Institut für Konstruktiven Ingenieurbau (IKI)
Refine
Document Type
- Conference Proceeding (12)
- Doctoral Thesis (4)
- Article (2)
- Bachelor Thesis (1)
- Master's Thesis (1)
Institute
Keywords
- Computerunterstütztes Verfahren (8)
- Architektur <Informatik> (6)
- Angewandte Informatik (4)
- Angewandte Mathematik (4)
- CAD (4)
- Ingenieurbau (3)
- Structural Engineering (3)
- Building Information Modeling (2)
- Computer Science Models in Engineering; Multiscale and Multiphysical Models; Scientific Computing (2)
- Data, information and knowledge modeling in civil engineering; Function theoretic methods and PDE in engineering sciences; Mathematical methods for (robotics and) computer vision; Numerical modeling in engineering; Optimization in engineering applications (2)
Low-skilled labor makes a significant part of the construction sector, performing daily production tasks that do not require specific technical knowledge or confirmed skills. Today, construction market demands increasing skill levels. Many jobs that were once considered to be undertaken by low or un-skilled labor, now demand some kind of formal skills. The jobs that require low skilled labor are continually decreasing due to technological advancement and globalization. Jobs that previously required little or no training now require skilful people to perform the tasks appropriately. The study aims at ameliorating employability of less skilled manpower by finding ways to instruct them for performing constructions tasks. A review of exiting task instruction methodologies in construction and the underlying gaps within them warrants an appropriate way to train and instruct low skilled workers for the tasks in construction. The idea is to ensure the required quality of construction with technological and didactic aids seeming particularly purposeful to prepare potential workers for the tasks in construction without exposing them to existing communication barriers. A BIM based technology is considered promising along with the integration of visual directives/animations to elaborate the construction tasks scheduled to be carried on site.
Im Rahmen der Arbeit wird das Querkrafttragverhalten bewehrter Bauteile aus Porenbeton untersucht. Die vorherrschende Beschreibung des inneren Kräftezustandes basiert auf der Modellvorstellung eines Fachwerks oder Sprengwerks mit Stahlzugstreben und Betondruckstreben. Ziel ist die Entwicklung eines alternativen Verfahrens zur Ermittlung des inneren Kräftezustandes.
Ausgehend vom Prinzip des Minimums des elastischen Gesamtpotentials wird eine Extremalaufgabe für das mechanische Problem formuliert. Die numerische Umsetzung basiert auf der Überführung der Extremalaufgabe in eine nichtlineare Optimierungsaufgabe. Diese lässt sich mit Standardsoftware lösen. Der Vorteil dieser Vorgehensweise besteht darin, dass das grundlegende Verfahren unabhängig vom verwendeten Materialmodell ist. Nichtlineare Spannungs-Dehnungs-Beziehungen oder die Berücksichtigung der Rissbildung erfordern keine Anpassung des Berechnungsalgorithmus.
Bewehrte Porenbetonbauteile besitzen im Hinblick auf das Trag- und Verformungsverhalten einige Besonderheiten. Berechnungsansätze für Stahlbetonelemente lassen sich nicht ohne entsprechende Modifikationen übertragen lassen. Die Bewehrung wird aus glatten Stäben hergestellt, so dass nach der Herstellung nur ein Haftverbund wirksam ist. Dieser kann über die Lebensdauer teilweise oder vollständig versagen. Die Kraftübertragung zwischen den Verbundelementen muss durch entsprechende Kopplungselemente (z.B. Querstäbe, Bügel, Endwinkel) sichergestellt werden.
Der Bewehrungskorb ist im Porenbeton gebettet. Aufgrund der relativ niedrigen Festigkeit bzw. Steifigkeit des Porenbetons und des teilweise unwirksamen Verbundes treten Relativverschiebungen zwischen beiden Verbundmaterialien auf. Hier sind die Ursachen dafür zu finden, dass die Beanspruchung der Querkraftbewehrung viel geringer ist als bei vergleichbaren Stahlbetonbalken. Der Querkraftbewehrungsgrad erlaubt keine Rückschlüsse auf den Querkraftwiderstand.
Das zentrale Anliegen der Arbeit ist die Implementierung nichtlinearer Materialansätze, der Rissbildung des Porenbetons sowie der porenbetonspezifischen Besonderheiten verschieblicher Verbund, diskrete Verankerung der Bewehrung und Relativverschiebungen zwischen Porenbeton und Bewehrung) in das Berechnungsmodell.
Die Leistungsfähigkeit des entwickelten Berechnungsmodells wird anhand von Beispielen demonstriert. Die Kräfte in der Bewehrung sowie das Tragwerksverhalten werden realitätsnah bestimmt.
