id |
acadia16_88 |
authors |
Klemmt, Christoph; Bollinger, Klaus |
year |
2016 |
title |
Load Responsive Angiogenesis Networks: Structural Growth Simulations of Discrete Members using Variable Topology Spring Systems |
source |
ACADIA // 2016: POSTHUMAN FRONTIERS: Data, Designers, and Cognitive Machines [Proceedings of the 36th Annual Conference of the Association for Computer Aided Design in Architecture (ACADIA) ISBN 978-0-692-77095-5] Ann Arbor 27-29 October, 2016, pp. 88-97 |
doi |
https://doi.org/10.52842/conf.acadia.2016.088
|
summary |
Venation systems in leaves, which form their structural support, always connect back to one seed point, the petiole of the leaf. In order to develop similar structural networks for architectural use which connect to more seed points on the ground, an algorithm has been developed which can develop from two or three seed points, inspired by angiogenesis, the process through which the vascular system grows. This allows for the generation of structurally suitable topologies based on discrete members, which can be evaluated using Finite Element Analysis and which can be constructed from linear structural members without an additional interpretation of the results. The networks have been developed as load bearing spring systems above the support points. Different structures have been compared and tested using Finite Element Analysis. Compared to traditional column and beam structures, the angiogenesis networks as well as the venation networks are shown to perform well under load. |
keywords |
venation, finite element analysis, angiongenesis, embedded responsiveness |
series |
ACADIA |
type |
paper |
email |
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full text |
file.pdf (797,368 bytes) |
references |
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last changed |
2022/06/07 07:51 |
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