600 Technik, Medizin, angewandte Wissenschaften
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Diese Arbeit beschäftigt sich mit der simulativen Untersuchung von Strömung und Wärmeübergang im Kontext von Vorkammerzündsystemen. Dies geschieht im Rahmen der Entwicklung eines Gasmotors mit gasgespülter Vorkammer. Entscheidene Größen für die Strömung und Arbeitsweise in einer Vorkammerzündkerze sind die Geometrie und Anordnung der Überströmbohrungen, das Vorkammervolumen und die Form der Vorkammer. Die Betrachtung wird dafür aufgeteilt in die Themen Spaltströmungen, Wärmeübergang und drallbehaftete Strömungen. Diese werden zunächst isoliert betrachtet und letztendlich in einem Anwendungsfall zusammengeführt. Für die Betrachtung von Spaltströmungen werden unterschiedliche Platten mit Bohrlöchern zu verschiedenen Drücken, Durchmessern und Plattenstärken durchströmt und der Wärmeübergang und der Drall werden mithilfe einer durch Leitbleche gelenkte Strömung in einem beheizten Rohr untersucht. Die Zusammenführung der Themen wird anhand einer Anströmvorrichtung für Brenngase auf Motorzylinder durchgeführt. Dabei erreichen die Gase hohe Temperaturen und aufgrund von hohen Drücken und Spaltströmungen große Geschwindigkeiten.
Für die Simulation werden die Programme Ansys Fluent und Ansys Forte verwendet. Während ersteres primär für die Simulation von Strömungen verwendet wird, ist Forte speziell aufgebaut, um in Verbrennungsmotoren neben der Berechnung der Strömung auch die Einspritzung von Kraftstoff, die Verbrennung dessen und die resultierenden Schadstoffe zu berechnen. Da die Ergebnisse aus Forte eine große Gewichtung in der Beurteilung der Entwicklungsarbeit des Gasmotors hat, muss Forte selbst validiert werden. Dies wird durchgeführt anhand der angesprochenen Teilthemen und verglichen mit Messungen aus der Literatur und Simulationsergebnissen in Fluent.
Decarbonisation Strategies in Energy Systems Modelling: Biochar as a Carbon Capture Technology
(2022)
The energy system is changing since some years in order to achieve the climate goals from the Paris Agreement which wants to prevent an increase of the global temperature above 2 °C. Decarbonisation of the energy system has become for governments a big challenge and different strategies are being stablished. Germany has set greenhouse gas reduction limits for different years and keeps track of the improvement made yearly. The expansion of renewable energy systems (RES) together with decarbonisation technologies are a key factor to accomplish this objective.
This research is done to analyse the effect of introducing biochar, a decarbonisation technology, and study how it will affect the energy system. Pyrolysis is the process from which biochar is obtained and it is modelled in an open-source energy system model. A sensibility analysis is made in order to assess the effect of changing the biomass potential and the costs for pyrolysis.
The role of pyrolysis is analysed in the form of different future scenarios to evaluate the impact. The CO2 emission limits from the years 2030 and 2045 are considered to create the scenarios, as well as the integration of flexibility technologies. Four scenarios in total are assessed and the result from the sensibility analysis considering pyrolysis are always compared to the reference scenario, where pyrolysis is not considered.
Results show that pyrolysis has a bigger impact in the energy system when the CO2 limit is low. Biochar can be used to compensate the emissions from other conventional power plant and achieve an energy transition with lower costs. Furthermore, it was also found that pyrolysis can also reduce the need of flexibility. This study also shows that the biomass potential and the pyrolysis costs can affect a lot the behaviour of pyrolysis in the energy system.
Digitales Engineering wird zunehmend wichtiger in unserer digitalen Welt. Auch die Hochschule und im speziellen der Bildungscampus Gengenbach hat den Anspruch, sich stets weiterzuentwickeln und den Studierenden die fortschreitende Technik greifbar und praxisnah zu vermitteln. Das digitale Engineering bietet dazu Möglichkeiten, neue studentische Lehrkonzepte zu entwickeln und umzusetzen, die beispielsweise aus neuartiger Software besteht. Durch den demografischen Wandel und den zunehmenden Kostendruck sind immer mehr Industrieunternehmen gezwungen, ihre Prozesse zu digitalisieren und neuste Software im Bereich Engineering einzusetzen. Deswegen müssen die zukünftigen Studierenden auf die neue Rolle optimal vorbereitet werden.
Die Herausforderung ist dabei, eine geeignete Software zu finden und zu analysieren. Vor diesem Hintergrund beschäftigt sich diese Arbeit zuerst mit einer Softwareanalyse. Zunächst gilt es, nach einer Einarbeitungsphase in die verschiedensten Engineering Softwaretools One Pager mit den wichtigsten Informationen zu erstellen. Danach wird eine Nutzwertanalyse durchgeführt, um zu definieren, welche Software den Ansprüchen gerecht wird.
Danach wird eine Planung und Auslegung eines Kollaborativen Engineering Laborkonzeptes durchgeführt. Dabei wird unterschieden in eine Planung auf einer grünen Wiese, das bedeutet es gibt keine Flächenbegrenzung und als weitere Variante mit der Planung auf der Fläche des derzeitigen Virtual Engineering Labors im Bildungscampus Gengenbach.
Anschließend wird ein Lehrkonzept für das neue Labor und entsprechenden Engineering Tools erarbeitet. Dabei geht es hauptsächlich um die Machbarkeit und der Definition der möglichen Potenziale und Umsetzung der Kollaboration.
Micronization of biochar (BC) may ease its application in agriculture. For example, fine biochar powders can be applied as suspensions via drip-irrigation systems or can be used to produce grnulated fertilizers. However, micronization may effect important physical biochar properties like the water holding capacity (WHC) or the porosity.
