Published December 12, 2017 | Version v1
Journal article Restricted

Flectofold – A biomimetic compliant shading device for complex free form facades

  • 1. Institute of Building Structures and Structural Design (ITKE), University of Stuttgart
  • 2. Institute for Textile and Fiber Technologies (ITFT), University of Stuttgart
  • 3. Institute for Structural Mechanics (IBB), University of Stuttgart
  • 4. Plant Biomechanics Group (PBG), University of Freiburg
  • 5. German Institutes for Textile and Fiber Research (DITF)

Description

ABSTRACT

Smart and adaptive outer façade shading systems are of high interest in modern architecture. For long lasting and reliable systems, the abandonment of hinges which often fail due to mechanical wear during repetitive use is of particular importance. Drawing inspiration from the hinge-less motion of the underwater snap-trap of the carnivorous waterwheel plant (Aldrovanda vesiculosa), the compliant façade shading device Flectofold was developed. Based on computational simulations of the biological role-model's elastic and reversible motion, the actuation principle of the plant can be identified. The enclosed geometric motion principle is abstracted into a simplified curved-line folding geometry with distinct flexible hinge-zones. The kinematic behaviour is translated into a quantitative kinetic model, using finite element simulation which allows the detailed analyses of the influence of geometric parameters such as curved-fold line radius and various pneumatically driven actuation principles on the motion behaviour, stress concentrations within the hinge-zones, and actuation forces. The information regarding geometric relations and material gradients gained from those computational models are then used to develop novel material combinations for glass fibre reinforced plastics which enabled the fabrication of physical prototypes of the compliant façade shading device Flectofold.

Notes

FUNDED BY : Transregional Research Centre (CRC/Transregio) 141 'Biological Design and Integrative Structures' German Research Foundation (DFG) InnoChain, Building Innovation in the Extended Digital Chain European Union's Horizon 2020 research and innovation programme under the Marie-Curie grant agreement No 642877 Project BIAG 'Bio-inspired adaptive façade shading systems' Baden-Württemberg-foundation

Files

Restricted

The record is publicly accessible, but files are restricted to users with access.

Request access

If you would like to request access to these files, please fill out the form below.

You need to satisfy these conditions in order for this request to be accepted:

Shared upon request.

You are currently not logged in. Do you have an account? Log in here

Additional details

Funding

InnoChain – Building Innovation in the Extended Digital Chain 642877
European Commission