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This theoretical preprint explores whether the homogeneous geometric sector of a graviton-membrane network underlying emergent three-dimensional space could account for the cosmic acceleration conventionally attributed to dark energy. An effective geometric contribution is introduced into the Friedmann equations, with background energy conservation imposed. An illustrative one-parameter density law gives an effective equation of state w(a) = -1 + νa, where a is the cosmic scale factor and ν is a nonnegative parameter. The limit ν = 0 reproduces the cosmological-constant background. A canonical scalar-field surrogate is reconstructed to demonstrate the mathematical consistency of the assumed expansion history. The paper distinguishes this homogeneous contribution from the proposed massive, non-luminous membrane modes associated with dark matter. It also outlines tests using cosmic expansion, structure growth, and gravitational lensing. The model remains a phenomenological hypothesis. The assumed density law has not been derived from microscopic membrane dynamics, and no observational fit or membrane perturbation analysis is presented.
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Motoji Tajima (2026) studied this question.
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