This paper proceeds from the three physical laws established in *The Physical Laws of Life's Origin*——Neutralization Destiny, Memory Inertia, and Electrochemical Lift——to conduct a rigorous physical derivation of the heart as a key organ of carbon-based life. When a vesicle aggregate forms, the charging of each vesicle points outward——that is the direction of energy injection; the discharging of each vesicle points inward——that is the geometric destination of dissipation. The point at which all discharging arrows converge passively becomes the dissipation source. The high-frequency charge convergence at the dissipation source, synchronized through inertial screening, forms the central pulse——the dissipation source becomes the source of rhythm. The heart executes the function of a pump, while its very existence is an inherent dissipative necessity built into the moment of energy injection, enforced by physical law upon the carbon-based multicellular system. This paper proceeds from the three laws to derive the passive prefiguration of the heart, the formation of the central pulse, the physical mechanism of sinoatrial node pacing, the electrical essence of the cardiac cycle, the directional topological consequence of arteries and veins, the neutralization-destiny dynamics of heart failure, and the inertial decay curve of the aging heart. All derivations are completed within the unified framework of the Life Force Equation Ψ = E + M − N. The derivations of this paper are in precise agreement with three classes of evidence that exist independently in the literature without reliance on the theoretical framework of this paper——the timeline of embryonic development, the physical mutation of the circulatory transition at birth, and the allometric scaling laws across species. On this basis, this paper further describes the physical division of labor that the heart and the brain constitute within the carbon-based power grid. To eliminate any residual doubt, this paper designs test protocols, executable under current technical conditions, for each deduction.
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Menggang Yu
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Menggang Yu (Tue,) studied this question.
www.synapsesocial.com/papers/69fbe2f2164b5133a91a2413 — DOI: https://doi.org/10.5281/zenodo.20039343