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1.
Nat Commun ; 15(1): 4337, 2024 May 21.
Artículo en Inglés | MEDLINE | ID: mdl-38773081

RESUMEN

As natural predators, owls fly with astonishing stealth due to the serrated feather morphology that produces advantageous flow characteristics. Traditionally, these serrations are tailored for airfoil edges with simple two-dimensional patterns, limiting their effect on noise reduction while negotiating tradeoffs in aerodynamic performance. Conversely, the intricately structured wings of cicadas have evolved for effective flapping, presenting a potential blueprint for alleviating these aerodynamic limitations. In this study, we formulate a synergistic design strategy that harmonizes noise suppression with aerodynamic efficiency by integrating the geometrical attributes of owl feathers and cicada forewings, culminating in a three-dimensional sinusoidal serration propeller topology that facilitates both silent and efficient flight. Experimental results show that our design yields a reduction in overall sound pressure levels by up to 5.5 dB and an increase in propulsive efficiency by over 20% compared to the current industry benchmark. Computational fluid dynamics simulations validate the efficacy of the bioinspired design in augmenting surface vorticity and suppressing noise generation across various flow regimes. This topology can advance the multifunctionality of aerodynamic surfaces for the development of quieter and more energy-saving aerial vehicles.


Asunto(s)
Plumas , Vuelo Animal , Hemípteros , Estrigiformes , Alas de Animales , Animales , Vuelo Animal/fisiología , Alas de Animales/anatomía & histología , Alas de Animales/fisiología , Hemípteros/fisiología , Hemípteros/anatomía & histología , Estrigiformes/fisiología , Estrigiformes/anatomía & histología , Hidrodinámica , Simulación por Computador , Fenómenos Biomecánicos
2.
Electrophoresis ; 41(1-2): 131-136, 2020 01.
Artículo en Inglés | MEDLINE | ID: mdl-31677171

RESUMEN

This paper describes the use of aluminum and zinc as anodic materials for a battery employing nickel (II) oxide (NiO) as cathode. Comparison of both materials resulted in the development of a compact, cost effective, and easy to use primary NiO/Al battery employing an alkaline electrolyte. The system features electrodes composed of powder forms of the active materials on modified paper substrates that are contained in a simple multilayer design utilizing thin laminated plastic materials to provide structure and flexibility to the battery as well as a paper separator. Various concentrations of potassium hydroxide (KOH) electrolyte were examined and maximum performance was observed at 6 M KOH. A maximum current density and power density of 1.94 mA/cm2 and 1 mW/cm2 , respectively was achieved. This user-friendly device was able to produce a maximum capacity of 2.33 mAh/g when 2 mA/g was applied. This work demonstrates the viability of a paper-based battery featuring powder electrodes as a possible power source for microelectronic devices.


Asunto(s)
Aluminio/química , Suministros de Energía Eléctrica , Electrodos , Níquel/química , Electrólitos/química , Diseño de Equipo , Hidróxidos/química , Papel , Compuestos de Potasio/química , Polvos , Zinc/química
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