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Acoustic, electromagnetic, neutron emissions from fracture and earthquakes

This book presents the relevant consequences of recently discovered and interdisciplinary phenomena, triggered by local mechanical instabilities. In particular, it looks at emissions from nano-scale mechanical instabilities such as fracture, turbulence, buckling and cavitation, focussing on vibratio...

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Detalles Bibliográficos
Autores principales: Carpinteri, Alberto, Lacidogna, Giuseppe, Manuello, Amedeo
Lenguaje:eng
Publicado: Springer 2015
Materias:
Acceso en línea:https://dx.doi.org/10.1007/978-3-319-16955-2
http://cds.cern.ch/record/2112738
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author Carpinteri, Alberto
Lacidogna, Giuseppe
Manuello, Amedeo
author_facet Carpinteri, Alberto
Lacidogna, Giuseppe
Manuello, Amedeo
author_sort Carpinteri, Alberto
collection CERN
description This book presents the relevant consequences of recently discovered and interdisciplinary phenomena, triggered by local mechanical instabilities. In particular, it looks at emissions from nano-scale mechanical instabilities such as fracture, turbulence, buckling and cavitation, focussing on vibrations at the TeraHertz frequency and Piezonuclear reactions. Future applications for this work could include earthquake precursors, climate change, energy production, and cellular biology. A series of fracture experiments on natural rocks demonstrates that the TeraHertz vibrations are able to induce fission reactions on medium weight elements accompanied by neutron emissions. The same phenomenon appears to have occurred in several different situations, particularly in the chemical evolution of the Earth and Solar System, through seismicity (rocky planets) and storms (gaseous planets). As the authors explore, these phenomena can also explain puzzles related to the history of our planet, like the ocean formation or the primordial carbon pollution, as well as scientific mysteries, like the so-called “cold nuclear fusion” or the correct radio-carbon dating of organic materials, such as the Turin Shroud. In biology, Piezonuclear reactions could explain the mechanism that governs the so-called "sodium-potassium pump" and, more in general, the metabolic processes.  Scientists engaged in seismology, geophysics, geochemistry, climatology, planetology, condensed matter physics an d biology, as well as those involved in theoretical and applied mechanics, will all appreciate the innovative work presented here in a holistic way.
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spelling cern-21127382021-04-21T20:01:25Zdoi:10.1007/978-3-319-16955-2http://cds.cern.ch/record/2112738engCarpinteri, AlbertoLacidogna, GiuseppeManuello, AmedeoAcoustic, electromagnetic, neutron emissions from fracture and earthquakesEngineeringThis book presents the relevant consequences of recently discovered and interdisciplinary phenomena, triggered by local mechanical instabilities. In particular, it looks at emissions from nano-scale mechanical instabilities such as fracture, turbulence, buckling and cavitation, focussing on vibrations at the TeraHertz frequency and Piezonuclear reactions. Future applications for this work could include earthquake precursors, climate change, energy production, and cellular biology. A series of fracture experiments on natural rocks demonstrates that the TeraHertz vibrations are able to induce fission reactions on medium weight elements accompanied by neutron emissions. The same phenomenon appears to have occurred in several different situations, particularly in the chemical evolution of the Earth and Solar System, through seismicity (rocky planets) and storms (gaseous planets). As the authors explore, these phenomena can also explain puzzles related to the history of our planet, like the ocean formation or the primordial carbon pollution, as well as scientific mysteries, like the so-called “cold nuclear fusion” or the correct radio-carbon dating of organic materials, such as the Turin Shroud. In biology, Piezonuclear reactions could explain the mechanism that governs the so-called "sodium-potassium pump" and, more in general, the metabolic processes.  Scientists engaged in seismology, geophysics, geochemistry, climatology, planetology, condensed matter physics an d biology, as well as those involved in theoretical and applied mechanics, will all appreciate the innovative work presented here in a holistic way.Springeroai:cds.cern.ch:21127382015
spellingShingle Engineering
Carpinteri, Alberto
Lacidogna, Giuseppe
Manuello, Amedeo
Acoustic, electromagnetic, neutron emissions from fracture and earthquakes
title Acoustic, electromagnetic, neutron emissions from fracture and earthquakes
title_full Acoustic, electromagnetic, neutron emissions from fracture and earthquakes
title_fullStr Acoustic, electromagnetic, neutron emissions from fracture and earthquakes
title_full_unstemmed Acoustic, electromagnetic, neutron emissions from fracture and earthquakes
title_short Acoustic, electromagnetic, neutron emissions from fracture and earthquakes
title_sort acoustic, electromagnetic, neutron emissions from fracture and earthquakes
topic Engineering
url https://dx.doi.org/10.1007/978-3-319-16955-2
http://cds.cern.ch/record/2112738
work_keys_str_mv AT carpinterialberto acousticelectromagneticneutronemissionsfromfractureandearthquakes
AT lacidognagiuseppe acousticelectromagneticneutronemissionsfromfractureandearthquakes
AT manuelloamedeo acousticelectromagneticneutronemissionsfromfractureandearthquakes