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The building sector is responsible for a large share of human environmental impacts. Architects and planners are the key players for reducing the environmental impacts of buildings, as they define them to a large extent. Life Cycle Assessment (LCA) allows for the holistic environmental analysis of a building. However, it is currently not employed to improve the environmental performance of buildings during the design process, although the potential for optimization is greatest there. One main reason is the lack of an adequate means of applying LCA in the architectural design process. As such, the main objective of this thesis is to develop a method for environmental building design optimization that is applicable in the design process. The key concept proposed in this thesis is to combine LCA with parametric design, because it proved to have a high potential for design optimization.
The research approach includes the analysis of the characteristics of LCA for buildings and the architectural design stages to identify the research gap, the establishment of a requirement catalogue, the development of a method based on a digital, parametric model, and an evaluation of the method.
An analysis of currently available approaches for LCA of buildings indicates that they are either holistic but very complex or simple but not holistic. Furthermore, none of them provide the opportunity for optimization in the architectural design process, which is the main research gap. The requirements derived from the analysis have been summarized in the form of a catalogue. This catalogue can be used to evaluate both existing approaches and potential methods developed in the future. In this thesis, it served as guideline for the development of the parametric method – Parametric Life Cycle Assessment (PLCA). The unique main feature of PLCA is that embodied and operational environmental impact are calculated together. In combination with the self-contained workflow of the method, this provides the basis for holistic, time-efficient environmental design optimization. The application of PLCA to three examples indicated that all established mandatory requirements are met. In all cases, environmental impact could be significantly reduced. In comparison to conventional approaches, PLCA was shown to be much more time-efficient.
PLCA allows architects to focus on their main task of designing the building, and finally makes LCA practically useful as one of several criteria for design optimization. With PLCA, the building design can be time-efficiently optimized from the beginning of the most influential early design stages, which has not been possible until now. PLCA provides a good starting point for further research. In the future, it could be extended by integrating the social and economic aspects of sustainability.
Traditionally, buildings in the Inner Himalayan valleys of Bhutan were constructed from rammed earth in the western regions and quarry stone in the central and eastern regions. Whilst basic architectural design elements have been retained, the construction methods have however changed over recent decades alongside expectations for indoor thermal comfort. Nevertheless, despite the need for space heating, thermal building performance remains largely unknown. Furthermore, no dedicated climate data is available for building performance assessments. This paper establishes such climatological information for the capital Thimphu and presents an investigation of building physics properties of traditional and contemporary building types. In a one month field study 10 buildings were surveyed, looking at building air tightness, indoor climate, wall U-values and water absorption of typical wall construction materials. The findings highlight comparably high wall U-values of 1.0 to 1.5 W/m²K for both current and historic constructions. Furthermore, air tightness tests show that, due to poorly sealed joints between construction elements, windows and doors, many buildings have high infiltration rates, reaching up to 5 air changes per hour. However, the results also indicate an indoor climate moderating effect of more traditional earth construction techniques. Based on these survey findings basic improvements are being suggested.
This project proposes and applies a research strategy to understand types of cities using the case study of Bogotá. This strategy combines a conceptual framework developed around the notion of ‘centrality’ and ‘urban semiotics’ as a method of qualitative enquiry in order to comprehend complex spatial arrangements as significant constituents of cultural geographies. In this sense, this study problematizes current tendencies such as spatial fragmentation and challenges the argument that contemporary urban ensembles in Latin America are either homogenized within globalization trends or illegible entities with no structural coherence.
Bogotá is addressed as an instrumental case study to redraw generalizations developed from different methodological frameworks about the configuration process of spatial structures and their significance within the Latin American geography. Thus the study questions how urban centrality has evolved as an essential socio-cultural phenomenon and in this manner decodes the messages transmitted by main spatial arrangements. As a first step, the study discusses the construction of spatial meaning and its structural interpretation. In addition, the concept of centrality is examined in depth and an urban centrality typology is introduced to enable the analysis of spatial structures in socio-cultural terms. These contents are followed by the discussion of the existing approaches to the topic and their limitations. Subsequently, this research reconstructs the configuration of Bogotá’s spatial structure which is decoded in the last chapter.
The study concludes that the highly fragmented and uneven condition of urban space in Latin America can be read. The case study of Bogotá substantiates that there is a code that paradoxically provides spatial cohesiveness within unstable socio-spatial hierarchies. Such a spatial code is deciphered through the reading of Bogotá’s spatial structure whose super-centre denotes ‘the sacralisation of authoritarianism’. This is a ‘structural meaning’ related to a specific or intrinsic logic of spatial concentration that is useful for the further discussion of socio-spatial patterns and the meanings of Latin American cities. The concluding remarks integrate the main arguments and outline lines of action in spatial planning processes.
