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In this paper, we have considered a microscopic model based in the statistical mechanics for gravitons proposed for Viaggiu (2017). We obtain an analytical expression for the thermal capacity CV in gravitons. It is predicted in this research the behavior of the thermal capacity in the limit of high and low temperature. We have also obtained the fluctuations of energy for gravitons with the equation for CV . We found that the value of the fluctuation is the same that would be obtained in a gas with internal energy U=2NKBT when T→∞.
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34-40
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author
- Department of Basic Sciences, Maritime University of the Caribbean, Catia la Mar, Venezuela, mmf.umc@gmail.com
References
- [1] Reif, F., Statistical Physics, Berkeley physics course - Volume 5, McGraw-Hill Book Company (1975).
- [2] Nash, L. K., Elements of Classical and Statistical Thermodynamics, Addison Wesley Company, Inc, Readyng, Massachusetts (1970).
- [3] Mäkelä, J. (2011). Entropy, 13, 1324-1357.
- [4] Mäkelä, J. Arxiv: gr-qc/1212.1155v1
- [5] Malaver, M. (2012). International Journal of Research and Reviews in Applied Sciences, 11, 31-36
- [6] Malaver, M. (2013). World Applied Programming, 3, 61-67.
- [7] Malaver, M. (2013). Black Holes, Wormholes and Dark Energy Stars in General Relativity. Lambert Academic Publishing, Berlin. ISBN 978-3-659-34784-9
- [8] Viaggiu, S., Arxiv: gr-qc/1701.06193v1
- [9] Feynman, R. P., Morinigo, F. B., Wagner, W. G., Hatfield, B. (1995). Feynman Lectures on Gravitation. Addison-Wesley. ISBN 0-201-62734-5
- [10] Zee, A. (2003). Quantum Field Theory in a Nutshell. Princeton University Press. ISBN 0-691-01019-6
- [11] Randall, L. (2005). Warped Passages: Unraveling the Universe's Hidden Dimensions. Ecco Press. ISBN 0-06-053108-8
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article
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bwmeta1.element.psjd-222a6d37-dc1b-4e22-bf6d-dc07b485029a