v2-abstract-full" style="display: none;"> A detailed study of hadronic interactions is presented using data recorded with the highly granular CALICE silicon-tungsten electromagnetic calorimeter. Approximately 350,000 selected negatively charged pion events at energies between 2 and 10 GeV have been studied. The predictions of several physics models available within the Geant4 simulation tool kit are compared to this data. A reasonable overall description of the data is observed; the Monte Carlo predictions are within 20% of the data, and for many observables much closer. The largest quantitative discrepancies are found in the longitudinal and transverse distributions of reconstructed energy. <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1411.7215v2-abstract-full').style.display = 'none'; document.getElementById('1411.7215v2-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 8 May, 2015; <span class="has-text-black-bis has-text-weight-semibold">v1</span> submitted 26 November, 2014; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> November 2014. </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Comments:</span> <span class="has-text-grey-dark mathjax">28 pages, 24 figures, accepted for publication in NIM A</span> </p> <p class="comments is-size-7"> <span class="has-text-black-bis has-text-weight-semibold">Journal ref:</span> Nucl. Instrum. Meth. A 794: 240-254, 2015 </p> </li> <li class="arxiv-result"> <div class="is-marginless"> <p class="list-title is-inline-block"><a href="https://arxiv.org/abs/1211.5698">arXiv:1211.5698</a> <span>&nbsp;[<a href="https://arxiv.org/pdf/1211.5698">pdf</a>, <a href="https://arxiv.org/format/1211.5698">other</a>]&nbsp;</span> </p> <div class="tags is-inline-block"> <span class="tag is-small is-link tooltip is-tooltip-top" data-tooltip="Instrumentation and Detectors">physics.ins-det</span> <span class="tag is-small is-grey tooltip is-tooltip-top" data-tooltip="High Energy Physics - Experiment">hep-ex</span> </div> <div class="is-inline-block" style="margin-left: 0.5rem"> <div class="tags has-addons"> <span class="tag is-dark is-size-7">doi</span> <span class="tag is-light is-size-7"><a class="" href="https://doi.org/10.1016/j.nima.2012.11.029">10.1016/j.nima.2012.11.029 <i class="fa fa-external-link" aria-hidden="true"></i></a></span> </div> </div> </div> <p class="title is-5 mathjax"> High Rate Resistive Plate Chamber for LHC detector upgrades </p> <p class="authors"> <span class="search-hit">Authors:</span> <a href="/search/physics?searchtype=author&amp;query=Haddad%2C+Y">Y. Haddad</a>, <a href="/search/physics?searchtype=author&amp;query=Grenier%2C+G">G. Grenier</a>, <a href="/search/physics?searchtype=author&amp;query=Laktineh%2C+I">I. Laktineh</a>, <a href="/search/physics?searchtype=author&amp;query=Lumb%2C+N">N. Lumb</a>, <a href="/search/physics?searchtype=author&amp;query=Cauwenbergh%2C+S">S. Cauwenbergh</a> </p> <p class="abstract mathjax"> <span class="has-text-black-bis has-text-weight-semibold">Abstract</span>: <span class="abstract-short has-text-grey-dark mathjax" id="1211.5698v1-abstract-short" style="display: inline;"> The limitation of the detection rate of standard bakelite resistive plate chambers (RPC) used as muon detectors in the LHC experiments has prevented the use of such detectors in the high rate regions in both CMS and ATLAS detectors. One alternative to these detectors are RPCs made with low resistivity glass plates ($10^{10} {\rm 惟.cm}$), a beam test at DESY has shown that such detectors can operat&hellip; <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1211.5698v1-abstract-full').style.display = 'inline'; document.getElementById('1211.5698v1-abstract-short').style.display = 'none';">&#9661; More</a> </span> <span class="abstract-full has-text-grey-dark mathjax" id="1211.5698v1-abstract-full" style="display: none;"> The limitation of the detection rate of standard bakelite resistive plate chambers (RPC) used as muon detectors in the LHC experiments has prevented the use of such detectors in the high rate regions in both CMS and ATLAS detectors. One alternative to these detectors are RPCs made with low resistivity glass plates ($10^{10} {\rm 惟.cm}$), a beam test at DESY has shown that such detectors can operate at few thousand Hz/cm$^2$ with high efficiency(&gt; 90%) <a class="is-size-7" style="white-space: nowrap;" onclick="document.getElementById('1211.5698v1-abstract-full').style.display = 'none'; document.getElementById('1211.5698v1-abstract-short').style.display = 'inline';">&#9651; Less</a> </span> </p> <p class="is-size-7"><span class="has-text-black-bis has-text-weight-semibold">Submitted</span> 24 November, 2012; <span class="has-text-black-bis has-text-weight-semibold">originally announced</span> November 2012. </p> </li> </ol> <div class="is-hidden-tablet"> <!-- feedback for mobile only --> <span class="help" style="display: inline-block;"><a href="https://github.com/arXiv/arxiv-search/releases">Search v0.5.6 released 2020-02-24</a>&nbsp;&nbsp;</span> </div> </div> </main> <footer> <div class="columns is-desktop" 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