Using Discrete Multiphysics Modelling to Assess the Effect of Calcification on Hemodynamic and Mechanical Deformation of Aortic Valve
Abstract
:1. Introduction
2. Discrete Multiphysics
2.1. Smooth Particle Hydrodynamics
2.2. Lattice Spring Model (LSM)
3. The Model
4. Results and Discussion
4.1. Stages of Calcification
4.2. Stress Distribution on the Membrane
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Appendix A
- Creation or importation of the CAD geometry
- Writing of the data file
- Generation of the bond and coefficient files
- Implementation of the input file
References
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Parameters | Values |
---|---|
Number of SPH wall particle | 56,660 |
Number of SPH fluid particle | 342,358 |
Number of SPH leaflets | 19,725 |
Mass of each particle (fluid) | 6.7 × 10−8 kg |
Mass of each particle (Solid) | 14 × 10−8 kg |
Smoothing length h | 1.0 × 10−3 m |
Length L | 6 × 10−2 m |
Diameter D | 2 × 10−2 m |
Particle spacing l | 0.4 × 10−3 m |
Fluid Density ρ | 1060 kg m−3 |
Frequency f | 1.167 s−1 (70 beats min−1) |
Pseudo-gravity G0 | 400 m s−2 |
Viscosity μ | 0.003 Pa∙s |
Elastic constant k | 10−14,500 N m−1 |
Sound speed c0 | 16 m s−1 |
Time step Δt | 1 × 10−6 s |
Calcification | Maximum Orifice Diameter [cm] | Mean Flow × 10−4 [m3s−1] | Average Stress [kPa] |
---|---|---|---|
Normal (γ = 0.0) | 1.81 | 5.72 | 10.60 |
Mild (γ = 2.0) | 1.41 | 3.21 | 91.68 |
Moderate (γ = 2.7) | 1.29 | 2.17 | 181.61 |
Severe (γ = 3.1) | 1.17 | 1.58 | 324.27 |
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Mohammed, A.M.; Ariane, M.; Alexiadis, A. Using Discrete Multiphysics Modelling to Assess the Effect of Calcification on Hemodynamic and Mechanical Deformation of Aortic Valve. ChemEngineering 2020, 4, 48. https://doi.org/10.3390/chemengineering4030048
Mohammed AM, Ariane M, Alexiadis A. Using Discrete Multiphysics Modelling to Assess the Effect of Calcification on Hemodynamic and Mechanical Deformation of Aortic Valve. ChemEngineering. 2020; 4(3):48. https://doi.org/10.3390/chemengineering4030048
Chicago/Turabian StyleMohammed, Adamu Musa, Mostapha Ariane, and Alessio Alexiadis. 2020. "Using Discrete Multiphysics Modelling to Assess the Effect of Calcification on Hemodynamic and Mechanical Deformation of Aortic Valve" ChemEngineering 4, no. 3: 48. https://doi.org/10.3390/chemengineering4030048
APA StyleMohammed, A. M., Ariane, M., & Alexiadis, A. (2020). Using Discrete Multiphysics Modelling to Assess the Effect of Calcification on Hemodynamic and Mechanical Deformation of Aortic Valve. ChemEngineering, 4(3), 48. https://doi.org/10.3390/chemengineering4030048