Refine
Has Fulltext
- yes (59) (remove)
Document Type
- Article (24)
- Doctoral Thesis (20)
- Book (6)
- Bachelor Thesis (3)
- Conference Proceeding (3)
- Periodical (2)
- Working Paper (1)
Institute
- Institut für Strukturmechanik (ISM) (7)
- Junior-Professur Computational Architecture (7)
- In Zusammenarbeit mit der Bauhaus-Universität Weimar (6)
- Promotionsstudiengang Kunst und Design-Freie Kunst-Medienkunst (Ph.D) (6)
- F. A. Finger-Institut für Baustoffkunde (FIB) (5)
- Professur Denkmalpflege und Baugeschichte (4)
- An-Institute (2)
- Materialforschungs- und -prüfanstalt an der Bauhaus-Universität (2)
- Professur Baubetrieb und Bauverfahren (2)
- Professur Baumanagement und Bauwirtschaft (2)
- Professur Informatik im Bauwesen (2)
- Professur Tragwerkslehre (2)
- Professur Verkehrsplanung und Verkehrstechnik (2)
- Dozentur Film- und Medienwissenschaft (1)
- Internationales Kolleg für Kulturtechnikforschung und Medienphilosophie (IKKM) (1)
- Juniorprofessur Urban Energy Systems (1)
- Professur Bauformenlehre (1)
- Professur Biotechnologie in der Ressourcenwirtschaft (1)
- Professur Content Management und Webtechnologien (1)
- Professur Grundbau (1)
- Professur Informatik in der Architektur (1)
- Professur Medienmanagement (1)
- Professur Systeme der Virtuellen Realität (1)
- Professur Verkehrssystemplanung (1)
- Universitätsbibliothek (1)
Keywords
- Architektur (2)
- BIM (2)
- Building Information Modeling (2)
- Controlling (2)
- Entscheidungsunterstützung (2)
- Erdbau (2)
- Film (2)
- Finite-Elemente-Methode (2)
- Isovist (2)
- Kosten-Nutzen-Analyse (2)
Year of publication
- 2016 (59) (remove)
Problem definition and research objectives
1. The production of Portland cement clinker causes approx. 5% to 8% of the annual man-made CO2 emissions. This is due to the usage of mainly fossil fuel (approx. 40 % of the total CO2) and because of the decarbonation of limestone as a main component of the raw meal (approx. 60 % of the total CO2).
2. Various strategies are applied in order to reduce the green-house gas-emissions, such as optimizing the process of clinker production, the use of alternative fuel and the partial substitution of the clinker in blended cement by so-called SCM (supplementary cementitious materials). Hereby blast-furnace slag, fly ash and limestone are the most used materials.
3. Quaternary systems containing three SCM simultaneously besides Portland cement contribute to the reduction of CO2 emissions due to the decrease of the clinker content. In addition, such systems allow to use blast-furnace slag and fly ash in the most economical way and provide the possibility to account for shortages of SCM on the market.
4. Blast-furnace slag and fly ash show similarities in their principal chemical compositions such that similar hydrates are formed during their reaction in presence of Portland cement. Compared to ternary systems based on blast-furnace slag or fly ash besides limestone, quaternary systems that contain both, blast-furnace slag and fly ash, simultaneously besides limestone, are expected to perform similar in terms of phase assemblage and strength development.
5. The use of SCM as cement replacing materials is limited due to their generally slower reaction compared to neat cement which also leads to lower strength development, especially in the early stage of the hydration up to 28 d. To account for this it is necessary to study the reactivity of SCM such as blast-furnace slag and fly ash in detail in order to develop strategies to enhance the reactivity and thereby the strength development of SCM-containing systems.
6. The early hydration of clinker phases is studied in detail, mainly in diluted systems. It is unclear if processes that were found to control the reaction of such model systems are also prevailing in concentrated cement pastes under realistic water-to-solid ratios. Deeper insight to this aspect is needed to better understand interactions of neat Portland cement and SCM in the first hours of hydration.
State-of-the-art
7. Increasing Ca-concentrations lead to decreasing dissolution rates of C3S and C2S in diluted systems.
8. The hydration kinetics of C3S is controlled by the interplay of undersaturation with respect to C3S and oversaturation with respect to C-S-H.
9. Increasing Al-concentrations lead to a retardation of the hydration of C3S. It is unclear if the uptake of aluminum in C-S-H to form C-(A)-S-H which has a significantly lower growth rate than pure C-S-H or a retarding effect of Al on the dissolution of C3S causes this phenomenon.
10. The surface of limestone provides excellent conditions for the nucleation and growth of C-S-H such that significantly more C-S-H nuclei are formed in presence of limestone compared to other SCM.
11. The reactivity of blast-furnace slag and fly ash depends on the particle size as well as on the intrinsic reactivity of especially the amorphous phases.
