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Titlebook: Bio-mechanisms of Swimming and Flying; Naomi Kato,Joseph Ayers,Hirohisa Morikawa Conference proceedings 2004 Springer Japan 2004 behaviora

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期刊全稱Bio-mechanisms of Swimming and Flying
影響因子2023Naomi Kato,Joseph Ayers,Hirohisa Morikawa
視頻videohttp://file.papertrans.cn/187/186405/186405.mp4
發(fā)行地址Covers wide range of animals from flagellated microorganisms to marine mammals.Emphasizes recent new research results on natural autonomous systems and locomotion mechanisms of animals in swimming and
圖書封面Titlebook: Bio-mechanisms of Swimming and Flying;  Naomi Kato,Joseph Ayers,Hirohisa Morikawa Conference proceedings 2004 Springer Japan 2004 behaviora
影響因子Tens of thousands of different animal species live on this planet, having survived for millions of years through adaptation and evolution, which has given them a vast variety of structures and functions. Biomechanical studies of animals swimming and flying can aid understanding of the mechanisms that enable them to move effectively and efficiently in fluids . Based on such understandings and analyses, we can aim to develop environmentally friendly machines that emulate these natu- ral movements. The Earth Summit in Rio de Janeiro in 1992 agreed major treaties on biological diversity, addressing the comb ined issues of environmental protection and fair and equitable economic development. With regard to coastal environments, increasing biological diversity has begun to play an important role in reestablishing stable and sustainable ecosystems. This approach has begun to influence research into the behavior of aquatic species, as an understanding of the history of an individual aquatic species is indispensable in constructing an environmental assessment mod- el that includes the physical, chemical, and biological effects of that species . From an engineering viewpoint, studying nature
Pindex Conference proceedings 2004
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,Thrust—Force Characteristics of Enlarged Propulsion Mechanisms Modeled on Eukaryotic Flagellar Move mechanisms modeled on eukaryotic flagellar and ciliary movements. For the propulsion mechanisms modeled on eukaryotic flagellar movement, we used the model of the active sliding of microtubules in eukaryotic flagella: active sliding between two rows of electromagnets on flexible beams corresponding
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Resonance Model of the Indirect Flight Mechanism,e “direct” muscles) and the other has an indirect flight mechanism (wing driven by the “indirect” muscles). The latter is known as “constant wing vibration”. It is different from the asynchronous flight (wing driving) muscular contraction-relaxation frequency, although the precise mechanism is still
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On Flow Separation Control By Means of Flapping Wings, low Reynolds numbers, on the order of 10., characterized by laminar flow, often where separation is unavoidable. The first, a flapping-wing propelled micro air vehicle (MAV), consists of a biplane pair of wings flapping in counterphase located downstream of a larger stationary wing, and it is shown
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