>From the SLAC report—"We give simple! arguments that
while baryon number violation is indeed large at high temperatures, there is no
such enhancement at high energies.”

http://www.slac.stanford.edu/pubs/slacreports/reports12/ssi90-020.pdf


I conclude that 2-body (high energy)  particle reactions require conservation 
of linear momentum and many- body, (low-energy,  high-temperature) reactions 
depend upon  tunneling and wave function overlap at resonant conditions  with 
conservation of energy and angular   momentum.  Baryon conservation only 
happens some- times.  That’s “simpler!” than the SLAC group’s arguments IMHO.

Bob Cook
________________________________
From: JonesBeene <[email protected]>
Sent: Wednesday, April 24, 2019 11:42:28 AM
To: [email protected]
Subject: RE: [Vo]:New Holmlid paper on Research Gate


Nah. In fact, there are many violations of baryon number conservation at high 
local temperatures in the Standard Model…

Here is a decent paper on the subject of baryon conservation law violations 
from people who see it almost  every day and incidentally have LLNL connections.

http://www.slac.stanford.edu/pubs/slacreports/reports12/ssi90-020.pdf.

In the end, experiment always rules, and “conservation laws” are usually 
nothing more than generalizations to begin with….(make that 
over-generalizations)

Jones



From: Axil Axil<mailto:[email protected]>


The reason why "LLNL not all over this" is because the Holmlid effect violates 
the baryon number conservation law.



https://en.wikipedia.org/wiki/Baryon_number





JonesBeene  wrote:

https://www.researchgate.net/publication/331968180_Ultradense_protium_p0_and_deuterium_D0_and_their_relation_to_ordinary_Rydberg_matter_a_review

There is a clue here about why the output in muons has been difficult for 
others to duplicate.

It turns out that the active material must be in the form of long chain 
clusters, not simply the smaller grouping.

QUOTE: “Superfluidity and a Meissner effect at room temperature are only found 
for the long chain clusters H2N(0), while the small H3(0) and H4(0) clusters do 
not have any super properties”

This means that there is a specific technique which has to be implemented to 
first densify and then to  create the extremely dense clusters in which most of 
the nuclear reaction processes take place.

Following this step, laser irradiation will  give meson showers (most types of 
kaons and pions) and, after meson decay, large fluxes of muons and other 
leptons.

The fluxes can be  extraordinarily high

Why is LLNL not all over this ???

It seems almost negligent to ignore this. Heads should roll if the Holmlid 
effect has been overlooked by the one National Lab whose missionand 
multibillion funding level  is so similar.

Not to mention the military implications.

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