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1.
Bioinspir Biomim ; 11(5): 055005, 2016 09 07.
Artigo em Inglês | MEDLINE | ID: mdl-27603330

RESUMO

The aim of this study is the biomimetic optimisation of branched fibre-reinforced composites based on the detailed analysis of biological concept generators. The methods include analyses of the functional morphology and biomechanics of arborescent monocotyledons and columnar cacti as well as measurements and modelling of mechanical properties of biomimetic fibre-reinforced composites. The key results show evidence of notch stress reduction by optimised stem-branch-attachment morphology in monocotyledons and columnar cacti. It could be shown that some of these highly interesting properties can be transferred into biomimetic fibre-reinforced composites.


Assuntos
Materiais Biomiméticos , Cactaceae/anatomia & histologia , Cactaceae/fisiologia , Análise de Elementos Finitos , Imageamento por Ressonância Magnética
2.
Bioinspir Biomim ; 10(5): 051001, 2015 Sep 03.
Artigo em Inglês | MEDLINE | ID: mdl-26335744

RESUMO

The active transport of fluids by pumps plays an essential role in engineering and biology. Due to increasing energy costs and environmental issues, topics like noise reduction, increase of efficiency and enhanced robustness are of high importance in the development of pumps in engineering. The study compares pumps in biology and engineering and assesses biomimetic potentials for improving man-made pumping systems. To this aim, examples of common challenges, applications and current biomimetic research for state-of-the art pumps are presented. The biomimetic research is helped by the similar configuration of many positive displacement pumping systems in biology and engineering. In contrast, the configuration and underlying pumping principles for fluid dynamic pumps (FDPs) differ to a greater extent in biology and engineering. However, progress has been made for positive displacement as well as for FDPs by developing biomimetic devices with artificial muscles and cilia that improve energetic efficiency and fail-safe operation or reduce noise. The circulatory system of vertebrates holds a high biomimetic potential for the damping of pressure pulsations, a common challenge in engineering. Damping of blood pressure pulsation results from a nonlinear viscoelastic behavior of the artery walls which represent a complex composite material. The transfer of the underlying functional principle could lead to an improvement of existing technical solutions and be used to develop novel biomimetic damping solutions. To enhance efficiency or thrust of man-made fluid transportation systems, research on jet propulsion in biology has shown that a pulsed jet can be tuned to either maximize thrust or efficiency. The underlying principle has already been transferred into biomimetic applications in open channel water systems. Overall there is a high potential to learn from nature in order to improve pumping systems for challenges like the reduction of pressure pulsations, increase of jet propulsion efficiency or the reduction of wear.


Assuntos
Materiais Biomiméticos/síntese química , Biomimética/instrumentação , Coração/fisiologia , Bombas de Infusão , Reologia/instrumentação , Animais , Biomimética/métodos , Desenho de Equipamento , Análise de Falha de Equipamento , Humanos , Reologia/métodos
3.
Bioinspir Biomim ; 6(4): 045001, 2011 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-22126741

RESUMO

This paper presents a novel biomimetic approach to the kinematics of deployable systems for architectural purposes. Elastic deformation of the entire structure replaces the need for local hinges. This change becomes possible by using fibre-reinforced polymers (FRP) such as glass fibre reinforced polymer (GFRP) that can combine high tensile strength with low bending stiffness, thus offering a large range of calibrated elastic deformations. The employment of elasticity within a structure facilitates not only the generation of complex geometries, but also takes the design space a step further by creating elastic kinetic structures, here referred to as pliable structures. In this paper, the authors give an insight into the abstraction strategies used to derive elastic kinetics from plants, which show a clear interrelation of form, actuation and kinematics. Thereby, the focus will be on form-finding and simulation methods which have been adopted to generate a biomimetic principle which is patented under the name Flectofin®. This bio inspired hingeless flapping device is inspired by the valvular pollination mechanism that was derived and abstracted from the kinematics found in the Bird-Of-Paradise flower (Strelitzia reginae, Strelitziaceae).


Assuntos
Materiais Biomiméticos , Materiais de Construção , Decoração de Interiores e Mobiliário/instrumentação , Modelos Biológicos , Polinização/fisiologia , Strelitziaceae/fisiologia , Simulação por Computador , Desenho Assistido por Computador , Módulo de Elasticidade/fisiologia , Desenho de Equipamento , Análise de Falha de Equipamento
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