Im Aufsatz "Zwei Pater noster-Vertonungen von Melchior Vulpius und die Missa V. vocum super Pater noster qui es in Coelis Melchioris Vulpii von Georg Vintz" werden Pater noster-Vertonungen aus dem OPUSCULUM NOVUM SELECTISSIMARVUM CANTIONVM SACRARVM (Erfurt 1610) und aus der PARS PRIMA CANTIONVM SACRARVM (Jena 1602) des Weimarer Kantors und Komponisten Melchior Vulpius (1570 - 1615) besprochen und miteinander verglichen. Ebenso wird untersucht, in welcher Weise der Naumburger Organist Georg Vintz (ca. 1580 - ca. 1635) eine dieser Motetten als Grundlage für die Parodiemesse "MISSA V. VOCUM,Super Pater noster [...] Melchioris Vulpii" genutzt und bearbeitet hat.
Der Aufsatz beruht auf einem Vortrag bei einer Tagung über Vulpius, die 2015 in Meiningen stattfand. Der Tagungsband, den Maren Goltz herausgeben wird, erscheint vermutlich 2018. Da im Band nicht genügend Platz für ausführliche Notenbeispiele ist, werden die besprochenen Kompositionen vollständig als Noten- und Klangdateien durch diesen Permalink zur Verfügung gestellt.
Zur Erstellung von dekorativen Plastiken sollten Mörtel entwickelt werden, die eine hohe Biegezugfestigkeit aufweisen und eine breite Palette von Konsistenzen für verschiedene Anwendungsarten, wie Gießen, Spachteln oder Stampfen abdecken. Als Basis für die Rezepturen wurde ein niedrigviskoses Epoxidharzsystem gewählt, dessen Aminhärter einen Wasseranteil von 44 % beinhaltet. Dies ermöglichte es, durch Wasserzugabe verschiedene Viskositäten einzustellen. Um dieses Wasser in massiveren Bauteilen zu binden, wurde neben Sand auch Zement als Füllstoff eingesetzt.
Die erstellten Rezepturen zeigten nach 56 Tagen hohe Druckfestigkeiten von über 50 N/mm². Mit zunehmendem Epoxidharzgehalt ergaben sich zwar steigende Biegezugfestigkeiten, jedoch unter Laborlagerung auch größere Längenänderungen. Diese konnten durch den Einsatz eines PCE-Fließmittels, PVA-Kurzfasern und einer optimierten Sieblinie verringert werden. Das Fließmittel verlängerte die Erhärtungszeiten jedoch auf bis zu 1,5 Tage.
Zur Ermittlung der Dauerhaftigkeit des Materials wurde es für drei Wochen Temperaturen von -20 bis +60 °C, einer künstlichen Sonnenbestrahlung sowie künstlicher Beregnung ausgesetzt. Im Vergleich zur Laborlagerung ergab sich bei steigendem Epoxidharzanteil ein geringerer Schwund, während die Biegezugfestigkeit der Probeköper nur geringfügig abnahm.
Rasterelektronenmikroskopische Untersuchungen zeigten, dass auch bei geringeren Epoxidharzzusätzen Störungen der Zementhydratation auftraten. Weiterhin zeigen sich bei geringen Epoxidharzzusätzen in der Matrix kugelförmige Einschlüsse, die von dispergierten Epoxidharzpartikeln stammen.
Die wachsende Notwendigkeit zur Energieeinsparung hat in verschiedenen Ländern zur Entwicklung von Prognosemodellen zur Bestimmung des Energiebedarfs im Wohnungssektor geführt. Obwohl Prognosemodelle prinzipiell eine Lösung zur Bestimmung des Energiebedarfs und zur Beurteilung der Auswirkungen von zukünftigen Energieeinsparmaßnahmen darstellen, sind die bestehenden Modelle jedoch mit Unwägbarkeiten in der Modellierung und Mängeln bezüglich der verwendeten Daten und Methodik behaftet.
