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Unter Web-based Trainings (WBTs) versteht man multimediale, interaktive und thematisch abgeschlossene Lerneinheiten in einem Browser. Seit der Entstehung des Internets in den 1990er Jahren sind diese ein wichtiger und etablierter Baustein bei der Konzeption und Entwicklung von eLearning-Szenarien. Diese Lerneinheiten werden üblicherweise von Lehrenden mit entsprechenden Autorensystemen erstellt. In selteneren Fällen handelt es sich bei deren Umsetzungen um individuell programmierte Einzellösungen. Betrachtet man WBTs aus der Sicht der Lernenden, dann lässt sich feststellen, dass zunehmend auch nicht explizit als Lerneinheiten erstellte Inhalte genutzt werden, die jedoch genau den Bedürfnissen des jeweiligen Lernenden entsprechen (im Rahmen des informellen und selbstgesteuerten Lernens). Zum einen liegt das an der zunehmenden Verfügbarkeit und Vielfalt von „alternativen Lerninhalten“ im Internet generell (freie Lizenzen und innovative Autorentools). Zum anderen aber auch an der Möglichkeit, diese Inhalte von überall aus und zu jeder Zeit einfach finden zu können (mobiles Internet, Suchmaschinen und Sprachassistenten) bzw. eingeordnet und empfohlen zu bekommen (Empfehlungssysteme und soziale Medien).
Aus dieser Veränderung heraus ergibt sich im Rahmen dieser Dissertation die zentrale Fragestellung, ob das Konzept eines dedizierten WBT-Autorensystems den neuen Anforderungen von frei verfügbaren, interaktiven Lerninhalten (Khan Academy, YouTube und Wikipedia) und einer Vielzahl ständig wachsender und kostenfreier Autorentools für beliebige Web-Inhalte (H5P, PowToon oder Pageflow) überhaupt noch gerecht wird und wo in diesem Fall genau die Alleinstellungsmerkmale eines WBTs liegen?
Zur Beantwortung dieser Frage beschäftigt sich die Arbeit grundlegend mit dem Begriff „Web-based Training“, den über die Zeit geänderten Rahmenbedingungen und den daraus resultierenden Implikationen für die Entwicklung von WBT-Autorensystemen. Mittels des gewählten Design-based Research (DBR)-Ansatzes konnte durch kontinuierliche Zyklen von Gestaltung, Durchführung, Analyse und Re-Design am Beispiel mehrerer eLearning-Projekte der Begriff WBT neudefininiert bzw. reinterpretiert werden, so dass sich der Fokus der Definition auf das konzentriert, was WBTs im Vergleich zu anderen Inhalten und Funktionen im Internet im Kern unterscheidet: dem Lehr-/Lernaspekt (nachfolgend Web-based Training 2.0 (WBT 2.0)).
Basierend auf dieser Neudefinition konnten vier Kernfunktionalitäten ausgearbeitet werden, die die zuvor genannten Herausforderungen adressieren und in Form eines Design Frameworks detailliert beschreiben. Untersucht und entwickelt wurden die unterschiedlichen Aspekte und Funktionen der WBTs 2.0 anhand der iterativen „Meso-Zyklen“ des DBR-Ansatzes, wobei jedes der darin durchgeführten Projekte auch eigene Ergebnisse mit sich bringt, welche jeweils unter didaktischen und vor allem aber technischen Gesichtspunkten erörtert wurden. Die dadurch gewonnenen Erkenntnisse flossen jeweils in den Entwicklungsprozess der LernBar ein („Makro-Zyklus“), ein im Rahmen dieser Arbeit und von studiumdigitale, der zentralen eLearning-Einrichtung der Goethe-Universität, entwickeltes WBT-Autorensystem. Dabei wurden die Entwicklungen kontinuierlich unter Einbezug von Nutzerfeedbacks (jährliche Anwendertreffen, Schulungen, Befragungen, Support) überprüft und weiterentwickelt.
Abschließend endet der letzte Entwicklungszyklus des DBR-Ansatzes mit der Konzeption und Umsetzung von drei WBT 2.0-Systemkomponenten, wodurch sich flexibel beliebige Web-Inhalte mit entsprechenden WBT 2.0-Funktionalitäten erweitern lassen, um auch im Kontext von offenen Lehr-/Lernprozessen durchgeführte Aktivitäten transparent, nachvollziehbar und somit überprüfbar zu machen (Constructive Alignment).
