This Working Paper presents version 0.4 of the Fluid Cosmic Crystal Theory (FCCT), proposing a paradigm shift in spatial mechanics. The FCCT models the cosmic vacuum not as an empty void, but as a continuous, thermodynamically active, viscoelastic medium characterized by minimal impedance and structural elasticity. This manuscript establishes the physical and thermodynamic foundations of this substrate. Within this framework, it is postulated that space operates as a high-coherence lattice where energy is conserved as data density, and mechanical interactions are governed by the principles of quantum hydrodynamics. Core physical parameters defined in FCCT v0.4 include: Substrate Mechanics: The vacuum exhibits properties analogous to surface tension and phase-coherence, functioning as a continuous transmission medium rather than a passive continuum. Gravitational Kinematics: Gravitational interaction is recontextualized as a macroscopic, emergent property of fluid dynamics. Massive nodes (e.g., planetary bodies) do not exert "action at a distance"; instead, their transit through the substrate generates pressure differentials, phase friction, and localized suction wakes. Thermodynamic Reconfiguration: Classical thermodynamic laws are preserved but structurally reframed. Entropy is formally quantified as the localized loss of phase coherence within the fluid lattice, driven by the kinetic displacement of inertial mass. The primary objective of this v0.4 release is to transition cosmological modeling away from frameworks with excessive formal degrees of freedom, moving toward a highly restrictive, mechanistic, and empirically falsifiable system. Rigorous analytical scrutiny, formal stress-testing of the thermodynamic implications, and evaluation of the kinematic parameters by the theoretical physics, cosmology, and materials engineering communities are highly encouraged.
Boris Calderon Martinez (Sun,) studied this question.