12. An increase in network modifying oxides (e.g. CaO) in the chemical composition of amorphous (calcium)aluminosilicates leads to an increasingly depolymerized network which in turn causes increasing reactivity. The role of amphoteric oxides (Al2O3, Fe2O3) that can be present as network modifying oxides as well as network forming oxides is not completely solved.
13. CO2-containing AFm-phases are thermodynamically more stable than monosulfoaluminate. This indirectly stabilizes the voluminous ettringite which causes a higher total volume of hydrates and lower porosity whereby higher compressive strength is reached.
14. Only a few percent of limestone in blended cement reacts chemically dependent on the Al2O3 available for reaction. Al2O3 that is provided by the reaction of Portland cement but also by the dissolution of SCM, especially by fly ash, reacts to form hemicarboaluminate which is transformed to monocarboaluminate as the hydration proceeds.
Methodology
15. The influence of SCM on the early hydration of Portland cement in binary (including blast-furnace slag or fly ash or limestone or quartz) and ternary (including fly ash and limestone) systems was investigated applying isothermal calorimetry and analysis of the pore solution chemistry. Calculated saturation indices and solubility products of relevant phases were correlated with heat development. Based on the gained data it was reviewed if mechanisms that control the hydration of pure phases in diluted systems are also prevailing in cement pastes under realistic conditions.
16. The influence of the chemical composition of synthetic glasses on their dissolution at high pH was investigated in highly diluted systems using ion chromatography. Pozzolanity tests were conducted on pastes using simplified model systems and glass-blended Portland cements. The process of the glass dissolution was investigated by isothermal calorimetry and by thermogravimetry. Correlation of experimentally determined total bound water with bound water determined by mass balance calculations as a function of amount of glass reacted allowed to estimate the degree of glass reaction in the pastes. Further on selective dissolution experiments were carried out to crosscheck the results of the bound water/mass balance approach.
17. The reaction kinetics of quaternary pastes containing blast-furnace slag and fly ash simultaneously in the presence of limestone were investigated up to 28 d using isothermal calorimetry and chemical shrinkage measurements. In addition strength tests on mortar bars were carried out.
18. Pastes of quaternary blends were also investigated in terms of hydrate assemblage at ages of up to 182 d. Thermodynamic calculations regarding total volume of hydrates as a function of limestone and fly ash/blast-furnace slag content were conducted. The calculations were supported by thermogravimetric determination of bound water and portlandite content as well as qualitative X-ray diffraction. The results were correlated with strength tests on mortar bars.
19. The pore solutions of hydrated quaternary blends were extracted and investigated by means of ion chromatography at ages of up to 728 d. Based on the ion concentrations in the solutions saturation indices were calculated for relevant phases. In order to gain better insight to the blast-furnace slag reaction sulphate speciation was carried out at two blast furnace slag levels (20 and 30 wt.%) for selected samples up to 91 d of hydration and at 91 d for the whole matrix under investigation.
Main results
20. Investigations on the early hydration kinetics of binary systems showed a higher heat flow in presence of SCM compared to neat Portland cement. This is caused by the higher surface area that is available for the nucleation of hydrates and by the lower (over)saturation with respect to C-S-H. An increase in the Ca-concentration in the pore solution did not cause lower dissolution rates of C3S as was reported for pure phases in diluted systems. The highest dissolution was observed in the presence of limestone, i.e. at the highest Ca-concentration. The general trend of the reaction rate is inversely related to the degree of undersaturation with respect to C3S. The more undersaturated the faster the observed reaction. The presence of increasing Al-concentrations caused a retardation of the reaction which is in line with investigations on pure phases in diluted systems. Higher sulphate concentrations could be detected for the fly ash containing blend which possibly hindered ettringite precipitation and results in higher Al-concentrations. Correspondingly the low sulphate concentrations lead to lower Al-concentrations in the presence of quartz, blast-furnace slag and limestone compared to fly ash.
21. The early hydration kinetics of quaternary systems is significantly accelerated in the presence of limestone while fly ash leads to retardation. Compared to reference systems containing inert quartz, investigations by means of isothermal calorimetry and chemical shrinkage revealed an acceleration caused by blast-furnace slag. Additions of fly ash, limestone or mixtures thereof introduced another acceleration but differences are too small to be significant and clear distinguishing between the various SCM is not possible.
22. Investigations on the reactivity of synthetic glasses showed that increasing amounts of network modifying oxides caused an increase in reactivity and dissolution rates. The results reveal that Al2O3 acts mainly as network modifying oxide in all investigated glasses. Experimentally determined bound water (thermogravimetric experiments) in model systems and blended cements can be compared with bound water determined by mass balance calculations carried out as a function of the amount of glass reacted. This enables to estimate the degree of glass reaction.
