scanning electron micrographs Search Results


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The Company of Biologists scanning electron micrograph
Biological hairs. ( a ) Scanning electron <t>micrograph</t> montage of a trigger hair of the Venus flytrap. Reprinted with permission from , copyright © 1970, John Wiley and Sons. ( b,c ) Finite-element simulation of Arabidopsis trichomes with differing material properties. Warmer colours indicate higher strain energy density. Reprinted with permission from , copyright © 2016 American Chemical Society. ( d ) From top to bottom: harbour seal ( Phoca vitulina ) whisker dorsal view, harbour seal whisker frontal view, California sea lion ( Zalophus californianus ) whiskers frontal view, California sea lion whisker dorsal view. Reprinted with permission from , copyright © 2010 Company of Biologists. ( e,f ) Solutions of a mathematical model of a rat whisker. Reprinted from under Creative Commons Attribution License. ( g,h ) Environmental scanning electron microscope images of the cactus awn ( Syntrichia caninervis ) with water droplets forming ( g ) and dry ( h ). Boxes in ( g ) indicate areas of high barb density. Reprinted with permission from , copyright © 2016 Springer-Nature.
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Dennis Kunkel Microscopy scanning electron micrograph of salmonella enteritidis
Biological hairs. ( a ) Scanning electron <t>micrograph</t> montage of a trigger hair of the Venus flytrap. Reprinted with permission from , copyright © 1970, John Wiley and Sons. ( b,c ) Finite-element simulation of Arabidopsis trichomes with differing material properties. Warmer colours indicate higher strain energy density. Reprinted with permission from , copyright © 2016 American Chemical Society. ( d ) From top to bottom: harbour seal ( Phoca vitulina ) whisker dorsal view, harbour seal whisker frontal view, California sea lion ( Zalophus californianus ) whiskers frontal view, California sea lion whisker dorsal view. Reprinted with permission from , copyright © 2010 Company of Biologists. ( e,f ) Solutions of a mathematical model of a rat whisker. Reprinted from under Creative Commons Attribution License. ( g,h ) Environmental scanning electron microscope images of the cactus awn ( Syntrichia caninervis ) with water droplets forming ( g ) and dry ( h ). Boxes in ( g ) indicate areas of high barb density. Reprinted with permission from , copyright © 2016 Springer-Nature.
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Biological hairs. ( a ) Scanning electron <t>micrograph</t> montage of a trigger hair of the Venus flytrap. Reprinted with permission from , copyright © 1970, John Wiley and Sons. ( b,c ) Finite-element simulation of Arabidopsis trichomes with differing material properties. Warmer colours indicate higher strain energy density. Reprinted with permission from , copyright © 2016 American Chemical Society. ( d ) From top to bottom: harbour seal ( Phoca vitulina ) whisker dorsal view, harbour seal whisker frontal view, California sea lion ( Zalophus californianus ) whiskers frontal view, California sea lion whisker dorsal view. Reprinted with permission from , copyright © 2010 Company of Biologists. ( e,f ) Solutions of a mathematical model of a rat whisker. Reprinted from under Creative Commons Attribution License. ( g,h ) Environmental scanning electron microscope images of the cactus awn ( Syntrichia caninervis ) with water droplets forming ( g ) and dry ( h ). Boxes in ( g ) indicate areas of high barb density. Reprinted with permission from , copyright © 2016 Springer-Nature.
