500 Naturwissenschaften und Mathematik
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- photonics (4)
- arrayed waveguide gratings (3)
- 3D MMI splitter (2)
- polymers (2)
- 2x2 optical switch (1)
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The ability of water to form cage-like structures and capture gas molecules under high pressure and low temperatures lead to problems in gas pipelines, especially in the mid-20th century. Also, there is an enormous amount of this so-called gas hydrate, captured in deep sea sediments or in terrestrial permafrost soils in which they reserve a possible degradable energy resource. On the other hand, they also maintain a high risk to enhance the ongoing climate change. At the same time, through their high energy storage ability, gas hydrates exhibit a high potential for industrial applications like alternative energy storage, carbon capture technologies or cleaning of exhaust emissions through separation and storage. But through their complex kinetics and ongoing dynamics through induction, synthesis and dissociation, the usage of hydrates is still far away from relevant industrial application. To make the potential capable there is still a huge amount of basic research necessary: Specially to shorten the induction time. An earlier thesis at FH-Vorarlberg exposed a potential method to shorten the induction time through a stirred reactor with an extremely high stirring rate without the usage of promotors. Therefore, this thesis is dedicated to expose the possible reasons for the witnessed effect through high stirring rates (>10000 rpm) at different pressure and tempera-ture conditions. The goal is to show possible physical effects to shorten the induction time of hy-drate synthesis. Therefore, a stirred reactor is used in which the possible effects should be investi-gated through the research with CO2 hydrates. In the research, there will be a closer look on phe-nomena like cavitation, increasing the phase interface through stirring or pressure fluctuations. The results of this thesis show an interesting connection between pressure, stirring rate and increased phase interface. Furthermore, there are also some exposed significances between stirring under spe-cial conditions which were exposed through statistical analyses. The results show that stirring could possibly be a new driving force when executed under the right conditions.
Die Integration regenerativer und innovativer Energiespeichertechnologien in der Gebäudetechnik ist ein zentraler Bestandteil der Strategie, um die globalen Ziele der Energiewende zu erreichen. Um die Energieeffizienz von Gebäuden zu verbessern, stellen geothermische Energiequellen sowie Erdspeichersysteme in Kombination mit Wärmepumpen und Kältemaschinen eine sehr effiziente Technologie dar. Da bei der Oberflächennahen Geothermie in Abhängigkeit des Standorts eine gemittelte Erdreichtemperatur von 10 °C bereitgestellt wird, kann vorallem bei Niedertemperatursystemen durch die Verwendung von Wärmepumpen eine hohe Jahresarbeitszahl erreicht werden. Wird ein Gebäude zusätzlich noch gekühlt, kann durch die Regeneration des Erdspeichersystems zudem der Effekt der saisonalen Energiespeicherung ausgenutzt werden.
Im Rahmen dieser Arbeit werden drei unterschiedlichen Erdspeichersysteme für ein bestehendes Gebäude mit der Simulationssoftware Ida Ice simuliert. Die in dieser Arbeit verwendeten Erdspeichersysteme sind: Erdwärmesonden, Energiepfähle und Bodenabsorber. Die Speichersysteme werden mit einer Wärmepumpe und Kältemaschine für die Energiebereitstellung und der entsprechenden Regelungstechnik kombiniert. Neben einer energetischen Betrachtungsweise wird zusätzlich eine Wirtschaftlichkeitsberechnung durchgeführt, um die ökonomische Bewertung bei allen Energiespeichersystem mit zu berücksichtigen.
Die Ergebnisse zeigen, dass die Bewertung der Energiespeichersysteme von vielen Dimensionierungsparametern abhängig sind und jedes System seine Vor- und Nachteile aufweist. Über einen kurzfristigen Zeitraum von zwei Jahren kann durch die Erdwärmesonden die höchste Vorlauftemperatur und dadurch die beste Jahresarbeitszahl erreicht werden. Langzeitsimulationen zeigen jedoch, dass ohne genügend Regenration das Erdreich bei der Erdwärmesondenvariante auskühlt, weshalb in einer zusätzlichen Variante die Regeneration der Erdwärmesonden durch das Verwenden einer Solarthermieanlage simuliert wird. Das Auskühlen des Erdreichs kann bei den Energiepfählen durch die natürlichen Speichereffekte, die aus der Koppelung des Gebäudefundaments mit den Energiepfählen resultieren, vermieden werden, wodurch die Energiepfahlvariante über einen Zeitraum von mehreren Jahren und ohne Regeneration die effizienteste Variante ist. Die Bodenabsorbervariante kann durch die limitierende Dimensionierung aufgrund der Gebäudefundamentoberfläche den Wärmebedarf des Gebäudes nicht decken, wodurch die Heizelemente beim Pufferspeicher aktiviert werden müssen, was zu einer schlechteren Jahresarbeitszahl führt. Auch im Vergleich zu der bestehenden Luftwärmepumpen-Referenzanlage weist die Bodenabsorbervariante einer geringere Jahresarbeitszahl auf, wodurch die Variante als die am wenigste effizienteste bewertet wird. Bei der Wirtschaftlichkeitsberechnung ist die Erdwärmesondenvariante aufgrund der hohen Investitionskosten die teuerste Variante und der Bodenabsorber die günstigste. Eine Sensitivitätsanalyse zeigt jedoch, dass bei einer Energiepreissteigerung die Bodenabsorber aufgrund der Aktivierung der Heizelemente beim Pufferspeicher in Richtung teuerste Variante tendiert.
