Refine
Document Type
- Article (1015)
- Conference Proceeding (857)
- Doctoral Thesis (494)
- Master's Thesis (115)
- Part of a Book (50)
- Book (45)
- Report (43)
- Periodical (28)
- Preprint (27)
- Bachelor Thesis (22)
Institute
- Professur Theorie und Geschichte der modernen Architektur (493)
- Professur Informatik im Bauwesen (484)
- Institut für Strukturmechanik (ISM) (346)
- In Zusammenarbeit mit der Bauhaus-Universität Weimar (201)
- Professur Baubetrieb und Bauverfahren (145)
- Institut für Europäische Urbanistik (71)
- Professur Bauphysik (53)
- Professur Stochastik und Optimierung (46)
- Graduiertenkolleg 1462 (42)
- F. A. Finger-Institut für Baustoffkunde (FIB) (38)
Keywords
- Weimar (446)
- Bauhaus-Kolloquium (442)
- Angewandte Mathematik (331)
- Computerunterstütztes Verfahren (289)
- Architektur (247)
- Architektur <Informatik> (201)
- Strukturmechanik (189)
- CAD (184)
- Angewandte Informatik (155)
- Bauhaus (125)
This paper presents a novel numerical procedure based on the combination of an edge-based smoothed finite element (ES-FEM) with a phantom-node method for 2D linear elastic fracture mechanics. In the standard phantom-node method, the cracks are formulated by adding phantom nodes, and the cracked element is replaced by two new superimposed elements. This approach is quite simple to implement into existing explicit finite element programs. The shape functions associated with discontinuous elements are similar to those of the standard finite elements, which leads to certain simplification with implementing in the existing codes. The phantom-node method allows modeling discontinuities at an arbitrary location in the mesh. The ES-FEM model owns a close-to-exact stiffness that is much softer than lower-order finite element methods (FEM). Taking advantage of both the ES-FEM and the phantom-node method, we introduce an edge-based strain smoothing technique for the phantom-node method. Numerical results show that the proposed method achieves high accuracy compared with the extended finite element method (XFEM) and other reference solutions.
The proceedings at hand are the result of the International Master Course Module: "Nonlinear Analysis of Structures: Wind Induced Vibrations" held at the Faculty of Civil Engineering at Bauhaus-University Weimar, Germany in the summer semester 2019 (April - August). This material summarizes the results of the project work done throughout the semester, provides an overview of the topic, as well as impressions from the accompanying programme.
Wind Engineering is a particular field of Civil Engineering that evaluates the resistance of structures caused by wind loads. Bridges, high-rise buildings, chimneys and telecommunication towers might be susceptible to wind vibrations due to their increased flexibility, therefore a special design is carried for this aspect. Advancement in technology and scientific studies permit us doing research at small scale for more accurate analyses. Therefore scaled models of real structures are built and tested for various construction scenarios. These models are placed in wind tunnels where experiments are conducted to determine parameters such as: critical wind speeds for bridge decks, static wind coefficients and forces for buildings or bridges. The objective of the course was to offer insight to the students into the assessment of long-span cable-supported bridges and high-rise buildings under wind excitation. The participating students worked in interdisciplinary teams to increase their knowledge in the understanding and influences on the behaviour of wind-sensitive structures.
Die Dissertation untersucht Ideen von Virtualität im Hinblick auf mobile Medientechnologien. Es verbinden sich eine medienphilosophische und eine technikhistorische Perspektive: Das Virtuelle wird philosophiehistorisch ergründet und damit verbunden die Emergenz von mobilen Medientechnologien wie dem Mobiltelefon rekonstruiert. Zentral ist dabei die Frage, wie sich Weltverständnisse durch mobile Telekommunikation wandeln und wie das Virtuelle bislang im Kontext von Realitätsvorstellungen gedacht wurde.