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Biological hairs. ( a ) Scanning electron <t>micrograph</t> montage of a trigger hair of the Venus flytrap. Reprinted with permission from , copyright © 1970, John Wiley and Sons. ( b,c ) Finite-element simulation of Arabidopsis trichomes with differing material properties. Warmer colours indicate higher strain energy density. Reprinted with permission from , copyright © 2016 American Chemical Society. ( d ) From top to bottom: harbour seal ( Phoca vitulina ) whisker dorsal view, harbour seal whisker frontal view, California sea lion ( Zalophus californianus ) whiskers frontal view, California sea lion whisker dorsal view. Reprinted with permission from , copyright © 2010 Company of Biologists. ( e,f ) Solutions of a mathematical model of a rat whisker. Reprinted from under Creative Commons Attribution License. ( g,h ) Environmental scanning electron microscope images of the cactus awn ( Syntrichia caninervis ) with water droplets forming ( g ) and dry ( h ). Boxes in ( g ) indicate areas of high barb density. Reprinted with permission from , copyright © 2016 Springer-Nature.
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Toyo Tanso Co Ltd scanning electron micrographs of graphite polyhedral crystals
Biological hairs. ( a ) Scanning electron <t>micrograph</t> montage of a trigger hair of the Venus flytrap. Reprinted with permission from , copyright © 1970, John Wiley and Sons. ( b,c ) Finite-element simulation of Arabidopsis trichomes with differing material properties. Warmer colours indicate higher strain energy density. Reprinted with permission from , copyright © 2016 American Chemical Society. ( d ) From top to bottom: harbour seal ( Phoca vitulina ) whisker dorsal view, harbour seal whisker frontal view, California sea lion ( Zalophus californianus ) whiskers frontal view, California sea lion whisker dorsal view. Reprinted with permission from , copyright © 2010 Company of Biologists. ( e,f ) Solutions of a mathematical model of a rat whisker. Reprinted from under Creative Commons Attribution License. ( g,h ) Environmental scanning electron microscope images of the cactus awn ( Syntrichia caninervis ) with water droplets forming ( g ) and dry ( h ). Boxes in ( g ) indicate areas of high barb density. Reprinted with permission from , copyright © 2016 Springer-Nature.
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Biological hairs. ( a ) Scanning electron <t>micrograph</t> montage of a trigger hair of the Venus flytrap. Reprinted with permission from , copyright © 1970, John Wiley and Sons. ( b,c ) Finite-element simulation of Arabidopsis trichomes with differing material properties. Warmer colours indicate higher strain energy density. Reprinted with permission from , copyright © 2016 American Chemical Society. ( d ) From top to bottom: harbour seal ( Phoca vitulina ) whisker dorsal view, harbour seal whisker frontal view, California sea lion ( Zalophus californianus ) whiskers frontal view, California sea lion whisker dorsal view. Reprinted with permission from , copyright © 2010 Company of Biologists. ( e,f ) Solutions of a mathematical model of a rat whisker. Reprinted from under Creative Commons Attribution License. ( g,h ) Environmental scanning electron microscope images of the cactus awn ( Syntrichia caninervis ) with water droplets forming ( g ) and dry ( h ). Boxes in ( g ) indicate areas of high barb density. Reprinted with permission from , copyright © 2016 Springer-Nature.
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Biological hairs. ( a ) Scanning electron micrograph montage of a trigger hair of the Venus flytrap. Reprinted with permission from , copyright © 1970, John Wiley and Sons. ( b,c ) Finite-element simulation of Arabidopsis trichomes with differing material properties. Warmer colours indicate higher strain energy density. Reprinted with permission from , copyright © 2016 American Chemical Society. ( d ) From top to bottom: harbour seal ( Phoca vitulina ) whisker dorsal view, harbour seal whisker frontal view, California sea lion ( Zalophus californianus ) whiskers frontal view, California sea lion whisker dorsal view. Reprinted with permission from , copyright © 2010 Company of Biologists. ( e,f ) Solutions of a mathematical model of a rat whisker. Reprinted from under Creative Commons Attribution License. ( g,h ) Environmental scanning electron microscope images of the cactus awn ( Syntrichia caninervis ) with water droplets forming ( g ) and dry ( h ). Boxes in ( g ) indicate areas of high barb density. Reprinted with permission from , copyright © 2016 Springer-Nature.