Die CO2 Abscheidung ist ein Schlüsselprozess für die Dekarbonisierung der Wirtschaft und Industrie. Die Entwicklungspfade der IEA und des IPCC zur Erreichung des CO2 Nettonulle-missionsziel bis 2050 oder 2070 beinhalten alle eine Form von Carbon Capture, (CC). Als vielversprechende CC-Technologie gerät die gashydratbasierte CO2 Abscheidung, hbCC, aufgrund der hohen Speicherkapazität bei moderaten Druck- und Temperaturniveau und des unproblematischen Arbeitsmediums Wasser zusehends ins Interesse der Forschung und In-dustrie. Gashydrate sind unstöchiometrische Einschlussverbindungen, bei denen die Gasmo-leküle in einem Wirtsgitter aus Wassermolekülen gespeichert werden können. In einem m3 Gashydrat können 170 Nm3 Gas gespeichert werden. Die statischen Eigenschaften von Gas-hydrat sind gut verstanden. Die Dynamik der Synthese und Dissoziation, die intrinsische Re-aktionskinetik der Hydratformation, die Nukleation von initialen Kristallisationskeimen und der Einfluss von Wärme- und Stofftransportphänomenen auf die Dynamik ist noch nicht geklärt. Ein profundes Verständnis der Synthese- und Dissoziationsdynamik, inklusive dem Zusam-menhang mit den p,T-Prozessbedingungen, gilt als Voraussetzung für die Entwicklung effizi-enter hbCC-Verfahren. Üblicherweise wird Gashydrat synthetisiert indem flüssiges Wasser mit der Gasphase in Kontakt gebracht wird. Der initial gebildete Hydratfilm auf der Phasen-grenzfläche hemmt in weiter Folge den Stofftransport für das weitere Hydratwachstum. Die CO2 Gasphasenabscheidung durch thermisches Verdampfen unter Druck, (engl. pressurized thermal evaporation, PTE), unterliegt keinem gehemmten Stofftransport, weil Wasserdampf und Gasmoleküle an einer kalten Substratoberfläche kontinuierlich für die Synthese vorliegen. In vorhergehenden Studien wurden subsequente Synthese- und Dissoziationsexperimente durch PTE aus reiner CO2 oder CH4 Gasphase zur Untersuchung der Dynamik durchgeführt. Für diese Arbeit werden erstmals subsequente PTE Synthese- und Dissoziationsexperimente aus einem binären 0,85 N2 + 0,15 CO2 Synthesegasgemisch umgesetzt. Das durch die Syn-these abgeschiedene Gas wird nach der Dissoziation mit einem Massenspektrometer auf seine Zusammensetzung untersucht. Hydratspeicherkapazität, Abscheiderate und die Selek-tivität der CO2 Gasphasenabscheidung wird für eine Synthesetemperaturvariation, (- 40 °C bis - 15 °C), und einen Synthesedruck von 40 bar(a) bestimmt. Durch Zeitrafferauf-nahmen der Hydratformation und Dissoziation wird die Auswirkung der p,T-Prozessbedingun-gen auf die Synthese- und Dissoziationsdynamik untersucht und der optimale Betriebspunkt für die CO2 Gasphasenabscheidung durch thermisches Verdampfen unter Druck bestimmt. Aus den Ergebnissen lässt sich ein klarer Zusammenhang zwischen Synthesetemperatur, Ab-scheiderate und Selektivität ableiten. Ein tiefere Synthesetemperatur führt zu einer effiziente-ren CO2 Abscheidung. Außerdem zeigt sich bei der Beobachtung der Synthesedynamik eine direkte Resublimation des Gashydrats auf der Wachstumsoberfläche. Es bildet sich keine flüssige Übergangsphase vor der Nukleation. Die neuen Erkenntnisse sind wichtige Faktoren für das Design zukünftiger PTE-Verfahren und Prototypen.
