Doppelgänger
What if you had a document that…
- Showed nuclear synthesis without harmful radiation
- had two catalysts, a big and a small one
- could self sustain
- operated between 300 and 1500ºC +
- had demonstrated melt-downs
- works as a fluid
- could be enhanced by other catalysts
- potentially gave insight to the whole LENR field
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Perhaps people missed it at the start of my Doppelgänger video, but my thinking has advanced somewhat following a lecture by Christian Amatore at Aarhus
www.electrochem.org/amatore
He was discussing Pt in chemical reaction catalysis and said that a catalyst cannot return to its original state (where it has the ability to facilitate the reaction) by heat. Instead you must apply some form or electrons or light.
In the case of electrolytic cells, the application of electricity is a given, in the case of glow or spark discharge, again it is there in abundance. In the case of laser stimulated reactions, such as those by Cravens, you have the light. But what of the Lugano / *GlowStick* series?
In the case of the Lugano reactor, there are three parallel phases - now Alan re-discovered that Alumina progressively becomes a conductor as the temperature rises - this is why I made recommendations to me356. With 3 phases and pulsed energy you can have a differential of 240 X Sqrt3 differential I think (may be wrong) between the phases, and so that would create some electrical power through the fuel - if how ever the 3 phase was configured as a star - with the neutral in the middle of the fuel, then there would readily be electricity passing though the fuel.
So what of the *GlowStick* type cells? In one of my videos, I showed that the peak IR was around 900ºC, after that we start to move into the visible spectrum. For Visible, read "light" so whilst there is no appreciable electricity possible though the alumina in a GS, there is more and more light above 900ºC, could this be why we appear to see the effect take off at the highest temperatures?
Yes, I have been speaking to him quite a bit about that today and have requested further time with him over the week. He has deep understanding of the most probable outcomes from the reaction.
Thinking about possible contaminants... . Nickel grains were "supported" on a small amount of kieselguhr, i.e. inert silica, aka diatomaceous earth. Minimal alumina content, plus some iron perhaps. Reactor was stainless steel (Fe, Ni, Cr) but runaways typically occurred within the bulk of the macro-porous nickel.
When I said the reactor was purged, that was with a vacuum (~1 mm Hg IIRC), filled with nitrogen, vacuumed again & then filled with hydrogen, prior to the in-situ reduction procedure. Reactor was also purged afterwards with nitrogen and then thoroughly with air before being opened for inspection.
I am just as keen to see LENR in action ASAP as you...
Thank you for all the answers! They are very much appreciated!
I'm up to my neck in research right now, so I'll need a bit of time to wrap my head fully around your answers. The phenomenon you discovered sure does look interesting.
@Arnaud
I agree with you saying that there could possibly have been a contaminant at the level of 10 ppm magnitude. However, runaways frequently occurred during perfectly steady state operation, e.g. at night. Reactor was heated electrically with adjustable AC voltage from tapped rheostats (1970's!).
I am not claiming this was LENR but I am saying it was pure (carbonyl) nickel behaving very oddly in the presence of electrolytic Hydrogen, lots of Ammonia and some Alcohol plus Water.
Controlling the temperature (by removing heat fast enough when necessary) would have required a very thin wafer type design reactor with large heat sinks and external heating.
The contaminant could be in very low quantity to start a runaway event. The contaminant could come from element present inside the reactor. The awaiting time tell us that it takes time to prepare the Ni to start the LENR in your case (if it is related to a LENR event)
I've a last question. How did you heat the reactor ? Electrical heaters ?
Arnaud
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