Refine
Has Fulltext
- yes (493) (remove)
Document Type
- Doctoral Thesis (493) (remove)
Institute
- Institut für Strukturmechanik (ISM) (56)
- Institut für Europäische Urbanistik (29)
- Promotionsstudiengang Kunst und Design-Freie Kunst-Medienkunst (Ph.D) (25)
- F. A. Finger-Institut für Baustoffkunde (FIB) (20)
- Professur Sozialwissenschaftliche Stadtforschung (16)
- Professur Baubetrieb und Bauverfahren (15)
- Professur Denkmalpflege und Baugeschichte (13)
- Professur Informatik im Bauwesen (12)
- Professur Informatik in der Architektur (12)
- Professur Bauchemie und Polymere Werkstoffe (11)
Keywords
- Architektur (25)
- Beton (21)
- Stadtplanung (18)
- Finite-Elemente-Methode (17)
- Optimierung (14)
- Stadtentwicklung (13)
- Denkmalpflege (12)
- Isogeometric Analysis (10)
- Kunst (10)
- Modellierung (10)
Organisation im soziotechnischen Gemenge - Mediale Umschichtungen durch die Einführung von SAP
(2017)
Der Alltag in Organisationen besteht vor allem aus den Medien und Technologien, mit denen die Koordination zwischen einzelnen Arbeitsabläufen hergestellt wird.
Diese ethnografische Studie begleitet den Prozess der Einführung eines SAP-Systems in einem mittelständischen Unternehmen und zeigt, wie das bestehende Geflecht aus Praktiken und Technologien eine Neuanordnung erfährt. Dabei tritt das komplexe soziotechnische Gemenge zutage, auf dem Koordination und Organisation beruhen. Es geht um Hardware, ebenso wie Software, um mechanische und elektronische Medien, um Papiere, Drucker, Akten, Interfaces und Tastaturen, aber auch um die jahrzehntelang eingespielten Routinen und das Erfahrungswissen der Angestellten.
Turbomachinery plays an important role in many cases of energy generation or conversion. Therefore, turbomachinery is a promising approaching point for optimization in order to increase the efficiency of energy use. In recent years, the use of automated optimization strategies in combination with numerical simulation has become increasingly popular in many fields of engineering. The complex interactions between fluid and solid mechanics encountered in turbomachines on the one hand and the high computational expense needed to calculate the performance on the other hand, have, however, prevented a widespread use of these techniques in this field of engineering. The objective of this work was the development of a strategy for efficient metamodel based optimization of centrifugal compressor impellers. In this context, the main focus is the reduction of the required numerical expense. The central idea followed in this research was the incorporation of preliminary information acquired from low-fidelity computation methods and empirical correlations into the sampling process to identify promising regions of the parameter space. This information was then used to concentrate the numerically expensive high-fidelity computations of the fluid dynamic and structure mechanic performance of the impeller in these regions while still maintaining a good coverage of the whole parameter space. The development of the optimization strategy can be divided into three main tasks. Firstly, the available preliminary information had to be researched and rated. This research identified loss models based on one dimensional flow physics and empirical correlations as the best suited method to predict the aerodynamic performance. The loss models were calibrated using available performance data to obtain a high prediction quality. As no sufficiently exact models for the prediction of the mechanical loading of the impellercould be identified, a metamodel based on finite element computations was chosen for this estimation. The second task was the development of a sampling method which concentrates samples in regions of the parameter space where high quality designs are predicted by the preliminary information while maintaining a good overall coverage. As available methods like rejection sampling or Markov-chain Monte-Carlo methods did not meet the requirements in terms of sample distribution and input correlation, a new multi-fidelity sampling method called “Filtered Sampling“has been developed. The last task was the development of an automated computational workflow. This workflow encompasses geometry parametrization, geometry generation, grid generation and computation of the aerodynamic performance and the structure mechanic loading. Special emphasis was put into the development of a geometry parametrization strategy based on fluid mechanic considerations to prevent the generation of physically inexpedient designs. Finally, the optimization strategy, which utilizes the previously developed tools, was successfully employed to carry out three optimization tasks. The efficiency of the method was proven by the first and second testcase where an existing compressor design was optimized by the presented method. The results were comparable to optimizations which did not take preliminary information into account, while the required computational expense cloud be halved. In the third testcase, the method was applied to generate a new impeller design. In contrast to the previous examples, this optimization featuredlargervariationsoftheimpellerdesigns. Therefore, theapplicability of the method to parameter spaces with significantly varying designs could be proven, too.
