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Um grünen Wasserstoff effizient als Energieträger nutzen zu können, ist die Entwicklung von haltbaren und aktiven Katalysatorschichten für Brennstoffzellen und Elektrolyseuren von äußerster Wichtigkeit. Eine große Herausforderung ist, dass konventionelle C/Pt-Katalysatoren eine starke Korrosionsreaktion durchlaufen und mit hohen Kosten verknüpft sind. Weswegen alternative Kohlenstoffträger wie Kohlenstoffnanofaser-Materialien entwickelt wurden, welche eine längere Haltbarkeit aufweisen können. In dieser Arbeit wurde die Aufbringung von Pt- und Ir-Nanopartikeln auf gesponnene Kohlenstoffnanofaser-Vliese untersucht. Es wurden erstmals in einer Flüssigkeit laserablatierte Pt-Nanoartikel mit einem PAN-Vlies versponnen oder in einem zweiten Syntheseverfahren auf ein Vlies aufgesprüht. Diese Methoden wurden mit der gepulsten galvanischen Abscheidung von Pt auf einem PAN-Vlies verglichen. Die Vliese wurden bezüglich ihres Graphitisierungsgrades, ihrer Partikelverteilung und ihrer Beständigkeit untersucht, einschließlich des Einflusses der Karbonisierungstemperatur. Die Raman- und XRF-Messungen ergaben eine Erhöhung des Graphitisierungsgrades und eine Abnahme der PAN-Reste mit dem Anstieg der Karbonisierungstemperatur. Elektrochemische Messungen und REM-Aufnahmen bestätigten die erfolgreiche Synthese von langzeitstabilen CNF-Vliesen mit einer hohen massenspezifischen aktiven Platinoberfläche und einer guten Nanopartikelverteilung. Diese Ergebnisse tragen zur Entwicklung von ökologischen und ökonomischen Katalysatorschichten bei.
Ni-based alloys are among the materials of choice in developing high-quality coatings for ambient and high temperature applications that require protection against intense wear and corrosion. The current study aims to develop and characterize NiCrBSi coatings with high wear resistance and improved adhesion to the substrate. Starting with nickel-based feedstock powders, thermally sprayed coatings were initially fabricated. Prior to deposition, the powders were characterized in terms of microstructure, particle size, chemical composition, flowability, and density. For comparison, three types of powders with different chemical compositions and characteristics were deposited onto a 1.7227 tempered steel substrate using oxyacetylene flame spraying, and subsequently, the coatings were inductively remelted. Ball-on-disc sliding wear testing was chosen to investigate the tribological properties of both the as-sprayed and induction-remelted coatings. The results reveal that, in the case of as-sprayed coatings, the main wear mechanisms were abrasive, independent of powder chemical composition, and correlated with intense wear losses due to the poor intersplat cohesion typical of flame-sprayed coatings. The remelting treatment improved the performance of the coatings in terms of wear compared to that of the as-sprayed ones, and the density and lower porosity achieved during the induction post-treatment had a significant positive role in this behavior.
Without proper post-processing (often using flame, furnace, laser remelting, and induction) or reinforcements’ addition, Ni-based flame-sprayed coatings generally manifest moderate adhesion to the substrate, high porosity, unmelted particles, undesirable oxides, or weak wear resistance and mechanical properties. The current research aimed to investigate the addition of ZrO2 as reinforcement to the self-fluxing alloy coatings. Mechanically mixed NiCrBSi-ZrO2 powders were thermally sprayed onto an industrially relevant high-grade steel. After thermal spraying, the samples were differently post-processed with a flame gun and with a vacuum furnace, respectively. Scanning electron microscopy showed a porosity reduction for the vacuum-heat-treated samples compared to that of the flame-post-processed ones. X-ray diffraction measurements showed differences in the main peaks of the patterns for the thermal processed samples compared to the as-sprayed ones, these having a direct influence on the mechanical behavior of the coatings. Although a slight microhardness decrease was observed in the case of vacuum-remelted samples, the overall low porosity and the phase differences helped the coating to perform better during wear-resistance testing, realized using a ball-on-disk arrangement, compared to the as-sprayed reference samples.
Among the FDM process variables, one of the less addressed in previous research is the filament color. Moreover, if not explicitly targeted, the filament color is usually not even mentioned.
Aiming to point out if, and to what extent, the color of the PLA filaments influences the dimensional precision and the mechanical strength of FDM prints, the authors of the present research carried out experiments on tensile specimens. The variable parameters were the layer height (0.05 mm, 0.10 mm, 0.15 mm, 0.20 mm) and the material color (natural, black, red, grey). The experimental results clearly showed that the filament color is an influential factor for the dimensional accuracy as well as for the tensile strength of the FDM printed PLA parts. Moreover, the two way ANOVA test performed revealed that the strongest effect on the tensile strength was exerted by the PLA color (2 = 97.3%), followed by the layer height (2 = 85.5%) and the interaction between the PLA color and the layer height (2 = 80.0%). Under the same printing conditions, the best dimensional accuracy was ensured by the black PLA (0.17% width deviations, respectively 5.48% height deviations), whilst the grey PLA showed the highest ultimate tensile strength values (between 57.10 MPa and 59.82 MPa).
