A physical V=N/D model of CPR proposes that it externally reimplants a rhythmic density wave to reform the density gradient, explaining the critical role of rhythm and AED synergy in cardiac arrest.
This theoretical physical model conceptualizes CPR as a forced density wave restart, providing a framework for developing resonance-optimized resuscitation protocols.
Cardiac arrest represents collapse of the density gradient driving spiral cardiac motion (D→∞, V→0). CPR externally reimplants a rhythmic density wave, forcing ∇N to reform. This model explains why rhythm is critical (resonance), why excessive force fails (gradient homogenization), why AED synergizes (ionic gradient restoration), and why time decay is irreversible (substrate dissolution). Opens path to resonance-optimized resuscitation protocols.
Yoshimitsu Katayama (Mon,) conducted a other in Cardiac arrest. Cardiopulmonary Resuscitation (CPR) was evaluated. A physical V=N/D model of CPR proposes that it externally reimplants a rhythmic density wave to reform the density gradient, explaining the critical role of rhythm and AED synergy in cardiac arrest.