23. The actual content of blast-furnace slag, fly ash or limestone does not exert significant influence on the development of compressive strength up to 7 d. At later ages thermodynamic calculations predict a degree of CaCO3 reaction of 2 to 5 wt.%. This leads to the formation of hemicarbonate and monocarbonate whereby ettringite is indirectly stabilized. As a result the total amount of solids is increased and compressive strength shows a slight maximum. Hereby the degree of CaCO3 reaction depends on the Al2O3 available for reaction which is not only provided by the dissolution of Portland cement but especially by the dissolution of the fly ash.
24. In general the presence of blast-furnace slag and fly ash in the presence of limestone exerts little influence on the hydrate assemblage. The substitution of some of the blast-furnace slag by fly ash leads to a slight decrease of portlandite and C-S-H and gives rise to the formation of more monocarbonate and hemicarbonate. Portlandite is consumed in a pozzolanic reaction with the fly ash whereby C-S-H is formed. However, the low reactivity of the fly ash causes a decrease in the amount of C-S-H formed. Thereby a lower total volume of hydrates is generated which is in line with slightly lower compressive strength in case of increasing fly ash content. The overall influence is small and all systems investigated reach strength class 42.5 N according to EN 196-1.
25. Corresponding to the investigations of the hydrate assemblage the pore solution chemistry of quaternary systems showed only small variations. Depending on the fly ash content the highest variations are observed for aluminium, i.e. increasing fly ash content leads to higher Al-concentrations. Another effect of increasing fly ash contents is an increasing undersaturation with respect to portlandite and a decreasing undersaturation with respect to strätlingite indicating the dissolution of portlandite.
26. The total concentration of sulfur in the pore solution is controlled by sulphate (SO42–) while the concentrations of sulphite (SO32–) and thiosulphate (S2O32–) were very low. Up to 2 d of hydration about 90 % of the total sulphur is present as SO42–. After 91 d this value is reduced to about 36 % while about 28 % are present as S2O32–. In general higher blast-furnace slag content leads to higher concentrations of sulphite and thiosulphate after 7 d.
Einfluss der Porosität von Beton auf den Ablauf einer schädigenden Alkali-Kieselsäure-Reaktion
(2016)
Der Dissertation liegt die Frage zugrunde, welchen Einfluss die Porosität von Beton auf den Ablauf einer schädigenden AKR hat. Insbesondere soll geklärt werden, ob der Einsatz von Gleitschalungsfertigern – anstelle von klassischen schienengeführten Betondeckenfertigern – und die damit verbundene verringerte Porosität der Betone den Ablauf einer schädigenden AKR begünstigt. Eine verringerte Porosität führt zu einer reduzierten Duktilität des Betons, so dass infolge AKR entstehende Zugspannungen schlechter abgebaut werden können. Weiterhin steht ein geringerer Expansionsraum für das entstehende AKR-Gel zur Verfügung. Diese Faktoren können den Ablauf einer AKR begünstigen. Allerdings können extern anstehende Alkalien schlechter in den Beton mit einer verringerten Porosität eindringen. Ferner wird die Diffusion der Alkalien zu den potenziell reaktiven Gesteinskörnungen verlangsamt.
Zur Beantwortung der aufgeworfenen Frage wird unter Einsatz einer neuartigen Prüfmethodologie und bei variierender Porosität untersucht, welche Schädigungsparameter maßgebend für den Ablauf und die Intensität einer schädigenden AKR sind. Die berücksichtigten Schädigungsparameter sind die mechanischen Eigenschaften des Betons, der zur Verfügung stehende Expansionsraum und die im Beton ablaufenden Transportvorgänge. Um den Einfluss der jeweiligen Schädigungsparameter spezifizieren zu können, gehen die Prüfungen einerseits von einem hohen internen und andererseits von einem hohen externen AKR-Schädigungspotenzial aus. In beiden Fällen erfolgen die Untersuchungen an langsam reagierenden alkaliempfindlichen Gesteinskörnungen. Die unterschiedlichen Porositäten ergeben sich hauptsächlich durch Variation des w/z-Wertes.
Bei dem hohen internen AKR-Schädigungspotenzial stehen die mechanischen Eigenschaften und der Expansionsraum im Vordergrund; außerdem ist der Einfluss der Zugabe eines LP-Bildners zu analysieren. Um ein hohes internes AKR-Schädigungspotenzial zu erreichen, kommt bei der Herstellung der Betonprobekörper ein Zement mit einem hohen Alkaligehalt zum Einsatz. Die Betonprobekörper werden der 40 °C-Nebelkammerlagerung und dem 60 °C-Betonversuch über Wasser unterzogen. Dabei findet eine neue Prüfmethodologie Anwendung, die der kontinuierlichen Messung der Dehnung und der ablaufenden Erhärtungs- und Rissbildungsprozesse dient. Diese Prüfmethodologie umfasst die Messung der Ultraschallgeschwindigkeit, die Schallemissionsanalyse und die µ-3D-Computertomografie.
