Matheou et al., 2023 - Google Patents
New perspectives in architecture through transformable structures: A simulation studyMatheou et al., 2023
View HTML- Document ID
- 5326389851333881698
- Author
- Matheou M
- Phocas M
- Christoforou E
- Müller A
- Publication year
- Publication venue
- Frontiers in Built Environment
External Links
Snippet
Structures enabling transformability of buildings, components and materials at different levels gain significance in view of a sustainable built environment. Such structures are capable of obtaining different shapes in response to varying functional, environmental or …
Classifications
-
- E—FIXED CONSTRUCTIONS
- E04—BUILDING
- E04B—GENERAL BUILDING CONSTRUCTIONS; WALLS, e.g. PARTITIONS; ROOFS; FLOORS; CEILINGS; INSULATION OR OTHER PROTECTION OF BUILDINGS
- E04B1/00—Constructions in general; Structures which are not restricted either to walls, e.g. partitions, or floors or ceilings or roofs
- E04B1/32—Arched structures; Vaulted structures; Folded structures
- E04B2001/327—Arched structures; Vaulted structures; Folded structures comprised of a number of panels or blocs connected together forming a self-supporting structure
- E04B2001/3276—Panel connection details
Similar Documents
Publication | Publication Date | Title |
---|---|---|
Matheou et al. | New perspectives in architecture through transformable structures: A simulation study | |
Phocas et al. | Kinematics and control approach for deployable and reconfigurable rigid bar linkage structures | |
Andia et al. | Post-parametric automation in design and construction | |
US20060254200A1 (en) | Systems and methods for construction of space-truss structures | |
Alegria Mira et al. | The universal scissor component: Optimization of a reconfigurable component for deployable scissor structures | |
Arnouts et al. | Computational design of bistable deployable scissor structures: trends and challenges | |
Hosmer et al. | Deep reinforcement learning for autonomous robotic tensegrity (ART) | |
Phocas et al. | Transformable building structures in architectural engineering education | |
Figliola et al. | Post-industrial Robotics | |
Akgün | A novel transformation model for deployable scissor-hinge structures | |
De Temmerman et al. | Lightweight transformable structures: materialising the synergy between architectural and structural engineering | |
Stehling et al. | From lamination to assembly-modelling the Seine Musicale | |
Phocas et al. | Kinematics Approach and Experimental Verification of a Class of Deployable and Reconfigurable Linkage Structures | |
Phocas et al. | Design concept of a kinetic form-active hybrid envelope structure | |
Zhang et al. | Lead the folding motion of the thick origami model under gravity | |
El-Zanfaly | Active shapes: introducing guidelines for designing kinetic architectural structures | |
Erdine et al. | Interwoven reinforced concrete structures: Integration of design and fabrication drivers through parametric design processes | |
Capone et al. | Digital form finding using Voronoi pattern | |
Phocas et al. | Revisiting transformable structures in architecture | |
Rumpf et al. | Structural Surface–multi parameter structural optimization of a thin high performance concrete object | |
Bernard et al. | Model for a rigid, 3D mechanism inspired by pop-up origami, and its application to a re-configurable, physical environmenl | |
Krishnan | Deployable structures: An interdisciplinary design process | |
McCoy et al. | The deployable tectonic: Mechanization and mobility in architecture | |
Mohamed | 3D Printing for Smart Urbanism: Towards City Livability | |
Çavuş | Learning from folding for design in kinetic structures in architecture |