Ingenieurbau
Filtern
Erscheinungsjahr
Dokumenttyp
- Dissertation (36) (entfernen)
Referierte Publikation
- nein (36)
Schlagworte
- Brandschutz (4)
- CFD (3)
- Brandverhalten (2)
- Damage detection (2)
- Finite element method (2)
- Finite-Elemente-Methode (2)
- Stahl (2)
- Abbruch (1)
- Abplatzungen (1)
- Acid-resistance (1)
Organisationseinheit der BAM
- 7 Bauwerkssicherheit (12)
- 7.2 Ingenieurbau (4)
- 8 Zerstörungsfreie Prüfung (3)
- 7.0 Abteilungsleitung und andere (2)
- 7.3 Brandingenieurwesen (2)
- 7.4 Baustofftechnologie (2)
- 7.7 Modellierung und Simulation (2)
- 2 Prozess- und Anlagensicherheit (1)
- 2.1 Sicherheit von Energieträgern (1)
- 3 Gefahrgutumschließungen; Energiespeicher (1)
This thesis addresses numerical simulations of self-compacting concrete (SCC) castings and suggests a novel modelling approach that treats reinforcement zones in a formwork as porous media.
As a relatively new field in concrete technology, numerical simulations of fresh concrete flow can be a promising aid to optimise casting processes and to avoid on-site casting incidents by predicting the flow behaviour of concrete during the casting process. The simulations of fresh concrete flow generally involve complex mathematical modelling and time-consuming computations. In case of a casting prediction, the simulation time is additionally significantly increased because each reinforcement bar occurring in succession has to be considered one by one. This is particularly problematic when simulating SCC casting, since this type of concrete is typically used for heavily reinforced structural members. However, the wide use of numerical tools for casting prediction in practice is possible only if the tools are user-friendly and simulations are time-saving.
In order to shorten simulation time and to come closer to a practical tool for casting prediction, instead to model steel bars one by one, this thesis suggests to model zones with arrays of steel bars as porous media. Consequently, one models the flow of SCC through a reinforcement zone as a free-surface flow of a non-Newtonian fluid, propagating through the medium. By defining characteristic parameters of the porous medium, the influence on the flow and the changed (apparent) behaviour of concrete in the porous matrix can be predicted. This enables modelling of any reinforcement network as a porous zone and thus significantly simplifies and fastens simulations of reinforced components’ castings.
Within the thesis, a computational model for SCC flow through reinforced sections was developed. This model couples a fluid dynamics model for fresh concrete and the macroscopic approach for the influence of the porous medium (formed by the rebars) on the flow. The model is implemented into a Computational Fluid Dynamics software and validated on numerical and experimental studies, among which is a large-scale laboratory casting of a highly reinforced beam. The apparent rheology of concrete within the arrays of steel bars is studied and a methodology to determine unknown input parameters for the porous medium is suggested. Normative tables defining characteristic porous medium parameters as a function of the topology of the rebar zone for different reinforcement cases are generated. Finally, the major contribution of this work is the resulting numerical package, consisting of the numerical solver and the parameter library. The thesis concludes on the ability of the porous medium analogy technique to reliably predict the concrete casting behaviour, while being significantly easier to use and far less time consuming than existing tools.