Hingegen richtet sich der Fokus bei dem hohen externen AKR-Schädigungspotenzial auf die Transportvorgänge. Zur Provokation eines hohen externen AKR-Schädigungspotenzials werden die Probekörper der FIB-Klimawechsellagerung ausgesetzt.
This work presents a concept of interactive machine learning in a human design process. An urban design problem is viewed as a multiple-criteria optimization problem. The outlined feature of an urban design problem is the dependence of a design goal on a context of the problem. We model the design goal as a randomized fitness measure that depends on the context. In terms of multiple-criteria decision analysis (MCDA), the defined measure corresponds to a subjective expected utility of a user. In the first stage of the proposed approach we let the algorithm explore a design space using clustering techniques. The second stage is an interactive design loop; the user makes a proposal, then the program optimizes it, gets the user’s feedback and returns back the control over the application interface.
The current study attempts to recognise an adequate classification for a semi-rigid beam-to-column connection by investigating strength, stiffness and ductility. For this purpose, an experimental test was carried out to investigate the moment-rotation (M-theta) features of flush end-plate (FEP) connections including variable parameters like size and number of bolts, thickness of end-plate, and finally, size of beams and columns. The initial elastic stiffness and ultimate moment capacity of connections were determined by an extensive analytical procedure from the proposed method prescribed by ANSI/AISC 360-10, and Eurocode 3 Part 1-8 specifications. The behaviour of beams with partially restrained or semi-rigid connections were also studied by incorporating classical analysis methods. The results confirmed that thickness of the column flange and end-plate substantially govern over the initial rotational stiffness of of flush end-plate connections. The results also clearly showed that EC3 provided a more reliable classification index for flush end-plate (FEP) connections. The findings from this study make significant contributions to the current literature as the actual response characteristics of such connections are non-linear. Therefore, such semirigid behaviour should be used to for an analysis and design method.
Paraffin Nanocomposites for Heat Management of Lithium-Ion Batteries: A Computational Investigation
(2016)
Lithium-ion (Li-ion) batteries are currently considered as vital components for advances in mobile technologies such as those in communications and transport. Nonetheless, Li-ion batteries suffer from temperature rises which sometimes lead to operational damages or may even cause fire. An appropriate solution to control the temperature changes during the operation of Li-ion batteries is to embed batteries inside a paraffin matrix to absorb and dissipate heat. In the present work, we aimed to investigate the possibility of making paraffin nanocomposites for better heat management of a Li-ion battery pack. To fulfill this aim, heat generation during a battery charging/discharging cycles was simulated using Newman’s well established electrochemical pseudo-2D model. We couple this model to a 3D heat transfer model to predict the temperature evolution during the battery operation. In the later model, we considered different paraffin nanocomposites structures made by the addition of graphene, carbon nanotubes, and fullerene by assuming the same thermal conductivity for all fillers. This way, our results mainly correlate with the geometry of the fillers. Our results assess the degree of enhancement in heat dissipation of Li-ion batteries through the use of paraffin nanocomposites. Our results may be used as a guide for experimental set-ups to improve the heat management of Li-ion batteries.
Urban planning involves many aspects and various disciplines, demanding an asynchronous planning approach. The level of complexity rises with each aspect to be considered and makes it difficult to find universally satisfactory solutions. To improve this situation we propose a new approach, which complement traditional design methods with a computational urban plan- ning method that can fulfil formalizable design requirements automatically. Based on this approach we present a design space exploration framework for complex urban planning projects. For a better understanding of the idea of design space exploration, we introduce the concept of a digital scout which guides planners through the design space and assists them in their creative explorations. The scout can support planners during manual design by informing them about potential im- pacts or by suggesting different solutions that fulfill predefined quality requirements. The planner can change flexibly between a manually controlled and a completely automated design process. The developed system is presented using an exemplary urban planning scenario on two levels from the street layout to the placement of building volumes. Based on Self-Organizing Maps we implemented a method which makes it possible to visualize the multi-dimensional solution space in an easily analysable and comprehensible form.
In this paper we introduce LUCI, a Lightweight Urban Calculation Interchange system, designed to bring the advantages of calculation and content co-ordination system to small planning and design groups by the means of an open source middle-ware. The middle-ware focuses on problems typical to urban planning and therefore features a geo-data repository as well as a job runtime administration, to coordinate simulation models and its multiple views. The described system architecture is accompanied by two exemplary use cases, that have been used to test and further develop our concepts and implementations.
