Ingenieurbau
Filtern
Erscheinungsjahr
- 2021 (305) (entfernen)
Dokumenttyp
- Vortrag (125)
- Zeitschriftenartikel (83)
- Beitrag zu einem Tagungsband (44)
- Posterpräsentation (17)
- Buchkapitel (13)
- Sonstiges (5)
- Forschungsbericht (5)
- Beitrag zu einem Sammelband (4)
- Dissertation (3)
- Monografie (2)
Sprache
- Englisch (200)
- Deutsch (102)
- Tschechisch (2)
- Mehrsprachig (1)
Schlagworte
- Corrosion (22)
- Korrosion (16)
- Concrete (14)
- Ultrasound (14)
- Structural health monitoring (10)
- Spannstahl (9)
- Spannungsrisskorrosion (9)
- Coda wave interferometry (8)
- Monitoring (8)
- Structural Health Monitoring (8)
Organisationseinheit der BAM
- 7 Bauwerkssicherheit (176)
- 8 Zerstörungsfreie Prüfung (68)
- 2 Prozess- und Anlagensicherheit (48)
- 8.2 Zerstörungsfreie Prüfmethoden für das Bauwesen (45)
- 7.2 Ingenieurbau (37)
- 7.6 Korrosion und Korrosionsschutz (37)
- 2.1 Sicherheit von Energieträgern (34)
- 7.5 Technische Eigenschaften von Polymerwerkstoffen (32)
- 7.1 Baustoffe (25)
- 7.4 Baustofftechnologie (23)
Paper des Monats
- ja (1)
Eingeladener Vortrag
- nein (125)
A systematic approach was used to investigate the weathering-induced degradation of a common water–based intumescent coating. In this study, the coatings are intended for humid indoor applications on steel substrates. The coating contains ammonium polyphosphate, pentaerythritol, melamine, and polyvinyl acetate. By replacing each ingredient with a less water-soluble substance, the most vulnerable substances, polyvinyl acetate and pentaerythritol, were identified. Furthermore, the weathering resistance of the system was improved by exchanging the ingredients. The coatings were stressed by artificial weathering tests and evaluated by fire tests. Thermogravimetry and Fourier-transform infrared spectroscopy were used to study the thermal decomposition. This study lays the foundation for the development of a new generation of water-based intumescent coatings.
In this work, a cost-effective optofluidic system is proposed and preliminary experimental results are presented. A microfluidic channel monolithically integrated into a photonic integrated circuit technology is used in conjunction with a cyclic olefin copolymer (COC) substrate to provide fluidic in- and output ports. We report on initial experimental results as well as on the simple and cost-effective fabrication of this optofluidic system by means of micro-milling.
This paper describes a new ultrasonic measuring device called “W-Box”. It was developed based on the requirements of the DFG Forschergruppe (research unit) CoDA for a portable device for monitoring of concrete specimens, models and actual structures using embedded ultrasonic transducers as well as temperature and humidity sensors. The W-Box can send ultrasonic pulses with a variable frequency of 50–100 kHz to one selectable transducer and records signals from up to 75 multiplexed channels with a sample rate of 1 MHz and a resolution of 14 bits. In addition, it measures temperature and humidity with high accuracy, adjustable amplification, restarts automatically after a power failure and can be fully controlled remotely. The measured data are automatically stored locally on-site data quality checks and transferred to remote servers. The comparison of the W-Box with a laboratory setup using commercial devices proves that it is equally reliable and precise, at much lower cost. The W-Box also shows that their measurement capacities, with the used embedded ultrasonic transducers, can reach above 6 m in concrete.
In this presentation, a framework for integrating vibration-based structural health monitoring data into the optimization of inspection and maintenance of deteriorating structural systems is presented. The framework is demonstrated in an illustrative example considering a steel frame subject to fatigue.
A simplified methodology is proposed to estimate the dynamic pressures developed within partially filled cylindrical vertical tanks when subjected to earthquake-related horizontal accelerations. The total pressure at the bottom of the tank is calculated as the superposition of vertical and horizontal pressures. While the magnitude of the vertical pressure depends on the free surface height of the liquid, the horizontal pressure depends on the magnitude of the horizontal acceleration and on the diameter of the tank. The liquid free surface oscillation angle is simulated based upon the principles of the simple pendulum analogy for sloshing. The length of the pendulum, however, is set on the basis of a methodology to calculate the free sloshing frequency of partially filled containers. Such a methodology is experimentally verified in this work. The outputs of the model for full scale situations, suggest that the lateral perturbation - sloshing phenomenon (earthquake effect) can generate an increase in the total pressure of 56% above the no lateral perturbation situation, further suggesting that such an overpressure should be taken into account when designing tanks that could be potentially subjected to earthquake-related perturbations.
