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Complex gridshell structures used in architecturally ambitious constructions remain as appealing as ever in the public realm. This paper describes the theory and approach behind the software realisation of a tool which helps in finding the affine self-weight geometry of gridshell structures. The software tool DOMEdesign supports the formal design process of lattice and grid shell structures based upon the laws of physics. The computer-aided simulation of suspension models is used to derive structurally favourable forms for domes and arches subject to compression load, based upon the input of simple architectonic parameters. Irregular plans, three-dimensional topography, a choice different kinds of shell lattice structures and the desired height of the dome are examples of design parameters which can be used to modify the architectural design. The provision of data export formats for structural dimensioning and visualisation software enables engineers and planners to use the data in future planning and to communicate the design to the client.
In der vorliegenden Arbeit werden auf Basis des Tensegrity-Konzeptes Strukturen entwickelt und vorgestellt, welche durch einen signifikanten Steifigkeitszuwachs in der Lage sind, die Anforderungen an die Gebrauchstauglichkeit von Tragwerken zu erfüllen.
Selbstverankerte Strukturen mit aufgelösten Druckstäben werden als Seil-Stab-Systeme bezeichnet und sind alleiniger Gegenstand aller angestellten Betrachtungen.
Tensegrity-Strukturen sollen eine Untergruppe der Seil-Stab-Systeme darstellen, deren symptomatische Eigenschaft eine sich im Tensegrity-Zustand befindliche Geometrie ist.
Einer Definition des Tensegrity-Zustandes folgt ein Überblick über die zur Untersuchung von Seil-Stab-Systemen notwendigen Berechnungsalgorithmen.
Der Kern der Arbeit beschäftigt sich zunächst mit dem Einfluss der Geometrie auf die Empfindlichkeit von Seil-Stab-Systemen gegenüber unvermeidlichen Herstellungstoleranzen sowie dem Einfluss von Topologie, Vorspannung, lokaler Steifigkeit der Elemente und Geometrie auf die Steifigkeit dieser Systeme.
Darauf aufbauend wird eine Möglichkeit gezeigt, die Steifigkeit von beweglichen Seil-
Stab-Systemen merklich zu erhöhen, ohne die Strukturen durch zusätzliche Elemente oder Verbindungen optisch zu verändern.
Der zu erzielende Steifigkeitszuwachs wird mittels Vergleichrechnungen und durchgeführten Belastungsversuchen verifiziert.
TOOL TO CHECK TOPOLOGY AND GEOMETRY FOR SPATIAL STRUCTURES ON BASIS OF THE EXTENDED MAXWELL'S RULE
(2006)
One of the simplest principle in the design of light-weight structures is to avoid bending. This can be achieved by dissolving girders into members acting purely in axial tension or compression. The employment of cables for the tensioned members leads to even lighter structures which are called cable-strut structures. They constitute a subclass of spatial structures. To give fast information about the general feasibility of an architectural concept employing cable-strut structures is a challenging task due to their sophisticated mechanical behavior. In this regard it is essential to control if the structure is stable and if pre-stress can be applied. This paper presents a tool using the spreadsheet software Microsoft (MS) Excel which can give such information. Therefore it is not necessary to purchase special software and the according time consuming training is much lower. The tool was developed on basis of the extended Maxwell's rule, which besides topology also considers the geometry of the structure. For this the rank of the node equilibrium matrix is crucial. Significance and determination of the rank and the implementation of the corresponding algorithms in MS Excel are described in the following. The presented tool is able to support the structural designer in an early stage of the project in finding a feasible architectural concept for cable-strut structures. As examples for the application of the software tool two special cable-strut structures, so called tensegrity structures, were examined for their mechanical behavior.
... WITHOUT RIGHT ANGLE.
(2006)
Currently sculptural design is one of the most discussed themes in architecture. Due to their light weight, easy transportation and assembly, as well as an almost unlimited structural variety, parameterised spatial structures are excellently suited for constructive realisation of free formed claddings. They subdivide the continuous surface into a structure of small sized nodes, straight members and plane glass panels. Thus they provide an opportunity to realise arbitrary double-curved claddings with a high degree of transparency, using industrial semi-finished products (steel sections, flat glass). Digital design strategies and a huge number of similar looking but in detail unique structural members demand a continuous digital project handling. Within a research project, named MYLOMESH, a free-formed spatial structure was designed, constructed, fabricated and assembled. All required steps were carried out based on digital data. Different digital connections (scripts) between varying software tools, which are usually not used in the planning process of buildings, were created. They allow a completely digital workflow. The project, its design, meshing, constructive detailing and the above-mentioned scripts are described in this paper.