Somit bietet diese Forschungsarbeit einen interdisziplinären, nutzerzentrierten und in der Praxis erprobten Ansatz für die Umsetzung und den Einsatz von WBTs im Kontext offener Lehr-/Lernprozesse. Dabei verschiebt sich der bisherige Fokus von der reinen Medienproduktion hin zu einem ganzheitlichen Ansatz, bei dem der Lehr-/Lernaspekt im Vordergrund steht (Lernbedarf erkennen, decken und überprüfen). Entscheidend ist dabei, dass zum Decken eines Lernbedarfs sämtliche zur Verfügung stehenden Ressourcen des Internets genutzt werden können, wobei WBTs 2.0 dazu lediglich den didaktischen Prozess definieren und diesen für die Lehrenden und Lernende transparent und zugänglich machen.
WBTs 2.0 profitieren dadurch zukünftig von der zunehmenden Vielfalt und Verfügbarkeit von Inhalten und Funktionen im Internet und ermöglichen es, den Entwicklern von WBT 2.0-Autorensystemen sich auf das Wesentliche zu konzentrieren: den Lehr-/Lernprozess.
The neutron capture cross section of several key unstable isotopes acting as branching points in the s-process are crucial for stellar nucleosynthesis studies, but they are very challenging to measure due to the difficult production of sufficient sample material, the high activity of the resulting samples, and the actual (n,γ) measurement, for which high neutron fluxes and effective background rejection capabilities are required. As part of a new program to measure some of these important branching points, radioactive targets of 147Pm and 171Tm have been produced by irradiation of stable isotopes at the ILL high flux reactor. Neutron capture on 146Nd and 170Er at the reactor was followed by beta decay and the resulting matrix was purified via radiochemical separation at PSI. The radioactive targets have been used for time-of-flight measurements at the CERN n_TOF facility using the 19 and 185 m beam lines during 2014 and 2015. The capture cascades were detected using a set of four C6D6 scintillators, allowing to observe the associated neutron capture resonances. The results presented in this work are the first ever determination of the resonance capture cross section of 147Pm and 171Tm. Activation experiments on the same 147Pm and 171Tm targets with a high-intensity 30 keV quasi-Maxwellian flux of neutrons will be performed using the SARAF accelerator and the Liquid-Lithium Target (LiLiT) in order to extract the corresponding Maxwellian Average Cross Section (MACS). The status of these experiments and preliminary results will be presented and discussed as well.
We have measured the radiative neutron-capture cross section and the total neutron-induced cross section of one of the most important isotopes for the s process, the 25Mg. The measurements have been carried out at the neutron time-of-flight facilities n_TOF at CERN (Switzerland) and GELINA installed at the EC-JRC-IRMM (Belgium). The cross sections as a function of neutron energy have been measured up to approximately 300 keV, covering the energy region of interest to the s process. The data analysis is ongoing and preliminary results show the potential relevance for the s process.
An important experimental program on Nuclear Astrophysics is being carried out at the n_TOF since several years, in order to address the still open issues in stellar and primordial nucleosynthesis. Several neutron capture reactions relevant to s-process nucleosynthesis have been measured so far, some of which on important branching point radioisotopes. Furthermore, the construction of a second experimental area has recently opened the way to challenging measurements of (n, charged particle) reactions on isotopes of short half-life. The Nuclear Astrophysics program of the n_TOF Collaboration is here described, with emphasis on recent results relevant for stellar nucleosynthesis, stellar neutron sources and primordial nucleosynthesis.
Neutron-induced reaction cross sections are important for a wide variety of research fields ranging from the study of nuclear level densities, nucleosynthesis to applications of nuclear technology like design, and criticality and safety assessment of existing and future nuclear reactors, radiation dosimetry, medical applications, nuclear waste transmutation, accelerator-driven systems and fuel cycle investigations. Simulations and calculations of nuclear technology applications largely rely on evaluated nuclear data libraries. The evaluations in these libraries are based both on experimental data and theoretical models. CERN’s neutron time-of-flight facility n_TOF has produced a considerable amount of experimental data since it has become fully operational with the start of its scientific measurement programme in 2001. While for a long period a single measurement station (EAR1) located at 185 m from the neutron production target was available, the construction of a second beam line at 20 m (EAR2) in 2014 has substantially increased the measurement capabilities of the facility. An outline of the experimental nuclear data activities at n_TOF will be presented.
he study of the resonant structures in neutron-nucleus cross-sections, and therefore of the compound-nucleus reaction mechanism, requires spectroscopic measurements to determine with high accuracy the energy of the neutron interacting with the material under study.
To this purpose, the neutron time-of-flight facility n_TOF has been operating since 2001 at CERN. Its characteristics, such as the high intensity instantaneous neutron flux, the wide energy range from thermal to few GeV, and the very good energy resolution, are perfectly suited to perform high-quality measurements of neutron-induced reaction cross sections. The precise and accurate knowledge of these cross sections plays a fundamental role in nuclear technologies, nuclear astrophysics and nuclear physics.