Gas Analysis and Optimization of Debinding and Sintering Processes for Metallic Binder-Based AM*
(2022)
Binder-based additive manufacturing processes for metallic
AM components in a wide range of applications usually use
organic binders and process-related additives that must be
thermally removed before sintering. Debinding processes are
typically parameterized empirically and thus far from the optimum.
Since debinding based on thermal decomposition processes
of organic components and the subsequent thermochemical
reactions between process atmosphere and metal
powder materials make uncomplicated parameterization difficult,
in-situ instrumentation was introduced at Fraunhofer
IFAM. This measurement method relies on infrared spectroscopy
and mass spectrometry in various furnace concepts to
understand the gas processes of decomposition of organic
components and the subsequent thermochemical reactions
between the carrier gas atmosphere and the metal part, as well
as their kinetics. This method enables an efficient optimization
of the temperature-time profiles and the required atmosphere
composition to realize dense AM components with low contamination.
In the paper, the optimization strategy is presented,
and the achievable properties are illustrated using a fused
filament fabrication (FFF) component example made of 316L
stainless steel.
Biodegradable metals have entered the implant market in recent years, but still do not show fully satisfactory degradation behaviour and mechanical properties. In contrast, it has been shown that pure molybdenum has an excellent combination of the required properties in this respect. We report on PM based screen printing of thin-walled molybdenum tubes as a processing step for medical stent manufacture. We also present data on the in vivo degradation and biocompatibility of molybdenum. The degradation of molybdenum wires implanted in the aorta of rats was evaluated by SEM and EDX. Biocompatibility was assessed by histological investigation of organs and analysis of molybdenum levels in tissue extracts and body fluids. Degradation rates of up to 13.5 μm/y were observed after 12 months. No histological changes or elevated molybdenum levels in organ tissues were observed. In summary, the results further underline that molybdenum is a highly promising biodegradable metallic material.
Titanium and stainless steel are commonly known as osteosynthesis materials with high strength and good biocompatibility. However, they have the big disadvantage that a second operation for hardware removal is necessary. Although resorbable systems made of polymers or magnesium are increasingly used, they show some severe adverse foreign body reactions or unsatisfying degradation behavior. Therefore, we started to investigate molybdenum as a potential new biodegradable material for osteosynthesis in craniomaxillofacial surgery. To characterize molybdenum as a biocompatible material, we performed in vitro assays in accordance with ISO Norm 10993-5. In four different experimental setups, we showed that pure molybdenum and molybdenum rhenium alloys do not lead to cytotoxicity in human and mouse fibroblasts. We also examined the degradation behavior of molybdenum by carrying out long-term immersion tests (up to 6 months) with molybdenum sheet metal. We showed that molybdenum has sufficient mechanical stability over at least 6 months for implants on the one hand and is subject to very uniform degradation on the other. The results of our experiments are very promising for the development of new resorbable osteosynthesis materials for craniomaxillofacial surgery based on molybdenum.
During the coronavirus crisis, labs had to be offered in digital form in mechanical engineering at short notice. For this purpose, digital twins of more complex test benches in the field of fluid energy machines were used in the mechanical engineering course, with which the students were able to interact remotely to obtain measurement data. The concept of the respective lab was revised with regard to its implementation as a remote laboratory. Fortunately, real-world labs were able to be fully replaced by remote labs. Student perceptions of remote labs were mostly positive. This paper explains the concept and design of the digital twins and the lab as well as the layout, procedure, and finally the results of the accompanying evaluation. However, the implementation of the digital twins to date does not yet include features that address the tactile experience of working in real-world labs.
The energy system is changing since some years in order to achieve the climate goals from the Paris Agreement which wants to prevent an increase of the global temperature above 2 °C [1]. Decarbonisation of the energy system has become for governments a big challenge and different strategies are being stablished. Germany has set greenhouse gas reduction limits for different years and keeps track of the improvement made yearly. The expansion of renewable energy systems (RES) together with decarbonisation technologies are a key factor to accomplish this objective.
This research is done to analyse the effect of introducing biochar, a decarbonisation technology, and study how it will affect the energy system. Pyrolysis is the process from which biochar is obtained and it is modelled in an open-source energy system model. A sensibility analysis is done in order to assess the effect of changing the biomass potential and the costs for pyrolysis.
The role of pyrolysis is analysed in the form of different future scenarios for the year 2045 to evaluate the impact when the CO2 emission limit is zero. All scenarios are compared to the reference scenario, where pyrolysis is not considered.
Results show that biochar can be used to compensate the emissions from other conventional power plant and achieve an energy transition with lower costs. Furthermore, it was also found that pyrolysis can also reduce the need of flexibility. This study also shows that the biomass potential and the pyrolysis costs can strongly affect the behaviour of pyrolysis in the energy system.
Eco-Feasibility Study and Application of Natural Inventive Principles in Chemical Engineering Design
(2022)
The early stages of the front-end process development are critical for the future success of projects involving new technologies. The application of eco-inventive principles identified in natural systems to the design of chemical processes and equipment allows one to find ways to mitigate or avoid secondary ecological problems such as, for example, higher consumption of raw materials or energy, generation of hazardous waste and pollution of the environment by toxic chemicals. However, before implementing a new technology in a real operational environment, it is necessary to completely investigate its undesirable ecological impact and to evaluate the future viability of this technology. Therefore, the research paper presents a study of ecological feasibility of an innovative process design utilising natural eco-inventive principles and analyses the correlations between applied inventive principles. Such eco-feasibility study can be considered as an important decision gate to determine whether the technology implementation should be moved forward. Furthermore, the study evaluates the practicability of natural inventive principles to the eco-friendly process design and is illustrated with an example of a sustainable technology for nickel extraction from pyrophyllite.