The key objective of this research is to study fracture with a meshfree method, local maximum entropy approximations, and model fracture in thin shell structures with complex geometry and topology. This topic is of high relevance for real-world applications, for example in the automotive industry and in aerospace engineering. The shell structure can be described efficiently by meshless methods which are capable of describing complex shapes as a collection of points instead of a structured mesh. In order to find the appropriate numerical method to achieve this goal, the first part of the work was development of a method based on local maximum entropy (LME)
shape functions together with enrichment functions used in partition of unity methods to discretize problems in linear elastic fracture mechanics. We obtain improved accuracy relative to the standard extended finite element method (XFEM) at a comparable computational cost. In addition, we keep the advantages of the LME shape functions,such as smoothness and non-negativity. We show numerically that optimal convergence (same as in FEM) for energy norm and stress intensity factors can be obtained through the use of geometric (fixed area) enrichment with no special treatment of the nodes
near the crack such as blending or shifting.
As extension of this method to three dimensional problems and complex thin shell structures with arbitrary crack growth is cumbersome, we developed a phase field model for fracture using LME. Phase field models provide a powerful tool to tackle moving interface problems, and have been extensively used in physics and materials science. Phase methods are gaining popularity in a wide set of applications in applied science and engineering, recently a second order phase field approximation for brittle fracture has gathered significant interest in computational fracture such that sharp cracks discontinuities are modeled by a diffusive crack. By minimizing the system energy with respect to the mechanical displacements and the phase-field, subject to an irreversibility condition to avoid crack healing, this model can describe crack nucleation, propagation, branching and merging. One of the main advantages of the phase field modeling of fractures is the unified treatment of the interfacial tracking and mechanics, which potentially leads to simple, robust, scalable computer codes applicable to complex systems. In other words, this approximation reduces considerably the implementation complexity because the numerical tracking of the fracture is not needed, at the expense of a high computational cost. We present a fourth-order phase field model for fracture based on local maximum entropy (LME) approximations. The higher order continuity of the meshfree LME approximation allows to directly solve the fourth-order phase field equations without splitting the fourth-order differential equation into two second order differential equations. Notably, in contrast to previous discretizations that use at least a quadratic basis, only linear completeness is needed in the LME approximation. We show that the crack surface can be captured more accurately in the fourth-order model than the second-order model. Furthermore, less nodes are needed for the fourth-order model to resolve the crack path. Finally, we demonstrate the performance of the proposed meshfree fourth order phase-field formulation for 5 representative numerical examples. Computational results will be compared to analytical solutions within linear elastic fracture mechanics and experimental data for three-dimensional crack propagation.
In the last part of this research, we present a phase-field model for fracture in Kirchoff-Love thin shells using the local maximum-entropy (LME) meshfree method. Since the crack is a natural outcome of the analysis it does not require an explicit representation and tracking, which is advantageous over techniques as the extended finite element method that requires tracking of the crack paths. The geometric description of the shell is based on statistical learning techniques that allow dealing with general point set surfaces avoiding a global parametrization, which can be applied to tackle surfaces of complex geometry and topology. We show the flexibility and robustness of the present methodology for two examples: plate in tension and a set of open connected
pipes.
Piezoelectric materials are used in several applications as sensors and actuators where they experience high stress and electric field concentrations as a result of which they may fail due to fracture. Though there are many analytical and experimental works on piezoelectric fracture mechanics. There are very few studies about damage detection, which is an interesting way to prevent the failure of these ceramics.
An iterative method to treat the inverse problem of detecting cracks and voids in piezoelectric structures is proposed. Extended finite element method (XFEM) is employed for solving the inverse problem as it allows the use of a single regular mesh for large number of iterations with different flaw geometries.
Firstly, minimization of cost function is performed by Multilevel Coordinate Search (MCS) method. The XFEM-MCS methodology is applied to two dimensional electromechanical problems where flaws considered are straight cracks and elliptical voids. Then a numerical method based on combination of classical shape derivative and level set method for front propagation used in structural optimization is utilized to minimize the cost function. The results obtained show that the XFEM-level set methodology is effectively able to determine the number of voids in a piezoelectric structure and its corresponding locations.
The XFEM-level set methodology is improved to solve the inverse problem of detecting inclusion interfaces in a piezoelectric structure. The material interfaces are implicitly represented by level sets which are identified by applying regularisation using total variation penalty terms. The formulation is presented for three dimensional structures and inclusions made of different materials are detected by using multiple level sets. The results obtained prove that the iterative procedure proposed can determine the location and approximate shape of material subdomains in the presence of higher noise levels.
Piezoelectric nanostructures exhibit size dependent properties because of surface elasticity and surface piezoelectricity. Initially a study to understand the influence of surface elasticity on optimization of nano elastic beams is performed. The boundary of the nano structure is implicitly represented by a level set function, which is considered as the design variable in the optimization process. Two objective functions, minimizing the total potential energy of a nanostructure subjected to a material volume constraint and minimizing the least square error compared to a target
displacement, are chosen for the numerical examples. The numerical examples demonstrate the importance of size and aspect ratio in determining how surface effects impact the optimized topology of nanobeams.
