This method explains the Extended Classical Mechanics (ECM) relationship between frequency, energy, and mass in a simplified way. In ECM, these three quantities are not independent; instead, they represent different expressions of the same underlying physical state. At the most basic level, a system is described by a total frequency (f₀), which is linked to the total potential energy of the system (PEᴇᴄᴍ) and the total matter mass (Mᴍ). This represents the full, unmodified physical state of the system. Total state: f₀ ↔ PEᴇᴄᴍ ↔ Mᴍ When the system evolves or interacts dynamically, part of its energy shifts from potential form into kinetic form. This redistribution creates two separate components: Effective component: the remaining structured part of the system (baseline state) Redistributed component: the dynamic part associated with motion and change Effective state: fᴏʙꜱᴇʀᴠᴇᴅ ↔ (PEᴇᴄᴍ − ΔPEᴇᴄᴍ) ↔ Mᵉᶠᶠ Dynamic change: Δf ↔ ΔKEᴇᴄᴍ ↔ Mᵃᵖᵖ In this interpretation, the observed frequency is what remains after internal redistribution has occurred, while the difference (Δf) represents the dynamic part of the system associated with kinetic energy and apparent mass effects. The total system remains conserved, meaning that the sum of effective structure and dynamic redistribution always reconstructs the original state: Mᴍ = Mᵉᶠᶠ + Mᵃᵖᵖ In ECM, this same structure applies across different physical regimes (pre-manifestation, Planck-scale transition, and source–observer separation), but the underlying principle remains unchanged: frequency shifts represent energy redistribution, and energy redistribution corresponds to changes in effective mass structure. Overall, ECM treats frequency, energy, and mass as three interconnected expressions of a single evolving physical system, where motion and gravitational variation naturally produce redistribution between effective and dynamic components.
Soumendra Nath Thakur (Sat,) studied this question.