Open Innovation in kleinen und mittleren Unternehmen (KMU) hat sich stark ausdifferenziert. Dabei zeigt die Empirie, dass KMU unterschiedliche Wege in der offenen Entwicklung von Innovationen begehen. Um die bestehende Literatur zu erweitern, wurden mit dieser Dissertation die Ziele verfolgt 1) offene Innovationsaktivitäten in KMU aus einer Prozessperspektive aufzudecken und genau zu beschreiben und 2) zu erklären, warum sich die Öffnung von Innovationsprozessen in KMU unterscheidet. Dafür wurde auf eine multiple Fallstudienanalyse zurückgegriffen. Untersuchungsobjekte waren kleine etablierte High-Tech Unternehmen aus den neuen Bundesländern. Die Ergebnisse zeigen sechs Prozessmodelle der offenen Innovationsentwicklung, beschrieben als Open Innovation Muster. Deskriptionen dieser Muster unter Berücksichtigung von formenden Innovationsaktivitäten, ausgetauschtem Wissen, beteiligten externen Akteuren und Gründen für und gegen Open Innovation vermitteln ein über den bisherigen Forschungsstand hinausgehendes Verständnis von Open Innovation in KMU. Zudem zeigen die Ergebnisse, dass die Entrepreneurial Orientation erklärt, warum KMU bei der Ausgestaltung von offenen Innovationsprozessen unterschiedlich vorgehen. In der Dissertation wird detailliert dargelegt, welche Open Innovation Muster sich anhand der Entrepreneurial Orientation von KMU (nicht-entrepreneurial bis entrepreneurial) zeigen. Die Ergebnisse liefern sowohl wissenschaftliche Implikationen, als auch Handlungsempfehlungen für die Unternehmenspraxis.
In this Thesis we study some complex and hypercomplex function spaces and classes such as hypercomplex Besov spaces, Bloch space and Op spaces as well as the class of basic sets of polynomials in several complex variables. It is shown that hyperholomorphic Besov spaces can be applied to characterize the hyperholomorphic Bloch space. Moreover, we consider BMOM and VMOM spaces.
On the mechanisms of shrinkage reducing admixtures in self con-solidating mortars and concretes
(2010)
Self Consolidating Concrete – a dream has come true!(?) Self Consolidating Concrete (SCC) is mainly characterised by its special rheological properties. With-out any vibration this concrete can be placed and compacted under its own weight, without segrega-tion or bleeding. The use of such concrete can increase the productivity on construction sites and en-able the use of a higher degree of well distributed reinforcement for thin walled structural members. This new technology also reduces health risks since in contrast to the traditional handling of concrete, the emission of noise and vibration are substantially decreased. The specific mix design for self consolidating concretes was introduced around the 1980s in Japan. In comparison to normal vibrated concrete an increased paste volume enables a good distribution of aggregates within the paste matrix, minimising the influence of aggregates friction on the concrete flow property. The introduction of inert and/or pozzolanic additives as part of the paste provides the required excess paste volume without using disproportionally high amounts of plain cement. Due to further developments of concrete admixtures such as superplasticizers, the cement paste can gain self levelling properties without causing segregation of aggregates. Whereas SCC differs from normal vibrated concrete in its fresh attributes, it should reach similar properties in the hardened state. Due to the increased paste volume it usually shows higher shrinkage. Furthermore, owing to strength requirements, SCC is often produced at low water to cement ratios and hence may additionally suffer from autogenous shrinkage. This means that cracking caused by drying or autogenous shrinkage is a real risk for SCC and can compromise its durability as cracks may serve as ingression paths for gases and salts or might permit leaching. For the time being SCC still exhibits increased shrinkage and cracking probability and hence may be discarded in many practical applications. This can be overcome by a better understanding of those mechanisms and the ways to mitigate them. It is a target of this thesis to contribute to this. How to cope with increased shrinkage of SCC? In general, engineers are facing severe problems related to shrinkage and cracking. Even for normal and high performance concrete, containing moderate amounts of binder, a lot of effort was put on counteracting shrinkage and avoiding cracking. For the time being these efforts resulted in the knowledge of how to distribute cracks rather to avoid them. The most efficient way to decrease shrinkage turned out to be to decrease the cement content of concrete down to a minimum but still sufficient amount. For SCC this obviously seems to be contradictory with the requirement of a high paste volume. Indeed, the potential for shrinkage reduction is limited to some small range modifications in the mix design following two major concepts. The first one is the reduction of the required paste volume by optimising the aggregate grading curve. The second one involves high volume substitution of cement, preferentially using inert mineral additives. The optimization of grading curves is limited by several severe practical issues. Problems start with the availability of sufficiently fractionated aggregates. Usually attempts fail because of the enormous effort in composing