In dieser Arbeit werden die Übertragbarkeit, Genauigkeit und stochastische Unsicherheit von zwölf Prognosemodellen (MAED-2, FfE-Gebäudemodell, CDEM, REM, CREEM, ECCABS, REEPS, BREHOMES, LEAP, DECM, CHM, BSM) analysiert, wobei Deutschland als Fallbeispiel verwendet wird. Zur Verbesserung der Übertragbarkeit der bestehenden Modelle werden Anpassungen vorgeschlagen. Außerdem wird für jedes Modell eine Bestimmung der einflussreichsten Parameter auf den simulierten Endenergiebedarf mit Hilfe einer Sensitivitätsanalyse vorgenommen. Es konnte gezeigt werden, dass Modelle mit einem hohen Detaillierungsgrad nicht zwangsläufig genauere Ergebnisse für den Endenergiebedarf garantieren. Dennoch wurde festgestellt, dass Modelle mit einem niedrigen Detaillierungsgrad Ergebnisse mit größeren Unsicherheiten liefern als Modelle mit einem höheren Detaillierungsgrad. Es wurde weiterhin festgestellt, dass die einflussreichsten Parameter zur Bestimmung des Endenergiebedarfs im Wohnungssektor Innenraumtemperatur, Außentemperatur (Gradtagzahl), Bevölkerungsentwicklung und Anzahl der Gebäude/Wohnungen sind.
Auf der Grundlage der Erkenntnisse zur Bewertung bestehender Modelle und der Bestimmung der einflussreichsten Parameter wurde ein optimiertes Prognosemodell (Transferable Residential Energy Model, TREM) entwickelt. Mit dessen Hilfe wurde die Entwicklung des Endenergiebedarfs im deutschen Wohnungssektor sowie in anderen Ländern (Vereinigtes Königsreich und Chile) prognostiziert. Diese Ergebnisse wurden anschließend mit statistischen Daten verglichen. Das TREM-Modell bestimmt den Endenergiebedarf auf der Grundlage der wahrscheinlichsten Variationen der einflussreichsten Eingangsparameter mit Hilfe einer Monte-Carlo-Simulation. Im Gegensatz zu bestehenden Modellierungsansätzen liefert das Modell damit auch einen Bereich mit Wahrscheinlichkeitsbändern für den zukünftigen Endenergiebedarf. Die Ergebnisse des TREM-Modells zeigen, dass das Modell genauere Ergebnisse liefern kann als derzeitige Modelle mit einem Mittelwert der prozentualen Differenz niedriger als 5% und einem Korrelationskoeffizienten r höher als 0,35 und darüber hinaus dazu geeignet ist, ohne Anpassungen eine Prognose der Entwicklung des zukünftigen Endenergiebedarfs im Wohnungssektor für unterschiedliche Länder zu erstellen.
By allocating real estate investments into the logistics sector, investors highly participate in the economic development of the respective country or city. However, the submarket is very cyclical and special economic influences – such as growing online trade and new logistic networks – affect the performance of the properties. Important parameters on the potential returns are found not only within the real estate market, but also within the global economy and the development of specific industries. This paper aims at examining factors affecting the performance of logistics properties.
Expected dependencies between macroeconomic factors and real estate economic indicators are examined for six major European logistics locations using econometric models, especially correlation and regression. Data series over a period of 25 years were used. The construction of an econometric model was an iterative process integrating both the statistical result and the economic causality.
In the early 2000s the pre-Columbian, anthropologically produced black soil in the Amazon basin, „Terra Preta de Índio“, received greater scientific attention. Compared to the surrounding poor soils, this very fertile anthrosol contains significantly higher levels of microorganisms and nutrients. The reason for this was determined to be the likewise high levels of charred biomass. This stable carbon, now called biochar, has since been intensively examined as an option to improve soil and to store carbon.
Although the creation of Terra Preta was most likely based on a purposeful utilization of organic residues from households and gardens, biochar plays no role in the current recycling of bio-waste. However, the implementation of biochar could lead to many improvements. Results from agricultural research suggest that not only the yield capacity of soils can be increased but also the process performance of composting and biogas plants.
The latter is especially relevant since currently about 40% of all collected bio-waste in Germany is recycled in an energy-material cascade consisting of anaerobic digestion and composting. The use of biochar in this cascade could then sequentially increase biogas yields, reduce greenhouse gas emissions, and improve compost quality.
To realize the aforementioned advantages, the concept of biochar has to be integrated into the existing bio-waste cascade as practically as possible. This was done by the development of a theoretical scenario that allowed the analysis of energy and material flows to evaluate biochar’s recycling performance. Furthermore, the legal and economic framework were examined to assess the feasibility of the extended cascade and to suggest possible adjustments to the frameworks.