Journal: Journal of the Royal Society Interface

Article Title: Design principles of hair-like structures as biological machines

doi: 10.1098/rsif.2018.0206

Figure Lengend Snippet: Biological hairs. ( a ) Scanning electron micrograph montage of a trigger hair of the Venus flytrap. Reprinted with permission from , copyright © 1970, John Wiley and Sons. ( b,c ) Finite-element simulation of Arabidopsis trichomes with differing material properties. Warmer colours indicate higher strain energy density. Reprinted with permission from , copyright © 2016 American Chemical Society. ( d ) From top to bottom: harbour seal ( Phoca vitulina ) whisker dorsal view, harbour seal whisker frontal view, California sea lion ( Zalophus californianus ) whiskers frontal view, California sea lion whisker dorsal view. Reprinted with permission from , copyright © 2010 Company of Biologists. ( e,f ) Solutions of a mathematical model of a rat whisker. Reprinted from under Creative Commons Attribution License. ( g,h ) Environmental scanning electron microscope images of the cactus awn ( Syntrichia caninervis ) with water droplets forming ( g ) and dry ( h ). Boxes in ( g ) indicate areas of high barb density. Reprinted with permission from , copyright © 2016 Springer-Nature.

Article Snippet: Reprinted with permission from [ ], copyright © 2006 The Company of Biologists. ( e ) Scanning electron micrograph of the setae on the ventral surface of a fly ( Chrysomya chani ) footpad.

Techniques: Whisker Assay, Microscopy

Arrays of hairs. ( a ) The change in leakiness produced by a change in the spacing of neighbouring cylinders. Leakiness is the ratio of the volume of fluid flow through the gap per unit of time to the volume of fluid flow at freestream velocity through an equivalent space without hairs. Different symbols represent cylinders operating at varying Re , according to cylinder diameter. Reprinted with permission from , copyright © 2001 John Wiley and Sons. ( b ) Scanning electron micrograph of Notonecta glauca plastron hairs, with part of a large seta in the background and small microtrichia (m) in the foreground. Reprinted with permission from , copyright © 2011 John Wiley and Sons. ( c ) Scanning electron micrographs of polyurethane hierarchical fibres with flat mushroom tips. Reprinted with permission from , copyright © 2016 American Chemical Society. ( d ) The relationship between density of contact points (N A ) and animal body mass. Reprinted with permission from , copyright © 2006 The Company of Biologists. ( e ) Scanning electron micrograph of the setae on the ventral surface of a fly ( Chrysomya chani ) footpad. Reprinted with permission from , copyright © 2006 Springer-Nature.

Journal: Journal of the Royal Society Interface

Article Title: Design principles of hair-like structures as biological machines

doi: 10.1098/rsif.2018.0206

Figure Lengend Snippet: Arrays of hairs. ( a ) The change in leakiness produced by a change in the spacing of neighbouring cylinders. Leakiness is the ratio of the volume of fluid flow through the gap per unit of time to the volume of fluid flow at freestream velocity through an equivalent space without hairs. Different symbols represent cylinders operating at varying Re , according to cylinder diameter. Reprinted with permission from , copyright © 2001 John Wiley and Sons. ( b ) Scanning electron micrograph of Notonecta glauca plastron hairs, with part of a large seta in the background and small microtrichia (m) in the foreground. Reprinted with permission from , copyright © 2011 John Wiley and Sons. ( c ) Scanning electron micrographs of polyurethane hierarchical fibres with flat mushroom tips. Reprinted with permission from , copyright © 2016 American Chemical Society. ( d ) The relationship between density of contact points (N A ) and animal body mass. Reprinted with permission from , copyright © 2006 The Company of Biologists. ( e ) Scanning electron micrograph of the setae on the ventral surface of a fly ( Chrysomya chani ) footpad. Reprinted with permission from , copyright © 2006 Springer-Nature.

Article Snippet: Reprinted with permission from [ ], copyright © 2006 The Company of Biologists. ( e ) Scanning electron micrograph of the setae on the ventral surface of a fly ( Chrysomya chani ) footpad.

Techniques: Produced