application-optimized grading curves or mix designs. Due to durability reasons, the substitution rate for cement is limited depending on the application purpose and on environmental exposure of the hardened concrete. In the early 1980s Shrinkage Reducing Admixtures (SRA) were introduced to counteract drying shrinkage of concrete. The first publications explicitly dealing with SRA go back to Goto and Sato (Japan). They were published in 1983, which is also the time when the SCC concept was introduced. SRA modified concretes showed a substantial reduction of free drying shrinkage contributing to crack prevention or at least a significant decrease of crack width in situations of restrained drying shrinkage. Will shrinkage reducing admixtures contribute to a broader application of SCC? Within the last three decades performance tests on several types of concrete proved the efficiency of shrinkage reducing admixtures. So, at least in terms of shrinkage and cracking, concretes in general and SCC in particular can benefit from SRA application. But "One man's meat is another man's poison" and with respect to long term performance of SRA modified concretes there are still several issues to be clarified. One of these concerns the impact of SRAs on cement hydration. It is therefore an issue to know if changes in the hydrated phase composition, induced by SRA, result in undesired properties or decreased durability. Another issue is that the long term shrinkage reduction has to be evaluated. For example, one can wonder if SRA leaching may diminish or even eliminate long term shrinkage reduction and if the release of admixtures could be a severe environmental issue. It should also be noted that the basic mechanism or physical impact of SRA as well as its implementation in recent models for shrinkage of concrete is still being discussed. The present thesis tries to shed light on the role of SRA in self consolidating concrete focusing on the three questions outlined above: basic mechanisms of cement hydration, physical impact on shrinkage and the sustainability of SRA-application. Which contributions result from this study? Based on an extensive patent search, commercial SRAs could be identified to be synergistic mixtures of non-ionic surfactants and glycols. This turns out to be most important information for more than one reason and is the subject of chapter 4. An abundant literature focuses on properties of these non-ionic surfactants. Moreover, from this rich pool of information, the behaviour of SRAs and their interactions in cementitious systems were better understood through this thesis. For example, it could be anticipated how SRAs behave in strong electrolytes and how surface activity, i.e. surface tension, and interparticle forces might be affected. The synergy effect regarding enhanced performance induced by the presence of additional glycol in SRAs could be derived from the literature on the co-surfactant nature of glycols. Generally it now can be said that glycols ensure that the non-ionic surfactant is properly distributed onto the paste interfaces to efficiently reduce surface tension. In literature, the impact of organic matter on cement hydration was extensively studied for other admixtures like superplasticizer. From there, main impact factors related to the nature of these molecules could be identified. In addition, here again, the literature on non-ionic surfactants provides sufficient information to anticipate possible interactions of SRA with cement hydration based on the nature of non-ionic surfactants. All in all, the extensive study on the nature of non-ionic surfactants, presented in chapter 4, provides fundamental understanding of the behaviour of SRAs in cement paste. Taking a step further to relate this to the impact on drying and shrinkage required to review recent models for drying and shrinkage of cement paste as presented in chapter 3. There, it is shown that macroscopic thermodynamics of the open pore systems can be successfully applied to predict drying induced deformation, but that surface activity of SRA still has to be implemented to explain the shrinkage reduction it causes. Because of severe issues concerning the importance of capillary pressure on shrinkage, a new macroscopic thermodynamic model was derived in a way that meets requirements to properly incorporate surface activity of SRA. This is the subject of chapter 5. Based on theoretical considerations, in chapter 5 the broader impact of SRA on drying cementitious matter could be outlined. In a next step, cement paste was treated as a deformable, open drying pore system. Thereby, the drying phenomena of SRA modified mortars and concrete observed by other authors could be retrieved. This phenomenological consistency of the model constitutes an important contribution towards the understanding of SRA mechanisms. Another main contribution of this work came from introducing an artificial pore system, denominated the normcube. Using this model system, it could be shown how the evolution of interfacial area and its properties interact in presence of SRAs and how this impacts drying characteristics. In chapter 7, the surface activity of commercial SRAs in aqueous solution and synthetic pore solution was investigated. This shows how the electrolyte concentration of synthetic pore solution impacts the phase behaviour