In this paper, the design of three-dimensional configuration of Y-branch splitter is compared with Multimode Interference splitter. Both splitters use the IP-Dip polymer as a standard material for 3D laser lithography. The optical properties of the splitters for both approaches are discussed and compared.
The paper deals with designing and numerical modelling a 2 x 2 optical switch for photonic integrated circuits based on 2 x 2 MMI elements and phase modulators. The 2 x 2 optical switch was modelled in the RsoftCAD with the simulation tool BeamPROP. The 2 x 2 optical switch is a common element for creating more complex 1 x N or N x N optical switches in all-optical signal processing.
In this work, we investigated the influence of different etch depths of the rib waveguides on the performance of SiN-based AWGs. For this purpose, an 8-channel 100 GHz AWG was designed for a center wavelength of 850 nm. The design parameters entered were calculated using the AWG-Parameters tool. The simulations were performed with a commercial photonic tool PHASAR from Optiwave. The simulated performance was evaluated using the AWG-Analyzer tool. For the AWG design, we used three identical rib waveguides with different etch depths to simulate possible etch imperfection. The simulations show the wavelength shift and degradation of the AWG performance.
The paper deals with the optimization of 2x2 optical switch for photonic integrated circuits based on two 2x2 MMI splitters and two phase-modulators. The optical switch was modelled in the RSoftCAD with the simulation tool BeamPROP. The optimization was done to minimise the insertion losses and broaden the spectral band at 1550 nm by using linear tapers in a 2x2 MMI splitter topology. The 2x2 optical switch is a common element for creating more complex 1xN or NxN optical switches in all-optical signal processing.
Due to the increasing trend of photonic element miniaturisation and the need for optical splitting, we propose and simulate a new type of three-dimensional (3D) optical splitter based on multimode interference (MMI) for the wavelength of 1550 nm. We present various designs and simulations of various parameters for the optimized MMI splitter. We focus on the possibility of its integration on an optical fiber. The design is focused on a possible production process using 3D laser lithography for the prepared experiments. The MMI splitter was prepared by laser lithography using direct writing process and finally investigated by output characterisation by the near-field measurement.
A new software tool, called AWG-Channel-Spacing, is developed to calculate accurate channel spacing of an arrayed waveguide gratings (AWG) optical multiplexer/demultiplexer. This tool has been developed with the application framework QT in the programming language C++. The tool was evaluated with a design of 20-channel 200 GHz AWG. The achieved simulated transmission characteristics prove the correct functionality of the tool.
This paper describes two different designs of 1×8 passive optical splitters. The first splitter consists of cascade arranged directional waveguide branches (Y-branch splitter) with (0.8×0.16) µm2 waveguide cross-section. The second splitter is based on multimode interference occurring in a large MMI coupler, which uses a self-imaging effect for beam propagation, exhibiting the same waveguide core size as a Y-branch splitter. The waveguide channel profile, used in both approaches, is based on a silicon nitride material platform, with a refractive index of core being nc = 1.925 and a refractive index of cladding ncl = 1.4575. The splitters are designed as a planar structure for a medical operating wavelength 850 nm. Design, simulation, and optimization of passive optical components are performed by a commercial photonic software tool BeamPROP simulation engine by RSoft Photonics Suite tool, employing beam propagation method. This work aims to find the minimum physical dimensions of the designed splitters with the satisfactory optical performance. According to the minimum insertion loss and minimum non-uniformity, the optimum length of the splitters is determined. Finally, the optical properties of splitters for both approaches are discussed and compared with each other.
A new software tool, called AWG-Wuckler, is developed to calculate geometric parameters of arrayed waveguide grating structures for telecommunication and medical applications. These parameters are crucial for a AWG layout which will be created and simulated using commercial photonic design tools. The design process of AWG is very complex because its geometric dimensions depend on a large number of input design parameters and other input design parameters. Often geometric constraints require an adjustment of the input design parameters and vice versa. Calculation and adjustment of the geometric parameters is a time-consuming process that is currently not fully supported by any commercial photonic tool. AWG-Wuckler tool overcomes this issue and offers a fast and easy to use solution. The tool was already applied in various AWG designs and is technologically well proven.
