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The Sun and its Planets as detector for invisible matter

Gravitational lensing of invisible streaming matter towards the Sun with speeds around $10^{−4} to 10^{−3}c$ could be the explanation of the puzzling solar flares and the unexplained solar emission in the EUV. Assuming that this invisible massive matter has some form of interaction with normal matte...

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Autores principales: Bertolucci, Sergio, Zioutas, Konstantin, Hofmann, Sebastian, Maroudas, Marios
Lenguaje:eng
Publicado: 2016
Materias:
Acceso en línea:https://dx.doi.org/10.1016/j.dark.2017.06.001
http://cds.cern.ch/record/2131271
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author Bertolucci, Sergio
Zioutas, Konstantin
Hofmann, Sebastian
Maroudas, Marios
author_facet Bertolucci, Sergio
Zioutas, Konstantin
Hofmann, Sebastian
Maroudas, Marios
author_sort Bertolucci, Sergio
collection CERN
description Gravitational lensing of invisible streaming matter towards the Sun with speeds around $10^{−4} to 10^{−3}c$ could be the explanation of the puzzling solar flares and the unexplained solar emission in the EUV. Assuming that this invisible massive matter has some form of interaction with normal matter and that preferred directions exist in its flow, then one would expect a more pronounced solar activity at certain planetary heliocentric longitudes. This is best demonstrated in the case of the Earth and the two inner planets, considering their relatively short revolution time (365, 225 and 88 days) in comparison to a solar cycle of about 11 years. We have analyzed the solar flares as well as the EUV emission in the periods 1976–2015 and 1999–2015, respectively. The results derived from each data set mutually exclude systematics as the cause of the observed planetary correlations. We observe statistically significant signals when one or more planets have heliocentric longitudes mainly between 230° and 300°. We also analyzed daily data of the global ionization degree of the dynamic Earth atmosphere taken in the period 1995–2012. Again here, we observe a correlation between the total atmospheric electron content (TEC) and the orbital position of the inner three planets. Remarkably, the strongest correlation appears with the phase of the Moon. The broad velocity spectrum of the assumed constituents makes it difficult at this stage to identify its source(s) in space. More refined analyses might in the future increase the precision in the determination of the stream(s) direction and possibly allow to infer some properties of its constituents. Presently, no firmly established model of massive streaming particles exists, although in the literature there are abundant examples of hypotheses. Among them, the anti-quark nuggets model for dark matter seems the better suited to explain our observations and deserves further study.
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spelling cern-21312712023-06-28T07:33:04Zdoi:10.1016/j.dark.2017.06.001http://cds.cern.ch/record/2131271engBertolucci, SergioZioutas, KonstantinHofmann, SebastianMaroudas, MariosThe Sun and its Planets as detector for invisible matterastro-ph.SRAstrophysics and AstronomyGravitational lensing of invisible streaming matter towards the Sun with speeds around $10^{−4} to 10^{−3}c$ could be the explanation of the puzzling solar flares and the unexplained solar emission in the EUV. Assuming that this invisible massive matter has some form of interaction with normal matter and that preferred directions exist in its flow, then one would expect a more pronounced solar activity at certain planetary heliocentric longitudes. This is best demonstrated in the case of the Earth and the two inner planets, considering their relatively short revolution time (365, 225 and 88 days) in comparison to a solar cycle of about 11 years. We have analyzed the solar flares as well as the EUV emission in the periods 1976–2015 and 1999–2015, respectively. The results derived from each data set mutually exclude systematics as the cause of the observed planetary correlations. We observe statistically significant signals when one or more planets have heliocentric longitudes mainly between 230° and 300°. We also analyzed daily data of the global ionization degree of the dynamic Earth atmosphere taken in the period 1995–2012. Again here, we observe a correlation between the total atmospheric electron content (TEC) and the orbital position of the inner three planets. Remarkably, the strongest correlation appears with the phase of the Moon. The broad velocity spectrum of the assumed constituents makes it difficult at this stage to identify its source(s) in space. More refined analyses might in the future increase the precision in the determination of the stream(s) direction and possibly allow to infer some properties of its constituents. Presently, no firmly established model of massive streaming particles exists, although in the literature there are abundant examples of hypotheses. Among them, the anti-quark nuggets model for dark matter seems the better suited to explain our observations and deserves further study.Gravitational lensing of invisible streaming matter towards the Sun could be the explanation of the puzzling solar flares and the unexplained solar emission in the EUV. Assuming that this invisible matter has some form of interaction with normal matter and that there exist preferred directions in its flow, then one would expect a more pronounced solar activity at certain planetary heliocentric longitudes. This is best demonstrated in the case of the Earth and the two inner planets. We have analyzed the solar flares as well as the EUV emission. We observe statistically significant signals when one or more planets have heliocentric longitudes mainly between 230o and 300o. We also analyzed daily data of the global ionization degree of the Earth atmosphere. We observe a correlation between the total atmospheric electron content and the orbital position of the inner three planets. Remarkably, the strongest correlation is appearing with the phase of the Moon.arXiv:1602.03666oai:cds.cern.ch:21312712016-02-11
spellingShingle astro-ph.SR
Astrophysics and Astronomy
Bertolucci, Sergio
Zioutas, Konstantin
Hofmann, Sebastian
Maroudas, Marios
The Sun and its Planets as detector for invisible matter
title The Sun and its Planets as detector for invisible matter
title_full The Sun and its Planets as detector for invisible matter
title_fullStr The Sun and its Planets as detector for invisible matter
title_full_unstemmed The Sun and its Planets as detector for invisible matter
title_short The Sun and its Planets as detector for invisible matter
title_sort sun and its planets as detector for invisible matter
topic astro-ph.SR
Astrophysics and Astronomy
url https://dx.doi.org/10.1016/j.dark.2017.06.001
http://cds.cern.ch/record/2131271
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