Ukrainian Antarctic Journal

No 9 (2010): Ukrainian Antarctic Journal
Articles

KamLAND-experiment and soliton-like nuclear georeactor

V. D. Rusov
Odessa National Polytechnic University, Odessa
D. A. Litvinov
Odessa National Polytechnic University, Odessa
S. Cht. Mavrodiev
Institute for Nuclear Research and Nuclear Energy, BAS, Sofia
E. P. Linnik
Odessa National Polytechnic University, Odessa
V. N. Vashenko
State Ecological Academy for Second University-level Education and Management
T. N. Zeletsova
Odessa National Polytechnic University, Odessa
M. E. Beglaryan
Odessa National Polytechnic University, Odessa
V. A. Tarasov
Odessa National Polytechnic University, Odessa
I. V. Sharph
Odessa National Polytechnic University, Odessa
S. A. Chernegenko
Odessa National Polytechnic University, Odessa
V. P. Smolyar
Odessa National Polytechnic University, Odessa
P. A. Molchinikolov
Odessa National Polytechnic University, Odessa
K. K. Merkotan
Odessa National Polytechnic University, Odessa
S. A. Babiy
Odessa National Polytechnic University, Odessa
Published December 15, 2010
Keywords
  • KamLAND-experiment,
  • soliton-like nuclear georeactor,
  • geoantineutrino spectrum
How to Cite
Rusov, V. D., Litvinov, D. A., Mavrodiev, S. C., Linnik, E. P., Vashenko, V. N., Zeletsova, T. N., Beglaryan, M. E., Tarasov, V. A., Sharph, I. V., Chernegenko, S. A., Smolyar, V. P., Molchinikolov, P. A., Merkotan, K. K., & Babiy, S. A. (2010). KamLAND-experiment and soliton-like nuclear georeactor. Ukrainian Antarctic Journal, (9), 100-108. https://doi.org/10.33275/1727-7485.9.2010.397

Abstract

We give an alternative description of the new data produced in the KamLAND experiment, assuming the existence of a natural nuclear reactor on the boundary of the liquid and solid phases of the Earth's core. Analyzing the uncertainty of antineutrino spectrum of georeactor origin, we show that the theoretical (which takes into account the soliton-like nuclear georeactor with power about 20 TW) reactor antineutrino spectrum describes with good accuracy the new experimental KamLAND-data. At the same time the parameters of mixing ( Δm212 =2.5х10-5 eV2, tan2Θ12 =0.437) calculated within the framework of georeactor hypothesis are substantially closer to the data of solar flux SNO-experiment then the parameters of mixing obtained in KamLAND-experiment.

References

  1. Abe, S., Ebihara, T., Enomoto, S. et al. (2008). Precision Measurement of Neutrino Oscillation Parameters with KamLAND. Phys. Rev. Lett., 100, 221803.
  2. Aharmim, B., Ahmed, S.N., Amsbaugh et al. (2008). Independent Measurement of the Total Active 8B Solar Neutrino Flux Using an Array of 3He proportional Counters at the Sudbury Neutrino Observatory. Phys. Rev. Lett., 101, 111-301.
  3. Aleksankin, V.G. et al. (1989). Beta- and Antineutrino Nuclear Radiations. Moscow, Energoatomizdat.
  4. Anisichkin, V.F., Bezborodov, A.A., & Suslov, I.P. (2005). Chain fission of nuclides in on the Earth's core during billions years. Atomic Energy (Russian), 98, 370.
  5. Araki, T., Eguchi, K., Enomoto, S. et al. (2003). Measurement of Neutrino Oscillation with KamLAND: Evidence of Spectral Distortion. Phys. Rev. Lett., 94 081801.
  6. Araki, T., Enomoto, S., Furuno, K. et al. (2005). Exparimental investigation of geologically produced antineutrinos with KamLAND. Nature, 436, 499.
  7. Eguchi, K., Enomoto, S., Furuno, K. et al. (2003). First Results from KAmLAND: Evidence for Reactor Antineutrino Disappearance. Phys. Rev. Lett., 90, 021802.
  8. Feoktistov, L.P. (1989). Neutron-fissioning wave. Reports of Acad. Sci. of USSR, 309, 864.
  9. Feoktistov, L.P. (1998). From the Past towards the Future: from the Hopes of Bomb to the Safe Reactor. RFNC-ANRISPh. Russia, Snezhinsk.
  10. Krasnoshchekov, D.N., Kaazik, P.V., & Ovtchinnikov, V.M. (2005). Seismological evidence for mosaic structure of the surface of the Earth's core. Nature, 435, 483-487.
  11. Lay, Th., Hernlund, J., Garnero, E.J. et al. (2006). A Post-Perovskite and "D" Heat Flux Beneath the Central Pacific. Science, 314, 1272.
  12. Rusov, V.D., Zelentsova, T.N., Tarasov, V.A. et al. (2004). Inverse problem of remote neutrino diagnostic of intrareactor processes. J. Appl. Phys., 96, 1734.
  13. Rusov, V.D., Pavlovich, V.N., Vaschenko, V.N. et al. (2007). Geoantineutrino spectrum and slow nuclear burning on the boundary of the liquid and solid phases of the Earth's core. J. Geophys. Res., 112, B09203.
  14. Rusov, V.D., Tarasov, V.A., & Litvinov, D.A. (2008). Reactor antineutrino physics. Moscow, URSS.
  15. Rusov, V.D., Glushkov, A.V., Vaschenko, V.N., et al. (2010). Galactic cosmic rays-clouds effect and bifurcation model of the Earth global climate. Part 1. Theory. J. Atmos. Solar-Terr. Physics, 72, 398.
  16. Rusov, V.D., Vaschenko, V.N., Linnik, E.P., et al. (2010). Galactic cosmic rays-clouds effect and bifurcation model of the Earth global climate. Part 2. Comparison of the theory with experiment. J. Atmos. Solar-Terr. Physics, 72, 389; arXiv, physics.ao-ph 0803.2765.
  17. Teller, E., et al. (1996). Proc. Int. Conf. on Emerging Nuclear Energy System (ICENEC '96). Obninsk, Russian Federation. P. 123-127.