Finally a conventional cantilever energy harvester with a piezoelectric nano layer is analysed. The presence of surface piezoelectricity in nano beams and nano plates leads to increase in electromechanical coupling coefficient. Topology optimization of these piezoelectric structures in an energy harvesting device to further increase energy conversion using appropriately modified XFEM-level set algorithm is performed .
It's not uncommon that analysis and simulation methods are used mainly to evaluate finished designs and to proof their quality. Whereas the potential of such methods is to lead or control a design process from the beginning on. Therefore, we introduce a design method that move away from a “what-if” forecasting philosophy and increase the focus on backcasting approaches. We use the power of computation by combining sophisticated methods to generate design with analysis methods to close the gap between analysis and synthesis of designs. For the development of a future-oriented computational design support we need to be aware of the human designer’s role. A productive combination of the excellence of human cognition with the power of modern computing technology is needed. We call this approach “cognitive design computing”. The computational part aim to mimic the way a designer’s brain works by combining state-of-the-art optimization and machine learning approaches with available simulation methods. The cognition part respects the complex nature of design problems by the provision of models for human-computation interaction. This means that a design problem is distributed between computer and designer. In the context of the conference slogan “back to command”, we ask how we may imagine the command over a cognitive design computing system. We expect that designers will need to let go control of some parts of the design process to machines, but in exchange they will get a new powerful command on complex computing processes. This means that designers have to explore the potentials of their role as commanders of partially automated design processes. In this contribution we describe an approach for the development of a future cognitive design computing system with the focus on urban design issues. The aim of this system is to enable an urban planner to treat a planning problem as a backcasting problem by defining what performance a design solution should achieve and to automatically query or generate a set of best possible solutions. This kind of computational planning process offers proof that the designer meets the original explicitly defined design requirements. A key way in which digital tools can support designers is by generating design proposals. Evolutionary multi-criteria optimization methods allow us to explore a multi-dimensional design space and provide a basis for the designer to evaluate contradicting requirements: a task urban planners are faced with frequently. We also reflect why designers will give more and more control to machines. Therefore, we investigate first approaches learn how designers use computational design support systems in combination with manual design strategies to deal with urban design problems by employing machine learning methods. By observing how designers work, it is possible to derive more complex artificial solution strategies that can help computers make better suggestions in the future.
Assessing Essential Qualities of Urban Space with Emotional and Visual Data Based on GIS Technique
(2016)
Finding a method to evaluate people’s emotional responses to urban spaces in a valid and objective way is fundamentally important for urban design practices and related policy making. Analysis of the essential qualities of urban space could be made both more effective and more accurate using innovative information techniques that have become available in the era of big data. This study introduces an integrated method based on geographical information systems (GIS) and an emotion-tracking technique to quantify the relationship between people’s emotional responses and urban space. This method can evaluate the degree to which people’s emotional responses are influenced by multiple urban characteristics such as building shapes and textures, isovist parameters, visual entropy, and visual fractals. The results indicate that urban spaces may influence people’s emotional responses through both spatial sequence arrangements and shifting scenario sequences. Emotional data were collected with body sensors and GPS devices. Spatial clustering was detected to target effective sampling locations; then, isovists were generated to extract building textures. Logistic regression and a receiver operating characteristic analysis were used to determine the key isovist parameters and the probabilities that they influenced people’s emotion. Finally, based on the results, we make some suggestions for design professionals in the field of urban space optimization.
Briefly, the two basic questions that this research is supposed to answer are:
1. Howmuch fiber is needed and how fibers should be distributed through a fiber reinforced composite (FRC) structure in order to obtain the optimal and reliable structural response?
2. How do uncertainties influence the optimization results and reliability of the structure?
Giving answer to the above questions a double stage sequential optimization algorithm for finding the optimal content of short fiber reinforcements and their distribution in the composite structure, considering uncertain design parameters, is presented. In the first stage, the optimal amount of short fibers in a FRC structure with uniformly distributed fibers is conducted in the framework of a Reliability Based Design Optimization (RBDO) problem. Presented model considers material, structural and modeling uncertainties. In the second stage, the fiber distribution optimization (with the aim to further increase in structural reliability) is performed by defining a fiber distribution function through a Non-Uniform Rational BSpline (NURBS) surface. The advantages of using the NURBS surface as a fiber distribution function include: using the same data set for the optimization and analysis; high convergence rate due to the smoothness of the NURBS; mesh independency of the optimal layout; no need for any post processing technique and its non-heuristic nature. The output of stage 1 (the optimal fiber content for homogeneously distributed fibers) is considered as the input of stage 2. The output of stage 2 is the Reliability Index (b ) of the structure with the optimal fiber content and distribution.