Derzeit existieren für Gefahrgutverpackungen in den internationalen Gefahrgutvorschriften keine Festlegungen für quantitative Grenzleckageraten, die sich an Sicherheitsbetrachtungen während der Beförderung orientieren. Für die Dichtheitsprüfung im Rahmen der Bauartzulassung von Gefahrgutverpackungen für flüssige Füllgüter ist das Standardprüfverfahren das Eintauchverfahren in Wasser („Bubble Test“). Hierbei handelt es sich um ein lokalisierendes Prüfverfahren. Seine Anwendung lässt keine quantitative Aussage darüber zu, ob unter Beförderungsbedingungen aufgrund von strömungsbedingter Stofffreisetzung durch Leckstellen der Gefahrgutverpackungen die Gefahr der Bildung einer explosionsfähigen Atmosphäre besteht. Zentrales Ziel der vorliegenden Arbeit ist daher, zunächst quantitative Dichtheitsanforderungen an Gefahrgutverpackungen im Hinblick auf die Entstehung explosionsfähiger Dampf-Luft-Gemische während des Transports zu entwickeln. Im Anschluss werden strömungsbedingte Leckageraten der Verschlüsse verschiedener Bauarten von Gefahrgutverpackungen gemessen. Der Vergleich der Messwerte mit den berechneten Grenzwerten ermöglicht die Einschätzung hinsichtlich der Bildung einer explosionsfähigen Atmosphäre. Dieser quantitative Ansatz zur Beurteilung der Dichtheit ist für Gefahrgutverpackungen derzeit noch nicht etabliert. Die Grenzleckageraten werden für das Szenario des interkontinentalen Transports von Gefahrgutverpackungen in einem 20-Fuß-Frachtcontainer im Hinblick auf die untere Explosionsgrenze abgeleitet. Dies geschieht unter Annahme einer Worst-Case-Betrachtung für Beförderungsdauer, Beladung und Luftwechselrate. Als mittlere Beförderungstemperatur wird 30 °C angesetzt. Eine vollständige Durchmischung im freien Luftraum des Containers wird angenommen. Es werden drei repräsentative Baugrößen von Gefahrgutverpackungen gewählt, mit einem Volumen von ca. 6 L, ca. 60 L und ca. 220 L. Als Füllgüter werden die 23 meistbeförderten flüssigen Gefahrgüter betrachtet. Die treibende Kraft für die Strömung durch Leckstellen ist der sich in der Verpackung ausbildende Überdruck. Die Berechnung des Überdrucks erfolgt durch analytische Modellgleichungen in Abhängigkeit der spezifischen Stoffdaten, Füllgrad, Befülltemperatur, Transporttemperatur und Nachgiebigkeit der Verpackungsbauart. Die quantitative Leckageratenmessung der Gefahrgutverpackungen wird mit dem Überdruckverfahren mit Ansammlung (Akkumulationsverfahren) unter Verwendung von Helium als Prüfgas vorgenommen. Zusätzlich erfolgt die Detektion weiterer potentieller Leckstellen außerhalb des Verschlussbereiches mit dem Schnüffelverfahren. Bei allen untersuchten Bauarten, mit Ausnahme des 6 L-Feinstblechkanisters, ist der Verschluss die einzige systematische Leckstelle der Verpackung. Die Messung der Helium-Leckageraten und der anschließende Vergleich mit den berechneten Helium-Grenzleckageraten zeigt, dass folgende Bauarten hinsichtlich des Erreichens der unteren Explosionsgrenze (UEG) durch eine Leckageströmung als kritisch einzuschätzen sind: Kunststoffverpackungen mit Schraubverschlüssen mit Flachdichtung, wenn bei diesen bestimmte Schädigungsmuster im Verschlussbereich vorliegen; Feinstblechkanister, da bei ihnen nicht nur der Verschlussbereich eine Leckstelle darstellt; Kunststoffverpackungen mit Schraubverschlüssen mit Flachdichtung, wenn diese auch für Füllgüter der Verpackungsgruppe I zugelassen sind. Als Konsequenz sollten bei diesen kritischen Bauarten entweder Modifikationen in Bezug auf die Verpackung selbst oder auf die Transportbedingungen im Frachtcontainer vorgenommen werden. Bei Kunststoffverpackungen ist auch die Füllgutpermeation als Freisetzungsmechanismus relevant. Es wird der prinzipielle Rechenweg zur Berücksichtigung dieses Quellterms exemplarisch gezeigt. Diese Arbeit leistet einen grundlegenden Beitrag für die Etablierung einer systematischen quantitativen Dichtheitsbetrachtung von Gefahrgutverpackungen mit dem Ziel der Verbesserung der Sicherheit beim interkontinentalen Gefahrguttransport im Frachtcontainer.
In der vorliegenden Arbeit ist nach Hinweisen auf die Bedeutung auch der oberen Zündgrenze für Sicherheit und Arbeitsschutz in durch Staubexplosionen gefährdeten Betrieben und auf die bisher relativ geringen Kenntnisse zu diesem Problem eine Apparatur geschildert, mit der serienmäßige Untersuchungen an vielen brennbaren Stäuben durchführbar sind, und das zugehörige Auswerteverfahren angegeben worden. Die Methode beruht im Prinzip darauf, daß das reaktionsfähige System im Bereich der oberen Zündgrenze in komprimiertem Zustand und dadurch mit besserer Handhabungsmöglichkeit untersucht wird. Eine Reihe von Ergebnissen wurde mitgeteilt und an Hand dieser die Anwendbarkeit der Methode diskutiert. Der abschließende Teil behandelte zusammengefaßt Sicherheitsmaßnahmen mit besonderen Hinweisen für einige praktische Fälle.