of SRA and conversely, how the presence of SRA impacts the aqueous electrolyte solution. Whilst electrolytes enhance self-aggregation of SRAs into micelles and liquid crystals, the presence of SRAs leads to precipitation of minerals as syngenite and mirabilite. Moreover, electrolyte solutions containing SRAs comprise limited miscibility or rather show miscibility gaps, where the liquid separates into isotropic micellar solutions and surfactant rich reverse micellar solutions. The investigation of surface activity and phase behaviour of SRA unravelled another important contribution. From macroscopic surface tension measurements, a relationship between excess surface concentration of SRA, bulk concentration of SRA and exposed interfacial area could be derived. Based on this, it is now possible to predict the actual surface tension of the pore fluid in the course of drying once the evolution of internal interfacial area is known. This is used later in this thesis to describe the specific drying and shrinkage behaviour of SRA modified pastes and mortars. Calorimetric studies on normal Portland cement and composite binders revealed that SRA alone show only minor impact on hydration kinetics. In presence of superplasticizer however the cement hydration can be significantly decelerated. The delaying impact of SRA could be related to a selective deceleration of silicate phase hydration. Moreover, it could be shown that portlandite precipitation in presence of SRA is changed, turning the compact habitus into more or less layered structures. Thereby, the specific surface increases, causing the amount of physically bound water to increase, which in turn reduces the maximum degree of hydration achievable for sealed systems. Extensive phase analysis shows that the hydrated phase composition of SRA modified binders re-mains almost unaffected. The appearance of a temporary mineral phase could be detected by environmental scanning electron microscopy. As could be shown for synthetic pore solutions, syngenite precipitates during early hydration stages and is later consumed in the course of aluminate hydration, i.e. when sulphates are depleted. Moreover, for some SRAs, the salting out phenomena supposed to be enhanced in strong electrolytes could also be shown to take place. The resulting organic precipitates could be identified by SEM-EDX in cement paste and by X-ray diffraction on solid residues of synthetic pore solution. The presence of SRAs could also be identified to impact microstructure of well cured cement paste. Based on nitrogen adsorption measurements and mercury intrusion porosimetry the amount of small pores is seen to increase with SRA dosage, whilst the overall porosity remains unchanged. The question regarding sustainability of SRA application is the subject of chapter 10. By means of leaching studies it could be shown that SRA can be leached significantly. The mechanism could be identified as a diffusion process and a range of effective diffusion coefficients could be estimated. Thereby, the leaching of SRA can now be estimated for real structural members. However, while the admixture can be leached to high extents in tank tests, the leaching rates in practical applications can be assumed to be low because of much reduced contact with water. This could be proven by quantifying admixture loss during long term drying and rewetting cycles. Despite a loss of admixture shrinkage reduction is hardly impacted. Moreover, the cyclic tests revealed that the total deformations in presence of SRA remain low due to a lower extent of irreversibly shrinkage deformations. Another important contribution towards the better understanding of the working mechanism of SRA for drying and shrinkage came from the same leaching tests. A significant fraction of SRA is found to be immobile and does not diffuse in leaching. This fraction of SRA is probably strongly associated to cement phases as the calcium-silicate-hydrates or portlandite. Based on these findings, it is now also possible to quantify the amount of admixture active at the interfaces. This means that, the evolution of surface tension in the course of drying can be approximated, which is a fundamental requirement for modeling shrinkage in presence of SRA. The last experimental chapter of this study focuses on the working mechanism and impact of SRA on drying and shrinkage. Based on the thermodynamics of the open deformable pore system introduced in chapter 5, energy balances are set up using desorption and shrinkage isotherms of actual samples. Information on distribution of SRA in the hydrated paste is used to estimate the actual surface tensions of the pore solution. In other words, this is the first time that the surface activity of the SRA in the course of the drying is fully accounted for. From the energy balances the evolution and properties of the internal interface are then obtained. This made it possible to explain why SRAs impact drying and shrinkage and in what specific range of relative humidity they are active. Summarising the findings of this thesis it can be said that the understanding of the impact of SRAs on hydration, drying and shrinkage was brought forward. Many of the new insights came from the careful investigation of the theory of non-ionic surfactants, something that the cement community had generally overlooked up to now.
