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Ziel der Bachelorarbeit war es, einen Versuch für das Fortgeschrittenen-Praktikum des Instituts für Kernphysik zu konzipieren, der es ermöglicht, die Lebensdauer von aus der kosmischen Strahlung entstandenen Myonen zu bestimmen.
Dazu wurden vorhandene Komponenten auf ihre Gebrauchstauglichkeit getestet und untersucht, insbesondere in Bezug auf die Größe der Szintillatoren, ob der für einen Praktikumsversuch zeitlich gegebene Rahmen eingehalten werden kann.
Es ergaben sich einige mechanische Probleme, insbesondere bei der Verbindung der neuen, größeren Szintillatoren mit den Photomultipliern, die angegangen wurden. Die zuerst getestete Methode stellte sich jedoch als uneffektiv heraus, sodass die endgültige Lösung mit Hilfe einer neuen, computergesteuerten Fräsmaschine der Feinmechanik-Werkstatt erreicht werden soll.
Um die entstandenen Daten zu verarbeiten, wurde ein entsprechendes Programm in LabVIEW entwickelt, das die am TDC abgegriffenen Daten auf ihre Relevanz untersucht und die Ergebnisse in eine Textdatei schreibt. Das LabVIEW Front Panel wurde dabei so gestaltet, dass es den Praktikanten alle wichtigen Daten in graphisch anschaulicher Weise liefert.
Die Daten aus der Textdatei werden dann mit Hilfe eines ROOT Makros mit zwei verschiedenen Exponentialfunktionen gefittet.
In ersten Messungen ergibt sich ein Wert für die Lebensdauer der Myonen, der erstaunlich nahe am Literaturwert liegt.
Quarkonia are very promising probes to study the quark-gluon plasma. The essential baseline for measurements in heavy-ion collisions is high-precision data from proton-proton interactions. However, the basic mechanisms of quarkonium hadroproduction are still being debated. The most common models, the Color-Singlet Model, the non-relativistic QCD approach and the Color-Evaporation Model, are able to describe most of the available cross-section data, despite of their conceptual differences. New measures, such as the polarization, and data at a new energy regime are crucial to test the competing models. Another issue is an eventual interplay between the production process of a quarkonium state and the surrounding pp event. Current Monte Carlo event generators treat the hard scattering independently from the rest of the so-called underlying event. The investigation of possible correlations with the pp event might be very valuable for a detailed understanding of the production processes. ALICE ist the dedicated heavy-ion experiment at the LHC. Its design has been optimized for high-precision measurements in very high track densities and down to low transverse momenta. ALICE is composed of various different detectors at forward and at central rapidities. The most important detectors for this study are the Inner Tracking System and the Time Projection Chamber, allowing to reconstruct and identify electron candidate tracks within eta < 0.9. The Transition Radiation Detector has not been utilized at this stage of the analysis; however, it will strongly improve the particle identification and provide a dedicated trigger in the upcoming beam periods. ...
The main purpose of the Transition Radiation Detector (TRD) located in the central barrel of ALICE (A Large Ion Collider Experiment) is electron identification for separation from pions at momenta pt > 1 GeV/c, since in this momentum range the measurements of the specific energy loss (dE/dx) of the Time Projection Chamber (TPC) is no longer sufficient. Furthermore, it provides a fast trigger for high transverse momentum charged particles (pt > 3 GeV/c) and makes a significant contribution to the optimization of the tracking of reaction products in heavy-ion collisions. Its whole setup comprises 18 supermodules out of which 13 are presently operational and mounted cylindrically around the beam axis of the Large Hadron Collider (LHC). A supermodule contains either 30 or 24 chambers, each consisting of a radiator for transition radiation creation, a drift and an amplifying region followed by the read-out electronics. In total, the TRD is an array of 522 chambers operated with about 28 m3 of a Xe-CO2 [85-15%] gas mixture. During the work of this thesis, the testing, commissioning, operation and maintenance of detector parts, the gas system and its online quality monitor, improvements on the detector control user-interface and studies about a new pre-trigger module for data read-out have been accomplished. The TRD gas system mixes, distributes and circulates the operational gas mixture through the detector. Its overall optimization has been achieved by minimizing gas leakage, surveying, controlling, maintaining and continuously improving it as well as designing and carrying out upgrades. Gas quality monitors of the type \GOOFIE" (Gas prOportional cOunter For drIfting Electrons) can be used in gaseous detectors as on-line monitors of the electron drift velocity, gain and gas properties. One of these devices has been implemented within the TRD gas system, while another one surveys the gas of the TPC. Both devices had to be adapted to the specific needs of the detectors, were under constant surveillance and control, and needed to be further developed on both hardware and software side. To improve the operation of the TRD, modifications on its DCS software (Detector Control System) used for monitoring, controlling, operating, regulating and configuring of hardware and computing devices have been carried out. The DCS is designed to enable an operator to interact with equipment through user interfaces that display the information from the system. The main focus of this work was laid on the optimization of the usability and design of the user interface. The front-end electronics of the TRD require an early start signal (\pre-trigger") from the fast forward detectors or the Time-Of-Flight detector during the running periods. The realization of a new hardware concept for the read-out of the TRD pre-trigger system has been studied and first tests were performed. This new module called PIMDDL (Pre-trigger Interface Module Detector Data Link) is meant to acquire all data necessary to simulate and predict the full pre-trigger functionality, and to verify its proper operation. Furthermore, it shall provide all functionalities of the so-called Control Box Bottom as well as keep the functionalities of the already existing PIM (Pre-trigger Interface Module) in order to combine and replace these two modules in the future.
According to the standard model of particle physics, the most fundamental building blocks of the known matter are quarks and leptons, while the interactions between these fundamental objects is mediated through bosons. On one hand the leptons can exist in nature as individual particles, while on the other hand quarks appear always as bound states called hadrons. The knowledge that hadrons are built from more fundamental particles dates back to the second half of the 20th century when the work by Gell-Mann and Zweig led to the development of the quark model. The experimental proof that the hadrons are bound objects composed of more elementary particles was done through the study of deep inelastic scattering of electrons off protons. These experiments were done in a similar fashion to the studies of the atomic model led by Rutherford at the beginning of the 20th century. Further experimental analysis led to the conclusion that a large fraction of the proton momentum is not carried alone by the quarks, but by the bosons that mediate the strong interaction called gluons. The cleanest experimental signature for the existence of the gluons came from electron-positron annihilation experiments, where a quark-antiquark pair is created and one of the quarks radiates a hard gluon. Due to confinement neither the quarks nor the gluon can be observed directly, but are measured experimentally as three collimated showers of particles named jets. Since the ground breaking experiments performed at DESY, jets have provided a tool to study the properties of quarks and gluons...