Die Potentialfeldmessung ist eines der wichtigsten zerstörungsfreien Prüfverfahren für die Zustandsbewertung von Stahlbetonbauteilen. Mit dieser Methode kann eine ortsabhängige Wahrscheinlichkeit für aktive, chloridinduzierte Bewehrungskorrosion bestimmt werden. Bei der konventionellen Anwendung wird über ein langes Schleppkabel eine Verbindung zwischen einem Messgerät und der Bewehrung hergestellt. Eine Interpretation der Messergebnisse wird anhand der absoluten Potentialwerte durchgeführt. Die Zuordnung zu aktiven oder passiven Zustanden der Bewehrung ist dabei nicht eindeutig. Eine zuverlässigere Methode der Bewertung des Korrosionspotentials ist jedoch die Bestimmung der Gradienten der Messspannungen. Das vorrangige Ziel dieser Arbeit ist es, die Potentialfeldmessung zu einem vollkommen zerstörungsfreien Differenzpotentialfeldmessverfahren (DP-Messung) weiter zu entwickeln, mit dem die Potentialgradienten direkt gemessen werden und bei dem auf die permanente Ankoppelung an die Bewehrung verzichtet werden kann. Die Arbeit fasst die Entwicklungsschritte zusammen und definiert die Bewertungskriterien für die DP-Messung, die die Qualität der Interpretation verbessern. Anhand der neu definierten Gradientenbreite wird aufgezeigt, wie die Detektionswahrscheinlichkeit für korrosionsaktive Bereiche erhöht wird. Es wird gezeigt, wie die automatisierte Kombination des Verfahrens mit großflächigen Messungen des Feuchtegehalts und der Betondeckung zu einer zuverlässigeren Zustandsbewertung führt.
In this thesis, a distributed Brillouin sensor in perfluorinated polymer optical fibers utilizing BOFDA is presented. These commercially available polymer fibers offer beneficial characteristics for sensing applications such as higher break down strain up to 100 %, minimal bending radii below 2 mm, higher sensitivity to temperature and lower sensitivity to strain compared to their silica equivalent.
The chosen wavelength of operation at 1319 nm corresponds to lower fiber propagation loss (< 37 dB/km) compared to other approaches at 1550 nm (150 - 250 dB/km). A 86 m PFGI-POF was successfully measured by BOFDA with spatial resolution of 3.4 m.
The findings related to humidity influences can serve as a basis for future distributed humidity sensors not only limited to stimulated Brillouin backscattering.
Concrete is a complex material and can be modeled on various spatial and temporal scales. While simulations on coarse scales are practical for engineering applications, a deeper understanding of the material is gained on finer scales. This is at the cost of an increased numerical effort that can be reduced by the three methods developed and used in this work, each corresponding to one publication.
The coarse spatial scale is related to fully homogenized models. The material is described in a phenomenological approach and the numerous parameters sometimes lack a physical meaning. Resolving the three-phase mesoscopic structure consisting of aggregates, the mortar matrix and the interfaces between them allow to describe similar effects with simpler models.
Einfluss der Porosität von Beton auf den Ablauf einer schädigenden Alkali-Kieselsäure-Reaktion
(2016)
This thesis deals with the question of how the porosity of concrete influences the process of a damaging alkali-silica-reaction (“ASR”). In particular, it is examined whether the use of slip form pavers and the reduced porosity resulting from this use have an effect on the process of a damaging ASR.
Since the 1980s slip form pavers have been used, which modifies the structure of concrete. However, these modifications have not yet been taken into consideration in the relevant technical guidelines. The use of slip form pavers instead of conventional concrete pavers results in a denser structure. Due to the denser structure the ductility and the porosity of the concrete decrease. Thus it is more difficult for the tensile stress to be reduced. Moreover, the space for the ASR gel to expand is reduced. These consequences promote the ASR. By contrast, the permeability of the concrete is lower. Hence, the penetration of external alkalis is reduced and the diffusion of the alkalis to the potentially reactive aggregate slowed down. Against this background the question arises whether the use of slip form pavers and the reduced porosity of the concrete increase the risk of a damaging ASR.