First order reliability method (in order to approximate the limit state function) as well as different material models including Rule of Mixtures, Mori-Tanaka, energy-based approach and stochastic multi-scales are implemented in different examples. The proposed combined model is able to capture the role of available uncertainties in FRC structures through a computationally efficient algorithm using all sequential, NURBS and sensitivity based techniques. The methodology is successfully implemented for interfacial shear stress optimization in sandwich beams and also for optimization of the internal cooling channels in a ceramic matrix composite.
Finally, after some changes and modifications by combining Isogeometric Analysis, level set and point wise density mapping techniques, the computational framework is extended for topology optimization of piezoelectric / flexoelectric materials.
The phenomenon of aerodynamic instability caused by the wind is usually a major design criterion for long-span cable-supported bridges. If the wind speed exceeds the critical flutter speed of the bridge, this constitutes an Ultimate Limit State. The prediction of the flutter boundary, therefore, requires accurate and robust models. The complexity and uncertainty of models for such engineering problems demand strategies for model assessment. This study is an attempt to use the concepts of sensitivity and uncertainty analyses to assess the aeroelastic instability prediction models for long-span bridges. The state-of-the-art theory concerning the determination of the flutter stability limit is presented. Since flutter is a coupling of aerodynamic forcing with a structural dynamics problem, different types and classes of structural and aerodynamic models can be combined to study the interaction. Here, both numerical approaches and analytical models are utilised and coupled in different ways to assess the prediction quality of the coupled model.
In the Space Syntax community, the standard tool for computing all kinds of spatial graph network measures is depthmapX (Turner, 2004; Varoudis, 2012). The process of evaluating many design variants of networks is relatively complicated, since they need to be drawn in a separated CAD system, exported and imported in depthmapX via dxf file format. This procedure disables a continuous integration into a design process. Furthermore, the standalone character of depthmapX makes it impossible to use its network centrality calculation for optimization processes. To overcome this limitations, we present in this paper the first steps of experimenting with a Grasshopper component (reference omitted until final version) that can access the functions of depthmapX and integrate them into Grasshopper/Rhino3D. Here the component is implemented in a way that it can be used directly for an evolutionary algorithm (EA) implemented in a Python scripting component in Grasshopper
Versatzstücke
(2016)
Bei studentischen Entwürfen, die sich mit dem Bauen im Bestand befassen, zeigt sich in jüngerer Zeit ein gestiegenes Interesse nicht nur an denkmalpflegerischen Fragen, sondern auch am historischen Material als solchem. Man schätzt es im Sinne eines begrenzt verfügbaren, daher wertvollen Reservoirs, aus dem man auf vielfältige Weise schöpfen kann, z. B. durch Integration von Recycling-Materialien oder aber auch durch Anleihen an den historischen Formenapparat. Dabei bedient man sich einer alten Methode: des Arbeitens mit Versatzstücken.
Per Definition ist ein Versatzstück der bewegliche, beliebig zu versetzende Teil einer Bühnendekoration. Im übertragenen Sinne ist damit jedoch ein künstlerisches Verfahren gemeint, nämlich Teile eines Werkes in einem anderen Kontext – einem neuen Werk – schöpferisch wiederzuverwenden. Dieses Einfügen am neuen Ort ist in der Architektur meist mit einem räumlichen „Versetzen“ verbunden. Stets jedoch geht es auch um eine zeitliche Differenz: Denn das Versatzstück stellt einerseits den Bezug zu einem älteren Kontext her und veranschaulicht andererseits den Bruch, das Anders- und Fremdartige. Daher wohnt einer derartigen Zwiesprache zwischen Alt und Neu häufig ein ästhetisch bereicherndes, zugleich ein narratives Moment inne.
Vom kunsthistorischen Begriff der „Spolie“ unterscheidet sich derjenige des „Versatzstückes“ durch seine größere Offenheit für verschiedene Interpretationen, wie die Beiträge dieses Heftes belegen. Allen gemeinsam ist die Frage nach den Bedeutungen, die man den jeweiligen Relikten beimisst: Sind derartige Wiederverwendungen pragmatisch oder programmatisch intendiert? Stehen ökonomische, politisch-ideologische, religiöse oder künstlerische Motive dahinter? Die Beiträge des Heftes zeigen, dass es sich wohl meist um eine Gemengelage handelt – mit allerdings unterschiedlichen Gewichtungen je nach Bauaufgabe, Anspruchsniveau und Zeitgeist.
In der Gegenwart ist ein Arbeiten mit Versatzstücken u. a. ökologisch, vor allem aber wohl ästhetisch motiviert. Mit dem auf seine Verletzlichkeit verweisenden Fragment, mit dem durch Altersspuren angereicherten Relikt lassen sich Qualitäten des Poetischen erzeugen, die wir in einer weitgehend durchrationalisierten Welt zu schätzen wissen. In Reaktion auf die Spezifik des wiederverwendeten Materials scheint ein von normativen Vorstellungen abweichendes Arbeiten hier nicht nur erlaubt, sondern stellt sich oft als ein Gewinn heraus.
