Insect wings are formed by intricate combinations of flexible membranes and rigid veins; such a structure enables excellent flight performance, adaptability to aerodynamic forces, and biological functions. Comprehensive understanding of the interplay between wing patterning and flight dynamics has however not been achieved yet due to enormous variability of natural patterns and the extreme complexity of the modeling wing-air interactions. Therefore, the design of a pattern for artificial flexible wings is challenging. In contrast to other studies mimicking biological patterns of insect wings, we propose usage of metamaterials principles to enable controllable dynamics, and machine-learning techniques to solve a related multi-parameter desig...
Flexible deformation of the insect wing has been proven to be beneficial to lift generation and powe...
Abstract Insects have acquired various types of wings over their course of evolution and have become...
Considering a modern approach to design, one of the viable options for developing innovative project...
Insect wings are formed by intricate combinations of flexible membranes and rigid veins; such a stru...
Insects flapping flight has been inspiring generations of scientists to understand its peculiarities...
Insect wings are an outstanding example of how a proper interplay of rigid and flexible materials en...
The unmatched performance of insect flight is a motivation for bio-inspired designs of synthetic win...
Mimicking insect flights were used to design and develop new engineering materials. Although extensi...
Over the last decades, there has been great interest in understanding the aerodynamics of flapping f...
This paper addresses the design of the elastic structure of artificial wings to optimize their dynam...
Recent advances in smart materials have allowed for the design of low-profile actuators suitable for...
This paper reports our recent progresses on the concep-tion of polymer-based flapping-wing robotic i...
The biomimetic micro air vehicles (BMAV) are unmanned, micro-scaled aircraft that are bio-inspired f...
paper SMASIS2017-3770, V001T06A005, 10 pagesInternational audienceThis work is based on the original...
Flexible deformation of the insect wing has been proven to be beneficial to lift generation and powe...
Abstract Insects have acquired various types of wings over their course of evolution and have become...
Considering a modern approach to design, one of the viable options for developing innovative project...
Insect wings are formed by intricate combinations of flexible membranes and rigid veins; such a stru...
Insects flapping flight has been inspiring generations of scientists to understand its peculiarities...
Insect wings are an outstanding example of how a proper interplay of rigid and flexible materials en...
The unmatched performance of insect flight is a motivation for bio-inspired designs of synthetic win...
Mimicking insect flights were used to design and develop new engineering materials. Although extensi...
Over the last decades, there has been great interest in understanding the aerodynamics of flapping f...
This paper addresses the design of the elastic structure of artificial wings to optimize their dynam...
Recent advances in smart materials have allowed for the design of low-profile actuators suitable for...
This paper reports our recent progresses on the concep-tion of polymer-based flapping-wing robotic i...
The biomimetic micro air vehicles (BMAV) are unmanned, micro-scaled aircraft that are bio-inspired f...
paper SMASIS2017-3770, V001T06A005, 10 pagesInternational audienceThis work is based on the original...
Flexible deformation of the insect wing has been proven to be beneficial to lift generation and powe...
Abstract Insects have acquired various types of wings over their course of evolution and have become...
Considering a modern approach to design, one of the viable options for developing innovative project...