Phase Field Modeling for Fracture with Applications to Homogeneous and Heterogeneous Materials
(2017)
The thesis presents an implementation including different applications of a variational-based approach for gradient type standard dissipative solids. Phase field model for brittle fracture is an application of the variational-based framework for gradient type solids. This model allows the prediction of different crack topologies and states. Of significant concern is the application of theoretical and numerical formulation of the phase field modeling into the commercial finite element software Abaqus in 2D and 3D. The fully coupled incremental variational formulation of phase field method is implemented by using the UEL and UMAT subroutines of Abaqus. The phase field method
considerably reduces the implementation complexity of fracture problems as it removes the need for numerical tracking of discontinuities in the displacement field that are characteristic of discrete crack methods. This is accomplished by replacing the sharp discontinuities with a scalar damage phase field representing the diffuse crack topology wherein the amount of diffusion is controlled by a regularization parameter. The nonlinear coupled system consisting of the linear momentum equation and a diffusion type equation governing the phase field evolution is solved simultaneously via a Newton-
Raphson approach. Post-processing of simulation results to be used as visualization
module is performed via an additional UMAT subroutine implemented in the standard Abaqus viewer.
In the same context, we propose a simple yet effective algorithm to initiate and propagate cracks in 2D geometries which is independent of both particular constitutive laws and specific element technology and dimension. It consists of a localization limiter in the form of the screened Poisson equation with, optionally, local mesh refinement. A staggered scheme for standard equilibrium and screened Cauchy equations is used. The remeshing part of the algorithm consists of a sequence of mesh subdivision and element erosion steps. Element subdivision is based on edge split operations using a
given constitutive quantity (either damage or void fraction). Mesh smoothing makes use of edge contraction as function of a given constitutive quantity such as the principal stress or void fraction. To assess the robustness and accuracy of this algorithm, we use both quasi-brittle benchmarks and ductile tests.
Furthermore, we introduce a computational approach regarding mechanical loading in microscale on an inelastically deforming composite material. The nanocomposites material of fully exfoliated clay/epoxy is shaped to predict macroscopic elastic and fracture related material parameters based on their fine–scale features. Two different configurations of polymer nanocomposites material (PNCs) have been studied. These configurations are fully bonded PNCs and PNCs with an interphase zone formation between the matrix and the clay reinforcement. The representative volume element of PNCs specimens with different clay weight contents, different aspect ratios, and different
interphase zone thicknesses are generated by adopting Python scripting. Different constitutive models are employed for the matrix, the clay platelets, and the interphase zones. The brittle fracture behavior of the epoxy matrix and the interphase zones material are modeled using the phase field approach, whereas the stiff silicate clay platelets of the composite are designated as a linear elastic material. The comprehensive study investigates the elastic and fracture behavior of PNCs composites, in addition to predict Young’s modulus, tensile strength, fracture toughness, surface energy dissipation, and cracks surface area in the composite for different material parameters, geometry, and interphase zones properties and thicknesses.
The aim of my research is to observe the variance of energy efficiency of a typical multi-story office building under the exposure of different climatic conditions. Energy efficiency requirements in building codes or energy standards are among the most important single measures for buildings’ energy efficiency. Therefore, this study can be set up for a better understanding of how energy efficiency of a building changes under the effect of adverse to moderate climatic conditions which possess a mentionable effect on the operation of a building.
This thesis is structured in three balanced and conceptual steps. Following the aim of the project, the virtual building model is to be analyzed under the effect of seven distinct climatic conditions namely work environment of New Delhi, Mumbai, Berlin, Lisbon, Copenhagen, Dubai and Montreal. Firstly, the task is to do a complete literature research based on the scope of similar researches and studying the problems in detail along with the theoritical background all the concepts which are implemented to get the numerical results. This chapter also comprises a detailed study of the climatic conditions of the above-mentioned cities. Different climatic traits like temperature variations, count of heating and cooling degree days, relative humidity, temperature range and comfort zonal charts for the specified cities are studied in detail. This study helps to understand the effect of these adverse to moderate climates on the operation of the building. On the second step, the virtual building model is prepared on a software platform named Revit Structures. This virtual building model is not necessarily a complete building, but it has the relevant functionalities of a real building. We perform the energy analysis and the heating and cooling analysis on this virtual building model to study the operational outcome of the building under different climatic conditions in detail. By the end of these above two tasks, two scenarios are observed. On one hand, we have a literature research and on the other hand we have the numerical results. Therefore, finally we present a comparative scenario based on the energy efficient performances of the building under such variant climatic conditions. This is followed by the prediction of thermal comfort level inside the building and it based on Fanger’s PMV Model. Understanding the literature and the numerical values in detail helps us to predict the index thermal comfort level inside the building.
The conclusion of this master thesis focuses mainly on the scopes of improvement of energy efficiency requirements in energy codes if any, differentiated according to specific locations. The initial aim of my hypothesis which is to study the impacts of climatic variations on the energy efficient performances of a building is fulfilled but as such topics have very deep and broad roots, the scope of further improvements is always predominant.