SummaryUsing echo-dynamography, systolic blood flow structure in the ascending aorta and aortic arch was investigated in 10 healthy volunteers. The blood flow structure was analyzed based on the two-dimensional (2D) and 1D velocity vector distributions, changing acceleration of flow direction (CAFD), vorticity distribution, and Doppler pressure distribution. To justify the results obtained in humans, in vitro experiments were done using straight and curved tube models of 20mm diameter.The distribution of the CAFD showed a spiral staircase pattern along the flow axis line. In addition, the changes in the velocity profile in the short-axis direction, 2D distribution of the vorticity, and velocity vector distribution on the aortic cross-sectio...
Introduction: The issue on the mode of blood motion in the bloodstream, where the arterial and venou...
Abstract Background The axial motion of aortic root (AR) due to ventricular traction was previously ...
Atherosclerotic lesions are non-uniformly distributed at arterial bends and branch sites, suggesting...
SummaryUsing echo-dynamography, systolic blood flow structure in the ascending aorta and aortic arch...
SummaryUsing our “echo-dynamography”, blood flow structure and flow dynamics during ventricular syst...
AbstractThis study of aortic root flow velocity profiles suggests that the flow velocity pattern is ...
A three-dimensional, pulsatile flow in a realistic phantom of a human ascending aorta with compliant...
This study aims to investigate turbulence inside a model of the human ascending aorta as a function...
The presence of a spiral arterial blood flow pattern in humans has been widely accepted. It is belie...
The human aorta is often affected by many cardiovascular diseases, including atherosclerosis, aneur...
The spiral component of blood flow has both beneficial and detrimental effects in human circulatory ...
The advent of new non-invasive imaging modalities (i.e. 4D MRI, 3D Echocardiography) in recent years...
Arterial blood flow contains structures known to be associated with arterial wall pathologies (such ...
Blood flow in the aorta is helical, but most computational studies ignore the presence of secondary ...
Heart disease is the leading cause of death globally. Aorta is extremely important because of its cr...
Introduction: The issue on the mode of blood motion in the bloodstream, where the arterial and venou...
Abstract Background The axial motion of aortic root (AR) due to ventricular traction was previously ...
Atherosclerotic lesions are non-uniformly distributed at arterial bends and branch sites, suggesting...
SummaryUsing echo-dynamography, systolic blood flow structure in the ascending aorta and aortic arch...
SummaryUsing our “echo-dynamography”, blood flow structure and flow dynamics during ventricular syst...
AbstractThis study of aortic root flow velocity profiles suggests that the flow velocity pattern is ...
A three-dimensional, pulsatile flow in a realistic phantom of a human ascending aorta with compliant...
This study aims to investigate turbulence inside a model of the human ascending aorta as a function...
The presence of a spiral arterial blood flow pattern in humans has been widely accepted. It is belie...
The human aorta is often affected by many cardiovascular diseases, including atherosclerosis, aneur...
The spiral component of blood flow has both beneficial and detrimental effects in human circulatory ...
The advent of new non-invasive imaging modalities (i.e. 4D MRI, 3D Echocardiography) in recent years...
Arterial blood flow contains structures known to be associated with arterial wall pathologies (such ...
Blood flow in the aorta is helical, but most computational studies ignore the presence of secondary ...
Heart disease is the leading cause of death globally. Aorta is extremely important because of its cr...
Introduction: The issue on the mode of blood motion in the bloodstream, where the arterial and venou...
Abstract Background The axial motion of aortic root (AR) due to ventricular traction was previously ...
Atherosclerotic lesions are non-uniformly distributed at arterial bends and branch sites, suggesting...