In this paper, the self-similar functional circuit models of arteries are proposed for bioinspired hemodynamic materials design. Based on the mechanical-electrical analogous method, the circuit model can be utilized to mimic the blood flow of arteries. The theoretical mechanism to quantitatively simulate realistic blood flow is developed by establishing a fractal circuit network with an infinite number of electrical components. We have found that the fractal admittance operator obtained from the minimum repeating unit of the fractal circuit can simply and directly determine the blood-flow regulation mechanism. Furthermore, according to the operator algebra, the fractal admittance operator on the aorta can be represented by Gaussian-type con...
We describe an innovative methodology combining Additive Layer Manufacturing and indirect replicatio...
This paper presents a mathematical model of biological structures in relation to coronary arteries w...
It is currently known that a number of human vascular systems have a fractal geometry. Since we have...
The fractal tree-like structures can be divided into three classes, according to the value of the si...
The aim of the present work is to address the closure problem for hemodynamic simulations by develop...
A preliminary study demonstrated the existence of a fractal structure for perforator arterial vessel...
Blood perfusion is an important index for the function of the cardiovascular system and it can be in...
Fractal properties have been demonstrated in literature for several human vascular systems. In the f...
The human body contains approximately 20 billion blood vessels, which transport nutrients, oxygen, i...
Self-similar electric circuits that represent three-dimensional models of different physical process...
modeling of physiological processes in vasculatures requires an ac-curate representation of network ...
Cardiac tissue is characterized by structural and cellular heterogeneities that play an important ro...
The structure of different systems, aiming to supply a volume of definite tissue with a specific flu...
Fractal geometry has become very useful in the understanding of many phenomena in various fields suc...
Inflammation and the immune response in atherosclerosis are complex processes involving local hemody...
We describe an innovative methodology combining Additive Layer Manufacturing and indirect replicatio...
This paper presents a mathematical model of biological structures in relation to coronary arteries w...
It is currently known that a number of human vascular systems have a fractal geometry. Since we have...
The fractal tree-like structures can be divided into three classes, according to the value of the si...
The aim of the present work is to address the closure problem for hemodynamic simulations by develop...
A preliminary study demonstrated the existence of a fractal structure for perforator arterial vessel...
Blood perfusion is an important index for the function of the cardiovascular system and it can be in...
Fractal properties have been demonstrated in literature for several human vascular systems. In the f...
The human body contains approximately 20 billion blood vessels, which transport nutrients, oxygen, i...
Self-similar electric circuits that represent three-dimensional models of different physical process...
modeling of physiological processes in vasculatures requires an ac-curate representation of network ...
Cardiac tissue is characterized by structural and cellular heterogeneities that play an important ro...
The structure of different systems, aiming to supply a volume of definite tissue with a specific flu...
Fractal geometry has become very useful in the understanding of many phenomena in various fields suc...
Inflammation and the immune response in atherosclerosis are complex processes involving local hemody...
We describe an innovative methodology combining Additive Layer Manufacturing and indirect replicatio...
This paper presents a mathematical model of biological structures in relation to coronary arteries w...
It is currently known that a number of human vascular systems have a fractal geometry. Since we have...