Among all additive manufacturing processes, Directed Energy Deposition-Arc (DED-Arc) shows significantly shorter production times and is particularly suitable for large-volume components of simple to medium complexity. To exploit the full potential of this process, the microstructural, mechanical and corrosion behavior have to be studied. High stickout distances lead to a large offset, which leads to an instable electric arc and thus defects such as lack of fusion. Since corrosion preferentially occurs at such defects, the main objective of this work is to investigate the influence of the stickout distance on the corrosion
behavior and microstructure of stainless steel manufactured by DED-Arc.
Within the heterogenous structure of the manufactured samples lack of fusion defects were detected. The quantity of such defects was reduced by applying a shorter stickout distance. The corrosion behavior of the additively manufactured specimens was investigated by means of potentiodynamic polarization measurements. The semi-logarithmic current density potential curves showed a similar course and thus similar corrosion resistance like that of the conventionally forged sample. The polarization curve of the reference material shows numerous current peaks, both in the anodic and cathodic regions. This metastable behavior is induced by the presence of manganese sulfides. On the sample surface a local attack by pitting corrosion was identified.
MFsim - An open Java all-in-one rich-client simulation environment for mesoscopic simulation
MFsim is an open Java all-in-one rich-client computing environment for mesoscopic simulation with Jdpd as its default simulation kernel for Molecular Fragment Dissipative Particle Dynamics (DPD). The environment integrates and supports the complete preparation-simulation-evaluation triad of a mesoscopic simulation task. Productive highlights are a SPICES molecular structure editor, a PDB-to-SPICES parser for particle-based peptide/protein representations, a support of polymer definitions, a compartment editor for complex simulation box start configurations, interactive and flexible simulation box views including analytics, simulation movie generation or animated diagrams. As an open project, MFsim enables customized extensions for different fields of research.
MFsim uses several open libraries (see MFSimVersionHistory.txt for details and references below) and is published as open source under the GNU General Public License version 3 (see LICENSE).
MFsim has been described in the scientific literature and used for DPD studies.
Jdpd - An open Java Simulation Kernel for Molecular Fragment Dissipative Particle Dynamics (DPD)
Jdpd is an open Java simulation kernel for Molecular Fragment Dissipative Particle Dynamics (DPD) with parallelizable force calculation, efficient caching options and fast property calculations. It is characterized by an interface and factory-pattern driven design for simple code changes and may help to avoid problems of polyglot programming. Detailed input/output communication, parallelization and process control as well as internal logging capabilities for debugging purposes are supported. The kernel may be utilized in different simulation environments ranging from flexible scripting solutions up to fully integrated “all-in-one” simulation systems like MFsim.
Since Jdpd version 1.6.1.0 Jdpd is available in a (basic) double-precision version and a (derived) single-precision version (= JdpdSP) for all numerical calculations, where the single precision version needs about half the memory of the double precision version.
Jdpd uses the Apache Commons Math and Apache Commons RNG libraries and is published as open source under the GNU General Public License version 3. This repository comprises the Java bytecode libraries (including the Apache Commons Math and RNG libraries), the Javadoc HTML documentation and the Netbeans source code packages including Unit tests.
Jdpd has been described in the scientific literature (the final manuscript 2018 - van den Broek - Jdpd - Final Manucsript.pdf is added to the repository) and used for DPD studies (see references below).
See text file JdpdVersionHistory.txt for a version history with more detailed information.
Aufgrund der Energiewende und den steigenden Anforderungen an die technische Gebäudeausrüstung gewinnt der Betrieb von Wärmepumpen in Gebäuden immer mehr an Bedeutung. Inzwischen existiert eine Vielzahl an Wärmepumpen-Systemen, die unterschiedliche Vor- und Nachteile sowie Einsatzmöglichkeiten aufweisen. Sofern die Installation einer Wärmepumpe für den Wohngebäudesektor in Betracht gezogen wird, muss eruiert werden, welches System sowohl ökologisch als auch ökonomisch für das Bauvorhaben am sinnvollsten ist. Hierfür wurde eine Bewertungstool entwickelt, das den Einsatz der unterschiedlichen Wärmepumpensysteme bewertet und auch Nutzern mit wenig Expertise eine Entscheidungshilfe ermöglicht. Für eine möglichst ganzheitliche Betrachtung können verschiedene Szenarien mit Hilfe des Bewertungstools überprüft werden. Hierzu können Indikatoren wie Standortdaten, Gebäudedaten, Parameter für die Trinkwassererwärmung, die Systemtemperaturen der Heizung und die Betriebsweise der Wärmepumpe im Tool variiert werden. Die Ergebnisse des Bewertungstools zeigen, wie die unterschiedlichen Nutzungsanforderungen sich auf die Jahresarbeitszahl und den Energiebedarf auswirken. Zusätzlich werden Investitions- und Verbrauchskosten für die unterschiedlichen Szenarien abgeschätzt und berechnet. Bei der ökologischen Bewertung wird der Fokus der Betrachtung auf den TEWI-Wert gelegt, um den Einfluss von verschiedener Kältemittel im Lebenszyklus der Wärmepumpe zu berücksichtigen.
