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SEARCH FOR NEUTRINO–GRAVITATIONAL CORRELATIONS ON THE OGRAN AND BUST UNDERGROUND DETECTORS

https://doi.org/10.56304/S2079562924060241

EDN: WLVLYO

Abstract

The strategy for detecting collapsing stars in the Galaxy using a pair of instruments including the OGRAN optoacoustic gravitational detector and the BPST neutrino scintillation telescope, located in the ground laboratories of the Baksan Neutrino Observatory, Institute for Nuclear Research, Russian Academy of Sciences is discussed. A key element of the strategy is the search for correlated responses from both detectors, the so-called. search for “neutrino-gravitational correlations.” The efficiency of various algorithms for joint data processing, including analysis of the CH1987A event, is assessed. The processing technique is illustrated using the current output signals of the mentioned instruments.

About the Authors

S. I. Oreshkin
Sternberg Astronomical Institute, Moscow State University
Russian Federation


Yu. M. Gavrilyuk
Sternberg Astronomical Institute, Moscow State University; Baksan Neutrino Observatory, Institute for Nuclear Research, Russian Academy of Sciences
Russian Federation


A. V. Gusev
Sternberg Astronomical Institute, Moscow State University
Russian Federation


N. L. Kvashnin
Institute of Laser Physics, Siberian Branch, Russian Academy of Sciences
Russian Federation


A. A. Lugovoy
Institute of Laser Physics, Siberian Branch, Russian Academy of Sciences
Russian Federation


S. M. Popov
Sternberg Astronomical Institute, Moscow State University
Russian Federation


V. N. Rudenko
Sternberg Astronomical Institute, Moscow State University; Baksan Neutrino Observatory, Institute for Nuclear Research, Russian Academy of Sciences
Russian Federation


V. V. Semenov
Sternberg Astronomical Institute, Moscow State University
Russian Federation


I. A. Syrovatsky
Sternberg Astronomical Institute, Moscow State University
Russian Federation


References

1. Misner C.W., Thorne K.S., Wheeler J.A. Gravitation. 1973. San Francisco: Freeman W.H. and Company.

2. Joshi P.S. Gravitational Collapse and Space-Time Singularities. 2007. Cambridge: Cambridge Univ. Press.

3. Fryer C., New K.C.B. // Living Rev. Relativ. 2011. V. 14. P. 1.

4. Gossan S.E. et al. // Phys. Rev. D. 2016. V. 93 (4). P. 042002.

5. Mayle R., Wilson J.R., Schramm D.N. // Astrophys. J. 1987. V. 318. P. 288–306.

6. Бисноватый-Коган Г.С., Моисеенко С.Г. // Усп. физ. наук. 2017. Т. 187. С. 906–914.

7. Abbott B.P. et al. (LIGO Sci. Collab., Virgo Collab.) // Phys. Rev. Lett. 2016. V. 116. P. 061102.

8. Abbott B.P. et al. (LIGO Sci. Collab., Virgo Collab.) // Phys. Rev. Lett. 2016. V. 116. P. 241103.

9. Abbott B.P. et al. (LIGO Sci. Collab., Virgo Collab.) // Phys. Rev. Lett. 2017. V. 118. P. 221101.

10. Abbott B.P. et al. (LIGO Sci. Collab., Virgo Collab.) // Phys. Rev. Lett. 2017. V. 119. P. 141101.

11. Abbott B.P. et al. (LIGO Sci. Collab., Virgo Collab.) // Phys. Rev. Lett. 2017. V. 119. P. 161101.

12. https://dcc.ligo.org/public/0177/T2100289/005/OBSWP21-public.pdf

13. Rudenko,V., Andrusenko S., Krichevskiy D., Manucharyan G. // Universe. 2020. V. 6 (9). P. 140. https://doi.org/10.3390/universe6090140

14. Rudenko V., Andrusenko S., Krichevskiy D., Manucharyan G. // J. Phys.: Conf. Ser. 2021. V. 2081. P. 012011.

15. Bagaev S.N. et al. // Rev. Sci. Instrum. 2014. V. 85. P. 114.

16. Bagaev S.N., Bezrukov L.B., Kvashnin N.L. et al. // Instrum. Exp. Tech. 2015. V. 58 (2). P. 257–267.

17. Руденко В.Н., Квашнин Н.Л., Луговой А.А., Орешкин С.И., Попов С.М., Самойленко А.А., Скворцов М.Н., Юдин И.С. // Ядерная физика и инжиниринг. 2020. Т. 11 (3). С. 152–161 [Rudenko V.N., Kvashnin N.L., Lugovoi A.A., Oreshkin S.I., Popov S.M., Samoylenko A.A., Skvortsov M.N., Yudin I.S. // Phys. At. Nucl. 2020. V. 83. P. 1682–1690].

18. Novoseltsev Y. et al. // J. Exp. Theor. Phys. 2017. V. 125. P. 73–79.

19. Новосельцев Ю.Ф. и др. // Журн. эксп. теор. физ. 2017. Т. 152 (1). С. 89–96.

20. Adams S.M. et al. // Astrophys. J. 2013. V. 778 (2). P. 164.

21. Dimmelmeier H., Ott C., Janka H., Marek A., Müller E. // Phys. Rev. Lett. 2007. V. 98 (25). P. 251101.

22. Имшенник В.С., Надежин Д.К. // Усп. физ. наук. 1988. Т. 156 (4). С. 561.

23. Albert A. et al. // Astrophys. J. 2022. V. 934. P. 164–185.

24. Alexeyev E.N. et al. // Phys. Lett. B. 1988. V. 205. P. 209.

25. Vallée M. et al. // Science. 2017. V. 358 (6367). P. 11641168. https://doi.org/10.1126/science.aao0746

26. Aglietta M. et al. // Europhys. Lett. 1987. V. 3. P. 1321.

27. Andrusenko S. et al. // Universe. 2022. V. 8 (9). P. 446458. https://doi.org/10.3390/universe8090446


Review

For citations:


Oreshkin S.I., Gavrilyuk Yu.M., Gusev A.V., Kvashnin N.L., Lugovoy A.A., Popov S.M., Rudenko V.N., Semenov V.V., Syrovatsky I.A. SEARCH FOR NEUTRINO–GRAVITATIONAL CORRELATIONS ON THE OGRAN AND BUST UNDERGROUND DETECTORS. Nuclear Physics and Engineering. 2024;15(6):631-641. (In Russ.) https://doi.org/10.56304/S2079562924060241. EDN: WLVLYO

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