Polymeric nanocomposites (PNCs) are considered for numerous nanotechnology such as: nano-biotechnology, nano-systems, nanoelectronics, and nano-structured materials. Commonly , they are formed by polymer (epoxy) matrix reinforced with a nanosized filler. The addition of rigid nanofillers to the epoxy matrix has offered great improvements in the fracture toughness without sacrificing other important thermo-mechanical properties. The physics of the fracture in PNCs is rather complicated and is influenced by different parameters. The presence of uncertainty in the predicted output is expected as a result of stochastic variance in the factors affecting the fracture mechanism. Consequently, evaluating the improved fracture toughness in PNCs is a challenging problem.
Artificial neural network (ANN) and adaptive neuro-fuzzy inference system (ANFIS) have been employed to predict the fracture energy of polymer/particle nanocomposites. The ANN and ANFIS models were constructed, trained, and tested based on a collection of 115 experimental datasets gathered from the literature. The performance evaluation indices of the developed ANN and ANFIS showed relatively small error, with high coefficients of determination (R2), and low root mean square error and mean absolute percentage error.
In the framework for uncertainty quantification of PNCs, a sensitivity analysis (SA) has been conducted to examine the influence of uncertain input parameters on the fracture toughness of polymer/clay nanocomposites (PNCs). The phase-field approach is employed to predict the macroscopic properties of the composite considering six uncertain input parameters. The efficiency, robustness, and repeatability are compared and evaluated comprehensively for five different SA methods.
The Bayesian method is applied to develop a methodology in order to evaluate the performance of different analytical models used in predicting the fracture toughness of polymeric particles nanocomposites. The developed method have considered the model and parameters uncertainties based on different reference data (experimental measurements) gained from the literature. Three analytical models differing in theory and assumptions were examined. The coefficients of variation of the model predictions to the measurements are calculated using the approximated optimal parameter sets. Then, the model selection probability is obtained with respect to the different reference data.
Stochastic finite element modeling is implemented to predict the fracture toughness of polymer/particle nanocomposites. For this purpose, 2D finite element model containing an epoxy matrix and rigid nanoparticles surrounded by an interphase zone is generated. The crack propagation is simulated by the cohesive segments method and phantom nodes. Considering the uncertainties in the input parameters, a polynomial chaos expansion (PCE) surrogate model is construed followed by a sensitivity analysis.
Increasing structural robustness is the goal which is of interest for structural engineering community. The partial collapse of RC buildings is subject of this dissertation. Understanding the robustness of RC buildings will guide the development of safer structures against abnormal loading scenarios such as; explosions, earthquakes, fine, and/or long-term accumulation effects leading to deterioration or fatigue. Any of these may result in local immediate structural damage, that can propagate to the rest of the structure causing what is known by the disproportionate collapse.
This work handels collapse propagation through various analytical approaches which simplifies the mechanical description of damaged reinfoced concrete structures due to extreme acidental event.
