TY - THES A1 - Schrader, Kai T1 - Hybrid 3D simulation methods for the damage analysis of multiphase composites T1 - Hybride 3D Simulationsmethoden zur Abbildung der Schädigungsvorgänge in Mehrphasen-Verbundwerkstoffen N2 - Modern digital material approaches for the visualization and simulation of heterogeneous materials allow to investigate the behavior of complex multiphase materials with their physical nonlinear material response at various scales. However, these computational techniques require extensive hardware resources with respect to computing power and main memory to solve numerically large-scale discretized models in 3D. Due to a very high number of degrees of freedom, which may rapidly be increased to the two-digit million range, the limited hardware ressources are to be utilized in a most efficient way to enable an execution of the numerical algorithms in minimal computation time. Hence, in the field of computational mechanics, various methods and algorithms can lead to an optimized runtime behavior of nonlinear simulation models, where several approaches are proposed and investigated in this thesis. Today, the numerical simulation of damage effects in heterogeneous materials is performed by the adaption of multiscale methods. A consistent modeling in the three-dimensional space with an appropriate discretization resolution on each scale (based on a hierarchical or concurrent multiscale model), however, still contains computational challenges in respect to the convergence behavior, the scale transition or the solver performance of the weak coupled problems. The computational efficiency and the distribution among available hardware resources (often based on a parallel hardware architecture) can significantly be improved. In the past years, high-performance computing (HPC) and graphics processing unit (GPU) based computation techniques were established for the investigationof scientific objectives. Their application results in the modification of existing and the development of new computational methods for the numerical implementation, which enables to take advantage of massively clustered computer hardware resources. In the field of numerical simulation in material science, e.g. within the investigation of damage effects in multiphase composites, the suitability of such models is often restricted by the number of degrees of freedom (d.o.f.s) in the three-dimensional spatial discretization. This proves to be difficult for the type of implementation method used for the nonlinear simulation procedure and, simultaneously has a great influence on memory demand and computational time. In this thesis, a hybrid discretization technique has been developed for the three-dimensional discretization of a three-phase material, which is respecting the numerical efficiency of nonlinear (damage) simulations of these materials. The increase of the computational efficiency is enabled by the improved scalability of the numerical algorithms. Consequently, substructuring methods for partitioning the hybrid mesh were implemented, tested and adapted to the HPC computing framework using several hundred CPU (central processing units) nodes for building the finite element assembly. A memory-efficient iterative and parallelized equation solver combined with a special preconditioning technique for solving the underlying equation system was modified and adapted to enable combined CPU and GPU based computations. Hence, it is recommended by the author to apply the substructuring method for hybrid meshes, which respects different material phases and their mechanical behavior and which enables to split the structure in elastic and inelastic parts. However, the consideration of the nonlinear material behavior, specified for the corresponding phase, is limited to the inelastic domains only, and by that causes a decreased computing time for the nonlinear procedure. Due to the high numerical effort for such simulations, an alternative approach for the nonlinear finite element analysis, based on the sequential linear analysis, was implemented in respect to scalable HPC. The incremental-iterative procedure in finite element analysis (FEA) during the nonlinear step was then replaced by a sequence of linear FE analysis when damage in critical regions occured, known in literature as saw-tooth approach. As a