Im Rahmen der Arbeit wird das Tragverhalten von dampfgehärtetem Porenbeton unter einachsiger Druckbeanspruchung untersucht. Ziel ist es, einen Zusammenhang zwischen makroskopischen Spannungs-Dehnungs-Beziehungen, beanspruchungsbedingten Strukturänderungen und der Dauerstandfestigkeit herzustellen. Die Dauerstandfestigkeit stellt im Sinne der Arbeit eine elementare Gefügeschwelle dar, durch sie wird das stabile vom instabilen Tragverhalten abgegrenzt. Der Zusammenhang zwischen Strukturänderungen und Spannungs-Dehnungs-Verhalten wird anhand mechanischer Modelle analysiert. Diese Untersuchungen liefern die konzeptionelle Orientierung für die durchzuführenden Laborversuche. Die experimentelle Basis der Arbeit bilden Kurzzeit- und Langzeitversuche an Porenbetonzylindern unter einachsiger Druckbeanspruchung. Es werden Probekörper von drei Porenbetonwerken untersucht. Um den Einfluss der Lastgeschichte aufzuzeigen, wird die Versuchsdauer zwischen einer Sekunde und mehreren Wochen variiert. Die Versuche werden mit unterschiedlichen Lastregimen durchgeführt: sowohl mit monoton gesteigerter Beanspruchung bis zum Versagen bzw. bis zum vorgesehenen Beanspruchungsniveau als auch mit niederzyklischer Beanspruchung. Die Messdaten werden unter Einbeziehung der dreidimensionalen Ansätze der Spannungs- und Deformationstheorie hinsichtlich des sphärischen und des deviatorischen Anteils des Spannungs- und Verformungszustandes ausgewertet. Diese auf die separate Betrachtung der Volumen- und Gestaltänderung gestützte Auswertung liefert zusätzliche Erkenntnisse hinsichtlich der Zuordnung von reversiblen und irreversiblen Verformungen zu den Teiltensoräquivalenten. Entsprechend den Versuchsergebnissen ändert sich die Kompressibilität des Porenbetons belastungsabhängig. Bereits kurzzeitige Überlastungen oberhalb der experimentell ermittelten Dauerstandgrenze sind von signifikanten Änderungen der Kompressionssteifigkeit begleitet. Das qualitative Tragverhalten des Porenbetons, das bei Beanspruchungen oberhalb der Dauerstandfestigkeit grundsätzliche Änderungen erfährt, lässt sich so bereits im Kurzzeitversuch abgrenzen. Zusätzliche Auswertungen für Normalbeton und selbstverdichtenden hochfesten Beton weisen auf analoges Verhalten hin. Auf der Basis der durchgeführten Untersuchungen werden Konzepte vorgestellt, mit denen die Dauerstandfestigkeit im Kurzzeitversuch, das heißt mit einer Versuchsdauer von wenigen Stunden, prognostiziert werden kann. Damit können Untersuchungen zur Dauerstandfestigkeit, die eine grundlegende Größe zur Beurteilung der Tragfähigkeit darstellt, routinemäßig durchgeführt werden.
Within the scope of literature, the influence of openings within the infill walls that are bounded by a reinforced concrete frame and excited by seismic drift forces in both in- and out-of-plane direction is still uncharted. Therefore, a 3D micromodel was developed and calibrated thereafter, to gain more insight in the topic. The micromodels were calibrated against their equivalent physical test specimens of in-plane, out-of-plane drift driven tests on frames with and without infill walls and openings, as well as out-of-plane bend test of masonry walls. Micromodels were rectified based on their behavior and damage states. As a result of the calibration process, it was found that micromodels were sensitive and insensitive to various parameters, regarding the model’s behavior and computational stability. It was found that, even within the same material model, some parameters had more effects when attributed to concrete rather than on masonry. Generally, the in-plane behavior of infilled frames was found to be largely governed by the interface material model. The out-of-plane masonry wall simulations were governed by the tensile strength of both the interface and masonry material model. Yet, the out-of-plane drift driven test was governed by the concrete material properties.
The design of engineering structures takes place today and in the past on the basis of static calculations. The consideration of uncertainties in the model quality becomes more and more important with the development of new construction methods and design requirements. In addition to the traditional forced-based approaches, experiences and observations about the deformation behavior of components and the overall structure under different exposure conditions allow the introduction of novel detection and evaluation criteria.
The proceedings at hand are the result from the Bauhaus Summer School Course: Forecast Engineering held at the Bauhaus-Universität Weimar, 2017. It summarizes the results of the conducted project work, provides the abstracts of the contributions by the participants, as well as impressions from the accompanying programme and organized cultural activities.
The special character of this course is in the combination of basic disciplines of structural engineering with applied research projects in the areas of steel and reinforced concrete structures, earthquake and wind engineering as well as informatics and linking them to mathematical methods and modern tools of visualization. Its innovative character results from the ambitious engineering tasks and advanced
modeling demands.
Institute of Structural Engineering, Institute of Structural Mechanics, as well as Institute for Computing, Mathematics and Physics in Civil Engineering at the faculty of civil engineering at the Bauhaus-Universität Weimar presented special topics of structural engineering to highlight the broad spectrum of civil engineering in the field of modeling and simulation.