Moderne Büroarchitektur mit Räumen in Leichtbauweise und großen transparenten Fassa-denanteilen verschärft im Zusammenwirken mit hohen internen Lasten die Problematik der sommerlichen Überhitzung in Gebäuden. Phasenübergangsmaterialien (PCM: phase change materials) stellen eine interessante Möglichkeit dar, sommerliche Überhitzung in Gebäuden ohne aufwändige Anlagentechnik wie beispielsweise Klimaanlagen zu reduzieren. Der thermische Komfort in Räumen, die mit einem PCM-Putz ausgestattet sind, kann signifikant erhöht werden. Die Arbeit untersucht Anwendungsmöglichkeiten und Optimierungspotential eines PCM-Putzes auf experimentelle und numerische Weise. Zur Untersuchung des PCM-Putzes wurden materialtechnische und experimentelle sowie numerische und numerisch-analytische Methoden eingesetzt. Die Kenntnis der thermischen Parameter des PCM-Putzes ist unablässig für die Berechnung der möglichen Temperaturreduktionen. Zur Bestimmung der Latentwärme, des qualitativen Schmelz- und Erstarrungsprozesses sowie des Temperaturintervalls, in dem der Phasenübergang stattfindet, wurden Messungen mit einem Differential Scanning Calorimeter (DSC) durchgeführt. Für die experimentelle Untersuchung des PCM-Putzes wurden zwei identische Testräume in Leichtbauweise erstellt. Die Räume wurden im Verifikationsobjekt „Eiermannbau“ des Sonderforschungsbereiches SFB 524 der Bauhaus-Universität Weimar gemessen. Nach der Überprüfung, dass sich beide Räume thermisch gleich verhalten, wurde ein Raum mit dem PCM-Putz und der zweite Raum mit einem vergleichbaren Innenputz ohne PCM verputzt. Thermoelemente zur Temperaturmessung im Bauteil, an der Oberfläche und zur Raumlufttemperaturbestimmung wurden angebracht und mit einer Messwerterfassungsanlage verbunden. Der Verlauf der Außenlufttemperatur und die Globalstrahlung am Standort der Versuchsräume wurden aufgezeichnet, um einen Klimadatensatz zu erstellen. Für die Berechnung der Temperaturverteilung in einem PCM-Bauteil mit kontinuierlichem Phasenübergang existiert keine geschlossene analytische Lösung. Daher wurde ein numerischer Ansatz gewählt, bei dem der Phasenübergang im Temperaturbereich T1 bis T2 mit Hilfe einer temperaturabhängigen Wärmekapazität c(T) innerhalb der erweiterten Fou-rier’schen Wärmeleitungsgleichung dargestellt wird. Die Funktion c(T) wird auf Basis der DSC-Messungen bestimmt. Die Modellierung erfolgte mit einem Finite-Differenzen-Verfahren auf Grundlage der Fourier’schen Wärmeleitungsgleichung. Im Rahmen der Arbeit wurde ein PCM-Modul entwickelt, das in ein Gebäudesimulationsprogramm implementiert wurde. Mit dem neuen Modul lassen sich sowohl die Temperaturverläufe in einem PCM-Bauteil wie auch seine Wechselwirkung mit dem Raumklima darstellen. Eine Validierung des entwickelten PCM-Moduls anhand von zahlreichen experimentellen Daten der Versuchsräume wurde für das PCM-Modul erfolgreich durchgeführt. Sommerliche Überhitzungsstunden können durch PCM in Wand- und Deckenelementen deutlich reduziert werden. Der PCM-Putz eignet sich vor allem für Anwendungen in Leichtbauten wie z.B. moderne Büroräume. In Räumen, in denen bereits eine ausreichende thermische Masse vorhanden ist, ist die Temperaturreduktion durch PCM nur gering. Kann das PCM während der Nachtstunden nicht erstarren, erschöpft sich seine Fähigkeit zur Latentwärmespeicherung. Erhöhte Nachtlüftung führt bei entsprechend niedrigen Außentemperaturen zu höherem Wärmeübergang und kann damit zur besseren Entladung des PCM beitragen. Im Rahmen der Dissertation konnten Aussagen zur idealen Phasenübergangstemperatur in Abhängigkeit des verwendeten Materials und der Schichtdicke getroffen werden. Die Reduktion der Oberflächentemperaturen, die sich bei Einsatz eines PCM-Putzes unter geeigneten Randbedingungen ergibt, beträgt 2.0 - 3.5 K für eine Putzschicht von 1 cm und 3.0 - 5.0 K für eine Putzschicht von 3 cm. Diese Werte wurden sowohl numerisch als auch durch experimentelle Untersuchungen ermittelt. Die Reduktion der Lufttemperaturen aufgrund einer Konditionierung des Raumes mit PCM-Putz beträgt bei geeigneten thermischen Verhältnissen ca. 1.0 - 2.5 K für eine Putzschicht von 1 cm und 2.0 - 3.0 K für eine Putzschicht von 3 cm. Die operative Temperatur als wichtiger Komfortparameter kann durch den Einsatz des PCM-Putzes um bis zu 4 K gesenkt werden. Damit lässt sich mit Hilfe eines PCM-Putzes die thermische Behaglichkeit in einem Raum deutlich erhöhen.
