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一种离散余弦变换电路的并发故障检测结构
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作者 陈禾 毛志刚 叶以正 《微处理机》 1999年第1期45-48,共4页
本文提出了一种离散余弦变换 (DCT)电路的并发故障检测结构。DCT采用 B.G.L ee算法蝶型结构实现 ,检测采用的方法是基于算法的并发故障检测容错方法。与其它并发故障检测容错结构相比 ,本文提出的并发故障检测
关键词 DCT电路 蝶型结构 并发故障检测 数字信号处理
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Multiple-dimensional micro/nano structural models for hydrophobicity of butterfly wing surfaces and coupling mechanism 被引量:6
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作者 房岩 孙刚 +1 位作者 毕雨涵 智亨 《Science Bulletin》 SCIE EI CAS CSCD 2015年第2期256-263,I0001,共9页
The microstructure, wettability and chemical composition of the butterfly wing surfaces were investigated by a scanning electron microscope, a contact angle meter and a Fourier transform infrared spectrometer. The mic... The microstructure, wettability and chemical composition of the butterfly wing surfaces were investigated by a scanning electron microscope, a contact angle meter and a Fourier transform infrared spectrometer. The micro/nano structural models for hydrophobicity of the butterfly wing surfaces were established on the basis of the Cassie equation. The hydrophobicity mechanisms were discussed from the perspective of biological coupling. The butterfly wing surfaces are composed of naturally hydrophobic material and possess micro/nano hierarchical structures, including primary structure (micrometric scales), secondary structure (nano longitudinal ridges and lateral bridges) and tertiary structure (nano stripes). The wing surfaces exhibit high hydrophobicity (contact angle 138°-157°) and low adhesion (sliding angle 1°-3°). The micromorphology and self-cleaning performance of the wing surfaces demonstrate remarkable anisotropism. The special complex wettability ascribes to a coupling effect of the material element and the structure element. In microdimension, the smaller the width and the bigger the spacing of the scale, the stronger the hydrophobicity of the wing surfaces. In nano-dimension, the smaller the height and the smaller the width and the bigger the spacing of the longitudinal ridge, the stronger the hydrophobicity of the wing surfaces. This work promotes our understanding of the hydrophobicity mechanism of bio-surfaces and may bring inspiration for biomimetic design and preparation of smart interfacial materials. 展开更多
关键词 Micro/nano structure Hydrophobicity model SUPERHYDROPHOBICITY ADHESION Biological coupling BUTTERFLY
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