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LIBRIS Formathandbok  (Information om MARC21)
FältnamnIndikatorerMetadata
00005648nam a2200469 4500
001oai:research.chalmers.se:7aa5fe80-d70a-43ea-ab05-41ac00be6f80
003SwePub
008201127s2020 | |||||||||||000 ||eng|
024a https://research.chalmers.se/publication/5205922 URI
040 a (SwePub)cth
041 a engb eng
042 9 SwePub
072 7a lic2 swepub-publicationtype
072 7a vet2 swepub-contenttype
100a Olsson, Jens,d 1985u Arkitekturens teori och metod,Institutionen Arkitektur och samhällsbyggnadsteknik (ACE),Chalmers tekniska högskola,Architectural theory and methods,Department of Architecture and Civil Engineering (ACE),Chalmers University of Technology4 aut0 (Swepub:cth)olsjen
2451 0a In conversation with simulation: The application of numerical simulation to the design of structural nodal connections
264 1a Gothenburg,c 2020
338 a electronic2 rdacarrier
520 a The thesis explores methods for integration of structural analysis, design and production in a digital design environment. The somewhat ambiguous title implies the ambition to make such integration in relation to the explorative phase of the design process which is described by Donald Schön as having a conversational character. A conversation between the designer and the representation by the means of the tool. The tool is in this context a simulation and instead of exploring the potential of automatic optimisation, the simulation is used for designer driven exploration. The aim of the thesis is to give an overview of how this type of integration is currently being approached and to contribute with new tools and methods in that pursuit. The motivation behind the work is to lower the threshold for the application of structural analysis in early-stage design, with an ambition of architectural qualities and resource efficiency in mind. An overview of the historical context is portrayed with broad brush strokes, followed by a more precise account of the mathematical and physical context, which is complemented by an attempt to describe how our tools and roles tend to interplay in the composition of the design process. Methods such as the finite element method, isogeometric analysis, smoothed particle hydrodynamics and peridynamics, including their related geometrical representations are introduced in relation to this context. A variety of production techniques are also discussed in relation to material mechanical properties for conventional building materials such as steel, concrete and wood. The method development is approached through the use of numerical and physical experiments which are applied for design of material-efficient structural components, with a particular design process perspective. The nodal connection is chosen as an application because it combines geometrical and structural complexity in an element that is of crucial importance for a holistic spatial setting, while often being produced in a material inefficient way, with poor attention to detail. The three articles that are included follow a trajectory from large to small, from the holistic to the particular. The first article is a description of the computational design work with the roof for the new international airport of Mexico City. The second article aims to address one of the challenges that were faced in that project with material inefficiency for nodal connections, with a critical perspective on optimisation. The final article presents an extension/modification for the peridynamics theory enabling variable particle sizes and an irregular particle distribution through the introduction of a concept called force flux density . The development is motivated by limitations found in the present theory through numerical experiments. The method enables simulation of phenomena such as brittle fracture, for which correlation with Griffith's theory of fracture is shown. Further work includes an extension of the force flux method from 2D to 3D, including calibration of material a model for 3D printed steel. Other possibilities involve the exploration of how such a method can adapt to the various stages of the design process, where requirements of accuracy, speed and interactivity will vary.
650 7a TEKNIK OCH TEKNOLOGIERx Samhällsbyggnadsteknikx Arkitekturteknik0 (SwePub)201012 hsv//swe
650 7a ENGINEERING AND TECHNOLOGYx Civil Engineeringx Architectural Engineering0 (SwePub)201012 hsv//eng
650 7a HUMANIORAx Konstx Design0 (SwePub)604162 hsv//swe
650 7a HUMANITIESx Artsx Design0 (SwePub)604162 hsv//eng
650 7a TEKNIK OCH TEKNOLOGIERx Samhällsbyggnadsteknikx Byggprocess och förvaltning0 (SwePub)201022 hsv//swe
650 7a ENGINEERING AND TECHNOLOGYx Civil Engineeringx Construction Management0 (SwePub)201022 hsv//eng
650 7a HUMANIORAx Konstx Arkitektur0 (SwePub)604152 hsv//swe
650 7a HUMANITIESx Artsx Architecture0 (SwePub)604152 hsv//eng
653 a 3D Printing
653 a Design theory
653 a Structural design
653 a Structural efficiency
653 a Simulation
653 a Peridynamics
653 a Force flux density
653 a Nodal connections
653 a Conceptual design
653 a Steel structures
653 a Design process
653 a Digital design
710a Arkitekturens teori och metodb Institutionen Arkitektur och samhällsbyggnadsteknik (ACE)4 org
856u https://research.chalmers.se/publication/520592/file/520592_Fulltext.pdfx primaryx freey FULLTEXT
8564 8u https://research.chalmers.se/publication/520592

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