paper

Biological proper time and entropy-cost invariance in cardiac and respiratory lifespan scaling

arXiv:2606.15310

Abstract

Warm-blooded vertebrates accumulate approximately conserved numbers of physiological cycles over a natural lifetime: of order heartbeats and -- breaths. These regularities are not exact constants, but their persistence across orders-of-magnitude variation in body mass, metabolic power, physiological frequency, and lifespan suggests that biological time is not measured by chronological duration alone. We develop the Principle of Biological Time Equivalence (PBTE), a thermodynamic framework in which lifetime cycle count is determined by the ratio between total lifetime entropy production and the entropy cost of one physiological cycle. Starting from the open-system entropy balance , we define the entropy cost per cycle as , where is the entropy produced as the physiological clock advances by cycles. For an adult homeostatic regime, this gives the cycle-count relation , with , where is the lifetime cycle count, is total lifetime entropy production, and is the lifetime-averaged entropy cost per cycle. In the homeostatic limit, , so direct measurement of metabolic power , body temperature , and physiological frequency gives . PBTE converts the empirical lifetime-cycle invariants into entropy-cost invariants. Under Kleiber metabolic scaling and quarter-power physiological-frequency scaling, the mass-specific entropy cost satisfies , providing a thermodynamic interpretation of allometric mass cancellation.

32 pages