An innovative non-destructive testing methodology is applied to answer this question. Based on variations of the porosity it is examined which damage parameters influence the process and intensity of a damaging ASR. The damaging parameters taken into consideration are the mechanical properties of the concrete, the expansion space and the transport processes within the concrete. In order to determine the influence of the relevant damaging parameters two categories of tests are conducted: one category is based on a high internal potential for damages due to ASR, the other one on a high external potential. In both cases alkali-reactive slow/late aggregates are tested. The different porosities of the concrete mainly result from a variation of the w/c-ratio. In case of a high internal potential for ASR-damages the mechanical properties and the expansion space play the most important role. Furthermore; the influence of an air-entraining agent on the process of a damaging ASR is taken into account. The high internal potential for ASR-damages is provoked by the use of cement with a high amount of alkalises for the production of the concrete samples. These samples are stored in the 40 °C fog chamber storage and the 60 °C concrete prisms test. On the one hand the expansion and the change in mass as well as the eigenfrequency are measured discontinuously in the conventional way. On the other hand the innovative testing methodology applied to these ASR-provoked stored concrete samples serves to continuously measure the expansion and the hardening as well as crack formation processes. This methodology comprises a determination of the ultrasonic velocity and of acoustic emissions as well as 3-dimensional micro X-ray computed tomography (μ-3D-CT). The high external potential for ASR-damages is provoked by the cyclic climate storage, designed by FIB. The analysis of these concretes focuses on transportation processes.
The simulation of the structural response for impact scenarios strongly requires an accurate simulation of both the impact event as well as the subsequent wave propagation. The numerical modeling of the impact event is intrinsically ill-posed due to the instantaneous changes of velocities in the contact area, leading to unbounded accelerations for decreasing time steps which causes oscillations in the contact stresses. These oscillations then propagate into the bulk material. Using a rate dependent material model, like concrete, they might lead to significant errors and a wrong prediction of the structural response. A regularization is thus required to avoid oscillations in the contact stresses. Another issue is related to the numerical computation of the contact conditions. In impact simulations, the nonlinear contact computation needs to be evaluated in every time step. A segmentation technique of the contact area is accurate but time consuming and may result in a bottleneck for the simulation and implementation, especially for 3D problems. The modeling of the subsequent wave propagation requires small time steps, which is primarily due to accuracy reasons. Implicit schemes are thus not affordable. Explicit time integration schemes are efficient only for diagonal mass matrices, as in this case no solution of a linear system is required. In this work, a coupled finite element - Non-Uniform Rational B-Spline (FE-NURBS) approach is applied to impact problems. The coupled approach uses an intermediate NURBS layer to compute the contact forces between the contacting bodies discretized by FEs. The advantages of a smooth isogeometric contact formulation are used to compute the contact forces. A segmentation of the contact area is avoided and an efficient element-based integration is used. The impact event is regularized using a mesh dependent nonlinear penalty approach. The penalty function is a polynomial which ensures a smooth transition between the noncontact and the contact state during the impact. For finer meshes, the penalty regularization becomes stiffer while still avoiding artificial oscillations in the contact stresses. Efficient higher order space and time discretizations are used to model the wave propagation. Explicit time integration is combined with higher order spectral element spatial discretization.
In this work, one-part geopolymers were synthesized by mixing solid silica and sodium aluminate with water. Pastes were cured at elevated temperatures (60–90 °C) and relative humidity (r.H.) of 80–98 %. After curing the pastes at 80 °C and 80% r.H for one day, the reaction virtually ceased. Depending on the silica source either geopolymer- zeolite composites or zeolite-free geopolymeric gel forms. The compressive strength of the geopolymer-zeolite composites was lower as the compressive strength of a pure geopolymer, mainly due to a significantly denser and glassy microstructure with less interfaces of the latter one. The major part of the thermal dehydration occurred between 60 °C and 200 °C. Up to 700–800 °C only minor changes of the phase assemblage have been observed for the composites. Depending on the paste composition either ceramic or amorphous phases form during exposure to 1000 °C. Compared to other AAM, very low ambient drying/wetting shrinkage/expansion was observed for the mortars The mortars furthermore provide very high resistance against sulfuric acid (pH 1). Huge parts of the corroded layer are not dissolved from the specimen and can still provide protection for a potential substrate. In terms of sulfuric acid resistance, above a critical CaO content, the formation of gypsum is introduced. This causes expansion, cracking and the decrease of the sulfuric acid resistance.
