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Evolving laws and cosmological energy

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arxiv 2306.08390 v2 pith:JLHK5VI3 submitted 2023-06-14 hep-th astro-ph.COgr-qchep-ph

classification hep-thastro-ph.COgr-qchep-ph
keywords mattercosmologicalenergygravitationallawslightotherspeed
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abstract

We couple the issue of evolution in the laws of physics with that of violations of energy conservation. We define evolution in terms of time variables canonically dual to ``constants'' (such as $\Lambda$, the Planck mass or the gravitational coupling), mimicking a procedure associated with one formulation of unimodular gravity. We then introduce variability via a dependence of {\it other} fundamental ``constants'' on these clocks. Although this is not needed, sharper results are obtained if this procedure violates local Lorentz invariance, which we define in the spirit of Horava-Lifshitz theories (modifying a $3+1$ split action, so that a Lorentz invariant 4D reassembly is no longer possible). We find that variability in the ``laws of physics'' generically leads to violations of energy conservation if either a matter parameter varies as a function of a gravitational clock, or a gravity parameter depends on a matter clock, with the other combinations sterile. We illustrate this with a variety of clocks (associated with matter, the speed of light, the Ricci scalar, etc) and parameters (mainly the gravitational and matter speed of light, but also the cosmological constant). We can accommodate in this construction (and improve) several early Varying Speed of Light solutions to the flatness and cosmological constant problem, allowing for variability effects related to the spatial curvature and $\Lambda$ to cause creation of radiation and a Hot Big Bang. But we can also go well beyond, for example modelling signature change by a change in the sign of $c^2$, thereby obtaining a {\it classical} realization of the Hartle-Hawking no-boundary proposal, among other developments.

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Cited by 2 Pith papers

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    A GR Hamiltonian deformation produces an anisotropic fluid that cannot flatten rotation curves, while Horava-Lifshitz produces the right dark-matter scaling only for an imposed power-law LTB ansatz with tight paramete...

  2. How to make a Universe

    gr-qc 2025-01 conditional novelty 5.0 of 10

    A canonical formalism links changing constants of nature to matter production, and an absorbing Markov chain model suggests fixed, diffeomorphism-invariant laws are the absorbing state that preserves the matter gained.

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