In reply to  Jones Beene's message of Sat, 11 Feb 2017 18:14:38 -0800:
Hi,
[snip]
>Forget the tresino, grok the quatrino...
>
>Although Mayer's tresino gets the most attention in the cited paper, and 
>is very close to Mills "hydrino hydride" it is a charged particle. 
>Therefore, it should be very noticeable and since it is not seen, it 
>probably does not exist in useful quantities. To match the experiments 
>we need a neutral particle and the "quatrino" is more likely to be 
>involved in LENR.
>
>If it exists, the quatrino is a neutral composite of two protons and two 
>electrons which do not orbit in the normal way, thus it is far more 
>compact than the H2 molecule, and with a mass of only 1.8 GeV... 
>depleted of energy and inert. It is very stable and dark, as we might 
>expect. Either Compton composite are described by Mayer to be stable and 
>long-lived, and thus dark matter candidates.
>
>"The quatrino is a four-body composite with two hydrogen nuclei located 
>on the axis at z and two electrons on a circle of radius r in the 
>midplane. The orbital velocity of the electrons is very small, and there 
>is zero angular momentum... the binding energy of the quatrino is about 
>25 keV." The high binding energy probably means it avoids detection in a 
>mass spectrometer. However, it should be detectable if one made a 
>concerted effort using the details provided.

Mills functional equivalent would be a Hydrino molecule. The difference being
that in a Hydrino molecule the electrons follow elliptical orbits around both
nuclei. 

BTW a few years back I tried modeling the Helium atom as a nucleus with a ring
electron on opposite sides, but I gave up after I calculated a first ionization
potential of 27.2 eV i.s.o. the correct 24.5874 eV.

Regards,

Robin van Spaandonk

http://rvanspaa.freehostia.com/project.html

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