Abstract

We present what is relevant to squeezed states of initial space time and how that affects both the composition of relic GW, and also gravitons. A side issue to consider is if gravitons can be configured as semi classical particles, which is akin to the Pilot model of Quantum Mechanics as embedded in a larger non linear deterministic background.

Highlights

  • We present what is relevant to squeezed states of initial space time and how that affects both the composition of relic GW, and gravitons

  • A side issue to consider is if gravitons can be configured as semi classical “particles”, which is akin to the Pilot model of Quantum Mechanics as embedded in a larger non linear “deterministic” background

  • Gravitons may be de composed via an instanton-anti instanton structure. i.e. that the structure of SO(4) gauge theory is initially broken due to the introduction of vacuum energy [1], so after a second-order phase transition, the instanton-anti-instanton structure of relic gravitons is reconstituted

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Summary

Introduction

Post Newtonian approximations to General relativity have given physicists a view as to how and why inflationary dynamics can be measured via deviation from simple gravitational potentials. The closer the emission times for production of the HFGW and Gravitons are to the time of the initial nucleation of vacuum energy of the big bang, the closer we can be to experimentally using Equation (4) above as to give experimental criteria for stating to very high accuracy the following More exactly this will lead to the following relationship which will be used to ascertain a value for the mass of a graviton. The author asserts that Equation (10) can only be realistically be tested and vetted for sub atomic systems, and that with the massive Compton wavelength specified by Clifford Will cannot be done with low frequency gravitational waves.a realistic bounding of the graviton mass would permit a far more precise calibration of Equation (A11) as given by Pisen Chen in his 1994 article [74]

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15. Acknowledgements
16. References
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