A three-phase transport model for high-temperature concrete simulations validated with X-ray CT data
(2021)
Concrete exposure to high temperatures induces thermo-hygral phenomena, causing water phase changes, buildup of pore pressure and vulnerability to spalling. In order to predict these phenomena under various conditions, a three-phase transport model is proposed. The model is validated on X-ray CT data up to 320 ◦C, showing good agreement of the temperature profiles and moisture changes. A dehydration description, traditionally derived from thermogravimetric analysis, was replaced by a formulation based on data from neutron radiography. In addition, treating porosity and dehydration evolution as independent processes, previous approaches do not fulfil the solid mass balance. As a consequence, a new formulation is proposed that introduces the porosity as an independent variable, ensuring the latter condition.
In analyzing large scale structures, it is necessary to take into account the material heterogeneity for accurate failure prediction. However, this greatly increases the degrees of freedom in the numerical method making it infeasible. Moreover, in applications where scale separation as the basis of classical homogenization schemes does not hold, the influence of the fine scale on the coarse scale has to be modelled directly.
This work aims to develop an efficient methodology to model heterogeneous structures combining the variational multiscale method and model order reduction techniques.
Superposition based methods assume a split of the solution field into coarse and fine scale contributions. In deriving practical methods some form of localization is necessary to eliminate the fine scale part from the coarse scale equation. Hund and Ramm discussed different locality constraints and resulting solution procedures in the context of solid mechanics. Particularly, zero jump conditions ensuring continuity of the fine scale solution which are enforced by a Lagrange type method lead to a coupled solution procedure.
In this contribution, a combination of the variational multiscale method and model order reduction techniques is applied to model the influence of the fine scale on the coarse scale directly. First, possible coarse and fine scale solutions are exploited for a representative volume element (RVE), specific to the material of interest, to construct local approximation spaces. The local spaces are designed such that local contributions of RVEs can be coupled in a conforming way. Therefore, the resulting global system takes the effect of the fine scale on the coarse scale into account, is sparse and reduced in size compared to the direct numerical simulation.
The authors gratefully acknowledge financial support by the German Research Foundation (DFG), project number 394350870, and by the European Research Council (ERC) under the European Union's Horizon 2020 research and innovation programme (ERC Grant agreement No. 818473).
Many of today’s problems in engineering demand reliable and accurate prediction of failure mechanisms of mechanical structures. Herein it is necessary to take into account the often heterogeneous structure on the fine scale, to capture the underlying physical phenomena. Despite ever increasing Computational resources, dissolving the fine scales in a direct numerical simulation is prohibitive. This work aims to develop an efficient approach to modeling nonlinear heterogeneous structures using the variational multiscale method (VMM) and model order reduction (MOR).
The VMM, introduced in, assumes an additive split of the solution into coarse and fine scale contributions. In, the VMM is applied to a damage mechanics–based material model for concrete-like materials. Herein, suitable boundary conditions for the fine scale which enable localization phenomena to evolve are discussed. As such, zero jump conditions between fine scale solutions are proposed which are enforced pointwise by a Lagrange type method leading to a coupled solution procedure.
In this contribution, possible extensions of the VMM with reduced order modeling are presented. In the linear case, assuming the fine scale solution to be zero on coarse scale element boundaries allows for static condensation and a decoupled solution procedure. Based on this, an efficient localized Training strategy will be developed. For the nonlinear case, the situation of coupled non-conforming spaces, i. e. finite element and reduced order spaces for the fine scales, arises. Thus the imposition of suitable fine scale interface conditions in the weak sense by the use of Lagrange multipliers is investigated. Specific problems in solid mechanics are used to illustrate the performance of the above approaches.
The authors gratefully acknowledge financial support by the German Research Foundation (DFG), Project number 394350870, and by the European Research Council (ERC) under the European Union’s Horizon 2020 research and innovation programme (ERC Grant agreement No. 818473).
Die Gewerbeaufsicht verfügte die sofortige Einstellung der Arbeiten auf einer Baustelle, auf der Asbestabfall offen gelagert wurde, keiner der weisungsbefugten Sachkundigen vor Ort war und Mitarbeiter keine persönliche Schutzausrüstung trugen. Dieser Aufsatz bereitet das Gerichtsurteil über die Klage des Bauunternehmens auf und diskutiert die konkreten Verstöße gegen die Gefahrstoffverordnung.
Der Vortrag vermittelt dem betreuenden DIN Normenausschuss NMP 177 einen Gesamtüberblick über das abgeschlossene WIPANO-Vorhaben "Normenentwurf für ein Prüfverfahren zur Bestimmung von Deckschichtwiderständen an Zinküberzügen mittels gelartiger Elektrolyte (GELELEK). Innerhalb des Vorhabens wurden die elektrochemischen Methoden und die Verfahrensparameter systematisch untersucht, ein Messsystem für Feldanwendungen entwickelt, ein Ringversuch mit über 20 Teilnehmern durchgeführt und ein Normenvorschlag erarbeitet. Die Förderzeile der Initiative WIPANO wurden erreicht. Die Erarbeitung eines auf den Ergebnissen beruhenden Normenentwurfs wird auf der nächsten Sitzung des NMP 177 gestartet.