result, qualitative (smeared) crack initiation in 3D multiphase specimens has efficiently been simulated. T3 - ISM-Bericht // Institut für Strukturmechanik, Bauhaus-Universität Weimar - 2013,2 KW - high-performance computing KW - finite element method KW - heterogeneous material KW - domain decomposition KW - scalable smeared crack analysis KW - FEM KW - multiphase KW - damage KW - HPC KW - solver Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:gbv:wim2-20131021-20595 ER - TY - THES A1 - Heidolf, Thorsten T1 - Zeit- und beanspruchungsabhängiges Tragverhalten von polymermodifiziertem Beton unter mehrfach wiederholter Beanspruchung T1 - Time- and Strain-Dependent Behaviour of Polymer-Modified Concrete with Multifariously Repeated Load N2 - In der vorliegenden Arbeit werden die experimentellen Ergebnisse eigener Untersuchungen an unbewehrtem und bewehrtem polymermodifiziertem Beton unter mehrfach wiederholter Druck- und Zugbeanspruchung vorgestellt und mit den Ergebnissen ähnlicher Versuche an Normalbeton und hochfestem Beton verglichen. Besondere Aufmerksamkeit wird dabei dem Formänderungsverhalten, der Steifigkeitsdegradation und der Energiedissipation sowie dem Kriechverhalten und der Mitwirkung des Betons zwischen den Rissen gewidmet. Die beobachtete signifikante Steifigkeitsdegradation sowie der ausgeprägt nichtlineare Zusammenhang zwischen der viskosen Verformung und der elastischen Stauchung zeigen, dass bei der Analyse der Kriech¬aus¬wirkungen des polymermodifizierten Betons auf das Tragverhalten entsprechender Kon¬struktionen neben den Gebrauchslasten auch die während der Lastgeschichte aufgetretenen maximalen Beanspruchungssituationen sowie die damit verbundenen Strukturveränderungen zu berücksichtigen sind. Auf der Basis der Versuchsergebnisse und der visko-elastisch-plastischen Kontinuumsschädigungstheorie werden rheologische Modelle zur Beschreibung des zeit- und beanspruchungsabhängigen Tragverhaltens von Betonbauteile vorgeschlagen. Die numerische Umsetzung der vorgeschlagenen Modelle erfolgt unter Berücksichtigung des zeitabhängigen Materialverhaltens des Betons auf der Basis des HAMILTON-Prinzips unter Vernachlässigung der Trägheitskräfte. Durch eine zeitliche Diskretisierung kann die Problembeschreibung auf das Prinzip von LAGRANGE vom Minimum des Gesamtpotentials zurückgeführt und als nichtlineare Optimierungsaufgabe formuliert werden. Die Simulation des beanspruchungsabhängigen Tragverhaltens von Stahlbetonverbundquerschnitten verdeutlicht die Qualität und Leistungsfähigkeit der vorgeschlagenen Modellbildung. N2 - The experimental results of the investigations into polymer-modified concrete with multifariously repeated compression or tension load are introduced in the provided work and compared to similar experiments in normal- and high-strength concrete. Special attention is dedicated to the stress-strain relation, the degradation of stiffness and the dissipation of energy as well as the non-linear long-term behaviour and tension-stiffening. Stiffness degradation and non-linear creep of polymer-modified concrete show that maximum strain situations have to be taken into consideration of the behaviour analysis of concrete structures under long-term loading. Based on experimental results and the theory of visco-elastic-plastic continuum damage, rheological models are suggested for the description of the time- and damage-dependent behaviour of reinforced concrete. The numerical concept is based on the HAMILTON-principle. Using time discretisation, mechanical modelling simplifies and can be described as a LAGRANGE-principle concerning minimum of total potential energy. The problem is solved by non-linear optimisation. The efficiency of the suggested model was proven for reinforced concrete cross sections by numerical simulation. T3 - Schriftenreihe des Instituts für Konstruktiven Ingenieurbau - 10 KW - Kriechen KW - Kunstharzmodifizierter Zementbeton KW - Beton KW - Tragverhalten KW - Bruchverhalten KW - Experiment KW - Deformationsverhalten KW - Stoffgesetz KW - nichtlineare Optimierung KW - Simulation KW - Formänderungsenergie KW - Steifigkeitsdegradation KW - Creep KW - damage KW - tension-stiffening KW - dissipation of energy KW - non-linear optimisation Y1 - 2007 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:gbv:wim2-20080102-11753 SN - 978-3-86068-331-2 ER -