Das Ziel der vorliegenden Diplomarbeit war es, „Untersuchungen hinsichtlich des Einflusses von Phase Change Materials auf die Raumlufttemperatur“ durchzuführen und anschließend die Ergebnisse auszuwerten. Dabei galt es, thermodynamische Grundlagen zu erläutern sowie den derzeitigen Stand der Forschung darzulegen. Dies wurde umfassend bearbeitet, allerdings kann hierbei aufgrund des Umfangs und der Vielfalt im Bereich der internationalen PCM-Forschung kein Anspruch auf Vollständigkeit erhoben werden. Ein Hauptteil dieser Arbeit bestand darin, den Versuchsaufbau der Referenzräume im Eiermann-Bau in Apolda als Grundlage für spätere Messungen detailliert zu beschreiben. Dabei wurde auf die gesamte Messanlage, die eingebrachten PCM sowie auf daraus resultierende physikalische Kenngrößen ausführlich eingegangen. Es galt, geometrische, chemische und physikalische Einflüsse einzuschätzen, aber auch Schwachstellen aufzudecken, um die später folgenden Messreihen exakt auswerten zu können. Als kritisch einzuschätzende Größe fiel dabei besonders das eingebrachte Salzgemisch auf, welches hinsichtlich des Schmelz- und Kristallisationsbereiches als kaum beurteilbar auffiel. Dies konnte auch nach mehreren Untersuchungen, hier ist insbesondere die dynamische Differenzkalorimetrie zu nennen, nicht hinreichend geklärt werden. Basierend auf diesen Erkenntnissen wurden vergleichende Messreihen durchgeführt, welche durch verschiedene Luftwechselraten gestaltet wurden. Im Maximum konnte dabei im PCM-konditionierten Raum eine Reduktion der Temperatur um 6 K erreicht werden. Dabei muss allerdings berücksichtigt werden, dass diese Differenz größtenteils auf die thermische Masse des Salzgemischs zurückgeführt werden kann. Eine abschließende Messung ohne Salzgemisch zeigte, dass aufgrund des latenten Wärmespeichervermögens des PCM-Putzes lediglich eine thermische Differenz von 2 K erreicht werden kann. Hinsichtlich der Luftwechselrate ist anzumerken, dass die erwartete, vergleichsweise zügige Auskühlung trotz Lüftung in der Praxis nicht nachvollzogen werden konnte. Zur Auswertung der gewonnenen Messwerte galt es, das am Lehrstuhl Bauphysik vorhandene mathematische Minimalmodell auf die am Objekt vorhandenen Randbedingungen anzupassen. Aus den Datenwolken der Atmosphärentemperatur sowie der Globalstrahlung mussten Funktionen approximiert werden, da diese äußeren Zwänge einen entscheidenden Einfluss auf den Verlauf der Innenraumtemperatur ausüben. Die Ergebnisse der Berechungen des Temperaturverlaufs können als zufrieden stellend betrachtet werden, jedoch wurde deutlich, dass ein genaues Nachstellen nicht möglich ist. Dies ist vor allem auf die Tatsache zurückzuführen, dass das Minimalmodell lediglich eine Beschreibung der wesentlichen Prozesse mathematisch abbildet. Eine kritische Auseinandersetzung hinsichtlich allgemeiner Standpunkte als auch der Anwendbarkeit auf die Referenzräume wurde abschließend diskutiert.
This study aims to develop an approach to couple a computational fluid dynamics (CFD) solver to the University of California, Berkeley (UCB) thermal comfort model to accurately evaluate thermal comfort. The coupling was made using an iterative JavaScript to automatically transfer data for each individual segment of the human body back and forth between the CFD solver and the UCB model until reaching convergence defined by a stopping criterion. The location from which data are transferred to the UCB model was determined using a new approach based on the temperature difference between subsequent points on the temperature profile curve in the vicinity of the body surface. This approach was used because the microclimate surrounding the human body differs in thickness depending on the body segment and the surrounding environment. To accurately simulate the thermal environment, the numerical model was validated beforehand using experimental data collected in a climate chamber equipped with a thermal manikin. Furthermore, an example of the practical implementations of this coupling is reported in this paper through radiant floor cooling simulation cases, in which overall and local thermal sensation and comfort were investigated using the coupled UCB model.
Occupant needs with regard to residential buildings are not well known due to a lack of representative scientific studies. To improve the lack of data, a large scale study was carried out using a Post Occupancy Evaluation of 1,416 building occupants. Several criteria describing the needs of occupants were evaluated with regard to their subjective level of relevance. Additionally, we investigated the degree to which deficiencies subjectively exist, and the degree to which occupants were able to accept them. From the data obtained, a hierarchy of criteria was created. It was found that building occupants ranked the physiological needs of air quality and thermal comfort the highest. Health hazards such as mould and contaminated building materials were unacceptable for occupants, while other deficiencies were more likely to be tolerated. Occupant satisfaction was also investigated. We found that most occupants can be classified as satisfied, although some differences do exist between different populations. To explain the relationship between the constructs of what we call relevance, acceptance, deficiency and satisfaction, we then created an explanatory model. Using correlation and regression analysis, the validity of the model was then confirmed by applying the collected data. The results of the study are both relevant in shaping further research and in providing guidance on how to maximize tenant satisfaction in real estate management.
Overheating is a major problem in many modern buildings due to the utilization of lightweight constructions with low heat storing capacity. A possible answer to this problem is the emplacement of phase change materials (PCM), thereby increasing the thermal mass of a building. These materials change their state of aggregation within a defined temperature range. Useful PCM for buildings show a phase transition from solid to liquid and vice versa. The thermal mass of the materials is increased by the latent heat. A modified gypsum plaster and a salt mixture were chosen as two materials for the study of their impact on room temperature reduction. For realistic investigations, test rooms were erected where measurements were carried out under different conditions such as temporary air change, alternate internal heat gains or clouding. The experimental data was finally reproduced by dint of a mathematical model.
The human body is surrounded by a micro‐climate which results from its convective release of heat. In this study, the air temperature and flow velocity of this micro‐climate were measured in a climate chamber at various room temperatures, using a thermal manikin simulating the heat release of the human being. Different techniques (Particle Streak Tracking, thermography, anemometry, and thermistors) were used for measurement and visualization. The manikin surface temperature was adjusted to the particular indoor climate based on simulations with a thermoregulation model (UCBerkeley Thermal Comfort Model). We found that generally, the micro‐climate is thinner at the lower part of the torso, but expands going up. At the head, there is a relatively thick thermal layer, which results in an ascending plume above the head. However, the micro‐climate shape strongly depends not only on the body segment, but also on boundary conditions: the higher the temperature difference between the surface temperature of the manikin and the air temperature, the faster the air flow in the micro‐climate. Finally, convective heat transfer coefficients strongly increase with falling room temperature, while radiative heat transfer coefficients decrease. The type of body segment strongly influences the convective heat transfer coefficient, while only minimally influencing the radiative heat transfer coefficient.