Axil, The magnetic effects on the sun are a long way from Earth. It is true that the net field at the surface of the Earth is a vector combination of the Sun's field at that location with the Earth's, but the Earth's field is far dominate. The effect should have been seen by experiments conducted here in the past. It seems odd that no one would have tried changing the local magnetic field searching for interactions.
It might be the result of some other particle. Or, just another random measurement seeking an explanation. Dave -----Original Message----- From: Axil Axil <[email protected]> To: vortex-l <[email protected]> Sent: Tue, Jan 14, 2014 12:08 am Subject: Re: [Vo]:Cern Colloquium: Low Energy Nuclear Reactions? The case for magnetism as a cause for nuclear reactions. http://phys.org/news/2011-09-physics.html Radioactive decay – a random process right? Well, according to some – maybe not. For several years now a team of physicists from Purdue and Stanford have reviewed isotope decay data across a range of different isotopes and detectors – seeing a non-random pattern and searching for a reason. And now, after eliminating all other causes – the team are ready to declare that the cause is... extraterrestrial. OK, so it’s suggested to just be the Sun – but cool finding, huh? Well… maybe it’s best to first put on your skeptical goggles before reading through anyone’s claim of discovering new physics. http://news.stanford.edu/news/2010/august/sun-082310.html When researchers found an unusual linkage between solar flares and the inner life of radioactive elements on Earth, it touched off a scientific detective investigation that could end up protecting the lives of space-walking astronauts and maybe rewriting some of the assumptions of physics. On Dec 13, 2006, the sun itself provided a crucial clue, when a solar flare sent a stream of particles and radiation toward Earth. Purdue nuclear engineer Jere Jenkins, while measuring the decay rate of manganese-54, a short-lived isotope used in medical diagnostics, noticed that the rate dropped slightly during the flare, a decrease that started about a day and a half before the flare. The Sun is the source for huge explosions of magnetic force. Flares occur when accelerated charged particles, mainly electrons, interact with the plasma medium. Scientific research has shown that the phenomenon of magnetic reconnection is responsible for the acceleration of the charged particles. On the Sun, magnetic reconnection may happen on solar arcades – a series of closely occurring loops of magnetic lines of force. These lines of force quickly reconnect into a low arcade of loops leaving a helix of magnetic field unconnected to the rest of the arcade. The sudden release of energy in this reconnection is the origin of the particle acceleration. The unconnected magnetic helical field and the material that it contains may violently expand outwards forming a coronal mass ejection. This also explains why solar flares typically erupt from what are known as the active regions on the Sun where magnetic fields are much stronger on average. The appearance of the slowdown of the nuclear decay rate on earth that occurs at the onset of the solar flare indicate that magnetic interactions with the nucleus can modify nuclear activity. Magnetic energy is expended to accelerated charged particles outward from the sun. This flare activity temporally depletes magnetic force at the surface of the sun causing a reduction in nuclear decay rates. Yes, this is new physics. This solar evidence as well as Photo fusion and fission through laser radiation as described above is a result of magnetic effects modifying nuclear stability. On Mon, Jan 13, 2014 at 5:07 PM, Axil Axil <[email protected]> wrote: The fixation on neutrons is part of the training imposedon nuclear physicists and engineers. But there is another less traveled road to the initiation ofnuclear reactions that has been under the radar in the nuclear community. Many years ago, it was shown that high energy laserscould induce fission and fusion if the power of the laser pulse was strongenough http://physics.aps.org/story/v5/st3 Photo induced nuclear reactions begin to occur when thepower density of the infrared light reached just under 10^^20 W/cm2. Since the timeof unaided photo nuclear reactions were demonstrated, it has been shown that goldnano-particles can amplify and concentrate infrared light by 9 orders ofmagnitudes. Now with gold Nano-particles, it is logicalto expect nuclear reactions will occur when laser light with an intensity of 10^^10 W/cm2 to 10^^12 W/cm2 will occur. That is 9 orders of magnitude less than unaided photo irradiation. Experiments using goldnano-particles in water suspension irradiated by laser light of this reducedlevel of intensity do in fact occur. Since then,light amplification by nano-structures has been observed to reach a top end of 10 to the 15power. The idea is that if more andmore nano-particle infrared photo concentration is applied to a system, thenless and less infrared photon energy will produce a nuclear reaction. Withadditional tweaking of the nano-structure shapes and topology, it is not unreasonable toexpect that 10 to the 20th power concentration and application mightbe reached. That meansthat it is reasonable to assume that nuclear reactions will occur if UNAPMLIFIEDinfrared light were to interact with properly engineered nanostructures. Increased infraredphoto amplification is what has been done in the design of the Ni/H reactor. On Mon, Jan 13, 2014 at 12:09 PM, H Veeder <[email protected]> wrote: Low Energy Nuclear Reactions? by A.D. Polosa (Dip. Fisica, Sapienza Universita di Roma), R. Faccini (Dip. Fisica, Sapienza Universita di Roma) Thursday, 16 January 2014 from 16:30 to 17:30 (Europe/Zurich) at CERN ( 503-1-001 - Council Chamber ) Description After an introduction to the controversial problem of Low Energy Nuclear Reactions (LENR) catalyzed by neutrons on metallic hydride surfaces we present the results of an experiment, made in collaboration with ENEA Labs in Frascati, to search neutrons from plasma discharges in electrolytic cells. The negative outcome of our experiment goes in the direction of ruling out those theoretical models expecting LENR to occur in condensed matter systems under specific conditions. Our criticism on the theoretical foundations of such models will also be presented. https://indico.cern.ch/conferenceDisplay.py?confId=294134