Two different measuring stations are available at the n_TOF facility, called EAR1 and EAR2, with different characteristics of intensity of the neutron flux and energy resolution. These experimental areas, combined with advanced detection systems lead to a great flexibility in performing challenging measurement of high precision and accuracy, and allow the investigation isotopes with very low cross sections, or available only in small quantities, or with very high specific activity.
The characteristics and performances of the two experimental areas of the n_TOF facility will be presented, together with the most important measurements performed to date and their physics case. In addition, the significant upcoming measurements will be introduced.
The 33S(n,α)30Si cross section measurement, using 10B(n,α) as reference, at the n_TOF Experimental Area 2 (EAR2) facility at CERN is presented. Data from 0.01 eV to 100 keV are provided and, for the first time, the cross section is measured in the range from 0.01 eV to 10 keV. These data may be used for a future evaluation of the cross section because present evaluations exhibit large discrepancies. The 33S(n,α)30Si reaction is of interest in medical physics because of its possible use as a cooperative target to boron in Neutron Capture Therapy (NCT).
The 236U isotope plays an important role in nuclear systems, both for future and currently operating ones. The actual knowledge of the capture reaction of this isotope is satisfactory in the thermal region, but it is considered insufficient for Fast Reactor and ADS applications. For this reason the 236U(n, γ) reaction cross-section has been measured for the first time in the whole energy region from thermal energy up to 1 MeV at the n_TOF facility with two different detection systems: an array of C6D6 detectors, employing the total energy deposited method, and a FX1 total absorption calorimeter (TAC), made of 40 BaF2 crystals. The two n_TOF data sets agree with each other within the statistical uncertainty in the Resolved Resonance Region up to 800 eV, while sizable differences (up to ≃ 20%) are found relative to the current evaluated data libraries. Moreover two new resonances have been found in the n_TOF data. In the Unresolved Resonance Region up to 200 keV, the n_TOF results show a reasonable agreement with previous measurements and evaluated data.
Objective: TGF-β2 (TGF-β, transforming growth factor beta), the less-investigated sibling of TGF-β1, is deregulated in rodent and human liver diseases. Former data from bile duct ligated and MDR2 knockout (KO) mouse models for human cholestatic liver disease suggested an involvement of TGF-β2 in biliary-derived liver diseases.
Design: As we also found upregulated TGFB2 in liver tissue of patients with primary sclerosing cholangitis (PSC) and primary biliary cholangitis (PBC), we now fathomed the positive prospects of targeting TGF-β2 in early stage biliary liver disease using the MDR2-KO mice. Specifically, the influence of TgfB2 silencing on the fibrotic and inflammatory niche was analysed on molecular, cellular and tissue levels.
Results: TgfB2-induced expression of fibrotic genes in cholangiocytes and hepatic stellate cellswas detected. TgfB2 expression in MDR2-KO mice was blunted using TgfB2-directed antisense oligonucleotides (AON). Upon AON treatment, reduced collagen deposition, hydroxyproline content and αSMA expression as well as induced PparG expression reflected a significant reduction of fibrogenesis without adverse effects on healthy livers. Expression analyses of fibrotic and inflammatory genes revealed AON-specific regulatory effects on Ccl3, Ccl4, Ccl5, Mki67 and Notch3 expression. Further, AON treatment of MDR2-KO mice increased tissue infiltration by F4/80-positive cells including eosinophils, whereas the number of CD45-positive inflammatory cells decreased. In line, TGFB2 and CD45 expression correlated positively in PSC/PBC patients and localised in similar areas of the diseased liver tissue.
Conclusions: Taken together, our data suggest a new mechanistic explanation for amelioration of fibrogenesis by TGF-β2 silencing and provide a direct rationale for TGF-β2-directed drug development.
Neutron-induced fission cross sections of isotopes involved in the nuclear fuel cycle are vital for the design and safe operation of advanced nuclear systems. Such experimental data can also provide additional constraints for the adjustment of nuclear model parameters used in the evaluation process, resulting in the further development of fission models. In the present work, the 237Np(n,f) cross section was studied at the EAR2 vertical beam-line at CERN's n_TOF facility, over a wide range of neutron energies, from meV to MeV, using the time-of-flight technique and a set-up based on Micromegas detectors, in an attempt to provide accurate experimental data. Preliminary results in the 200 keV – 14 MeV neutron energy range as well as the experimental procedure, including a description of the facility and the data handling and analysis, will be presented.