Advanced hemodynamics · Simulator

PV loop simulator

An interactive pressure-volume loop built from first principles — explore how myocardial properties and arterial load shape blood pressure and ejection fraction.

About the model

Deriving the End-Systolic and End-Diastolic Pressure-Volume Relationships

Geometric assumptions. The left ventricle is approximated as a thick-walled sphere that undergoes centrosymmetric deformation, meaning it only experiences radial displacement during expansion and contraction. The myocardium is assumed to be incompressible, ensuring the tissue volume remains constant during these deformations. Geometrical variables, such as radius and wall thickness, are mathematically normalised using the inner radius and ventricular volume of the baseline reference geometry.

Mechanical work principle. The fundamental relationship between ventricular pressure and ventricular volume is established using the classical mechanics equation

P = dW / dV

where W represents the total elastic energy stored in the myocardium. This energy is calculated by integrating an energy density function over the spherical domain defined by the normalised wall thickness.

Deriving the EDPVR (passive mechanics). To characterise the relaxed, end-diastolic state, the model relies on an isotropic energy density function:

Ψ = (a / b) (eb(I1 − 3) − 1)

In this constitutive law, the mechanical parameters a and b represent the material stiffness of the cardiac tissue. Substituting this function into the mechanical work integral generates the EDPVR, isolating the passive pressure contributions of the myocardium.

Deriving the ESPVR (active mechanics). The contracted, end-systolic state combines passive tissue resistance with active force generation using an additive stress approach, through an active energy function:

Ψa = Ta2/2 − λ0λ)

where Ta is the maximum active stress and λ corresponds to sarcomere strain. Integrating this active contribution and adding it to the previously derived passive pressure equation yields the full ESPVR model.

Interactive Simulator

Adjust the myocardial properties (wall thickness, contractility, stiffness, fibrosis) and the hemodynamic load (preload, afterload, arterial compliance) to see the pressure-volume loop respond in real time, together with the resulting stroke volume, ejection fraction and blood pressure.

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