A hybrid boundary integral/slender body algorithm for modelling flagellar cell motility is presented. The algorithm uses the boundary element method to represent the 'wedge-shaped' head of the human sperm cell and a slender body theory representation of the flagellum. The head morphology is specified carefully due to its significant effect on the force and torque balance and hence movement of the free-swimming cell. The technique is used to investigate the mechanisms for the accumulation of human spermatozoa near surfaces. Sperm swimming in an infinite fluid, and near a plane boundary, with prescribed planar and three-dimensional flagellar waveforms are simulated. Both planar and 'elliptical helicoid' beating cells are predicted to accumula...
The flagellar beat is extracted from human sperm digital imaging microscopy and used to determine th...
Eukaryotic cell swimming is frequently actuated via the flagellum, which is a slender flexible appen...
Mammalian sperm cells manage locomotion by the movement of their flagella. Dynein motors inside the ...
A hybrid boundary integral/slender body algorithm for modelling flagellar cell motility is presented...
AbstractSperm are propelled by an actively beating tail, and display a wide variety of swimming patt...
Sperm are propelled by an actively beating tail, and display a wide variety of swimming patterns. Wh...
Recent mathematical fluid dynamics models have shed light into an outstanding problem in reproductiv...
Sperm are propelled by an actively beating tail, and display a wide variety of swimming patterns. Wh...
The detailed fluid mechanics of sperm propulsion are fundamental to our understanding of reproductio...
Remarkably, mammalian sperm maintain a substantive proportion of their progressive swimming speed wi...
The propulsion mechanics driving the movement of living cells constitutes one of the most incredible...
Sperm cells swim through the fluid by a periodic wave-like beating of their flagellum. At low R...
Sperm motility in the female genital tract is a key factor in the natural selection of competent cel...
Sperm cells undergo complex interactions with external environments, such as a solid-boundary, fluid...
The hydrodynamic basis for the accumulation of sper-matozoa at surfaces has been investigated. The g...
The flagellar beat is extracted from human sperm digital imaging microscopy and used to determine th...
Eukaryotic cell swimming is frequently actuated via the flagellum, which is a slender flexible appen...
Mammalian sperm cells manage locomotion by the movement of their flagella. Dynein motors inside the ...
A hybrid boundary integral/slender body algorithm for modelling flagellar cell motility is presented...
AbstractSperm are propelled by an actively beating tail, and display a wide variety of swimming patt...
Sperm are propelled by an actively beating tail, and display a wide variety of swimming patterns. Wh...
Recent mathematical fluid dynamics models have shed light into an outstanding problem in reproductiv...
Sperm are propelled by an actively beating tail, and display a wide variety of swimming patterns. Wh...
The detailed fluid mechanics of sperm propulsion are fundamental to our understanding of reproductio...
Remarkably, mammalian sperm maintain a substantive proportion of their progressive swimming speed wi...
The propulsion mechanics driving the movement of living cells constitutes one of the most incredible...
Sperm cells swim through the fluid by a periodic wave-like beating of their flagellum. At low R...
Sperm motility in the female genital tract is a key factor in the natural selection of competent cel...
Sperm cells undergo complex interactions with external environments, such as a solid-boundary, fluid...
The hydrodynamic basis for the accumulation of sper-matozoa at surfaces has been investigated. The g...
The flagellar beat is extracted from human sperm digital imaging microscopy and used to determine th...
Eukaryotic cell swimming is frequently actuated via the flagellum, which is a slender flexible appen...
Mammalian sperm cells manage locomotion by the movement of their flagella. Dynein motors inside the ...