iMechanica - architected material //m.limpotrade.com/taxonomy/term/11034 en Buckling-Induced Kirigami //m.limpotrade.com/node/20953 < div class = "字段field-name-taxonomy-vocabulary-6field-type-taxonomy-term-reference field-label-hidden">

Buckling-Induced Kirigami
We investigate the mechanical response of thin sheets perforated with a square array of mutually orthogonal cuts, which leaves a network of squares connected by small ligaments. Our combined analytical, experimental and numerical results indicate that under uniaxial tension the ligaments buckle out of plane, inducing the formation of 3D patterns whose morphology is controlled by the load direction. We also find that by largely stretching the buckled perforated sheets, plastic strains develop in the ligaments. This gives rise to the formation of kirigami sheets comprising periodic distribution of cuts and permanent folds. As such, the proposed buckling-induced pop-up strategy points to a simple route for manufacturing complex morphable structures out of flat perforated sheets.

Read the article: Phys. Rev. Lett. 118, 084301
Read the preprint in arXiv
New pop-up strategy inspired by cuts, not folds [Harvard SEAS News]

Buckling-Induced Kirigami from Ahmad Rafsanjani on Vimeo.

Fri, 24 Feb 2017 19:50:51 +0000 Ahmad Rafsanjani 20953年https://ime万博manbetx平台chanica.org //m.limpotrade.com/node/20953#comments //m.limpotrade.com/crss/node/20953
A three-dimensional actuated origami-inspired transformable metamaterial with multiple degrees of freedom //m.limpotrade.com/node/19616 < div class = "字段field-name-taxonomy-vocabulary-6field-type-taxonomy-term-reference field-label-hidden">

Reconfigurable devices, whose shape can be drastically altered, are central to expandable shelters, deployable space structures, reversible encapsulation systems and medical tools and robots. All these applications require structures whose shape can be actively controlled, both for deployment and to conform to the surrounding environment. While most current reconfigurable designs are application specific, here we present a mechanical metamaterial with tunable shape, volume and stiffness. Our approach exploits a simple modular origami-like design consisting of rigid faces and hinges, which are connected to form a periodic structure consisting of extruded cubes. We show both analytically and experimentally that the transformable metamaterial has three degrees of freedom, which can be actively deformed into numerous specific shapes through embedded actuation. The proposed metamaterial can be used to realize transformable structures with arbitrary architectures, highlighting a robust strategy for the design of reconfigurable devices over a wide range of length scales.

Link to video

Link to news article

Overvelde, J. T. B., de Jong, T. A., Shevchenko, Y., Becerra, S. A., Whitesides, G. M., Weaver, J., Hoberman, C., Bertoldi, K., (2016). A three-dimensional actuated origami-inspired transformable metamaterial with multiple degrees of freedom. Nature Communications.

3月14日,星期一,2016年22:07:52 +0000 Johannes T.B. Overvelde 19616 at //m.limpotrade.com //m.limpotrade.com/node/19616#comments //m.limpotrade.com/crss/node/19616