Indeed… and what if that miniscule addition of energy is repeated at, and
in-phase with, the frequency of the electron oscillation (~10^15Hz).  If the
addition of energy is in-phase (coherent, constructive), then the energy
accumulated over 1 second in a single H atom is the product of 5.87^-6 eV *
10^15, which is:
5.87^9 eV or ~6GeV.  
Agreed, that seems a bit far-fetched, but that’s the ideal situation,
assuming that the addition is always in-phase and thus constructive.  In
reality, the nature of the atomic environment is far from ideal, so this
would be an upper limit to the amount of E that could be constructively
accumulated in 1 second.  However, what isn’t so farfetched, is that all
that has to happen is for the conditions within the NAE (or wherever LENR
takes place) be stable for a small fraction of a second before enough energy
is accumulated to overcome the coulomb barrier…

Now this example used the hyperfine value of 5.87µeV/transition, and who
knows what the source is for the ‘pumping’ that might be happening in
LENR/NAE, but the idea is that given the extreme frequencies involved, it
doesn’t take long to accumulate a lot of E under these coherent conditions.

-Mark Iverson

_____________________________________________
From: Jones Beene [mailto:[email protected]] 
Sent: Tuesday, June 11, 2013 5:44 PM
To: [email protected]
Subject: [Vo]:RE: LENR, Lonsdaleite and Tunguska



                From: MarkI-ZeroPoint 

                Atomic absorption spectroscopy does exhibit some phenomena
which are in this range of the EM spectrum, e.g., the 21cm line of hydrogen
which is due to the atomic transition between the two hyperfine levels of
the hydrogen 1s ground state with an energy difference of 5.87433 µeV.  Now,
that is way too small of an energy difference to think it could have
anything to do with LENR effects directly…

Even this low energy transition (and the Lamb shift) could possibly be
utilized in a gainful device if the sequential frequency of transition is
pumped by anything “free” and the transition is; but a way to extract the
gain needs to be found. In empty space, the time for an isolated atom of
hydrogen to undergo this flip transition is millions of years - but that is
near absolute zero temperature. 

At terahertz levels of ambient blackbody vibration of hydrogen in a metal
lattice, every million transitions would conceivably give quite a nice bump
if they happened near the phonon rate, and if the input power is kept low.
This was one way that the late Robert Forward envisioned to collect ZPE.
That site is still up but it looks like there are no new publications since
he passed away:

http://www.quantumfields.com/projects.htm


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