The summer course sought to impart knowledge and to combine research with a practical context, through a challenging and demanding series of lectures, seminars and project work. Participating students were enabled to deal with advanced methods and its practical application.
The extraordinary format of the interdisciplinary summer school offers the opportunity to study advanced developments of numerical methods and sophisticated modelling techniques in different disciplines of civil engineering for foreign and domestic students, which go far beyond traditional graduate courses.
The proceedings at hand are the result from the Bauhaus Summer School course: Forecast Engineering held at the Bauhaus-Universität Weimar, 2018. It summarizes the results of the conducted project work, provides the abstracts/papers of the contributions by the participants, as well as impressions from the accompanying programme and organized cultural activities.
The Bauhaus Summer School series provides an international forum for an exchange of methods and skills related to the interaction between different disciplines of modern engineering science.
The 2012 civil engineering course was held in August over two weeks at Bauhaus-Universität Weimar. The overall aim was the exchange
of research and modern scientific approaches in the field of model validation and simulation between well-known experts acting as lecturers
and active students. Besides these educational intentions the social and cultural component of the meeting has been in the focus. 48 graduate and doctoral students from 20 different countries and 22 lecturers from 12 countries attended this summer school. Among
other aspects, this activity can be considered successful as it raised the
sensitivity towards both the significance of research in civil engineering
and the role of intercultural exchange.
This volume summarizes and publishes some of the results: abstracts
of key note papers presented by the experts and selected student
research works. The overview reflects the quality of this summer school.
Furthermore the individual contributions confirm that for active students
this event has been a research forum and a special opportunity
to learn from the experiences of the researchers in terms of methodology
and strategies for research implementation in their current work.
A new approach to the non-linear analysis of cross-sections loaded by normal forces and bending moments is presented in the paper. The mechanical model is based on the LAGRANGE principle of minimum of total potential energy. Deformations, stresses and limit load parameters are obtained by solving a non-linear optimisation problem. The mathematical model is independent of the specifics of material. In addition to the stress strain relation and the specific strain energy W(ε) two further functions F(ε) and Φ(ε) are introduced to describe the material behaviour. Thus cracks in concrete, non-linearity of material etc. can be taken into account without basic modification of the numerical algorithm. For polygonal cross-sections the GAUSS' integral theorem is used. Numerical solutions of the non-linear optimisation problems can be found by application of standard software. Thus the analysis of reinforced concrete cross-sections or more general composite cross-sections with non-linear behaviour of material is as simple as in the case of linear elasticity. The application of the method is demonstrated for polygonal cross-sections. Pre-stresses or pre-strains can easily be included in the mathematical model.
In the paper presented, reinforced concrete shells of revolution are analyzed in both meridional and circumferential directions. Taking into account the physical non-linearity of the material, the internal forces and the deflections of the shell as well as the strain distribution at the cross-sections are calculated. The behavior of concrete under compression is described by linear and non-linear stress-strain relations. The description of the behavior of concrete under tension must account for tension stiffening effects. A tri-linear function is used to formulate the material law of reinforcement. The problem cannot be solved analytically due to the physical non-linearity. Thus a numerical solution is formulated by means of the LAGRANGE Principle of the minimum of the total potential energy. The kinematically admissible field of deformation is defined by the displacements u in the meridional and w in the radial direction. These displacements must satisfy the equations of compatibility and the kinematical boundary conditions of the shell. The strains are linearly distributed across the wall thickness. The strain energy depends on the specific of the material behavior. Using integral formulations of the material law [1], the strain energy of each part of the cross-section is defined as a function of the strains at the boundaries of the cross-sections. The shell is discretised in the meridional direction. Various methods of numerical differentiation and numerical integration are applied in order to determine the deformations and the strain energy. The unknown displacements u and w are calculated by a non-restricted extremum problem based on the minimum of the total potential energy. From mathematical point of view, the objective function is a convex function, thus the minimum can be determined without difficulty. The advantage of this formulation is that unlike non-linear methods with path-following algorithms the calculation does not have to account for changing stiffness and load increments. All iterations necessary to find the solution are integrated into the “Solver”. The model presented provides many ways of investigating the influence of various material parameters on the stresses and deformations of the entire shell structure.
An energy method based on the LAGRANGE Principle of the minimum of total potential en-ergy is presented to calculate the stresses and strains of composite cross-sections. The stress-strain relation of each partition of the cross-section can be an arbitrary piecewise continuous function. The strain energy is transformed into a line integral by GAUSS’s integral theorem. The total strain of each partition of the cross-section is split into load-dependent strain and pre-strain. Pre-strains have to be taken into account when the cross-section is pre-stressed, retrofit-ted or influenced by shrinkage, temperature etc. The unconstrained minimum problem can be solved for each load combination using standard software. The application of the method presented in the paper is demonstrated by means of examples.