Die Komplexität des Schweißprozesses und das Verhalten der Werkstoffe infolge des Energieeintrages erfordern eine umfassende Betrachtungsweise. Die Entwicklung von numerischen Modellen und Methoden in den letzten 50 Jahren ermöglicht die Simulation, Analyse und Optimierung von Schweißverbindungen hinsichtlich Temperatur, Gefügestruktur und Eigenspannungen. Eine Differenzierung der Schweißsimulation in Prozess-, Werkstoff- und Struktursimulation gestattet eine gezielte Untersuchung von einzelnen Aspekten. Diese Unterteilung erfordert zum Teil eine starke Abstraktion und Idealisierung der Realität durch geeignete Annahmen und Randbedingungen, die von der zu untersuchenden Fragestellung abhängen. Dadurch wird eine Kalibrierung und Verifikation der Modelle mit Versuchsergebnissen notwendig. Die in dieser Arbeit durchgeführten Untersuchungen beschäftigen sich mit wichtigen Fragestellungen hinsichtlich der numerischen Simulation und experimentellen Untersuchung des Temperaturfeldes sowie des Gefüge- und Eigenspannungszustandes von MAG-Schweißverfahren an den Werkstoffen Feinkornbaustahl und Duplex-Stahl, CO2-Laserstrahlschweißverfahren am Werkstoff Quarzglas, Trennprozessen von Proben, WIG-Nachbehandlungsverfahren. Hinsichtlich der Naht- und Stoßarten orientierte sich die Arbeit an baupraktisch relevanten Schweißverbindungen sowie Besonderheiten, die sich aus Schweißprozessen und unterschiedlichen Werkstoffen ergeben. Eine Interpretation der numerisch und experimentell ermittelten Ergebnisse ermöglicht die Ableitung von allgemeingültigen Erkenntnissen zur Ausbildung des Temperaturfeldes, Entstehung von Gefügestrukturen und Eigenspannungen. Voraussetzungen für eine realitätsnahe Schweißsimulation zur Bestimmung von Temperatur, Gefügeanteil und Eigenspannung sind neben den Geometriemodellen geeignete numerische Modelle für die Einkopplung der Energie aus dem Schweißprozess und für die Abgabe der Energie durch Konvektion und Strahlung an die Umgebung, zur Beschreibung des thermischen und mechanischen Werkstoffverhaltens im Bereich von Raumtemperatur bis zur Schmelztemperatur.
Numerische Berechnung von Mauerwerkstrukturen in homogenen und diskreten Modellierungsstrategien
(2004)
Im Zentrum der Arbeit stehen die Entwicklung, Verifikation, Implementierung und Leistungsfähigkeit numerischer Berechnungsmodelle für Mauerwerk im Rahmen der Kontinuums- und Diskontinuumsmechanik. Makromodelle beschreiben das Mauerwerk als verschmiertes Ersatzkontinuum. Mikromodelle berücksichtigen durch die Modellierung der einzelnen Steine und Fugen die Struktur des Mauerwerkverbandes. Soll darüber hinaus der durch die Querdehnungsinteraktion zwischen Stein und Mörtel hervorgerufene heterogene Spannungszustand im Mauerwerk abgebildet werden, so ist ein detailliertes Mikromodell, welches Steine und Fugen in ihren exakten geometrischen Dimensionen berücksichtigt, erforderlich. Demgegenüber steht die vereinfachte Mikromodellierung, bei der die Fugen mit Hilfe von Kontaktalgorithmen beschrieben werden. Im Rahmen der Makromodellierung werden neue räumliche Materialmodelle für verschiedene ein- und mehrschalige Mauerwerkarten hergeleitet. Die vorgestellten Modelle berücksichtigen die Anisotropie der Steifigkeiten, der Festigkeiten sowie des Ver- und Entfestigungsverhaltens. Die numerische Implementation erfolgt mit Hilfe moderner elastoplastischer Algorithmen im Rahmen der impliziten Finite Element Methode in das Programm ANSYS. Innerhalb der detaillierten Mikromodellierung wird ein neues, aus Materialbeschreibungen für Stein, Mörtel sowie deren Verbund bestehendes nichtlineares Berechnungsmodell entwickelt und in das Programm ANSYS implementiert. Die diskontinuumsmechanische Beschreibung von Mauerwerk im Rahmen der vereinfachten Mikromodellierung erfolgt unter Verwendung der expliziten Distinkt Element Methode mit Hilfe der Programme UDEC und 3DEC. An praktischen Beispielen werden Probleme der Tragfähigkeitsbewertung gemauerter Bogenbrücken, Möglichkeiten zur Bewertung vorhandener Rissbildungen und Schädigungen an historischen Mauerwerkstrukturen und Traglastberechnungen an gemauerten Stützen ausgewertet und analysiert.