In der Ph.D.-Arbeit wird gefragt, wie verschieden gestaltete Landschaften heute erlebt werden und wie sie auf die Menschen wirken. Dafür wird die Atmosphärentheorie erweitert und auf Landschaften angewendet. Atmosphären sind räumliche Stimmungsqualitäten, geprägt von der Umgebung, welche Menschen beeinflussen. Es wird ein Modell entwickelt, welches die Prägung von Atmosphären auf massiver, mobiler und ephemer Ebene beschreibt. Mit künstlerischen Arbeiten werden Atmosphären verschiedener anthropogener Landschaften übersetzt. Mit der exemplarischen wie theoretischen Bearbeitung von landschaftsverbundenen Atmosphären wird die Korrelation von Menschen und Umgebung nachgewiesen.
In meiner theoretisch_praktischen Arbeit befasse ich mich mit der verletzenden Kraft von Sprache jenseits direkter Adressierung.
Es wird der Frage nachgegangen, ob und wie auch da Verletzung durch Sprache stattfindet, wo keine offensichtliche Diskriminierung erfolgt, sondern subtilere Wirkmächte der Performativität am Werk sind. Sprachliche Benenn- und Beweisbarkeit verletzenden Sprechens werden dabei in Frage gestellt und einem Wahrnehmen und Begegnen Vorrang gegeben.
Sowohl im eher theoretischen Teil, dem „Fragment I: 943 Fragen zur sprachlichen Gewalt“, als auch im vorwiegend praktischen Teil, dem „Fragment II: Untersuchungen und Zwischennutzungen“, wird eine Perspektive auf kritische Handlungsfähigkeit in Bezug auf Sprache und Gewalt eröffnet. Es wird ein Verständnis von Verantwortung als ein Affekt und zugleich Ort der Kritik zur Diskussion gestellt und befragt. Dabei versuche ich, über die dichotome Verfestigung von „Wir und die Anderen“ hinauszugelangen und dabei ein WIR, das nicht vom IHR getrennt ist, als WIHR in den Blick zu nehmen. Dieses WIHR muss notwendigerweise offen und flexibel bleiben. Es soll eine Art Möglichkeitsraum schaffen, der nicht neu geordnet, sondern im beständigen Fragen einer abschließenden Antwort entzogen wird.
Eine Annäherung in vor allem zeichnerischen und auditiven Untersuchungen sowie 943 Fragen.
In der Arbeit wurde eine Methode für eine kulturübergreifende Vergleichsstudie zwischen China und dem Westen erarbeitet. Diese Methode ermöglicht Unternehmensentwicklung in China aus dem eignen historischen Zusammenhang zu verstehen, statt nur aus einem rein theoretischen Blickwinkel. Weil heutige wissenschaftliche Theorien meist aus der westlichen Kultur stammen und mit Wertvorstellungen sowie mit Begriffen aus dem westlichen Kulturkreis verbunden sind, müssen sie im historischen Kontext des westlichen Kulturkreises betrachtet werden.
Im ersten Teil der Arbeit wird der westliche moderne Staat als Untersuchungsbegriff herangezogen, seine Entstehungsbedingungen und seine Verwendungsart und -weise, besonders wie er die ökonomische Theorie und die Praxis im Westen beeinflusst, dabei spielt das moderne Staatsprinzip eine wichtige Rolle. Die Neue Institutionenökonomik dient als theoretischer Referenzrahmen für diese Arbeit. Mittels einer theoretischen Erweiterung mit dem westlichen modernen Staatsverständnis werden wichtige westliche konstitutionelle Institutionen analysiert, da sie die Handlungsrechte und -pflichten der Bürger sowie die Bildung der kapitalistischen Unternehmung beeinflussen.
Im zweiten Teil der Arbeit wird das chinesische Staatsverständnis analysiert – vom traditionellen „Tianxia“ zum „modernen“ Staat. Mithilfe abgeleiteter Kriterien wird die chinesische Unternehmensentwicklung in drei zeitlichen Querschnittsphasen betrachtet, wie sich chinesische Unternehmen vom traditionellen bis zum „modernen“ entwickelten. Als Fallbeispiel werden chinesische Buchdruckunternehmen herangezogen. Zuerst wird das Buchdrucksystem sowie seine Veränderungen in drei Zeitphase betrachtet. Dabei wird auf die Aspekte Buchdruckorganisation, staatliche Verwaltung, wie Zensur und Urheberrecht sowie Lehrmaterial fokussiert, die für die Buchdruckunternehmensentwicklung von Bedeutung sind und ein System darstellen. Aus Mikrosicht werden drei Buchdruckunternehmen in den Zeitphasen analysiert. Im Ergebnis der Arbeit werden Schlussfolgerungen abgeleitet, bspw. dass Modernisierung als Aktualisierung verstanden werden sollte, aber nicht als Zerstörung.