Safety evaluation of truss structures depends upon the determination of the axial forces and corresponding stresses in axially loaded members. Due to presence of damages, change in intended use, increase in service loads or accidental actions, structural assessment of existing truss structures is necessary. This applies particularly to iron and steel trusses that are still in use, including historic and heritage monuments. Precise identification of the stresses plays a crucial role for the preservation of historic trusses. The assessment measures require non–destructiveness, minimum intervention and practical applicability.
The axial forces in truss structures can be estimated by static calculations using the method of joints, method of sections or finite element method, if accurate information about parameters such as external loads, geometrical characteristics, mechanical properties, boundary conditions and joint connections are known. However, precise information about these parameters is difficult to be obtained in practice. Especially in the cases of historic constructions, reasonable assumptions about the uncertain parameters may not be acquired.
Motivated by the preservation of existing truss−type constructions composed of axially loaded slender members, the present work aims to develop a non–destructive methodology to identify the axial forces or corresponding stress states in iron and steel truss structures. The approach is based on vibration measurements and the finite element method combined with optimization techniques.
After a state of the art review, numerical and experimental studies were carried out on three partial systems of truss–type structures. The investigated systems included single bars, a two–bar truss−like system and a five–bar truss. They were developed step–by–step as built–up truss−type constructions that are constituted of individual members connecting at joints. The examined aspects included the effects of structural loading on the dynamic performance of truss structures, modelling of joint connections, mode pairing criteria, selection of updating parameters and definition of an objective function, as well as the use of different optimization techniques.
Concerning the axial force effects on the structural dynamic responses, the effects of the stress stiffening become more complicated for multiple–member truss systems with increasing complexity. The coexistence of both compressive and tensile forces in trusses has counteracting effects on the modal parameters. These effects cause variation of natural frequencies and interchange of modes when the loads or corresponding member forces are changed. To examine the axial force effects on the structures at different stress states, in the numerical study and laboratory experiments, loads were applied progressively to the investigated truss−like systems.
Regarding the modelling of joints for truss–type structures, the joint flexibility affects the structural dynamic responses. Therefore, the numerical models of truss−type structures include joint models with variable rotational springs to represent semi–rigid connections.
Considering the mode pairing criterion, the mode pairing is performed by adapting an enhanced modal assurance criterion with the calculation of the modal strain energy. The criterion allows the selection of desired clusters of degrees of freedom related to specific modes. With respect to the model updating strategies, the selection of updating parameters and the choice of an appropriate objective function are identified to be significantly important. In addition, three different optimization techniques were applied to compare their suitability for the inverse axial force identification and estimation of joint flexibility of truss structures. The results of the numerical study and laboratory tests show that nature–inspired optimization methods are considered as promising techniques.
A methodology consisted of a two–stage model updating procedure using optimization techniques was proposed for the determination of multiple member axial forces and estimation of the joint flexibility of truss–type structures. In the first stage optimization, the validation criterion is based on the experimentally identified global natural frequencies and mode shapes of the truss. Additionally, the axial forces in selected individual members of the truss are used. They are estimated from the natural frequencies and five amplitudes of the corresponding local mode shapes of the members using an analytically−based algorithm. Based on the results of the identified axial forces in the first stage, a second optimization procedure for the joint stiffnesses is performed. In this stage, the modal parameters of the global natural frequencies and mode shapes are used as validation criterion.
From the results of the laboratory experiments, the identified axial forces by the proposed methodology agree well with the experimentally measured axial forces of the investigated systems at different stress states. Moreover, based on the numerical verification, the identified joint stiffnesses indicate reasonably the joint flexibility in relation to the pinned or rigid conditions.
To assess the relevance of the proposed methodology on existing structures in real−life conditions, an in–situ experiment was carried out on a historic Wiegmann–Polonceau truss in the city of Potsdam. The in–situ experiment shows that uncertainties relating the mechanical and geometrical properties of historic trusses as well as the experimental sensor setup can influence the accuracy of the axial force identification. In the present work, recommendations are given for the development of a guideline of measuring concepts and assessment strategies applied to existing truss structures. The intention is to integrate the proposed methodology as part of the Structural Health Monitoring for historic truss–type constructions.