n-type silicon modules
(2023)
The photovoltaic industry is facing an exponential growth in the recent years fostered by a dramatic decrease in installation prices. This cost reduction is achieved by means of several mechanisms. First, because of the optimization of the design and installation process of current PV projects, and second, by the optimization, in terms of performance, in the manufacturing techniques and material combinations within the modules, which also has an impact on both, the installation process, and the levelized cost of electricity (LCOE).
One popular trend is to increase the power delivered by photovoltaic modules, either by using larger wafer sizes or by combining more cells within the module unit. This solution means a significant increase in the size of these devices, but it implies an optimization in the design of photovoltaic plants. This results in an installation cost reduction which turns into a decrease in the LCOE.
However, this solution does not represent a breakthrough in addressing the real challenge of the technology which affects the module requirements. The innovation efforts must be focused on improving the modules capability to produce energy without enlarging the harvesting area. This challenge can be faced by approaching some of the module characteristics which are summarized in this chapter.
Nachhaltigkeit von intelligenten Gebäuden - Ein Blick auf die Gesetzgebungen und Praxismöglichkeiten
(2023)
Gebäude sind durch ihre Herstellung und den Betrieb für einen erheblichen Teil der CO2-Emissionen in Europa verantwortlich. Die EU und Deutschland wollen durch milliardenschwere Maßnahmenpakete diese Emissionen bis zum Jahr 2045 (Deutschland) bzw. 2050 (EU) auf null reduzieren. Neben der Gebäudehülle als maßgeblicher Faktor für die Wärmebilanz zum Heizen und Kühlen spielt die Gebäudeautomation eine wichtige Rolle. Wie Gebäude intelligenter und smarter werden und wie sich das auf die Energieeffizienz auswirkt, soll im Folgenden betrachtet werden.
In this work a mathematical approach to calculate solar panel temperature based on measured irradiance, temperature and wind speed is applied. With the calculated module temperature, the electrical solar module characteristics is determined. A program developed in MatLab App Designer allows to import measurement data from a weather station and calculates the module temperature based on the mathematical NOCT and stationary approach with a time step between the measurements of 5 minutes. Three commercially available solar panels with different cell and interconnection technologies are used for the verification of the established models. The results show a strong correlation between the measured and by the stationary model predicted module temperature with a coefficient of determination R2 close to 1 and a root mean square deviation (RMSE) of ≤ 2.5 K for a time period of three months. Based on the predicted temperature, measured irradiance in module plane and specific module information the program models the electrical data as time series in 5-minute steps. Predicted to measured power for a time period of three months shows a linear correlation with an R2 of 0.99 and a mean absolute error (MAE) of 3.5, 2.7 and 4.8 for module ID 1, 2 and 3. The calculated energy (exemplarily for module ID 2) based on the measured, calculated by the NOCT and stationary model for this time period is 118.4 kWh, resp. 116.7 kWh and 117.8 kWh. This is equivalent to an uncertainty of 1.4% for the NOCT and 0.5% for the stationary model.
Advanced Determination of Temperature Coefficients of Photovoltaic Modules by Field Measurements
(2023)
In this work data from outdoor measurements, acquired over the course of up to three years on commercially available solar panels, is used to determine the temperature coefficients and compare these to the information as stated by the producer in the data sheets. A program developed in MatLab App Designer allows to import the electrical and ambient measurement data. Filter algorithms for solar irradiance narrow the irradiance level down to ~1000 W/m2 before linear regression methods are applied to obtain the temperature coefficients. A repeatability investigation proves the accuracy of the determined temperature coefficients which are in good agreement to the supplier specification if the specified values for power are not larger than -0.3%/K. Further optimization is achieved by applying wind filter techniques and days with clear sky condition. With the big (measurement) data on hand it was possible to determine the change of the temperature coefficients for varying irradiance. As stated in literature we see an increase of the temperature coefficient of voltage and a decline for the temperature coefficient of power with increasing irradiance.