Traditional power grids are mainly based on centralized power generation and subsequent distribution. The increasing penetration of distributed renewable energy sources and the growing number of electrical loads is creating difficulties in balancing supply and demand and threatens the secure and efficient operation of power grids. At the same time, households hold an increasing amount of flexibility, which can be exploited by demand-side management to decrease customer cost and support grid operation. Compared to the collection of individual flexibilities, aggregation reduces optimization complexity, protects households’ privacy, and lowers the communication effort. In mathematical terms, each flexibility is modeled by a set of power profiles, and the aggregated flexibility is modeled by the Minkowski sum of individual flexibilities. As the exact Minkowski sum calculation is generally computationally prohibitive, various approximations can be found in the literature. The main contribution of this paper is a comparative evaluation of several approximation algorithms in terms of novel quality criteria, computational complexity, and communication effort using realistic data. Furthermore, we investigate the dependence of selected comparison criteria on the time horizon length and on the number of households. Our results indicate that none of the algorithms perform satisfactorily in all categories. Hence, we provide guidelines on the application-dependent algorithm choice. Moreover, we demonstrate a major drawback of some inner approximations, namely that they may lead to situations in which not using the flexibility is impossible, which may be suboptimal in certain situations.
This paper aims to study the design, simulation, and optimization of low-loss Y-branch passive optical splitters up to 64 output ports for telecommunication applications. For a waveguide channel profile, the standard material silica-on-silicon is used. The Y-splitters are designed and simulated at telecommunication operating wavelength, λ = 1550 nm. Except for the lengths of the used Y-branches, and a core size of the waveguides, design parameters such as port pitch between the waveguides and simulation parameters for all splitters are considered fixed. The simulation results are analyzed to determine the optimum length of the splitters and the optimum core size. Based on this optimization the total length of the highest designed 1×64 Y-branch splitter was reduced by 41.14 % for a waveguide core (5×5) μm2 compared to the length of splitter with a standard (6×6) μm2 core size.
The paper shows concepts of optical splitting based on three dimensional (3D) optical splitters based on multimode interference principle. This paper is focused on the design, fabrication and characterization of 3D MMI splitter with formed output waveguides based on IP-Dip polymer for direct application on optical fiber. The MMI optical splitter was simulated and fabricated using direct laser writing process. Output characteristics were characterized by highly resolved near-field scanning optical microscope (NSOM) and compared with 3D MMI splitter without output waveguides.
We present 256-channel, 25-GHz AWG designed for ultra-dense wavelength division multiplexing. For the design two in-house developed tools were used: AWG-Parameters tool for the calculation of input design parameters and AWGAnalyser tool, used to evaluate the simulated transmission characteristics. The AWG structure was designed for AWG central wavelength of 1550 nm and simulated with PHASAR tool from Optiwave. To keep the size of AWG structure as small as possible the number of waveguides in the phased array was tested. The simulations show that there is a certain minimum number of phased array waveguides necessary to reach sufficient AWG performance. After optimization, the AWG structure reached 10 cm x 11 cm in size and satisfying optical properties.
In this paper we present various educational activities with Photonics Explorer, an educational kit developed by the photonics research team B - PHOT at VUB (Vrije Universiteit Brussel) for students at secondary schools. The concept is a ‘lab-in-a-box’ that enables students of the 2 nd and 3 rd grade to do photonics experiments themselves at school with lasers, LEDs, lenses, optical fibers, and other high-tech components. Even though, the kit was developed for the secondary schools, we use experiments from the kit also for some other teaching activities such as lectures at the university, photonics workshops for teachers and children at primary/secondary schools or for events such as children's/youth's university or the night of sciences. In the frame of Austrian based project Phorsch! we have organized most of these activities which will be presented here.
Design, simulation, and optimization of the 1×4 optical three-dimensional multimode interference splitter using IP-Dip polymer as a core and polydimethylsiloxane (PDMS) Sylgard 184 as a cladding is demonstrated. The splitter was simulated by using beam propagation method in BeamPROP simulation module of RSoft photonic tool and optimized for an operating wavelength of 1.55 μm . According to the minimum insertion loss, the dimensions of the splitter were optimized for a waveguide with a core size of 4×4 μm2 . The objective of the study is to create the design for fabrication by three-dimensional direct laser writing optical lithography.
In this paper, we document optical splitters based on Y-branch and also on MMI splitting principle. The 1×4 Y-branch splitter was prepared in 3D geometry fully from polymer approaching the single mode transmission at 1550 nm. We also prepared new concept of 1×4 MMI optical splitter. Their optical properties and character of output optical field were measured by near-field scanning optical microscope. Splitting properties and optical outputs of both splitters are very promising and increase an attractiveness of presented 3D technology and polymers.